Chengdu University of Technology

Chine

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        États-Unis 103
        International 22
Date
Nouveautés (dernières 4 semaines) 2
2025 octobre 2
2025 septembre 2
2025 août 1
2025 juillet 2
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Classe IPC
G01N 33/24 - Matériaux de la terre 12
E21B 23/00 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage 6
G01V 1/50 - Analyse des données 6
A61P 35/00 - Agents anticancéreux 5
E21B 47/06 - Mesure de la température ou de la pression 5
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Statut
En Instance 24
Enregistré / En vigueur 101
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1.

PREPARATION METHOD FOR TPMS GRADIENT STRUCTURE OF 3D-PRINTED PERSONALIZED IMPLANT ROOT

      
Numéro d'application CN2024099907
Numéro de publication 2025/218006
Statut Délivré - en vigueur
Date de dépôt 2024-06-18
Date de publication 2025-10-23
Propriétaire CHENGDU UNIVERSITY (Chine)
Inventeur(s)
  • Cheng, Lijia
  • Long, Shuai
  • Gao, Min
  • Xie, Zhenjian
  • Dong, Zhihong
  • Deng, Yuanyuan

Abrégé

Disclosed in the present invention is a preparation method for a TPMS gradient structure of a 3D-printed personalized implant root. The method comprises: constructing a plurality of different types of implant root structure models; performing finite element simulation analysis on the implant root structure models; selecting an implant root structure model corresponding to a Gyroid structure; determining the porosity range of the Gyroid structure; designing the Gyroid structure as a gradient porosity Gyroid structure; and on the basis of the gradient porosity Gyroid structure, using a 3D printer to prepare a TPMS gradient structure of an implant root. The present invention combines a TPMS gradient structure with a 3D printing technique, such that the biocompatibility, mechanical property and personalization adaptability of an implant are improved, thereby promoting the effective integration of the implant with host tissue, and achieving a better functional reconstruction effect.

Classes IPC  ?

  • B29C 64/386 - Acquisition ou traitement de données pour la fabrication additive
  • B33Y 50/00 - Acquisition ou traitement de données pour la fabrication additive

2.

Geological Disaster Monitoring Method, Device, Medium and Product

      
Numéro d'application 18813109
Statut En instance
Date de dépôt 2024-08-23
Date de la première publication 2025-10-16
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Hao, Lina
  • Li, Weile
  • Zheng, Guang
  • Xu, Qiang

Abrégé

A geological disasters monitoring method, device, medium and product are provided, which relates to the technical field of geological monitoring. The method includes determining microscopic deformation parameters of an area to be monitored according to remote sensing observation data corresponding to a slope body of the area to be monitored, determining macroscopic deformation parameters of the area to be monitored according to optical remote sensing data and terrain data of the area to be monitored, and determining the landslide remote sensing geomechanical deformation type in the area to be monitored according to material composition, movement mode, slope structure, the microscopic deformation parameters and the macroscopic deformation parameters of the area to be monitored. The present disclosure improves the accuracy of monitoring geological disasters.

Classes IPC  ?

  • G01S 13/90 - Radar ou systèmes analogues, spécialement adaptés pour des applications spécifiques pour la cartographie ou la représentation utilisant des techniques d'antenne synthétique
  • G01N 33/24 - Matériaux de la terre
  • G01S 13/88 - Radar ou systèmes analogues, spécialement adaptés pour des applications spécifiques
  • G01V 20/00 - Géomodélisation en général

3.

GROUND OBJECT SEGMENTATION METHOD BASED ON RESIDUAL MODULE AND ATTENTION MECHANISM, AND RELATED APPARATUS

      
Numéro d'application 18650426
Statut En instance
Date de dépôt 2024-04-30
Date de la première publication 2025-09-25
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zeng, Tao
  • Pu, Zeming
  • Fu, Yanmin
  • Lin, Shipeng
  • Liu, Peijie
  • Wu, Daobin
  • He, Junjie

Abrégé

The present disclosure provides a ground object segmentation method based on a residual module and an attention mechanism, and a related apparatus, and relates to the field of remote sensing (RS) ground object segmentation technologies. The method includes the following steps: obtaining a to-be-segmented RS image; and inputting the to-be-segmented RS image into a trained ground object segmentation model to obtain a ground object segmentation result, where the ground object segmentation model is a network model obtained based on a U-Net neural network and with reference to the residual module and an attention module. In the present disclosure, a U-Net model with reference to a residual network structure and the attention mechanism is used.

Classes IPC  ?

  • G06V 10/26 - Segmentation de formes dans le champ d’imageDécoupage ou fusion d’éléments d’image visant à établir la région de motif, p. ex. techniques de regroupementDétection d’occlusion
  • G06V 10/774 - Génération d'ensembles de motifs de formationTraitement des caractéristiques d’images ou de vidéos dans les espaces de caractéristiquesDispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant l’intégration et la réduction de données, p. ex. analyse en composantes principales [PCA] ou analyse en composantes indépendantes [ ICA] ou cartes auto-organisatrices [SOM]Séparation aveugle de source méthodes de Bootstrap, p. ex. "bagging” ou “boosting”
  • G06V 10/776 - ValidationÉvaluation des performances
  • G06V 10/82 - Dispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant les réseaux neuronaux
  • G06V 20/10 - Scènes terrestres

4.

Unmanned aerial vehicle (UAV)-based zonal spraying device and method for ecological restoration

      
Numéro d'application 18784993
Statut En instance
Date de dépôt 2024-07-26
Date de la première publication 2025-09-25
Propriétaire Chengdu University Of Technology (Chine)
Inventeur(s)
  • Cui, Shenghua
  • Pei, Xiangjun
  • Yang, Qingwen
  • Liu, Yufang
  • Wan, Zhao
  • Wei, Yufeng
  • Jiang, Tao
  • Yang, Mengjie

Abrégé

An unmanned aerial vehicle (UAV)-based zonal spraying device and method for ecological restoration is provided. The UAV-based zonal spraying device for ecological restoration includes a UAV body. Bottom ends of two sides of the UAV body are respectively provided with support legs. The UAV body includes a scanning mechanism, a spraying mechanism, and a nozzle mechanism. The spraying device can identify geological characteristics, acquire ecological geological environment data, determine different restoration zones according to terrain characteristics, select different treatment approaches, and load different slurries to achieve zonal ecological restoration for different types of geological disasters. In this way, the UAV-based zonal spraying device and method greatly improves the treatment efficiency and effectiveness for disaster recovery.

Classes IPC  ?

  • B05B 3/18 - Appareillages de pulvérisation ou d'arrosage avec des éléments de sortie mobiles ou des éléments déflecteurs mobiles avec éléments à mouvement rectiligne, p. ex. le long d'une voieDispositifs d'arrosage mobiles
  • B64U 20/87 - Montage des dispositifs d’imagerie, p. ex. montage des suspensions à cardan
  • B64U 101/45 - Véhicules aériens sans pilote spécialement adaptés à des utilisations ou à des applications spécifiques à l’épandage en vol de liquides ou de poudres, p. ex. sur les cultures

5.

Method for identifying optimal corridor width

      
Numéro d'application 19000914
Numéro de brevet 12380515
Statut Délivré - en vigueur
Date de dépôt 2024-12-24
Date de la première publication 2025-08-05
Date d'octroi 2025-08-05
Propriétaire
  • CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
  • Institute of Mountain Hazzards and Environment, Chinese Academy of Sciences (Chine)
Inventeur(s)
  • Luo, Yong
  • Yu, Hui
  • Chen, Dianpeng

Abrégé

A method for identifying an optimal corridor width includes: acquiring geographic information data of a target region; evaluating ecosystem service functions of the target region, and constructing an ecological source land in combination with a nature reserve; constructing a resistance surface indicator system, and obtaining a disaster susceptibility distribution result by using geological disaster distribution point data to correct a resistance surface, to thereby obtain a real resistance surface; importing data of the ecological source land and data of the real resistance surface into LINKAGE MAPPER to generate an ecological corridor; constructing an evaluation system of the optimal corridor width based on three aspects of cost-function-ecological benefits, and evaluating the ecological corridor by using an IEW-TOPSIS model to obtain the optimal corridor width of the ecological corridor. The method can compare and identify the corridor width most suitable for construction, and provide reference base for corridor construction.

Classes IPC  ?

  • G06F 17/16 - Calcul de matrice ou de vecteur
  • G06Q 50/02 - AgriculturePêcheForesterieExploitation minière

6.

REAL-TIME SLIDING ULTRA-SHORT-TERM FORECASTING MODEL ALGORITHM BASED ON FREQUENCY DATA AND PHASE DATA

      
Numéro d'application CN2024071286
Numéro de publication 2025/147841
Statut Délivré - en vigueur
Date de dépôt 2024-01-09
Date de publication 2025-07-17
Propriétaire
  • CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
  • WUHAN UNIVERSITY (Chine)
Inventeur(s)
  • Gao, Yaping
  • Fu, Wenju
  • Chen, Guo
  • Zi, Weige
  • Li, Jiapeng
  • Zhao, Pengcheng

Abrégé

The present application relates to the field of satellite navigation systems. Disclosed is a real-time sliding ultra-short-term forecasting model algorithm based on frequency data and phase data, the algorithm comprising the following steps: S1, converting clock error phase data into frequency data; S2, using a frequency abnormality detection function to process the frequency data, so as to eliminate an abnormal value, wherein the frequency abnormality detection function determines, on the basis of the standard deviation and threshold of the frequency data, whether the frequency data is an abnormal point; and S3, performing real-time sliding clock error forecasting, and using fitting phase data and a threshold range to eliminate the abnormal value and update a forecasting epoch. In the present invention, the elimination of an abnormal value from clock data and the calculation of a clock error prediction value are linked, so that the detection and elimination of the abnormal value from the clock data are rolled out in real time; and the calculation of a real-time clock error prediction value is performed, so that a clock frequency deviation is corrected. The present invention can improve the accuracy, real-time performance and data stability of forecasting, and is flexible and applicable to various types of satellite orbits.

Classes IPC  ?

  • G06F 18/2433 - Perspective d'une seule classe, p. ex. une classification "une contre toutes"Détection de nouveautéDétection de valeurs aberrantes

7.

Real-time sliding ultrashort-term forecast model algorithm based on frequency data and phase data

      
Numéro d'application 18421435
Numéro de brevet 12468331
Statut Délivré - en vigueur
Date de dépôt 2024-01-24
Date de la première publication 2025-07-10
Date d'octroi 2025-11-11
Propriétaire
  • Chengdu University of Technology (Chine)
  • Wuhan University (Chine)
Inventeur(s)
  • Gao, Yaping
  • Fu, Wenju
  • Chen, Guo
  • Zi, Weige
  • Li, Jiapeng
  • Zhao, Pengcheng

Abrégé

The present application relates to the field of satellite navigation systems, and discloses a real-time sliding ultrashort-term forecast model algorithm based on frequency data and phase data. The real-time sliding ultrashort-term forecast model algorithm based on frequency data and phase data includes: S1, converting clock error phase data into the frequency data; S2, processing the frequency data through a frequency anomaly detection function, and eliminating an abnormal value, where the frequency anomaly detection function determines whether the frequency data is an outlier according to a standard deviation and a threshold of the frequency data; and S3, performing a real-time sliding clock error forecast, and eliminating the abnormal value and updating a forecast epoch by using fitted phase data and a threshold range.

Classes IPC  ?

  • G06F 1/08 - Générateurs d'horloge ayant une fréquence de base modifiable ou programmable

8.

OBJECT-ORIENTED METHOD FOR IDENTIFYING AND CLASSIFYING SURFACE LITHOLOGY IN HYPERSPECTRAL REMOTE SENSING IMAGE

      
Numéro d'application 18634210
Statut En instance
Date de dépôt 2024-04-12
Date de la première publication 2025-06-26
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Liu, Hanhu
  • Zhang, Heng
  • Yang, Ronghao

Abrégé

The present disclosure provides an object-oriented method for identifying and classifying surface lithology in a hyperspectral remote sensing image. The method includes: determining a hyperspectral remote sensing image in a research area and a lithology type label corresponding to each hyperspectral remote sensing image, and preparing a hyperspectral remote sensing dataset; dividing pixels of the hyperspectral remote sensing image in the hyperspectral remote sensing dataset into a training set and a test set through a division strategy for a dataset without leakage information; and based on a deep learning method, extracting and fusing, through a double-branch multi-scale dual-attention mechanism network based on the training set and the test set, a spectral feature and a spatial feature of a hyperspectral remote sensing image to be tested, to generate a fused feature for representing a surface lithology type of the hyperspectral remote sensing image to be tested.

Classes IPC  ?

  • G06V 20/10 - Scènes terrestres
  • G06V 10/24 - Alignement, centrage, détection de l’orientation ou correction de l’image
  • G06V 10/58 - Extraction de caractéristiques d’images ou de vidéos relative aux données hyperspectrales
  • G06V 10/764 - Dispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant la classification, p. ex. des objets vidéo
  • G06V 10/77 - Traitement des caractéristiques d’images ou de vidéos dans les espaces de caractéristiquesDispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant l’intégration et la réduction de données, p. ex. analyse en composantes principales [PCA] ou analyse en composantes indépendantes [ ICA] ou cartes auto-organisatrices [SOM]Séparation aveugle de source
  • G06V 10/774 - Génération d'ensembles de motifs de formationTraitement des caractéristiques d’images ou de vidéos dans les espaces de caractéristiquesDispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant l’intégration et la réduction de données, p. ex. analyse en composantes principales [PCA] ou analyse en composantes indépendantes [ ICA] ou cartes auto-organisatrices [SOM]Séparation aveugle de source méthodes de Bootstrap, p. ex. "bagging” ou “boosting”
  • G06V 10/776 - ValidationÉvaluation des performances
  • G06V 10/80 - Fusion, c.-à-d. combinaison des données de diverses sources au niveau du capteur, du prétraitement, de l’extraction des caractéristiques ou de la classification
  • G06V 10/82 - Dispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant les réseaux neuronaux
  • G06V 20/13 - Images satellite
  • G06V 20/70 - Étiquetage du contenu de scène, p. ex. en tirant des représentations syntaxiques ou sémantiques

9.

METHOD FOR PREPARING COMPOSITE BIOACTIVE INORGANIC SILICATE HYDROGEL-BASED WOUND DRESSING

      
Numéro d'application CN2024099906
Numéro de publication 2025/129961
Statut Délivré - en vigueur
Date de dépôt 2024-06-18
Date de publication 2025-06-26
Propriétaire CHENGDU UNIVERSITY (Chine)
Inventeur(s)
  • Dong, Zhihong
  • Zhou, Xuerui
  • Xie, Zhenjian
  • Cheng, Lijia

Abrégé

Disclosed is a method for preparing a composite bioactive inorganic silicate hydrogel-based wound dressing, which relates to the field of biomedical materials. The method specifically comprises: dissolving polyvinyl alcohol in ionized water, heating, and stirring; separately dissolving sodium alginate and gelatin in the above solution, heating, mixing the solution with a bioactive inorganic silicate; injecting the mixture into a mold, separately adding calcium chloride and glutaraldehyde, and incubating in deionized water overnight; and finally lyophilizing to give the composite bioactive inorganic silicate hydrogel-based wound dressing. The method of the present invention features ease-to-operate, low requirements on reaction conditions, and thus suitability for mass production. The prepared composite bioactive inorganic silicate hydrogel-based wound dressing possesses the capability of absorbing exudates and keeping a humid environment and enhanced interaction with tissues, thereby promoting angiogenesis and the proliferation and migration of L929 fibroblasts. The present invention effectively solves the problem of the limited bionic performance of the scaffold of a skin dressing prepared from a single material.

Classes IPC  ?

  • A61L 26/00 - Aspects chimiques des bandages liquides ou utilisation de matériaux pour les bandages liquides

10.

Three-dimensional simulation and prediction method for rock collapse movement process considering dynamic fragmentation effect

      
Numéro d'application 18958946
Numéro de brevet 12406112
Statut Délivré - en vigueur
Date de dépôt 2024-11-25
Date de la première publication 2025-05-29
Date d'octroi 2025-09-02
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Huang, Jian
  • Yuan, Jingqing

Abrégé

z); and simulating the collision, fragmentation, and movement processes of the rock mass. Based on the rock mass fragmentation model, whether the rock mass fragmentation occurs or not can be determined. Then, the trajectory of each fragmented block can be simulated using the energy distribution model and fragmented block trajectory model.

Classes IPC  ?

  • G06F 30/20 - Optimisation, vérification ou simulation de l’objet conçu

11.

Method for identifying similar objects in remote sensing images with spectral similarity based on condition number of matrix

      
Numéro d'application 18926149
Numéro de brevet 12315252
Statut Délivré - en vigueur
Date de dépôt 2024-10-24
Date de la première publication 2025-05-27
Date d'octroi 2025-05-27
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Wang, Maozhi
  • Xu, Wenxi

Abrégé

A method for identifying similar ground objects with spectral similarity in a remote sensing image based on condition number of matrix includes the steps of: obtaining sample's spectral curve of the ground object to be identified, and constructing the sample spectrum matrix A according to the number of bands of the image and the number of categories of ground objects; sequentially obtaining distance index vectors between the spectrum P of the pixel to be identified and each category of ground objects in A; calculating a distance error of each type of ground object when P is identified; then calculating a distance error threshold vector of A; classifying and identifying the pixels. This method uses linear system of equations and the condition number theory to transform ill-conditioned equations into well-conditioned equations, thereby adding significant identifiable features to the ground objects to improve the identification performance and avoid constructing large training samples.

Classes IPC  ?

  • G06K 9/00 - Méthodes ou dispositions pour la lecture ou la reconnaissance de caractères imprimés ou écrits ou pour la reconnaissance de formes, p.ex. d'empreintes digitales
  • G06V 10/58 - Extraction de caractéristiques d’images ou de vidéos relative aux données hyperspectrales
  • G06V 10/74 - Appariement de motifs d’image ou de vidéoMesures de proximité dans les espaces de caractéristiques
  • G06V 20/10 - Scènes terrestres

12.

Support mechanism of self-adaptive traction robot for complex wellbore and control method thereof

      
Numéro d'application 18939678
Numéro de brevet 12297705
Statut Délivré - en vigueur
Date de dépôt 2024-11-07
Date de la première publication 2025-05-13
Date d'octroi 2025-05-13
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Wang, Xingming
  • Wang, Qiaozhu
  • Liu, Qingyou
  • Zhu, Haiyan
  • Dong, Xuelian
  • Yang, Yuanyuan
  • Tang, Jingran
  • Li, Luqing

Abrégé

The present invention discloses a support mechanism of a self-adaptive traction robot for a complex wellbore and a control method thereof, and relates to the technical field of oil and gas field development. Each support link assembly in a support mechanism is controlled by an independent hydraulic cylinder and hydraulic valve. When a well wall that each support link assembly contacts in a circumferential direction is irregular, the support mechanism contact effect is not ideal, which leads to a decrease in traction force. In this case, a displacement sensor in a telescopic mechanism detects that a displacement of a traction cylinder piston is small, which is fed back to a ground control system, and then a fluid inflow size of support cylinders corresponding to different support link assemblies is adjusted until the displacement sensor in the telescopic mechanism detects an effective traction distance.

Classes IPC  ?

  • E21B 23/00 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage
  • E21B 23/03 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage pour mettre en place des outils sur les supports ou dans les retraits ou poches excentrées ou pour les en retirer
  • E21B 23/04 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage mis en œuvre à l'aide de moyens fluides, p. ex. actionnés par explosion
  • E21B 47/06 - Mesure de la température ou de la pression

13.

Study method for chlorite growth pattern based on in-situ high-precision observation means

      
Numéro d'application 18989220
Numéro de brevet 12298292
Statut Délivré - en vigueur
Date de dépôt 2024-12-20
Date de la première publication 2025-05-13
Date d'octroi 2025-05-13
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Cai, Laixing
  • Guo, Weixue
  • Yuan, Chengfang
  • Yang, Tian
  • Dong, Yaohui
  • Li, Yuhang

Abrégé

The present invention belongs to the technical field of petroleum and natural gas exploration and development, and specifically relates to a study method for chlorite growth pattern based on an in-situ high-precision observation means. The method includes: S1: selecting a sample and quantitatively characterizing mineral components; S11: selecting a typical sandstone sample developed with a chlorite coating and cement, grinding a rock slice, and observing under a microscope and a scanning electron microscope to determine a basic morphological characteristic, occurrence state and type of the chlorite; S2: performing data preprocessing on the sample; S3: establishing a water-rock numerical simulation model; S4: developing a water-rock numerical simulation experiment; S5: analyzing a water-rock numerical simulation result; and S6: explaining and applying the water-rock numerical simulation result.

Classes IPC  ?

  • G01N 33/44 - RésinesMatières plastiquesCaoutchoucCuir
  • G01N 23/2251 - Recherche ou analyse des matériaux par l'utilisation de rayonnement [ondes ou particules], p. ex. rayons X ou neutrons, non couvertes par les groupes , ou en mesurant l'émission secondaire de matériaux en utilisant des microsondes électroniques ou ioniques en utilisant des faisceaux d’électrons incidents, p. ex. la microscopie électronique à balayage [SEM]
  • G01N 33/24 - Matériaux de la terre
  • G06F 30/28 - Optimisation, vérification ou simulation de l’objet conçu utilisant la dynamique des fluides, p. ex. les équations de Navier-Stokes ou la dynamique des fluides numérique [DFN]
  • G06F 111/10 - Modélisation numérique
  • G06F 113/08 - Fluides

14.

EQUIPMENT FAILURE MODE PREDETERMINATION AND RESIDUAL LIFE PREDICTION COUPLING SYSTEM AND METHOD

      
Numéro d'application 18934872
Statut En instance
Date de dépôt 2024-11-01
Date de la première publication 2025-05-08
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Xu, Huyang
  • Zhang, Yong
  • Yin, Chuncan
  • Wang, Xiaoguang
  • Sun, Zhenjie

Abrégé

Disclosed are an equipment failure mode predetermination and residual life prediction coupling system and method. The equipment failure mode predetermination and residual life prediction coupling system realizes coupling of equipment failure mode predetermination and residual life prediction, continuous collection of health information of equipment, predetermination of the failure mode and prediction of the residual life based on the state of health of the equipment in operation monitored and perceived in real time by sensor sets.

Classes IPC  ?

15.

Method for secondary disaster early warning based on ground-based SAR monitoring of deformation data

      
Numéro d'application 18822264
Numéro de brevet 12277855
Statut Délivré - en vigueur
Date de dépôt 2024-09-01
Date de la première publication 2025-04-15
Date d'octroi 2025-04-15
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Xiao, Xianxuan
  • Cai, Guojun
  • Shao, Weixi
  • Xu, Mo
  • Wang, Dongpo
  • Chen, Hui
  • Huang, Jian

Abrégé

A secondary disaster early warning method based on ground-based SAR monitoring of deformation data includes (1) real-time monitoring of a secondary disaster unstable area through ground-based SAR to obtain deformation monitoring data; (2) constructing a displacement-time curve generated by the secondary disaster unstable area over time; setting a monitoring period, and based on the displacement-time curve, constructing a displacement change triangular area model; (3) based on the displacement change triangular area model, constructing an area-time curve, and obtaining the area-time curve change trend and the displacement triangular area in the displacement-time curve according to the monitoring period; (4) dividing the secondary disaster development process into an initial deformation stage, a constant velocity deformation stage, and an accelerated deformation stage; (5) setting early warning levels corresponding to each stage for phased secondary disaster early warning; and (6) quickly and comprehensively identifying the secondary disaster development stage and deformation evolution trend.

Classes IPC  ?

  • G08B 31/00 - Systèmes d'alarme à prédiction caractérisés par une extrapolation ou un autre type de calcul utilisant des données historiques mises à jour
  • G01S 13/90 - Radar ou systèmes analogues, spécialement adaptés pour des applications spécifiques pour la cartographie ou la représentation utilisant des techniques d'antenne synthétique
  • G08B 21/10 - Alarmes pour assurer la sécurité des personnes réagissant aux événements désastreux, p. ex. les tornades ou les tremblements de terre
  • G08B 21/18 - Alarmes de situation

16.

Thickening device and method for uniform solidification of composite lost circulation material made up of liquid and granular lost circulation materials

      
Numéro d'application 18897048
Numéro de brevet 12263453
Statut Délivré - en vigueur
Date de dépôt 2024-09-26
Date de la première publication 2025-04-01
Date d'octroi 2025-04-01
Propriétaire Chengdu University Of Technology (Chine)
Inventeur(s)
  • She, Jiping
  • Ma, Wenjing
  • Gong, Furong
  • Wang, Yunfei
  • Teng, Gege
  • Zhang, Shiyu
  • Li, Huimin

Abrégé

The provided are a thickening device and method for uniform solidification of composite lost circulation material made up of liquid and granular lost circulation materials. The thickening device includes a base. The base is provided with a side wall; an upper end of the side wall is provided with a detachable top cover; the base, the side wall, and the top cover form a sealed chamber; the base is provided with a rotating support platform; the rotating support platform is provided with a detachable slurry cup; the slurry cup is provided therein with agitating shafts; the agitating shafts each are provided with a blade; a top end of the agitating shaft is connected to a threaded rod through a ball head connector; an upper end of the agitating shaft is provided with a second gear, and the threaded rod is provided with a second limit platform.

Classes IPC  ?

  • B01F 23/00 - Mélange, p. ex. dispersion ou émulsion, selon les phases à mélanger
  • B01F 23/50 - Mélange de liquides avec des solides
  • B01F 23/53 - Mélange de liquides avec des solides en utilisant des agitateurs entraînés
  • B01F 27/90 - Mélangeurs à agitateurs tournant dans des récipients fixesPétrins avec des agitateurs tournant autour d'un axe sensiblement vertical avec des palettes ou des bras
  • B01F 29/83 - Mélangeurs à récipients rotatifs tournant autour d'un axe sensiblement vertical avec des palettes ou des bras rotatifs, p. ex. déplaçables hors du récipient
  • B01F 35/212 - Mesure des données du système de conduite, p. ex. des données relatives au couple, à la vitesse ou à la puissance
  • B01F 35/22 - Commande ou régulation
  • B01F 35/31 - Accouplements
  • B01F 35/32 - Dispositions d’entraînement
  • B01F 35/33 - TransmissionsMoyens pour modifier la vitesse ou le sens de rotation
  • C09K 8/50 - Compositions pour le plâtrage des parois de trous de forage, c.-à-d. compositions pour la consolidation temporaire des parois des trous de forage
  • B01F 35/30 - Dispositions d’entraînementTransmissionsAccouplementsFreins
  • B01F 101/49 - Mélange de matières de forage ou d'ingrédients pour les compositions de forage de puits, de terre ou de forages profonds avec des liquides pour obtenir des boues
  • E21B 41/00 - Matériel ou accessoires non couverts par les groupes

17.

Fracture opening simulation device for hard brittle mudstone and shale with organic matter

      
Numéro d'application 18928172
Numéro de brevet 12265065
Statut Délivré - en vigueur
Date de dépôt 2024-10-28
Date de la première publication 2025-04-01
Date d'octroi 2025-04-01
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Ma, Yiquan
  • Lu, Yangbo
  • Feng, Ziqi
  • Lu, Yongchao
  • Chen, Lei
  • Wei, Wei
  • Guo, Ying
  • Zhang, Chen
  • Zheng, Mingyu
  • Yang, Lan

Abrégé

The invention provides a fracture opening simulation device for hard brittle mudstone and shale with organic matter, it includes a simulated support, the lower part of the simulated support is connected with a storage bucket bottom block plate through a screw, the middle of the simulated support is provided with a support socket with a circular structure, the upper surface of the storage bucket bottom block plate is provided with a circular convex structure of a block plate boss, the block plate boss is closely inserted in the support socket, the upper surface of the simulated support is fixed connected with a core column storage barrel.

Classes IPC  ?

  • G01N 3/10 - Recherche des propriétés mécaniques des matériaux solides par application d'une contrainte mécanique par application d'efforts permanents de traction ou de compression engendrés par pression pneumatique ou hydraulique
  • G01N 33/24 - Matériaux de la terre

18.

Device and method for measuring bonding strength between contaminated rock surface and solidified material

      
Numéro d'application 18888210
Numéro de brevet 12292411
Statut Délivré - en vigueur
Date de dépôt 2024-09-18
Date de la première publication 2025-03-20
Date d'octroi 2025-05-06
Propriétaire Chengdu University Of Technology (Chine)
Inventeur(s)
  • She, Jiping
  • Wang, Yunfei
  • Gong, Furong
  • Ma, Wenjing
  • Zhang, Shiyu
  • Teng, Gege
  • Li, Huimin

Abrégé

The provided are a device and method for measuring a bonding strength between a contaminated rock surface and a solidified material. The device includes a fixing and measuring assembly and four rock slabs enclosing a rectangular prism, where outer surfaces of the four rock slabs are fitted to two transverse support plates and two longitudinal support plates, respectively; the two longitudinal support plates are arranged between the two transverse support plates; upper and lower ends of the rock slabs are provided with an upper cover and a bottom plate, respectively; the upper cover and the bottom plate are detachably fixed to the two transverse support plates, respectively; the two transverse support plates are detachably fixed to each other through a second screw; a hydraulic device is provided among the four posts; and a movable end of the hydraulic device is provided with a supporting airbag.

Classes IPC  ?

  • G01N 3/02 - Recherche des propriétés mécaniques des matériaux solides par application d'une contrainte mécanique Parties constitutives
  • G01N 33/24 - Matériaux de la terre

19.

Borehole wall spin-shearing device and testing method for in-situ borehole shear test

      
Numéro d'application 18793978
Numéro de brevet 12241876
Statut Délivré - en vigueur
Date de dépôt 2024-08-05
Date de la première publication 2025-03-04
Date d'octroi 2025-03-04
Propriétaire
  • Chengdu University Of Technology (Chine)
  • Guangdong Eagler Geological Equipement Technology CO., LTD. (Chine)
Inventeur(s)
  • Feng, Wenkai
  • Yi, Xiaoyu
  • Liu, Xuyong
  • Li, Yihe
  • Li, Qian
  • Wan, Ke

Abrégé

A borehole wall spin-shearing device includes a load applying assembly, a soil shearing assembly, and a data acquisition assembly, where the load applying assembly is configured to apply a vertical load and an axial rotational load to the soil shearing assembly; the soil shearing assembly includes a plurality of shear plates; the plurality of shear plates are configured to penetrate into undisturbed soil after being ejected due to the vertical load and then shear the undisturbed soil due to the axial rotational load; and the data acquisition assembly is configured to acquire torque values of the plurality of shear plates during a process of shearing the undisturbed soil. The borehole wall spin-shearing device can directly conduct an in-situ borehole shear test in an exploration borehole with a conventional diameter in China, reducing the cost of drilling. The borehole wall spin-shearing device achieves a high degree of automation throughout the test.

Classes IPC  ?

  • G01N 3/24 - Recherche des propriétés mécaniques des matériaux solides par application d'une contrainte mécanique en appliquant des efforts permanents de cisaillement
  • E21B 49/00 - Test pour déterminer la nature des parois des trous de forageEssais de couchesProcédés ou appareils pour prélever des échantillons du terrain ou de fluides en provenance des puits, spécialement adaptés au forage du sol ou aux puits
  • G01N 33/24 - Matériaux de la terre

20.

INTELLIGENT SAFETY SUPERVISION SYSTEM APPLIED TO SHIP

      
Numéro d'application 18236859
Statut En instance
Date de dépôt 2023-08-22
Date de la première publication 2025-02-27
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Cai, Dongsheng
  • Huang, Qi
  • Li, Jian

Abrégé

An intelligent safety supervision system applied to a ship is provided. An image acquisition module is configured to acquires high-definition images in real time. An automatic recognition module is configured to obtains ship dynamic and static data. A ship server to-performs feature recognition on the ship dynamic and static data to obtain a data processing result, to-transmits the ship dynamic and static data and the data processing result, and receives alarm indication information. An alarm module outputs an alarm. A ship client displays the data processing result, and determines whether to transmit the alarm indication information according to the data processing result. A communication module receives and transmits the ship dynamic and static data and the data processing result. A shore-side supervision system includes a ship safety supervision big data analysis platform for performing secondary feature recognition on the ship dynamic and static data, so as to obtain a secondary data processing result.

Classes IPC  ?

  • G06V 10/778 - Apprentissage de profils actif, p. ex. apprentissage en ligne des caractéristiques d’images ou de vidéos
  • A62C 3/10 - Prévention, limitation ou extinction des incendies spécialement adaptées pour des objets ou des endroits particuliers dans les véhicules, p. ex. les véhicules routiers dans les navires
  • G06V 10/80 - Fusion, c.-à-d. combinaison des données de diverses sources au niveau du capteur, du prétraitement, de l’extraction des caractéristiques ou de la classification
  • G06V 10/82 - Dispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant les réseaux neuronaux
  • G06V 20/52 - Activités de surveillance ou de suivi, p. ex. pour la reconnaissance d’objets suspects
  • G08B 21/18 - Alarmes de situation
  • G08B 31/00 - Systèmes d'alarme à prédiction caractérisés par une extrapolation ou un autre type de calcul utilisant des données historiques mises à jour

21.

INVASION CORRECTION METHOD AND SYSTEM FOR RESISTIVITY LOGGING

      
Numéro d'application 18783323
Statut En instance
Date de dépôt 2024-07-24
Date de la première publication 2025-01-30
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Li, Kesai
  • Sun, Jiaqi
  • Deng, Hucheng
  • He, Xianhong
  • Xiang, Zehou
  • Lin, Hangjie
  • Liu, Yanjun
  • He, Jianhua
  • Liu, Yan
  • Lei, Kaicheng
  • Zhan, Shuoshuo
  • Li, Hong

Abrégé

Disclosed is an invasion correction method and system for resistivity logging. The method includes the steps of: analyzing mud filtrate invasion features based on an actual resistivity logging curve; determining an invasion mechanism, and performing forward modeling on a resistivity logging response; performing inversion by a random forest method to form a correction chart; and outputting a formation resistivity to finally form the invasion correction method and system for resistivity logging. In the present disclosure, double lateral correction under an invasion condition is accomplished, while a chart method and an inversion method are combined, ensuring the accuracy and operating rate of correction.

Classes IPC  ?

  • G01V 11/00 - Prospection ou détection par des méthodes combinant des techniques spécifiées dans les groupes

22.

ROBUST NONNEGATIVE MATRIX FACTORIZATION (RNMF) METHOD BASED ON DEEP LEARNING AND INCREMENTAL LEARNING

      
Numéro d'application 18911883
Statut En instance
Date de dépôt 2024-10-10
Date de la première publication 2025-01-30
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhou, Zhongli
  • Zhou, Ran
  • Cao, Changjie
  • Liu, Bingli
  • Kong, Yunhui
  • Li, Cheng
  • Liu, Yueyun

Abrégé

A robust nonnegative matrix factorization (RNMF) method, in which an image sample set is split into a training set and a test set. The training set and the test set are normalized to map the image data from [0, 255] to [0, 1]. The training set matrix is pretrained by RNMF for decomposition. l2,1-deep incremental nonnegative matrix factorization (l2,1-DINMF) model is construed. The l2,1-DINMF model is configured to decompose the training set matrix into l+1 factors. After the basis matrix has been updated, and the samples of the training set and samples to be recognized are projected into a feature space. Feature representations of the test set are classified by a trained SVM classifier to obtain a predicted label, and the predicted label is compared with an actual label of the test set to calculate a recognition accuracy.

Classes IPC  ?

  • G06F 17/16 - Calcul de matrice ou de vecteur
  • G06N 3/09 - Apprentissage supervisé
  • G06V 10/764 - Dispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant la classification, p. ex. des objets vidéo
  • G06V 10/77 - Traitement des caractéristiques d’images ou de vidéos dans les espaces de caractéristiquesDispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant l’intégration et la réduction de données, p. ex. analyse en composantes principales [PCA] ou analyse en composantes indépendantes [ ICA] ou cartes auto-organisatrices [SOM]Séparation aveugle de source
  • G06V 10/774 - Génération d'ensembles de motifs de formationTraitement des caractéristiques d’images ou de vidéos dans les espaces de caractéristiquesDispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant l’intégration et la réduction de données, p. ex. analyse en composantes principales [PCA] ou analyse en composantes indépendantes [ ICA] ou cartes auto-organisatrices [SOM]Séparation aveugle de source méthodes de Bootstrap, p. ex. "bagging” ou “boosting”
  • G06V 10/776 - ValidationÉvaluation des performances

23.

EARLY WARNING METHOD FOR SHALLOW SOIL LANDSLIDE BASED ON RAINFALL AND SOIL MOISTURE CONTENT

      
Numéro d'application 18899626
Statut En instance
Date de dépôt 2024-09-27
Date de la première publication 2025-01-16
Propriétaire
  • Chengdu University of Technology (Chine)
  • Guizhou Geological Environment Monitoring Institute (Guizhou Institute of Environmental Geology) (Chine)
Inventeur(s)
  • Yu, Bin
  • Li, Yangchun
  • Chen, Wenhong

Abrégé

The present disclosure discloses an early warning method for a shallow soil landslide based on rainfall and soil moisture content, relating to the field of soil landslides prevention and control. The early warning method comprises the following steps: a. determining whether a location is a humid region; b. calculating soil moisture content of the humid region in a rainy season; c. monitoring rainfall amounts in real time by sensors; d. calculating the soil moisture content S by step b; e. calculating rainfall duration on an hourly basis, calculating a total hourly rainfall amount by superposition from an initial 1-hour rainfall amount, and dividing the total hourly rainfall amount by the rainfall duration to obtain hourly rainfall intensity; f. calculating a critical value Cr of a shallow soil landslide; and g. determining a landslide grade and giving an early warning signal.

Classes IPC  ?

  • G01V 9/00 - Prospection ou détection par des procédés non prévus dans les groupes
  • G01N 33/24 - Matériaux de la terre
  • G08B 21/10 - Alarmes pour assurer la sécurité des personnes réagissant aux événements désastreux, p. ex. les tornades ou les tremblements de terre

24.

METHOD FOR ANALYZING CHANGES IN URBAN ECONOMIC DEVELOPMENT CHARACTERISTICS OF URBAN AGGLOMERATION BASED ON NIGHTTIME LIGHT REMOTE SENSING

      
Numéro d'application 18630500
Statut En instance
Date de dépôt 2024-04-09
Date de la première publication 2025-01-09
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Yang, Xin
  • Niu, Zhensheng
  • Liao, Xiang
  • Hou, Wenfu
  • Deng, Chuanxiang

Abrégé

Disclosed is a method for analyzing changes in urban economic development characteristics of an urban agglomeration based on nighttime light remote sensing according, including: building a Gross Domestic Product (GDP) spatialization model: spatializing GDP of an urban agglomeration region by using an industry-based modeling approach, modeling spatialization of a primary industry output GDP1 with land use data, and modeling spatialization of a secondary and tertiary industry output GDP23 by selecting an optimal light index on the basis of nighttime light data; measuring an increase or a decrease of a specific variable over time at a pixel level using trend analysis; and modifying a gravity model that reflects an economic linkage strength between cities. The present disclosure can provide data support and methodological basis for the high-quality economic development of the urban agglomeration.

Classes IPC  ?

  • G06Q 10/0637 - Gestion ou analyse stratégiques, p. ex. définition d’un objectif ou d’une cible pour une organisationPlanification des actions en fonction des objectifsAnalyse ou évaluation de l’efficacité des objectifs

25.

GEOLOGICAL STRUCTURE CHARACTERIZATION METHOD BASED ON SEISMIC VELOCITY SIGNAL AND ACCELERATION SIGNAL

      
Numéro d'application 18762513
Statut En instance
Date de dépôt 2024-07-02
Date de la première publication 2024-12-26
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Yang, Yuyong
  • You, Li
  • Luo, Chuan
  • Wang, Zhengyang
  • Zhou, Huailai

Abrégé

A geological structure characterization method based on a seismic velocity signal and a seismic acceleration signal is provided. The seismic acceleration signal and the seismic velocity signal are acquired and normalized. Constant-phase wavelet and minimum-phase wavelet extraction or mixed-phase wavelet extraction is performed. In the constant-phase wavelet and minimum-phase wavelet extraction, a first minimum-phase wavelet is extracted based on the seismic velocity signal, and a constant-phase wavelet is extracted based on the seismic acceleration signal, and converted to a second minimum-phase wavelet. A residual between the first minimum-phase wavelet and the second minimum-phase wavelet is calculated. If the residual is greater than a preset threshold, the constant-phase wavelet extraction is performed again, otherwise, the first minimum-phase wavelet and the constant-phase wavelet are output.

Classes IPC  ?

26.

METHOD FOR IDENTIFYING LITHIUM-POTASSIUM-RICH BRINE RESERVOIRS BASED ON PARAMETER SENSITIVITY ANALYSIS

      
Numéro d'application 18775694
Statut En instance
Date de dépôt 2024-07-17
Date de la première publication 2024-12-26
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhang, Bing
  • Yang, Yuyong
  • Lin, Xiaoyang
  • Li, Qian
  • Wang, Zhengyang
  • Yang, Kai
  • Li, Zhuo
  • He, Xiaolong

Abrégé

A method for identifying high-quality lithium-potassium-rich brine reservoirs based on parameter sensitivity analysis is provided. Basic characteristics of a brine reservoir area are determined. The sensitive parameter analysis of the brine reservoir area is performed by rock physics modeling and cross-plotting of logging curves to determine a rock physics parameter range and a logging parameter range of the brine reservoir area. The relationship between the wave impedance and the water saturation based on the rock physics model. A coordinate range of a water-rich reservoir is determined based on the inversion result of the water saturation. Within the coordinate range of the water-rich reservoir, a coordinate range of the lithium-potassium-rich brine reservoir is determined based on the natural gamma inversion result obtained by waveform phase-controlled inversion, so as to achieve geophysical identification and prediction of high-quality brine reservoirs in the marine strata.

Classes IPC  ?

  • G01V 20/00 - Géomodélisation en général
  • G01V 11/00 - Prospection ou détection par des méthodes combinant des techniques spécifiées dans les groupes

27.

Method of enhancing abnormal area of ground-penetrating radar image based on hybrid-supervised learning

      
Numéro d'application 18763894
Numéro de brevet 12175633
Statut Délivré - en vigueur
Date de dépôt 2024-07-03
Date de la première publication 2024-12-24
Date d'octroi 2024-12-24
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Yao, Guangle
  • Wang, Honghui
  • Zhou, Wenlong
  • Zeng, Wei
  • Wang, Chen
  • Li, Ruijia
  • Xu, Xiaoyu
  • Li, Jun
  • Sun, Siyuan

Abrégé

A method of enhancing an abnormal area of a ground-penetrating radar image based on hybrid-supervised learning includes the steps of: building a database including a real image set, a simulation image set and a simulation image label set; adopting a generative adversarial network; processing semi-supervised training and unsupervised training alternately to obtain a trained model, then inputting a real radar image with abnormal area that needs to be enhanced into the model and processing through the generative network to output an abnormal-area-enhanced image. The method overcomes the problems of differences in characteristics between simulated images and real images, and low utilization efficiency of real image information by unsupervised methods, and improves the utilization efficiency of the enhanced network for real image information, the saliency of abnormal areas on real images, and the generalization ability of the enhanced network, therefore effectively enhances the significance of abnormal areas in ground-penetrating radar images.

Classes IPC  ?

  • G06T 5/60 - Amélioration ou restauration d'image utilisant l’apprentissage automatique, p. ex. les réseaux neuronaux
  • G01S 13/88 - Radar ou systèmes analogues, spécialement adaptés pour des applications spécifiques
  • G06T 5/50 - Amélioration ou restauration d'image utilisant plusieurs images, p. ex. moyenne ou soustraction
  • G06T 11/00 - Génération d'images bidimensionnelles [2D]

28.

Grinding robot for inside wall of small diameter pipes

      
Numéro d'application 18628733
Numéro de brevet 12186856
Statut Délivré - en vigueur
Date de dépôt 2024-04-07
Date de la première publication 2024-12-19
Date d'octroi 2025-01-07
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Ren, Tao
  • Liu, Qingyou
  • Jiang, Gang
  • Li, Yujia
  • Jiang, Zheng
  • You, Yachuan
  • Xian, Lin

Abrégé

The present disclosure provides a grinding robot for an inside wall of a small diameter pipe. The grinding robot includes a grinding device, a transmission device, and a driving device. By arranging the grinding robot into the above three portions, the overall bending pipe passability of the robot can be increased, which is convenient for the grinding robot to grind the small diameter pipe. A first gimbal and two second gimbals provided in the transmission device enable the grinding robot to flexibly pass through bends of the pipe, and enable a grinding driving force to be variably transmitted to the grinding device. When the grinding body rotates and contacts a pipe wall, a reaction force of the pipe wall on the grinding body is balanced by an adjusting spring adjustment force in a balance adjusting device and a self-weight of a grinding body.

Classes IPC  ?

  • B24B 5/40 - Machines ou appareils spécialisés pour une seule opération pour meuler intérieurement des tubes
  • B24B 5/18 - Machines ou dispositifs pour meuler des surfaces de révolution des pièces, y compris ceux qui meulent également des surfaces planes adjacentesAccessoires à cet effet possédant des moyens "sans centre" pour supporter, guider, soutenir ou mettre en rotation la pièce
  • B24B 33/02 - Machines ou dispositifs de finissageAccessoires à cet effet pour travailler intérieurement des surfaces de révolution, p. ex. de forme cylindrique ou conique
  • B24B 47/12 - Entraînement ou transmission des machines ou dispositifs à meulerÉquipement à cet effet pour entraîner dans leur mouvement de rotation ou de va-et-vient les arbres porte-meules ou les arbres porte-pièces par une transmission mécanique ou par l'énergie électrique
  • B25J 11/00 - Manipulateurs non prévus ailleurs

29.

METHOD FOR CORRECTING PHYSICAL PROPERTIES OF LAUMONTITE-RICH CLASTIC ROCK RESERVOIRS BASED ON OVERBURDEN PRESSURE POROSITY AND PERMEABILITY TESTS

      
Numéro d'application 18334348
Statut En instance
Date de dépôt 2023-06-13
Date de la première publication 2024-12-19
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Yang, Tian
  • He, Qing
  • Cai, Laixing
  • Yu, Wenqiang
  • Li, Xiaofang

Abrégé

A method for correcting physical properties of laumontite-rich clastic rock reservoirs based on overburden pressure porosity and permeability tests includes: conducting porosity and permeability tests on rock samples under normal temperature and pressure conditions; analyzing a type of a reservoir cement and characteristics of a reservoir space; comparing variations in the porosity and permeability between a laumontite-containing reservoir and a laumontite-free reservoir under overburden pressure conditions; fitting a variation function to establish relations between porosity, permeability, and overburden pressure in the laumontite-containing reservoir; and creating a correction plate of the permeability of the reservoirs with different laumontite contents.

Classes IPC  ?

  • E21B 49/08 - Prélèvement d'échantillons de fluides ou test des fluides dans les trous de forage ou dans les puits
  • G01N 15/08 - Recherche de la perméabilité, du volume des pores ou de l'aire superficielle des matériaux poreux

30.

METHOD FOR SEPARATION AND SIMULTANEOUS IMAGING OF PRIMARY AND MULTIPLE WAVES BASED ON WAVE FIELD DECOMPOSITION

      
Numéro d'application 18642664
Statut En instance
Date de dépôt 2024-04-22
Date de la première publication 2024-12-12
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • You, Jiachun
  • Ren, Qiang

Abrégé

A method for separation and simultaneously imaging of primary and multiple waves based on wave field decomposition is provided. It reformulates the two-way wave equation based wave field decomposition scheme to achieve efficient separation of primary wave and multiple waves of different orders, eliminate crosstalk noise, and simultaneously achieve efficient imaging of primary and multiple waves. The method is to decompose the up-going wave field into primary and up-going multiple waves of different orders on the acquisition surface, and decompose the down-going wave field into down-going multiple waves of different orders. Based on this generalized decomposition of up-going/down-going wave fields, a reformulated two-way wave equation wave field depth extrapolation scheme is used for simultaneous depth extrapolation and imaging of primary wave and multiple waves of different orders. With only one calculation, efficient imaging of multiple wave field types can be achieved.

Classes IPC  ?

  • G01V 1/30 - Analyse
  • G01V 1/28 - Traitement des données sismiques, p. ex. pour l’interprétation ou pour la détection d’événements
  • G01V 1/34 - Représentation des enregistrements sismiques

31.

METHOD FOR EXTRACTING SURFACE MORPHOLOGY AND FABRIC CHARACTERISTICS OF ROCK ORES AND MINERALS

      
Numéro d'application 18811454
Statut En instance
Date de dépôt 2024-08-21
Date de la première publication 2024-12-12
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhong, Wenli
  • Fu, Zhongguo
  • Chen, Xuehua
  • Chen, Cuihua

Abrégé

A method for extracting surface morphology and fabric characteristics of rock ores and minerals, which includes the following steps. An adaptive two-dimensional (2D) structure enhancement filter operator and its filter aperture in the spatial domain are constructed based on confocal microscopic image data of a rock sample. Attribute data that retains and accentuates structural features of the rock sample is obtained through azimuth scanning. A data-driven higher-order nonlinear spline smoothing function of 2D elevation data is established to determine the optimal 2D localized spline smoothing function. After that, the positive and negative morphology attributes of the surface of the rock sample are calculated, so as to accurately, reliably and quantitatively characterize the surface morphology and fabric characteristics of the rock sample.

Classes IPC  ?

  • G01B 11/30 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer la rugosité ou l'irrégularité des surfaces
  • G01B 9/04 - Microscopes de mesure
  • G06T 7/40 - Analyse de la texture
  • G06T 7/529 - Récupération de la profondeur ou de la forme à partir de la texture

32.

Measuring system and measuring method for conductivity of supercritical geothermal fluid

      
Numéro d'application 18663123
Numéro de brevet 12222306
Statut Délivré - en vigueur
Date de dépôt 2024-05-14
Date de la première publication 2024-11-28
Date d'octroi 2025-02-11
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Wang, Yingchun
  • Jia, Haoxin
  • Tang, Xin
  • Liao, Shuang
  • Fan, Yuhe
  • Zhou, Xiyan
  • Min, Gang
  • Song, Rongcai

Abrégé

The invention pertains to a measuring system for the conductivity of supercritical geothermal fluid, featuring a reaction control unit with a reaction vessel lined with corundum ceramic and containing a stirrer, a pressure control unit including a booster pump connected to Ar gas and an air compressor, a flow control unit with a flowmeter, and a temperature control unit comprising a heating furnace with thermocouples both inside and outside the reaction chamber. An electrical signal monitoring unit with electrodes fitted through a corundum capillary into the ceramic lining measures current and voltage. The invention also details a method for measuring conductivity, highlighting how water-rock interactions in supercritical geothermal fluids affect conductivity changes.

Classes IPC  ?

  • G01N 27/08 - Recherche ou analyse des matériaux par l'emploi de moyens électriques, électrochimiques ou magnétiques en recherchant l'impédance en recherchant la résistance d'un liquide qui coule sans interruption
  • G01N 27/07 - Structure des récipients de mesureÉlectrodes pour ces récipients
  • G01N 27/12 - Recherche ou analyse des matériaux par l'emploi de moyens électriques, électrochimiques ou magnétiques en recherchant l'impédance en recherchant la résistance d'un corps solide dépendant de l'absorption d'un fluideRecherche ou analyse des matériaux par l'emploi de moyens électriques, électrochimiques ou magnétiques en recherchant l'impédance en recherchant la résistance d'un corps solide dépendant de la réaction avec un fluide

33.

COAXIAL WAVEGUIDE-BASED GEOTECHNICAL MULTI-POINT DEFORMATION SENSOR AND METHOD OF ADJUSTABLE GAUGE-LENGTH MEASUREMENT

      
Numéro d'application 18776409
Statut En instance
Date de dépôt 2024-07-18
Date de la première publication 2024-11-07
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Xu, Qiang
  • Jiao, Tong
  • Zhu, Xing
  • Tang, Minggao
  • Chen, Xu
  • Pu, Chuhong
  • Tao, Xianling

Abrégé

A coaxial waveguide-based geotechnical multi-point deformation sensor and an adjustable gauge-length measurement method are provided. The coaxial waveguide-based geotechnical multi-point deformation sensor includes an outer conductor, open at opposite ends and hollow inside; magnetic metal support frames, inside the outer conductor, sequentially spaced along an axial direction of the outer conductor and each having a through-hole; an inner conductor inside the outer conductor and passing through each through-hole; and annular magnets, surrounding the outer conductor and configured to move along it, driving the nearest magnetic metal support frame to follow its movement. Each magnetic metal support frame acts as a reflection point. By reconstructing the interference spectra of any two reflection points, a gauge-length can exist between any two of the magnetic metal support frames. By collecting the changes in the interference spectrum signals of different gauge-lengths, deformation of geotechnical layers corresponding to the gauge-length(s) can be calculated, thus allowing the deformation of any geotechnical layer to be determined.

Classes IPC  ?

  • G01B 7/24 - Dispositions pour la mesure caractérisées par l'utilisation de techniques électriques ou magnétiques pour mesurer les déformations dans un solide, p. ex. au moyen d'une jauge de contrainte à résistance en utilisant la variation des propriétés magnétiques
  • H01P 3/06 - Lignes coaxiales

34.

Downhole traction system

      
Numéro d'application 18508923
Numéro de brevet 12264544
Statut Délivré - en vigueur
Date de dépôt 2023-11-14
Date de la première publication 2024-10-31
Date d'octroi 2025-04-01
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhao, Jianguo
  • Liu, Qingyou
  • Zhu, Haiyan
  • Wan, Min
  • Wang, Guorong
  • Dong, Xuecheng
  • Luo, Xu
  • Pei, Yingju
  • Wang, Xingming

Abrégé

A downhole traction system includes a driving system and a downhole wheeled tractor. The driving system is connected with the downhole wheeled tractor; the downhole wheeled tractor comprises a tractor body, a power unit and a plurality of traction units; the plurality of traction units are arranged along the extension direction of the tractor body; each of the traction units comprises a driving arm, a supporting arm, a supporting wheel, a driving assembly and a supporting assembly; the driving arm and the supporting arm are movably connected with the tractor body; and the supporting wheel is connected with the driving arm and the supporting arm. When the supporting assembly drives the supporting arm to extend along the radial direction of the tractor body under the hydraulic drive action of the hydraulic power unit, the supporting wheel can be abutted against the well wall.

Classes IPC  ?

  • E21B 23/00 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage
  • E21B 23/14 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage pour déplacer un câble ou un outil manœuvré par câble, p. ex. pour les opérations de diagraphie ou de perforation dans les puits déviés
  • E21B 47/06 - Mesure de la température ou de la pression
  • E21B 47/09 - Localisation ou détermination de la position d'objets dans les trous de forage ou dans les puitsIdentification des parties libres ou bloquées des tubes
  • E21B 47/13 - Moyens pour la transmission de signaux de mesure ou signaux de commande du puits vers la surface, ou de la surface vers le puits, p. ex. pour la diagraphie pendant le forage par énergie électromagnétique, p. ex. gammes de fréquence radio

35.

Method for inpainting highlight region of vegetation image captured by unmanned aerial vehicle, device, medium, and product

      
Numéro d'application 18631002
Numéro de brevet 12118698
Statut Délivré - en vigueur
Date de dépôt 2024-04-09
Date de la première publication 2024-10-15
Date d'octroi 2024-10-15
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • He, Jing
  • Chen, Yifu
  • Liu, Gang
  • Li, Weile

Abrégé

Provided are a method for inpainting a highlight region of a vegetation image captured by an unmanned aerial vehicle, a device, a medium, and a product. The method includes: acquiring an image to be inpainted, and a historic image; inputting the image to be inpainted to a trained target detection network to obtain a waterbody highlight region image block; determining a template image block of the image to be inpainted based on the waterbody highlight region image block; cropping the historical image to obtain a plurality of candidate image blocks of the image to be inpainted; determining similarity between each candidate image block and the template image block by using a deep learning image coarse matching method; and screening candidate image blocks with the similarity greater than a predetermined threshold, and determining an optimal candidate image block in the candidate image blocks by using a pixel-by-pixel matching method.

Classes IPC  ?

  • G06T 5/77 - RetoucheRestaurationSuppression des rayures
  • G06V 10/25 - Détermination d’une région d’intérêt [ROI] ou d’un volume d’intérêt [VOI]
  • G06V 10/44 - Extraction de caractéristiques locales par analyse des parties du motif, p. ex. par détection d’arêtes, de contours, de boucles, d’angles, de barres ou d’intersectionsAnalyse de connectivité, p. ex. de composantes connectées
  • G06V 10/60 - Extraction de caractéristiques d’images ou de vidéos relative aux propriétés luminescentes, p. ex. utilisant un modèle de réflectance ou d’éclairage
  • G06V 10/75 - Organisation de procédés de l’appariement, p. ex. comparaisons simultanées ou séquentielles des caractéristiques d’images ou de vidéosApproches-approximative-fine, p. ex. approches multi-échellesAppariement de motifs d’image ou de vidéoMesures de proximité dans les espaces de caractéristiques utilisant l’analyse de contexteSélection des dictionnaires
  • G06V 20/10 - Scènes terrestres
  • G06V 20/17 - Scènes terrestres transmises par des avions ou des drones

36.

COAXIAL WAVEGUIDE BASED ROCK-SOIL INTERNAL MULTI-POINT DEFORMATION SENSOR AND VARIABLE GAUGE LENGTH MEASUREMENT METHOD

      
Numéro d'application CN2024083359
Numéro de publication 2024/199138
Statut Délivré - en vigueur
Date de dépôt 2024-03-22
Date de publication 2024-10-03
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Xu, Qiang
  • Jiao, Tong
  • Zhu, Xing
  • Tang, Minggao
  • Chen, Xu
  • Pu, Chuhong
  • Tao, Xianling

Abrégé

The present application discloses a coaxial waveguide based rock-soil internal multi-point deformation sensor and a variable gauge length measurement method. The coaxial waveguide based rock-soil internal multi-point deformation sensor comprises: an outer conductor, openings being formed at two ends of the outer conductor and the interior thereof being hollow; metal supporting frames, arranged in the outer conductor, the metal supporting frames being sequentially arranged at intervals in the axial direction of the outer conductor, and a through hole being formed in each metal supporting frame; an inner conductor, arranged in the outer conductor and passing through the through hole of each metal supporting frame and being in contact with each through hole; and magnetic rings, each magnetic ring being arranged on the outer conductor and capable of moving relative to the outer conductor so as to drive the metal supporting frame closest to the magnetic ring to move. According to the present application, a plurality of metal supporting frames are provided, each metal supporting frame serves as a reflection point, a sensing gauge length is formed between every two metal supporting frames, and the deformation situation of a horizon where the sensing gauge length is located can be obtained by obtaining changes of interference spectrum signals of different sensing gauge lengths, so that the deformation situation of any horizon can be obtained according to requirements.

Classes IPC  ?

  • G01B 7/16 - Dispositions pour la mesure caractérisées par l'utilisation de techniques électriques ou magnétiques pour mesurer les déformations dans un solide, p. ex. au moyen d'une jauge de contrainte à résistance
  • G01B 11/16 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer la déformation dans un solide, p. ex. indicateur optique de déformation

37.

METHOD, APPARATUS AND SYSTEM FOR AUTOMATICALLY ADJUSTING OPENING DEGREE OF FLUID CONTROL VALVE

      
Numéro d'application 18418172
Statut En instance
Date de dépôt 2024-01-19
Date de la première publication 2024-09-19
Propriétaire Chengdu University of Technology (USA)
Inventeur(s)
  • Zhao, Jianguo
  • Liang, Penghui
  • Liu, Qingyou
  • Wang, Guorong
  • Zheng, Haotian
  • Peng, Hanxiu
  • Wan, Min
  • Hu, Gang
  • Luo, Xu
  • Pei, Yingju
  • Wang, Xingming
  • Dai, Xianwei
  • Tang, Xuanhe
  • Tao, Lei

Abrégé

A method, an apparatus and a system for automatically adjusting an opening degree of a fluid control valve, relating to the technical field of oil and gas exploration and development. The method includes: establishing a fluid control valve having an orifice structure in oil and gas production; using a numerical simulation method to obtain the influence law of minimum opening degree adjustment step on oil and gas production; obtaining relevant production test data of the oil and gas well, and calculating the total oil and gas production and the oil and gas production of each production layer based on the production test data of the oil and gas well; dividing the production layer segments into high, middle and low-production layers according to the production ratio of each production layer segment; respectively calculating the average productions of the high, middle and low-production layers.

Classes IPC  ?

  • G05D 7/06 - Commande de débits caractérisée par l'utilisation de moyens électriques
  • G05B 13/04 - Systèmes de commande adaptatifs, c.-à-d. systèmes se réglant eux-mêmes automatiquement pour obtenir un rendement optimal suivant un critère prédéterminé électriques impliquant l'usage de modèles ou de simulateurs

38.

METHOD AND SYSTEM FOR ASSESSING POTENTIAL CATASTROPHE RISK IN REAL TIME TO OPTIMIZE FRACTURING CONSTRUCTION PARAMETERS

      
Numéro d'application CN2023080691
Numéro de publication 2024/183084
Statut Délivré - en vigueur
Date de dépôt 2023-03-10
Date de publication 2024-09-12
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Hu, Jun
  • Zhang, Hui
  • Xu, Qiang
  • Cao, Junxing

Abrégé

The present invention relates to the field of shale gas exploitation. Disclosed are a method and system for assessing a potential catastrophe risk in real time to optimize fracturing construction parameters. The method comprises: acquiring in real time seismic data during a shale gas exploitation process in a target zone by means of near-field monitoring; locating each seismic event according to the seismic data; acquiring in real time production factor data of a construction unit during the shale gas exploitation process in the target zone and casing deformation data during a single-well fracturing process; on the basis of a spatiotemporal relationship fitter, performing screening to select seismic events which meet a set condition; calculating a linear correlation coefficient, a nonlinear correlation coefficient and a regression coefficient of each piece of production factor data; calculating an importance weight of each piece of production factor data; determining master-control production factor data; determining a risk threshold value on the basis of a multi-field coupling numerical model; and assessing a potential seismic risk in real time on the basis of the master-control production factor data. The present invention can reduce potential seismic and casing deformation risks during a shale gas exploitation process.

Classes IPC  ?

  • G06F 30/20 - Optimisation, vérification ou simulation de l’objet conçu

39.

1,4-sulfur-bridged polycyclic compounds containing dihydrobenzofuran structure, its preparation method and application thereof

      
Numéro d'application 17786470
Numéro de brevet 12162897
Statut Délivré - en vigueur
Date de dépôt 2022-03-18
Date de la première publication 2024-08-29
Date d'octroi 2024-12-10
Propriétaire Chengdu University (Chine)
Inventeur(s)
  • Zhao, Jianqiang
  • Zhou, Shun
  • Yuan, Weicheng
  • You, Yong
  • Wang, Zhenhua

Abrégé

The present invention discloses a 1,4-sulfur-bridged polycyclic compound containing dihydrobenzofuran structure which has a structural formula (I). A preparation method is also disclosed which includes the steps of: dissolving 2-nitrobenzofuran (II) and 5H-thiazolone (III) in an organic solvent; then adding molecular sieve and chiral catalyst, stirring and allowing reaction at room temperature under argon protection until the reaction is completed; and carrying out separation and purification to obtain a 1,4-sulfur-bridged polycyclic compound (I) containing dihydrobenzofuran structure. The polycyclic compounds of the present invention have a substructure of dihydrobenzofuran and 1,4-thiopiperidinone. The application of the compound for the preparation of antitumor drugs is also disclosed, which has a good potential value in antitumor drug research. The preparation method has the advantages of novelty, simplicity, simple operation, mild reaction conditions, high yield and high stereoselectivity, and etc.

Classes IPC  ?

40.

Staggered electrode bio-electro-Fenton groundwater circulation well system, and electro-Fenton assembly

      
Numéro d'application 18028575
Numéro de brevet 12084367
Statut Délivré - en vigueur
Date de dépôt 2022-09-21
Date de la première publication 2024-08-08
Date d'octroi 2024-09-10
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Pu, Shengyan
  • Ma, Hui
  • Yu, Dong
  • Liu, Shibin
  • Wang, Peng
  • Li, Bowen
  • Wang, Xin
  • Chen, M
  • Zhang, Tao
  • Chen, Jinsong
  • Tang, Qiang

Abrégé

The disclosure relates to a staggered electrode bio-electro-Fenton groundwater circulation well system, including a groundwater circulation well, a water pumping and injecting assembly and an in-well bio-electro-Fenton assembly. The water pumping and injecting assembly is configured to realize water pumping and injection between different screening sections of the groundwater circulation well. The bio-electro-Fenton assembly arranged in a first screening section of the groundwater circulation well includes at least one electrode device. A cathode and an anode of the electrode device form a spatially staggered arrangement according to different distribution areas. According to the disclosure, the spatially staggered arrangement of the cathode and the anode, the influence of oxygen on an anaerobic environment of an anode chamber in the electrode device is greatly reduced while ensuring the cathode takes oxygen as an electron acceptor, and the constructed bio-electro-Fenton system can accelerate the decomposition of organic pollutants in the groundwater circulation well.

Classes IPC  ?

  • C02F 3/00 - Traitement biologique de l'eau, des eaux résiduaires ou des eaux d'égout
  • C02F 3/28 - Procédés de digestion anaérobies
  • C02F 103/06 - Eau souterraine contaminée ou eau de lessivage

41.

System for designing perforating gun capable of reducing energy consumption

      
Numéro d'application 18437262
Numéro de brevet 12056422
Statut Délivré - en vigueur
Date de dépôt 2024-02-09
Date de la première publication 2024-08-06
Date d'octroi 2024-08-06
Propriétaire
  • DEPARTMENT OF NATIONAL DEVELOPMENT AND REFORM COMMISSION AND REGIONAL ECONOMICS (Chine)
  • CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
  • DEPARTMENT OF CIVIL AND ENVIRONMENTAL ENGINEERING, UNIVERSITY OF PITTSBURGH (USA)
  • ADMINISTRATIVE COMMISSION OF BEIJING CITY SUB-CENTER (Chine)
  • BEIJING HUIDAFENG TECHNOLOGY CO., LTD. (Chine)
Inventeur(s)
  • Cheng, Cheng
  • Yu, Chuanqi
  • Bunger, Andrew

Abrégé

System for designing a perforating gun capable of reducing energy consumption includes a survey module, an operation module, a monitoring module, a storage module, and a computing module. The operation module is configured to match a target perforating gun to perform a perforating operation to perform an HF operation, obtain a status parameter when the target perforating gun performs the perforating operation and send the status parameter to the monitoring module. The survey module is configured to obtain basic data of a target operation region. The monitoring module is configured to, at a preset frequency, obtain a safety monitoring result by analyzing first data in target data and the status parameter; in response to the safety monitoring result not satisfying a preset safety condition, control a fracturing control pump of the operation module to stop operation; and obtain an HF effect by analyzing second data, in response to the HF effect not satisfying a preset effect condition, update the preset frequency.

Classes IPC  ?

  • G06F 30/17 - Conception mécanique paramétrique ou variationnelle
  • E21B 49/00 - Test pour déterminer la nature des parois des trous de forageEssais de couchesProcédés ou appareils pour prélever des échantillons du terrain ou de fluides en provenance des puits, spécialement adaptés au forage du sol ou aux puits
  • E21B 43/116 - Perforateurs à balles ou à charge profilée

42.

APPARATUS FOR ESTIMATING UNDER MONOCULAR INFRARED THERMAL IMAGING VISION POSE OF OBJECT GRASPED BY MANIPULATOR, AND METHOD THEREOF

      
Numéro d'application CN2023073757
Numéro de publication 2024/148645
Statut Délivré - en vigueur
Date de dépôt 2023-01-30
Date de publication 2024-07-18
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Yi, Shi
  • Cheng, Xinghao
  • Wang, Cheng

Abrégé

An apparatus for estimating under monocular infrared thermal imaging vision the pose of an object grasped by a manipulator. The apparatus is carried on a manipulator loaded by a special robot working in a smoke and explosion environment, and comprises: a monocular infrared thermal imaging camera, which is configured to perform imaging in the smoke and explosion environment and collect an infrared thermal imaging visual image; a laser ranging module, which is carried at the bottom end of the monocular infrared thermal imaging camera and registers a ranging point of the laser ranging module to coincide with the central point of an infrared image, and which is configured to range a grasped object; an edge computing platform, which is configured to perform detection and positioning, pose estimation and coordinate parameter extraction on the grasped object according to the infrared imaging visual image and a ranging result, and to plan a motion path of the manipulator; and an embedded microcontroller, which is configured to generate a control signal according to the planned motion path and control the manipulator to grasp the object. The apparatus is characterized by being lightweight and having high working efficiency, and is suitable for being carried on a special robot platform. Further provided is an estimation method of the apparatus for estimating under monocular infrared thermal imaging vision the pose of an object grasped by a manipulator.

Classes IPC  ?

  • B25J 11/00 - Manipulateurs non prévus ailleurs
  • B25J 5/00 - Manipulateurs montés sur roues ou sur support mobile

43.

Pose estimation apparatus and method for robotic arm to grasp target based on monocular infrared thermal imaging vision

      
Numéro d'application 18276648
Numéro de brevet 12073585
Statut Délivré - en vigueur
Date de dépôt 2023-01-30
Date de la première publication 2024-07-18
Date d'octroi 2024-08-27
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Yi, Shi
  • Cheng, Xinghao
  • Wang, Cheng

Abrégé

A pose estimation apparatus and method for a robotic arm to grasp a target based on monocular infrared thermal imaging vision are provided. The pose estimation apparatus includes a monocular infrared thermal imaging camera, a laser ranging module, an edge computing platform, and an embedded processor. The monocular infrared thermal imaging camera can perform imaging based on a temperature difference between a target and an environment in smoke, combustion, and explosion environments in which a specialized robot works. The laser ranging module can assist in measuring a distance of a to-be-grasped target. An algorithm process is deployed on the edge computing platform. The embedded processor completes motion control of a robotic arm.

Classes IPC  ?

  • G06T 7/73 - Détermination de la position ou de l'orientation des objets ou des caméras utilisant des procédés basés sur les caractéristiques
  • B25J 9/16 - Commandes à programme
  • G06V 10/46 - Descripteurs pour la forme, descripteurs liés au contour ou aux points, p. ex. transformation de caractéristiques visuelles invariante à l’échelle [SIFT] ou sacs de mots [BoW]Caractéristiques régionales saillantes
  • G06V 10/50 - Extraction de caractéristiques d’images ou de vidéos en effectuant des opérations dans des blocs d’imagesExtraction de caractéristiques d’images ou de vidéos en utilisant des histogrammes, p. ex. l’histogramme de gradient orienté [HoG]Extraction de caractéristiques d’images ou de vidéos en utilisant l’addition des valeurs d’intensité d’imageAnalyse de projection
  • G06V 10/77 - Traitement des caractéristiques d’images ou de vidéos dans les espaces de caractéristiquesDispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant l’intégration et la réduction de données, p. ex. analyse en composantes principales [PCA] ou analyse en composantes indépendantes [ ICA] ou cartes auto-organisatrices [SOM]Séparation aveugle de source
  • G06V 10/80 - Fusion, c.-à-d. combinaison des données de diverses sources au niveau du capteur, du prétraitement, de l’extraction des caractéristiques ou de la classification
  • G06V 10/82 - Dispositions pour la reconnaissance ou la compréhension d’images ou de vidéos utilisant la reconnaissance de formes ou l’apprentissage automatique utilisant les réseaux neuronaux

44.

PRE-LOADED CONCRETE-FILLED STEEL TUBULAR COLUMNS AND METHOD FOR FABRICATING THE SAME

      
Numéro d'application 17987187
Statut En instance
Date de dépôt 2022-11-15
Date de la première publication 2024-05-16
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Hu, Xiao
  • Chen, Zhenlin

Abrégé

The present application relates to a circumferentially pre-loaded concrete-filled steel tubular column, including a steel tube formed from a plurality of steel sheets with two flanges formed at two opposite sides of each of the steel sheets, respectively, and defined with bolt holes therein; and a concrete core provided in the steel tube. Every two adjacent steel sheets are connected with each other by bolts passing through corresponding bolt holes in two adjacent flanges to form the circumferentially pre-loaded concrete-filled steel tubular column.

Classes IPC  ?

  • E04C 3/34 - ColonnesPiliersArcs-boutants en béton ou autre matériau analogue à la pierre, avec ou sans éléments de coffrage permanents, avec ou sans armature interne ou externe, p. ex. recouvrements métalliques

45.

SEISMIC QUANTITATIVE PREDICTION METHOD FOR SHALE TOC BASED ON SENSITIVE PARAMETER VOLUMES

      
Numéro d'application 18341781
Statut En instance
Date de dépôt 2023-06-27
Date de la première publication 2024-03-21
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Wu, Chaorong
  • Liu, Cheng
  • Huang, Kaixing
  • Li, Yong
  • Li, Yizhen
  • Li, Junxiang
  • Hao, Yuexiang

Abrégé

A seismic quantitative prediction method for shale total organic carbon (TOC) based on sensitive parameter volumes is as follows. A target stratum for a TOC content to be measured is determined, logging curves with high correlations with TOC contents are analyzed, the logging curves are found as sensitive parameters; sample data are constructed using the sensitive parameters; a radial basis function (RBF) neural network is trained with the sample data as an input and the TOC content at a depth corresponding to the sample data as an output to obtain a RBF neural network prediction model; sensitive parameter volumes are obtained by using the sensitive parameters and post stack three-dimension seismic data to invert; prediction samples are constructed using the sensitive parameter volumes; the predicted samples are input to the RBF neural network prediction model to calculate corresponding TOC values, thereby the TOC content of the target stratum is predicted.

Classes IPC  ?

46.

Two-stage reverse-torque bent screw orientation tool

      
Numéro d'application 18463876
Numéro de brevet 12110794
Statut Délivré - en vigueur
Date de dépôt 2023-09-08
Date de la première publication 2024-03-21
Date d'octroi 2024-10-08
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Liu, Qingyou
  • Zhao, Jianguo
  • Wang, Guorong
  • Zhu, Haiyan
  • Dong, Xuecheng
  • Wang, Xingming
  • Luo, Xu
  • Pei, Yingju
  • Dai, Xianwei

Abrégé

Provided is a two-stage reverse-torque bent screw orientation tool. An existing bent screw orientation technology has the technical problems of large friction resistance, difficult control of a borehole track, a low drilling speed and the like, and restricts economic, safe and long-acting development of oil and gas. In order to solve the above problems, the two-stage reverse-torque bent screw orientation tool is invented and composed of a first-stage clutch mechanism and a second-stage clutch mechanism, and the first-stage clutch mechanism and the second-stage clutch mechanism are both composed of a battery, a battery compartment, a pressure sensor, an electromagnetic valve, a body, a plug, a piston, an outer tooth cylinder, an inner tooth cylinder, a transmission cylinder, a connecting cylinder, a bearing, a limiting cylinder, a lower joint, a thrust bearing, a battery compartment, a circuit board, a cover plate and the like.

Classes IPC  ?

  • E21B 7/06 - Modification de la direction du trou de forage
  • E21B 17/042 - AccouplementsJoints entre tige et trépan, ou entre tiges filetés
  • E21B 31/00 - Repêchage ou dégagement d'objets dans les trous de forage ou dans les puits
  • E21B 34/06 - Aménagements des vannes pour les trous de forage ou pour les puits dans les puits
  • E21B 47/06 - Mesure de la température ou de la pression
  • E21B 47/13 - Moyens pour la transmission de signaux de mesure ou signaux de commande du puits vers la surface, ou de la surface vers le puits, p. ex. pour la diagraphie pendant le forage par énergie électromagnétique, p. ex. gammes de fréquence radio

47.

Wireless remote control method and system for controllable rotary sliding guiding drilling

      
Numéro d'application 18470510
Numéro de brevet 12312934
Statut Délivré - en vigueur
Date de dépôt 2023-09-20
Date de la première publication 2024-03-21
Date d'octroi 2025-05-27
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhao, Jianguo
  • Liu, Qingyou
  • Zhu, Haiyan
  • Wang, Guorong
  • Zeng, Jie
  • Luo, Xu
  • Dong, Xuecheng
  • Wang, Xingming

Abrégé

Disclosed are a wireless remote control method and system for controllable rotary sliding guiding drilling. An upper end of a controllable rotary sliding guiding drilling mechanism is provided with a drill rod; and the wireless remote control system for controllable rotary sliding guiding drilling further comprises: an MWD arranged at a lower end of the controllable rotary sliding guiding drilling mechanism; a bent screw drill tool mounted at a lower end of the MWD; a drill bit mounted at a lower end of the bent screw drill tool, the drill bit being connected with the bent screw drill tool through a connector; and a clutch module mounted on the controllable rotary sliding guiding drilling mechanism, the clutch module comprising an electromagnetic valve, a processor, an internal pipe pressure sensor, an external pipe pressure sensor and a wireless data transmission module.

Classes IPC  ?

  • E21B 44/00 - Systèmes de commande automatique spécialement adaptés aux opérations de forage, c.-à-d. systèmes à fonctionnement autonome ayant pour rôle d'exécuter ou de modifier une opération de forage sans l'intervention d'un opérateur humain, p. ex. systèmes de forage commandés par ordinateurSystèmes spécialement adaptés à la surveillance de plusieurs variables ou conditions de forage
  • E21B 7/04 - Forage dirigé
  • E21B 21/10 - Aménagements des vannes dans les systèmes de circulation des fluides de forage
  • E21B 47/024 - Détermination de l'inclinaison ou de la direction des dispositifs dans le trou de forage
  • E21B 47/06 - Mesure de la température ou de la pression
  • E21B 47/12 - Moyens pour la transmission de signaux de mesure ou signaux de commande du puits vers la surface, ou de la surface vers le puits, p. ex. pour la diagraphie pendant le forage

48.

Suspension modifier directly added into fracturing fluid for real-time proppant modification during fracturing and the application thereof

      
Numéro d'application 18495788
Numéro de brevet 11912933
Statut Délivré - en vigueur
Date de dépôt 2023-10-27
Date de la première publication 2024-02-27
Date d'octroi 2024-02-27
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Yang, Bo
  • Liu, Yu
  • Zhang, Hao
  • Yang, Di
  • Ren, Min
  • Yang, Yang
  • Zhong, Ying
  • Yang, Bin
  • She, Jiping

Abrégé

The invention provides a suspension modifier directly added into fracturing fluid for real-time proppant modification during fracturing and the application thereof, relating to the field of oil and gas production technologies. The suspension modifier is a controlled release nanoemulsion and comprises surface hydrophobic modifier, surfactant, cosurfactant and water. The suspension modifier is directly added into clear-water or active-water fracturing fluid while the proppant is added into water. After stirring, the suspension modifier is capable of self-assembling and being adsorbed on the proppant surface, so that the proppant surface becomes hydrophobic and aerophilic. The invention no longer requires the proppant to be pretreated, and the bubble-suspended proppant can be obtained directly by adding the suspension modifier to the clear-water or active-water fracturing fluid, and meanwhile adding the proppant to the fracturing fluid. This technology is not only easy to operate, but also low in cost for proppant treatment.

Classes IPC  ?

  • C09K 8/60 - Compositions pour activer la production en agissant sur la formation souterraine

49.

USE OF DENDROBIUM OFFICINALE DOOBGC AND VARIABLE SPLICEOSOME THEREOF IN PROMOTING EMBRYONIC AXIS ELONGATION

      
Numéro d'application CN2022126432
Numéro de publication 2024/031835
Statut Délivré - en vigueur
Date de dépôt 2022-10-20
Date de publication 2024-02-15
Propriétaire
  • SICHUAN AGRICULTURAL UNIVERSITY (Chine)
  • CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Chen, Ji
  • Luo, Xin
  • Tian, Mengliang
  • Wan, Jian
  • Huang, Jin
  • Liang, Huan
  • Liu, Fan
  • Zhang, Lang
  • Li, Linhong

Abrégé

Provided is use of Dendrobium officinale DoObgC and a variable spliceosome thereof in promoting embryonic axis elongation. The serial number of the Dendrobium officinale DoObgC nucleotide is KT359612.1. Also provided is a variable spliceosome with a nucleotide sequence set forth in any of SEQ ID NOs. 1-5. In an Arabidopsis thaliana plant overexpressing Dendrobium officinale DoObgC or the variable spliceosome thereof, the length of the embryonic axis is significantly greater than that of a wild-type plant.

Classes IPC  ?

  • C12N 15/82 - Vecteurs ou systèmes d'expression spécialement adaptés aux hôtes eucaryotes pour cellules végétales
  • C12N 15/55 - Hydrolases (3)
  • C12N 9/14 - Hydrolases (3.)
  • C12N 1/21 - BactériesLeurs milieux de culture modifiés par l'introduction de matériel génétique étranger
  • A01H 5/00 - Angiospermes, c.-à-d. plantes à fleurs, caractérisées par leurs parties végétalesAngiospermes caractérisées autrement que par leur taxonomie botanique
  • A01H 6/20 - Brassicaceae, p. ex. colza, brocoli ou roquette
  • C12R 1/01 - Bactéries ou actinomycètes

50.

Heat transfer limit experimental device of high-temperature heat pipe equipped with convenient temperature measurement box and method

      
Numéro d'application 18133540
Numéro de brevet 11892380
Statut Délivré - en vigueur
Date de dépôt 2023-04-12
Date de la première publication 2024-02-06
Date d'octroi 2024-02-06
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhang, Muhao
  • Chen, Wei
  • Zhang, Suyi
  • Zhang, Xu
  • He, Xiaoqiang
  • Ding, Shuhua
  • Ma, Yugao

Abrégé

The present disclosure provides a heat transfer limit experimental device of a high-temperature heat pipe equipped with a convenient temperature measurement box and a method based on the heat transfer limit experimental device. The heat transfer limit experimental device includes a high-temperature heat pipe, an electric heating system, a convenient temperature measurement box, a control system, a gas-cooled heat exchange system, and a data acquisition system. The electric heating system is connected to the high-temperature heat pipe. The convenient temperature measurement box is connected to the gas-cooled heat exchange system. The data acquisition system is connected to the gas-cooled heat exchange system, the convenient temperature measurement box, and the electric heating system. The control system is connected to the gas-cooled heat exchange system, the convenient temperature measurement box, and the electric heating system. The high-temperature heat pipe is disposed inside the convenient temperature measurement box.

Classes IPC  ?

  • G01M 99/00 - Matière non prévue dans les autres groupes de la présente sous-classe

51.

Method for remediating petroleum hydrocarbon contamination in groundwater

      
Numéro d'application 18203767
Numéro de brevet 11919058
Statut Délivré - en vigueur
Date de dépôt 2023-05-31
Date de la première publication 2024-01-25
Date d'octroi 2024-03-05
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Pu, Shengyan
  • Wang, Peng
  • Liu, Shibin
  • Wang, Xin
  • Ma, Hui
  • An, Pei

Abrégé

The invention relates to a method for microbial remediation of underground water petroleum hydrocarbon contamination by regulating soil buffer capability, which comprises detecting the soil particle size of contaminated site soil, dividing the contaminated site soil into coarse-grained soil and fine-grained soil; dividing the contaminated site soil into high buffer capacity soil and low buffer capacity soil; and adjusting the composition and ratio of a biostimulant solution added to the contaminated site soil based on the classification of the contaminated site soil. The detecting step includes classifying soil with a particle size between 0.075 mm and 60 mm and a mass greater than or equal to 50% of the total mass as coarse-grained soil; and classifying soil with a particle size not greater than 0.075 mm and a mass greater than or equal to 50% as fine-grained soil.

Classes IPC  ?

  • B09C 1/08 - Régénération de sols pollués par des procédés chimiques
  • B09C 1/10 - Régénération de sols pollués par des procédés microbiologiques ou utilisant des enzymes
  • C02F 3/28 - Procédés de digestion anaérobies
  • C02F 3/34 - Traitement biologique de l'eau, des eaux résiduaires ou des eaux d'égout caractérisé par les micro-organismes utilisés
  • C02F 101/32 - Hydrocarbures, p. ex. huiles
  • C02F 103/06 - Eau souterraine contaminée ou eau de lessivage

52.

Classification method and system for fine-grained mixed sedimentary rocks, medium, and terminal

      
Numéro d'application 18363686
Numéro de brevet 11879884
Statut Délivré - en vigueur
Date de dépôt 2023-08-01
Date de la première publication 2024-01-23
Date d'octroi 2024-01-23
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Ma, Yiquan
  • Liu, Xiaofeng
  • Lu, Yangbo
  • Lu, Yongchao
  • Zhang, Chen
  • Du, Xuebin
  • Liu, Zhanhong
  • Wei, Wei
  • Shu, Yi
  • Zhang, Jingyu
  • Zhao, Ke
  • Cui, Qinyu
  • Wang, Hao
  • Fan, Xiaojie
  • Zhi, Caiguang
  • Gao, Mengtian
  • Shi, Lingna

Abrégé

The present disclosure discloses a classification method and system for fine-grained mixed sedimentary rocks, a medium and a terminal. Core description and thin section observation are used to accurately identify the sedimentary structure types and their vertical distribution characteristics from the macroscopic and microscopic perspectives, and indicates the mixed sedimentation characteristics of combination of different lamina or laminar couplets. The micro-drilling sampling technique is used to sample the samples with different types of sedimentary structures while avoiding diagenetic minerals. X-ray diffraction mineral content analysis and a high-precision carbon-sulfur analyzer are used to obtain the contents of different types of minerals and the total organic carbon contents in each sample, respectively, the basic rock type of each sample was determined using a triangular classification diagram. The name of sedimentary structure and the total organic carbon content are added in order before the name of the basic rock type.

Classes IPC  ?

  • G01N 33/24 - Matériaux de la terre
  • G01N 23/2005 - Préparation des échantillons de poudre à cet effet
  • G01N 1/28 - Préparation d'échantillons pour l'analyse
  • G06F 18/2431 - Classes multiples
  • G06F 18/243 - Techniques de classification relatives au nombre de classes
  • G01N 1/38 - Dilution, dispersion ou mélange des échantillons

53.

Multi-shaft pressurized rock mechanics tester

      
Numéro d'application 18358868
Numéro de brevet 11860133
Statut Délivré - en vigueur
Date de dépôt 2023-07-25
Date de la première publication 2023-12-21
Date d'octroi 2024-01-02
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhang, Chen
  • Wen, Huaguo
  • Ma, Chao
  • Ma, Yiquan
  • Liang, Jintong
  • Dong, Yixin
  • Kong, Xiangye
  • Wang, Xin
  • Wang, Shaohui
  • Zhang, Ya
  • Yan, Wei

Abrégé

-shaped bracket plate; the left and right sides of the base are symmetrically welded with four vertical bracing plates, an I-shaped installation plate is welded on the top of the four vertical bracing plates, four hydraulic cylinders are locked, fixed and hoisted on the bottom of the I-shaped installation plate with screws.

Classes IPC  ?

  • G01N 3/04 - Mandrins
  • G01N 33/24 - Matériaux de la terre
  • G01N 3/10 - Recherche des propriétés mécaniques des matériaux solides par application d'une contrainte mécanique par application d'efforts permanents de traction ou de compression engendrés par pression pneumatique ou hydraulique

54.

Multifunctional rock mechanics tester

      
Numéro d'application 18358611
Numéro de brevet 11892432
Statut Délivré - en vigueur
Date de dépôt 2023-07-25
Date de la première publication 2023-12-14
Date d'octroi 2024-02-06
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhang, Chen
  • Wen, Huaguo
  • Ma, Chao
  • Liang, Jintong
  • Ma, Yiquan
  • Dong, Yixin
  • Kong, Xiangye
  • Wang, Xin
  • Wang, Shaohui
  • Zhou, Gang
  • Zhong, Yuan
  • Tang, Wenbin
  • Nie, Jing
  • Zhang, Bolin
  • Zeng, Yunchuan

Abrégé

The present invention provides a multifunctional rock mechanics tester, pertaining to the technical field of mechanics tester, consisting of a base; wherein a power mechanism is mounted on the top of the base, two tension testing mechanisms are arranged on the power mechanism in an up-and-down symmetrical way, a clamping mechanism is mounted on each tension testing mechanism, a rock testing block is clamped between the two clamping mechanisms. The present invention realizes the tension and pressure testing of the rock test block through the arrangement of tension testing mechanism and pressure testing mechanism, thus improving the functionality of the present mechanics tester, which not only reduces the testing cost, but also effectively decreases the occupied space; the present invention solves the problem that the traditional mechanics tester can only complete one kind of test when it is used.

Classes IPC  ?

55.

Geological sampling backpack drilling machine

      
Numéro d'application 18324109
Numéro de brevet 11840928
Statut Délivré - en vigueur
Date de dépôt 2023-05-25
Date de la première publication 2023-12-12
Date d'octroi 2023-12-12
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Lin, Liangbiao
  • Zheng, Jianchao
  • Yu, Yu
  • Nan, Fanchi
  • Liu, Fengbin
  • Tang, Shuncheng
  • Wang, Jianchao
  • Su, Jialiang
  • Liu, Siyu
  • Deng, Xiaoliang

Abrégé

The present disclosure providing a geological sampling backpack drilling machine includes a housing, a drilling device movably received in the housing, a seat arranged on the housing, and a bracket detachably connected to the housing via a limiting rotator, with an angle between the bracket and the housing being variable; the seat arranged between a tip of a drilling rod and the bracket, and rotating around the drilling rod as an axis thereof; a rotating member arranged on a surface of the seat and surrounding around the drilling rod to detachably connect with a supporting post, both the supporting post and the bracket cooperatively supporting the drilling device; the drilling rod passing through the housing and the seat; both the bracket and the supporting post supporting the drilling device that is obliquely drilled and the housing for enabling the drilling device to stably drill at an inclined state.

Classes IPC  ?

  • E21B 7/00 - Procédés ou matériels particuliers pour le forage
  • E21B 7/02 - Appareils de forage caractérisés par des moyens de transport terrestre, p. ex. montés sur des patins ou des roues

56.

Method for remediating groundwater organic contamination by in-situ reaction zone

      
Numéro d'application 18198994
Numéro de brevet 11897797
Statut Délivré - en vigueur
Date de dépôt 2023-05-18
Date de la première publication 2023-11-23
Date d'octroi 2024-02-13
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Pu, Shengyan
  • Ma, Hui
  • Yu, Dong
  • Luo, Dongyuan
  • Du, Junyan
  • Ni, Xinxin
  • Miao, Zhu
  • Wang, Yu

Abrégé

The present disclosure belongs to the field of environmental protection and relates to a method for remediating groundwater chlorophenols organic contamination. The method includes determining a location of a contamination source; setting up an injection well based on the location of the contamination source; and injecting a remediation reagent into groundwater in a to-be-remediated region through the injection well so as to degrade chlorophenols organic contamination in the groundwater in the to-be-remediated region.

Classes IPC  ?

  • C02F 1/70 - Traitement de l'eau, des eaux résiduaires ou des eaux d'égout par réduction
  • C02F 1/72 - Traitement de l'eau, des eaux résiduaires ou des eaux d'égout par oxydation
  • B09C 1/00 - Régénération de sols pollués
  • C02F 101/36 - Composés organiques contenant des atomes d'halogène
  • C02F 103/06 - Eau souterraine contaminée ou eau de lessivage
  • C02F 101/34 - Composés organiques contenant de l'oxygène

57.

Sampling device for geological fluid detection

      
Numéro d'application 18353053
Numéro de brevet 11906401
Statut Délivré - en vigueur
Date de dépôt 2023-07-14
Date de la première publication 2023-11-16
Date d'octroi 2024-02-20
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhang, Chen
  • Wen, Huaguo
  • Ma, Chao
  • Liang, Jintong
  • Ma, Yiquan
  • Dong, Yixin
  • Wang, Shaohui
  • Zhou, Gang
  • Zhong, Yuan
  • Tang, Wenbin
  • Zhang, Bolin
  • Sun, Yiting
  • Zeng, Yunchuan

Abrégé

The invention provides a sampling device for geological fluid detection, relates to the technical field of fluid detection. The sampling device comprises a support frame, the support frame is of an L-shaped structure, and a second support plate is arranged at an upper portion of the support frame; the protection cover is mounted at the corner of a bottom portion of the support frame. The water fixing member is clamped above the bottom portion of the support frame; the locking inclined block is mounted at the bottom portion of the; and the detector is provided with a water inlet pipe. Fluid at different depths is detected through cooperation of the mounting sleeve and the lifting frame, a fluid drainage tube is wound around the winding wheel, the mounting sleeve is driven by the lifting frame to adjust the position through the arrangement of the gear and the rack, the fluid is sampled through the sampling test tube.

Classes IPC  ?

  • G01N 1/16 - Dispositifs pour prélever des échantillons à l'état liquide ou fluide avec mesures prises pour aspiration à plusieurs niveaux
  • G01N 1/12 - Pelles d'excavateursDragues
  • G01N 1/10 - Dispositifs pour prélever des échantillons à l'état liquide ou fluide

58.

Method for predicting air quality index (AQI) based on a fusion model

      
Numéro d'application 18206100
Numéro de brevet 11816556
Statut Délivré - en vigueur
Date de dépôt 2023-06-06
Date de la première publication 2023-11-14
Date d'octroi 2023-11-14
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Gao, Song
  • Zhang, Hengsheng
  • Wang, Simin
  • Zhou, Lun
  • Liu, Ruochen

Abrégé

A method for predicting an air quality index (AQI) based on a fusion model proposes a differential fusion seasonal prediction model (DF-SPM) based on a random forest (RF) model and a convolutional neural network (CNN)-long short-term memory (LSTM)-attention (CLA) model. This method uses the optimal threshold interval (OTI) search algorithm to search and learn the OTI of four seasons during the prediction process, and obtains the final prediction results according to the predicted values of RF model and CLA model. The fusion model combines the prediction advantages of two independent models, and fully considers the seasonal and periodic characteristics of AQI, so as to accurately search OTI in different time periods with the seasonal scale, so as to achieve higher prediction accuracy. The OTI strategy of fusion model is superior to the single threshold strategy, which can extract the historical fluctuation characteristics of AQI and achieve higher prediction accuracy.

Classes IPC  ?

  • G06N 3/08 - Méthodes d'apprentissage
  • G06N 3/045 - Combinaisons de réseaux
  • G01W 1/10 - Dispositifs pour la prévision des conditions météorologiques
  • G06N 3/0464 - Réseaux convolutifs [CNN, ConvNet]
  • G06N 20/20 - Techniques d’ensemble en apprentissage automatique
  • G06N 3/0442 - Réseaux récurrents, p. ex. réseaux de Hopfield caractérisés par la présence de mémoire ou de portes, p. ex. mémoire longue à court terme [LSTM] ou unités récurrentes à porte [GRU]

59.

Oil-gas-water three-phase automatic metering device and method

      
Numéro d'application 18125111
Numéro de brevet 11808682
Statut Délivré - en vigueur
Date de dépôt 2023-03-22
Date de la première publication 2023-11-07
Date d'octroi 2023-11-07
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zheng, Jun
  • Chen, Chuhao
  • Liu, Hongbo

Abrégé

An oil-gas-water three-phase automatic metering device and method includes a liquid inlet pipe, a pump body, a degassing assembly, a water inlet assembly, first and second liquid storage pipes, a weighing assembly, and a control unit. The liquid inlet pipe, degassing assembly, one end of the first liquid storage pipe and one end of the second liquid storage pipe are connected to four valve ports of a first changeover valve, respectively. The water inlet assembly, one end of the pump body, the other end of the first liquid storage pipe, and the other end of the second liquid storage pipe are connected to four valve ports of a second changeover valve, respectively. The degassing assembly, the water inlet assembly and the other end of the pump body are in communication with the weighing assembly, and the pump body, degassing assembly and weighing assembly are communicatively connected to the control unit.

Classes IPC  ?

  • G01N 15/08 - Recherche de la perméabilité, du volume des pores ou de l'aire superficielle des matériaux poreux
  • G05D 7/06 - Commande de débits caractérisée par l'utilisation de moyens électriques

60.

Online detection system for type identification and activity measurement of radiations in gas or liquid

      
Numéro d'application 18126489
Numéro de brevet 12332390
Statut Délivré - en vigueur
Date de dépôt 2023-03-27
Date de la première publication 2023-11-02
Date d'octroi 2025-06-17
Propriétaire Chengdu University of Technology (USA)
Inventeur(s)
  • Dong, Chunhui
  • Wang, Ming
  • Zhang, Qingxian
  • Li, Gang
  • Huang, Qichang
  • Wei, Lingfeng
  • Li, Weinan
  • Zuo, Jingxin
  • Peng, Weixin
  • Liao, Kaiyong
  • Gu, Yi
  • Cheng, Feng
  • Li, Fei
  • Zhang, Muhao

Abrégé

The online detection system for type identification and activity measurement of radiations in gas or liquid is provided, which can capture the light signals generated by different radiations in real time, and convert the light signals into the electrical signals, so as to realize the online type identification and activity measurement of the radiations based on the waveforms and the time information of the electrical signals of the different radiations. In addition, based on the characteristic that different radiations have different penetration capabilities, the inner-outer two-layer activity measurement structure is designed, which can discriminate the radiations with the same waveform. Therefore, the present disclosure simplifies the radiation activity measurement process, thereby greatly improving the efficiency of the radiation activity measurement.

Classes IPC  ?

  • G01T 1/20 - Mesure de l'intensité de radiation avec des détecteurs à scintillation

61.

Method for removing phosphorus and boron impurity from industrial silicon melt by secondary refining

      
Numéro d'application 18140647
Numéro de brevet 11807538
Statut Délivré - en vigueur
Date de dépôt 2023-04-28
Date de la première publication 2023-11-02
Date d'octroi 2023-11-07
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Luo, Dawei
  • Rong, Ke
  • Gao, Zijie
  • Deng, Jiabao

Abrégé

A method for removing phosphorus and boron impurities in an industrial silicon melt by secondary refining is provided. According to the present disclosure, inorganic zinc chloride is adopted as an impurity removal medium and is quickly decomposed into zinc and chloride ions at high temperatures; the phosphorus and boron impurities can react with the zinc and chloride ions to yield low-melting and high-melting compounds during contact with a silicon melt, the low-melting compounds volatilize and escape from the industrial silicon melt at the high temperature of the secondary refining. The high-melting compounds are segregated at the grain boundary along with silicon solidification and removed by crushing and pickling, or sink to the very bottom of the silicon melt and are removed by cutting off a deposition layer at a bottom of a silicon ingot after the silicon melt is solidified.

Classes IPC  ?

62.

Reservoir bank landslide susceptibility evaluation method

      
Numéro d'application 18131684
Numéro de brevet 11802817
Statut Délivré - en vigueur
Date de dépôt 2023-04-06
Date de la première publication 2023-10-31
Date d'octroi 2023-10-31
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Shi, Xianlin
  • Dai, Keren
  • Chen, Chen

Abrégé

A reservoir bank landslide susceptibility evaluation method. The method includes the following steps: S1, acquiring geophysical parameters; S2, calculating stability of a reservoir bank after impoundment through a static geological evaluation model according to the geophysical parameters; S3, obtaining an average displacement velocity in a geographic coordinate system according to single look complex (SLC) images after impoundment; and S4, according to the average displacement velocity in the geographic coordinate system and the stability of the reservoir bank after impoundment of the reservoir, obtaining a reservoir bank landslide susceptibility grade. According to the method, a problem that present landslide susceptibility evaluation methods all adopt a single model to evaluate landslide susceptibility, which has low evaluation accuracy of the landslide susceptibility is solved.

Classes IPC  ?

  • G06F 11/30 - Surveillance du fonctionnement
  • G01M 99/00 - Matière non prévue dans les autres groupes de la présente sous-classe
  • G06F 30/20 - Optimisation, vérification ou simulation de l’objet conçu
  • G06T 7/30 - Détermination des paramètres de transformation pour l'alignement des images, c.-à-d. recalage des images
  • G06T 7/00 - Analyse d'image

63.

Method for locating abnormal temperature event of distributed optical fiber

      
Numéro d'application 18192224
Numéro de brevet 12411048
Statut Délivré - en vigueur
Date de dépôt 2023-03-29
Date de la première publication 2023-10-12
Date d'octroi 2025-09-09
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Wang, Honghui
  • Wang, Xiang
  • Yao, Guangle
  • Peng, Peng
  • Yang, Jianbo
  • Tuo, Xianguo

Abrégé

A method of locating a temperature anomalies of a distributed optical fiber includes the steps of: (a) generating a training dataset having training samples; (b) setting labels for training samples; (c) building a convolutional neural network composed of multi-layer convolutional networks and a fully connected layer, training to form a convolutional neural network model; (d) utilizing a fiber-optic temperature sensing system for measurement of testing object; (e) sending acquired data into the convolutional neural network model to obtain output features, then processing mapping and binarization; (f) offsetting the binary feature to obtain an offset feature and calculating a cosine similarity; and (g) obtaining a location of the abnormal temperature event by identifying the offset feature with a largest cosine similarity and identifying its location in the sequence P.

Classes IPC  ?

  • G01K 11/32 - Mesure de la température basée sur les variations physiques ou chimiques, n'entrant pas dans les groupes , , ou utilisant des changements dans la transmittance, la diffusion ou la luminescence dans les fibres optiques
  • G01K 15/00 - Test ou étalonnage des thermomètres
  • G06N 3/0464 - Réseaux convolutifs [CNN, ConvNet]
  • G06N 3/08 - Méthodes d'apprentissage

64.

Density abrupt interface inversion method and system based on machine learning constraints

      
Numéro d'application 18116877
Numéro de brevet 11768982
Statut Délivré - en vigueur
Date de dépôt 2023-03-03
Date de la première publication 2023-09-26
Date d'octroi 2023-09-26
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Li, Jun
  • Xu, Zhengwei
  • Wang, Xuben
  • Wang, Rui
  • Liang, Shengxian

Abrégé

Disclosed are a hybrid density abrupt interface inversion method based on machine learning constraints. The inversion method includes constructing an initial basin interface and randomly generating a disturbed basin interface data set; obtaining a basin interface data set through Hadamard product operation on the initial basin interface and the disturbed basin interface data set; obtaining a high-resolution density interface model data set through filling the basin interface data set with advanced functions; performing forward calculation to obtain a simulated gravity data set; carrying out mathematical transformation on the simulated gravity data set and weighting to obtain a low-resolution migration density interface model data set; optimizing a migration model-based deep learning network and mapping to obtain a high-resolution constrained density interface prior model; and constructing a stable nonlinear loss function and performing regularization inversion to obtain a high-resolution density interface model.

Classes IPC  ?

  • G06F 30/27 - Optimisation, vérification ou simulation de l’objet conçu utilisant l’apprentissage automatique, p. ex. l’intelligence artificielle, les réseaux neuronaux, les machines à support de vecteur [MSV] ou l’apprentissage d’un modèle
  • G06F 111/04 - CAO basée sur les contraintes

65.

WASTE MERCURY RECOVERY DEVICE

      
Numéro d'application 17655009
Statut En instance
Date de dépôt 2022-03-16
Date de la première publication 2023-09-21
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Meng, Xianghao
  • Zeng, Yangdanjie
  • Wan, Youli
  • Tian, Jiang

Abrégé

A waste mercury recovery device including an infrared heater, used for heating mercury-containing waste; a waste mercury device, placed on the infrared heater, and used for holding the mercury-containing waste; a pure mercury recovery extractor, including a mercury vapor cooling part and a pure mercury storage part; a mercury vapor cooling part, communicated with the waste mercury device, and used for cooling mercury vapor; and a pure mercury storage part, communicated with the mercury vapor cooling part, and used for storing cooled and liquefied mercury.

Classes IPC  ?

  • C22B 43/00 - Obtention du mercure
  • C22B 7/00 - Mise en œuvre de matériaux autres que des minerais, p. ex. des rognures, pour produire des métaux non ferreux ou leurs composés

66.

Method, system, device and medium for landslide identification based on full polarimetric SAR

      
Numéro d'application 18102339
Numéro de brevet 11747498
Statut Délivré - en vigueur
Date de dépôt 2023-01-27
Date de la première publication 2023-09-05
Date d'octroi 2023-09-05
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Dai, Keren
  • Xu, Qiang
  • Liang, Rubing

Abrégé

A method, a system, a device and a medium for landslide identification based on full Polarimetry Synthetic Aperture Radar (full PoISAR) are provided. The method mainly includes: registering target full PoISAR data with target optical remote sensing data and target digital elevation model data to obtain a first registration result and a second registration result; determining a polarization feature, a decomposition feature, and a terrain feature of a target area according to registration results; determining a texture feature and a hue feature of the target area according to the target full PoISAR data; determining a spectrum feature of the target area according to the target optical remote sensing data; fusing abovementioned multi-dimensional features to obtain a target fusion feature; and inputting the target fusion feature into a landslide mass identification model for identifying a landslide mass, so as to determine a landslide area in the target area.

Classes IPC  ?

  • G01V 1/00 - SéismologieProspection ou détection sismique ou acoustique
  • G01S 13/90 - Radar ou systèmes analogues, spécialement adaptés pour des applications spécifiques pour la cartographie ou la représentation utilisant des techniques d'antenne synthétique
  • G06V 10/80 - Fusion, c.-à-d. combinaison des données de diverses sources au niveau du capteur, du prétraitement, de l’extraction des caractéristiques ou de la classification
  • G01S 7/41 - Détails des systèmes correspondant aux groupes , , de systèmes selon le groupe utilisant l'analyse du signal d'écho pour la caractérisation de la cibleSignature de cibleSurface équivalente de cible
  • G01S 13/86 - Combinaisons de systèmes radar avec des systèmes autres que radar, p. ex. sonar, chercheur de direction

67.

Groundwater circulation well system with pressure-adjustable hydrodynamic cavitation

      
Numéro d'application 18112588
Numéro de brevet 11912595
Statut Délivré - en vigueur
Date de dépôt 2023-02-22
Date de la première publication 2023-08-31
Date d'octroi 2024-02-27
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Pu, Shengyan
  • Ma, Hui
  • He, Yuming
  • Wang, Xiaoguang
  • Zeng, Guangyong
  • Chen, Yi
  • Yu, Dong
  • Ji, Wenwen

Abrégé

The present invention relates to a groundwater circulation well system with pressure-adjustable hydrodynamic cavitation, including a circulation well body, a sucked and injected water circulation assembly and a hydrodynamic cavitator. The sucked and injected water circulation assembly is based on a water suction and injection pump. The hydrodynamic cavitator is provided, inside a vortex chamber, with a vortex water inlet column capable of changing a water passing aperture. The hydrodynamic cavitator is capable of changing a bubbling pressure and a breaking pressure of hydrodynamic cavitation bubbles in the vortex water inlet column. The hydrodynamic cavitator generates vortices in the circulation well body to accelerate uniform mixing of a remediation agent and the groundwater. Energy from collapsing and bursting of the hydrodynamic cavitation bubbles activates the remediation agent such that contaminants in the groundwater are efficiently degraded.

Classes IPC  ?

  • C02F 1/72 - Traitement de l'eau, des eaux résiduaires ou des eaux d'égout par oxydation
  • C02F 1/34 - Traitement de l'eau, des eaux résiduaires ou des eaux d'égout au moyen d'oscillations mécaniques

68.

DIRECT WELL-TIE METHOD FOR DEPTH-DOMAIN LOGGING AND SEISMIC DATA

      
Numéro d'application 18164583
Statut En instance
Date de dépôt 2023-02-04
Date de la première publication 2023-08-17
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhang, Jie
  • Chen, Xuehua
  • Jiang, Wei
  • Lv, Bingnan
  • Liu, Junjie
  • Jiang, Xiaomin

Abrégé

A direct well-tie method for depth-domain logging and seismic data, including: removing null and outlier values from logging velocity data and logging density data to obtain valid logging velocity data and valid logging density data; calculating a logging reflection coefficient; estimating an initial zero-phase depth-domain seismic wavelet from seismic section; making a depth-domain synthetic seismogram; interpolating the depth-domain seismogram at the logging location; performing cross-correlating operation between the depth-domain synthetic seismogram and the interpolated depth-domain seismogram at the logging location; estimating a depth-domain seismic wavelet; updating the depth-domain synthetic seismogram; generating a corresponding depth deviation point set; subjecting elements in the set to interpolation to obtain a depth calibration curve; subjecting the depth calibration curve and depth axis to addition to obtain depth axis; generating a logging depth-seismic depth corresponding relationship and a depth-domain seismic wavelet.

Classes IPC  ?

  • G01V 1/50 - Analyse des données
  • G01V 1/28 - Traitement des données sismiques, p. ex. pour l’interprétation ou pour la détection d’événements

69.

STAGGERED ELECTRODE BIOELECTRO-FENTON CIRCULATING WELL SYSTEM AND ELECTRO-FENTON ASSEMBLY

      
Numéro d'application CN2022120157
Numéro de publication 2023/134211
Statut Délivré - en vigueur
Date de dépôt 2022-09-21
Date de publication 2023-07-20
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Pu, Shengyan
  • Zhang, Tao
  • Yu, Dong
  • Liu, Shibin
  • Wang, Peng
  • Chen, Jinsong
  • Li, Bowen
  • Wang, Xin
  • Chen, Yi
  • Ma, Hui
  • Tang, Qiang

Abrégé

The present invention relates to a staggered electrode bioelectro-Fenton circulating well system, at least comprising a circulating well, a water pumping and injecting assembly, and an in-well bioelectro-Fenton assembly. The water pumping and injecting system is used for pumping and injecting water between different screen sections of the circulating well. The bioelectro-Fenton assembly disposed in a first screen section (21) of the circulating well comprises at least one electrode, and a cathode (12) and an anode (11) of the electrode are spatially staggered according to a means of different distribution regions. In the present invention, by means of the staggered arrangement of a cathode and an anode in space, the impact of oxygen on an anaerobic environment of an anode chamber in an electrode is greatly reduced while ensuring that the cathode uses oxygen as an electron acceptor, and a constructed bioelectro-Fenton system can accelerate the degradation of organic pollutants in a circulating well.

Classes IPC  ?

  • C02F 3/00 - Traitement biologique de l'eau, des eaux résiduaires ou des eaux d'égout

70.

Pseudo-static test device and method for seismic behavior of connection joints of wallboard

      
Numéro d'application 18178252
Numéro de brevet 11714025
Statut Délivré - en vigueur
Date de dépôt 2023-03-03
Date de la première publication 2023-07-13
Date d'octroi 2023-08-01
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhao, Hua
  • Yuan, Weiguang
  • Gao, Yongtao
  • Zheng, Da

Abrégé

A pseudo-static test device and method for seismic behavior of connection joints of a wallboard. The device includes ground anchor holes, a support frame including a steel beam and two steel columns, and a test wallboard. A bottom plate of the steel beam is provided with at least two first connecting holes. A top plate each steel column is provided with a second connecting hole. A bottom plate of each steel column is provided with a third connecting hole. The bottom plate of the steel beam is provided with a connection joint assembly configured to hingedly or rigidly connect a top of the test wallboard to the steel beam. Each first connecting hole is connected to the second connecting hole through a flange assembly.

Classes IPC  ?

71.

FINITE ELEMENT-BASED ORE DEPOSIT DRILLING INFORMATION PROCESSING AND ANALYSIS METHOD AND DEVICE

      
Numéro d'application 18066605
Statut En instance
Date de dépôt 2022-12-15
Date de la première publication 2023-06-29
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zhong, Linglin
  • Zhong, Kanghui
  • Qin, Qin
  • Zhang, Hongjie
  • Yan, Zhao
  • Huang, Haozhen
  • Chang, Yupeng

Abrégé

A finite element-based ore deposit drilling information processing and analysis method and device are described herein. The information processing method includes: dividing finite elements based on related information of an exploration borehole, and constructing corresponding sectional finite element plans; and performing three-dimensional (3D) spatial co-position stacking on the sectional finite element plans, and constructing scanning analytic finite element profiles through spatial analysis. According to the method, geological borehole information can be visually analyzed and presented in a sectional and layered mode, and the method has excellent practical value and indicating significance for accurate delineation of prospecting target areas, accurate mining, dressing and smelting, and structural metallogenic research.

Classes IPC  ?

  • G01V 1/50 - Analyse des données
  • G01V 1/46 - Acquisition des données
  • G06F 30/23 - Optimisation, vérification ou simulation de l’objet conçu utilisant les méthodes des éléments finis [MEF] ou les méthodes à différences finies [MDF]

72.

Downhole explosion robot based on planetary roller screw telescoping and traction method thereof

      
Numéro d'application 17983826
Numéro de brevet 11668148
Statut Délivré - en vigueur
Date de dépôt 2022-11-09
Date de la première publication 2023-06-06
Date d'octroi 2023-06-06
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Dong, Xuelian
  • Zhu, Haiyan
  • Wang, Qiaozhu
  • Tang, Jingran
  • Liu, Qingyou
  • Wang, Xingming
  • Sun, Linfeng

Abrégé

The present invention relates to the technical field of development of underground resources such as petroleum, natural gas, geothermal energy, etc., in particular to a downhole explosion robot based on planetary roller screw telescoping and traction method thereof. The present invention provides a downhole explosion robot based on planetary roller screw telescoping and traction method thereof, comprising a rear joint, a rear main body, a telescopic sub, a front main body, and a front joint, and the rear main body is provided with a rear control sub and a rear support sub; the front main body is provided with a front support sub and a front control sub, and the telescopic sub is respectively connected with the rear support sub and the front support sub. The invention has the advantages of reliability and stability, with less impact on the tube string, and can be applicable to smaller wellbore.

Classes IPC  ?

  • E21B 23/00 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage
  • E21B 23/04 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage mis en œuvre à l'aide de moyens fluides, p. ex. actionnés par explosion
  • E21B 17/07 - Joints télescopiques permettant de faire varier les longueurs de trains de tigesAmortisseurs
  • E21B 43/263 - Procédés pour activer la production par formation de crevasses ou de fractures en utilisant des explosifs

73.

Early identification method for shallow soil landslide

      
Numéro d'application 18058794
Numéro de brevet 12025761
Statut Délivré - en vigueur
Date de dépôt 2022-11-25
Date de la première publication 2023-06-01
Date d'octroi 2024-07-02
Propriétaire
  • Chengdu University of Technology (Chine)
  • Guizhou Geological Environment Monitoring Insitute (Guizhou Institute of Environmental Geology) (Chine)
Inventeur(s)
  • Yu, Bin
  • Li, Yangchun
  • Deng, Weiwei
  • Yang, Lingwei
  • Chen, Wenhong

Abrégé

This is an early identification method for a shallow soil landslide, belonging to the technical field of landslide prevention and control engineering. The present invention accurately determines and identifies a shallow soil landslide in a quantitative manner, improving the early identification efficiency of a landslide and helping to improve the disaster prevention effect.

Classes IPC  ?

  • G01V 1/01 - Mesure ou prévision des tremblements de terre
  • G06F 16/29 - Bases de données d’informations géographiques

74.

Early warning method for shallow soil landslide based on digital topographic map and application thereof

      
Numéro d'application 18058853
Numéro de brevet 11978331
Statut Délivré - en vigueur
Date de dépôt 2022-11-25
Date de la première publication 2023-06-01
Date d'octroi 2024-05-07
Propriétaire
  • Chengdu University of Technology (Chine)
  • Guizhou Geological Environment Monitoring Institute (Guizhou Institute of Environmental Geology) (Chine)
Inventeur(s)
  • Yu, Bin
  • Li, Yangchun
  • Deng, Weiwei
  • Yang, Lingwei
  • Chen, Wenhong

Abrégé

This is an early warning method for a shallow soil landslide based on a digital topographic map, belonging to the field of landslide prevention and control engineering. It has following steps: a. connecting a straight line along an upward bulged intermediate point of a contour line of the topographic map as an intermediate line; b. determining an intermediate point; c. constituting a three-point group of a plane curvature; d. taking an arithmetic average of slopes as a slope α of a landslide mass. The shallow soil landslide can be early warned without a lot of historical observation data of landslide occurrence, and the dangerous landslide mass can be determined in advance, which greatly improves the applicability of disaster prevention and the early warning efficiency.

Classes IPC  ?

  • G08B 21/10 - Alarmes pour assurer la sécurité des personnes réagissant aux événements désastreux, p. ex. les tornades ou les tremblements de terre
  • G08B 31/00 - Systèmes d'alarme à prédiction caractérisés par une extrapolation ou un autre type de calcul utilisant des données historiques mises à jour

75.

EXPANSION SHELL YIELDING ANCHOR CABLE AND CONSTRUCTION METHOD THEREOF

      
Numéro d'application CN2022113897
Numéro de publication 2023/061044
Statut Délivré - en vigueur
Date de dépôt 2022-08-22
Date de publication 2023-04-20
Propriétaire
  • ERCHU CO., LTD.OF CHINA RAILWAY TUNNEL GROUP (Chine)
  • CHINA RAILWAY TUNNEL GROUP CO., LTD. (Chine)
  • CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
  • SICHUAN NORMAL UNIVERSITY (Chine)
Inventeur(s)
  • Qin, Zhengyang
  • Guo, Xinxin
  • Wei, Xiaobo
  • Yu, Jiawu
  • Zhang, Zhaojun
  • Tang, Shaowu
  • Wang, Rui
  • Long, Wenhua
  • Wang, Xuelei
  • Liang, Zhen
  • Zhang, Chengyong
  • Zhao, Baofeng
  • Lin, Lin
  • Zhou, Xitao
  • Hu, Guangyi
  • Gao, Bo
  • Chen, Jun
  • Yin, Xiaodong
  • Yang, Haijun
  • Yang, Tao
  • An, Bin
  • Feng, Qianjin
  • Wang, Baiquan
  • Chen, Wenchao
  • Chen, Zhiyong
  • Feng, Haoyu
  • Chen, Mingzhe

Abrégé

Disclosed are an expansion shell yielding anchor cable and a construction method thereof, which relate to the technical field of underground engineering. An expansion shell anchoring piece is fixed to the upper end of a variable cross-section yielding anchor cable, and an anchorage device is fixed to the lower end of the variable cross-section yielding anchor cable. A hollow metal pipe is arranged in the middle of the anchor cable. The outer part of the hollow metal pipe is enclosed by a high-strength conical pipe. The outside of the anchor cable is enclosed by a variable cross-section threaded sleeve via a binder. The present invention is primarily used for providing anchoring support to water-rich tunnels, in particular high-stress large-deformation water-rich underground projects. The variable cross-section yielding anchor cable, the expansion shell anchoring piece, the anchorage device and the backing plate realize an anchoring technology that integrates rapid anchoring, yielding support and grouting protection. The expanded expansion shell anchoring piece and the surrounding rock of a tunnel wall form a bite force that provides immediate support to the surrounding rock. The yielding function of the variable cross-section yielding anchor cable increases the deformation capability of the anchor cable. The hollow metal pipe built inside the variable cross-section yielding anchor cable realizes post-grouting protection.

Classes IPC  ?

  • E21D 21/00 - Boulons d'ancrage pour la protection du toit, de la sole ou du revêtement des puits
  • E21D 20/02 - Mise en place des boulons d'ancrage avec dispositions pour le scellement

76.

Method for calculating sensitivity of displacement of SAR along line-of-sight direction to slope gradient and slope aspect

      
Numéro d'application 17839929
Numéro de brevet 12025694
Statut Délivré - en vigueur
Date de dépôt 2022-06-14
Date de la première publication 2023-03-23
Date d'octroi 2024-07-02
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Shi, Xianlin
  • Dai, Keren
  • Deng, Jin

Abrégé

A method for calculating a sensitivity of a displacement of Synthetic Aperture Radar (SAR) along line-of-sight direction to a slope gradient and a slope aspect is provided, comprising: obtaining SAR data and Digital Elevation Model (DEM) data covering slope bodies, and extracting a local incident angle of an image by utilizing a satellite side-looking imaging principle; carrying out geometric distortion on the slope bodies under ascending and descending orbits by utilizing the local incident angle, to obtain specific locations of geometric distortion areas under ascending and descending orbit; calculating sensitivities of detections to changes of the slope gradient and the slope aspect under ascending and descending orbits according to the extracted parameter information of the SAR satellite in ascending and descending orbits and satellite heights, and dividing a sensitivity distribution by combining the sensitivity and the specific locations of the geometric distortion.

Classes IPC  ?

  • G01S 13/90 - Radar ou systèmes analogues, spécialement adaptés pour des applications spécifiques pour la cartographie ou la représentation utilisant des techniques d'antenne synthétique
  • G01C 5/00 - Mesure des hauteursMesure des distances transversales par rapport à la ligne de viséeNivellement entre des points séparésNiveaux à lunette
  • G01S 13/88 - Radar ou systèmes analogues, spécialement adaptés pour des applications spécifiques

77.

Method for Gas Detection Based on Multiple Quantum Neural Networks

      
Numéro d'application 17868148
Statut En instance
Date de dépôt 2022-07-19
Date de la première publication 2023-03-16
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Wang, Xingjian
  • Xue, Yajuan
  • Cao, Junxing
  • Liao, Wanping

Abrégé

The present disclosure relates to the field of geophysical processing methods for oil and gas exploration, and more particularly, to a method for gas detection using multiple quantum neural networks. A plurality of stratigraphic and structural seismic attributes are extracted from the seismic data of a target horizon, and input seismic characteristic parameters are divided into different classes by using an unsupervised learning and supervised learning combined quantum self-organizing feature map network. Gas detection is then performed using a particle swarm optimization based quantum gate node neural network with clustering results of various seismic characteristic parameters output by the quantum self-organizing feature map network as inputs. The present method uses the unsupervised learning and supervised learning combined quantum self-organizing feature map network for a plurality of stratigraphic and structural seismic attributes of the seismic data and thus has improved accuracy and uniqueness of clustering.

Classes IPC  ?

  • G01V 1/50 - Analyse des données
  • G06N 10/60 - Algorithmes quantiques, p. ex. fondés sur l'optimisation quantique ou les transformées quantiques de Fourier ou de Hadamard

78.

High land tourism safety risk warning method based on reinforcement learning

      
Numéro d'application 17835284
Numéro de brevet 11625803
Statut Délivré - en vigueur
Date de dépôt 2022-06-08
Date de la première publication 2023-03-09
Date d'octroi 2023-04-11
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Kan, Aike
  • Luo, Rui
  • Yang, Xiao
  • Wang, Yebin
  • Chen, Liang

Abrégé

The invention relates to the field of tourism risk prediction, and particularly to a high land tourism safety risk warning method based on reinforcement learning, comprising: step S1, storing a tourism data set in a historical time period of a tourist site in a database, and based on the database, initializing a tourism risk warning indication function Q and a risk target function T; step S2, based on a tourism risk assessment factor sequence and combined with the selected tourism data set in the historical time period, training the tourism risk warning indication function Q and the risk target function T; and step 3, combined with an input time parameter and the trained tourism risk warning indication function Q, obtaining a warning action under the time parameter, and obtaining a risk assessment rank of the tourist site.

Classes IPC  ?

  • G06Q 10/10 - BureautiqueGestion du temps
  • G06Q 40/08 - Assurance
  • G06Q 10/06 - Ressources, gestion de tâches, des ressources humaines ou de projetsPlanification d’entreprise ou d’organisationModélisation d’entreprise ou d’organisation
  • G06Q 30/02 - MarketingEstimation ou détermination des prixCollecte de fonds
  • G06Q 30/06 - Transactions d’achat, de vente ou de crédit-bail
  • G06Q 50/26 - Services gouvernementaux ou services publics
  • G06N 3/08 - Méthodes d'apprentissage
  • G06F 17/18 - Opérations mathématiques complexes pour l'évaluation de données statistiques
  • G06Q 50/14 - Agences de voyage

79.

Method of quantitative evaluation on structural disturbance characteristics of present in-situ geo-stress in deep shale gas reservoirs

      
Numéro d'application 17953496
Numéro de brevet 12360283
Statut Délivré - en vigueur
Date de dépôt 2022-09-27
Date de la première publication 2023-02-02
Date d'octroi 2025-07-15
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • He, Jianhua
  • Deng, Hucheng
  • Ma, Ruolong
  • Li, Kesai
  • Li, Yong

Abrégé

Disclosed is a method of quantitatively evaluating structural disturbance characteristics of present in-situ geo-stress in deep shale gas reservoirs, including: measuring geomechanics key parameters of key wells in different tectonic zones within a study area; performing interpretations of single-well profile rock mechanics and continuity of the in-situ geo-stress in magnitude and direction; establishing a geological model; performing anisotropic sequential Gaussian stochastic simulation to obtain three-dimensional (3D) heterogeneous rock mechanics parameter field distribution; performing prediction of distribution of geo-stress states in the study area, and calculating a stress structural index and stress disturbance factor of the target layer and a rotation degree of a maximum horizontal principal stress; and performing quantitative evaluation on an in-situ geo-stress structural disturbance and mapping.

Classes IPC  ?

  • G01V 20/00 - Géomodélisation en général
  • E21B 49/00 - Test pour déterminer la nature des parois des trous de forageEssais de couchesProcédés ou appareils pour prélever des échantillons du terrain ou de fluides en provenance des puits, spécialement adaptés au forage du sol ou aux puits

80.

Simulation platform and simulation method for leakage detection and treatment

      
Numéro d'application 17844217
Numéro de brevet 11566960
Statut Délivré - en vigueur
Date de dépôt 2022-06-20
Date de la première publication 2023-01-31
Date d'octroi 2023-01-31
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Wang, Xiangpeng
  • Wang, Kunpeng
  • Wang, Xuben
  • Hu, Jin
  • Tang, Qiangqiang
  • Chen, Ning
  • Li, Lingze

Abrégé

Disclosed are a simulation platform and a simulation method for leakage detection and treatment. The simulation platform includes a water tank open at the top, which is a holding device; simulation sand, which is laid at the bottom of the water tank, and the upper area of the simulation sand is the experimental water filling area for filling simulation water; a leakage simulation device, which is buried in the simulation sand; a plurality of electrodes, which are distributed on the simulation sand for collecting and sending potential and current signals to a data processing terminal; a hydraulic brake, which is arranged in the experimental water filling area and used for stirring the simulation water; the hydraulic brake is not turned on in the static water environment simulation, and is turned on in the dynamic water environment simulation.

Classes IPC  ?

  • G01M 3/16 - Examen de l'étanchéité des structures ou ouvrages vis-à-vis d'un fluide par utilisation d'un fluide ou en faisant le vide par détection de la présence du fluide à l'emplacement de la fuite en utilisant des moyens de détection électrique

81.

Nuclear detection simulation device based on nanosecond light source and nuclear signal inversion technology

      
Numéro d'application 17724852
Numéro de brevet 11754729
Statut Délivré - en vigueur
Date de dépôt 2022-04-20
Date de la première publication 2023-01-12
Date d'octroi 2023-09-12
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zeng, Guoqiang
  • Hu, Chuanhao
  • Li, Qing
  • Gu, Min
  • Yang, Xiaofeng
  • Hu, Shimin
  • Yang, Jian

Abrégé

The present disclosure provides a nuclear detection simulation device based on a nanosecond light source and a nuclear signal inversion technology. Electronic circuits and nuclear pulse current signals are used to drive blue LEDs to emit nuclear pulse optical signals, so as to simulate a scintillator to receive γ radiation to emit light, and can simulate point sources and area sources, organic scintillator detectors and inorganic scintillators, scintillation efficiency and detection efficiency, radioactive sources, fast components and slow components, multi-type nuclear pulse signals, a statistical fluctuation phenomenon of nuclear pulses, the electron pair effect, the Compton effect, the photoelectric effect, and self-radiation of the scintillator, generate single or piled-up pulse signals, corresponding energy spectrum curves, and an environmental background spectral line. 3D visualization configuration and a nuclear signal detection process can be subjected to animated demonstration.

Classes IPC  ?

  • G01T 1/20 - Mesure de l'intensité de radiation avec des détecteurs à scintillation

82.

Multi-parameter test and calibration system and method for spectrometer based on nanosecond light source

      
Numéro d'application 17724944
Numéro de brevet 12031865
Statut Délivré - en vigueur
Date de dépôt 2022-04-20
Date de la première publication 2023-01-12
Date d'octroi 2024-07-09
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Zeng, Guoqiang
  • Gu, Min
  • Li, Qing
  • Hu, Chuanhao
  • Yang, Xiaofeng
  • Hu, Shimin
  • Yang, Jian

Abrégé

The present disclosure provides a multi-parameter calibration system for a spectrometer based on a nanosecond light source, including a main channel for outputting nuclear pulse signals, and a coincidence channel for outputting the nuclear pulse signals. Each channel uses current nuclear pulse signals to drive a light-emitting diode (LED) to emit nuclear pulse optical signals, and a simulated scintillator is irradiated to emit nanosecond nuclear pulse optical signals. The present disclosure can respectively test and calibrate multiple parameter performance indexes of the spectrometer throughput baseline restoration spectrometer. The stability of the spectrometer is tested and calibrated through output of certain regular nuclear pulse signals.

Classes IPC  ?

  • G01J 3/28 - Étude du spectre
  • G01J 3/02 - SpectrométrieSpectrophotométrieMonochromateursMesure de la couleur Parties constitutives

83.

Automatically-cleanable thickening performance evaluation instrument for drilling lost circulation materials

      
Numéro d'application 17671607
Numéro de brevet 12000766
Statut Délivré - en vigueur
Date de dépôt 2022-02-15
Date de la première publication 2023-01-12
Date d'octroi 2024-06-04
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • She, Jiping
  • Zhang, Hao
  • Yang, Yang
  • Yang, Bin
  • Li, Yang
  • Ni, Jianjun
  • Zhang, Shiyu
  • Zhong, Ying

Abrégé

An automatically-cleanable thickening performance evaluation instrument for drilling LCMs includes a cleaning device, a kettle body, a thickening motor, a heating component, a test ending component, a top cover, and a bottom cover, where upper and lower ends of the kettle body are both opened; the kettle body is arranged in a third bearing inner race, a third bearing outer race is connected to a first limb, and the first limb is configured to limit a position of the kettle body; and the kettle body is detachably connected to the thickening motor and driven by the thickening motor to rotate. The instrument can realize electric heating and air pressurization to simulate the underground environment, and the kettle body can be completely sealed, such that a measured thickening time is close to an actual thickening time. Moreover, the instrument can be automatically cleaned at the end of a test.

Classes IPC  ?

  • G01N 11/00 - Recherche des propriétés d'écoulement des matériaux, p. ex. la viscosité, la plasticitéAnalyse des matériaux en déterminant les propriétés d'écoulement
  • B08B 9/08 - Nettoyage de récipients, p. ex. de réservoirs
  • G01N 11/14 - Recherche des propriétés d'écoulement des matériaux, p. ex. la viscosité, la plasticitéAnalyse des matériaux en déterminant les propriétés d'écoulement en déplaçant un corps à l'intérieur du matériau en utilisant des corps en rotation, p. ex. moulinet
  • E21B 21/00 - Procédés ou appareils pour nettoyer les trous de forage par jet de fluide, p. ex. en utilisant l'air d'échappement du moteur

84.

Method for proppant suspension and suspension parameter optimization based on bubble bridge effect

      
Numéro d'application 17844301
Numéro de brevet 11536125
Statut Délivré - en vigueur
Date de dépôt 2022-06-20
Date de la première publication 2022-12-27
Date d'octroi 2022-12-27
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Yang, Bin
  • Zhang, Hao
  • Guo, Yufan
  • Yang, Bo
  • Zhong, Yin
  • Yang, Yang
  • Ma, Wenjing
  • Li, Yue

Abrégé

The present invention discloses a method for proppant suspension and suspension parameter optimization based on bubble bridge effect, comprising: select a proppant and hydrophobically modify its surface to obtain a hydrophobically surface-modified proppant; prepare a bubbly fracturing base fluid; make the first optimization of the base fluids according to the average radius of the proppant and the average radius of the bubbles of the base fluids; optimally select the base fluids selected for the second time according to the interaction energy between the proppant particle and the bubble after the hydrophobically surface-modified proppant mixed with the base fluid; the basic parameters of the bubbly fracturing base fluid selected at the third time were used for the perfect selection for proppant suspension. The present invention establishes a procedure on experimental evaluation and parameter calculation optimization by suspending fracturing proppant with the bubble bridge effect on the hydrophobic surface.

Classes IPC  ?

  • E21B 43/267 - Maintien de fractures par étaiement
  • B01F 23/231 - Mélange de gaz avec des liquides en introduisant des gaz dans des milieux liquides, p. ex. pour produire des liquides aérés par barbotage
  • B01F 23/50 - Mélange de liquides avec des solides
  • E21B 43/26 - Procédés pour activer la production par formation de crevasses ou de fractures

85.

SPLIT-TYPE WORM AND TRANSMISSION MECHANISM THEREOF

      
Numéro d'application CN2022093580
Numéro de publication 2022/242685
Statut Délivré - en vigueur
Date de dépôt 2022-05-18
Date de publication 2022-11-24
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Liu, Qingyou
  • Deng, Xingqiao
  • Wang, Bo
  • Shen, Mingchuan

Abrégé

A split-type worm and a transmission mechanism thereof. The transmission mechanism at least comprises: a worm gear (100), which at least has a rotation axis and is capable of rotating about the axis, wherein a plurality of rolling grooves (130) are provided in a circumferential surface of the worm gear (100); a roller (200) is mounted in the rolling groove (130); a worm (300) can be divided into a first worm (320) and a second worm (330); and the rolling groove (130) limits the roller (200) in the following split and partial surrounding manner, that is, a hemispherical portion of the roller (200) facing the worm gear (100) protrudes out of the rolling groove (130), and a plane where the roller (200) and a first rolling groove edge (130a) and a second rolling groove edge (130b) of the rolling groove (130) are located is not orthogonal to a force line (F5) where the worm (300) applies a compression action force to the roller (200).

Classes IPC  ?

  • F16H 1/16 - Transmissions à engrenages pour transmettre un mouvement rotatif sans engrenages à mouvement orbital comportant uniquement deux organes engrenés dont les axes ne sont pas parallèles comportant une vis sans fin et une roue à vis sans fin
  • F16H 55/22 - Organes dentésVis sans fin pour transmissions à arbres se croisant, en particulier vis sans fin, engrenages à vis sans fin
  • F16H 57/04 - Caractéristiques relatives à la lubrification ou au refroidissement

86.

PLANAR DOUBLE-ENVELOPING TOROIDAL WORM GEAR SET AND MANUFACTURING METHOD THEREFOR

      
Numéro d'application CN2022093579
Numéro de publication 2022/242684
Statut Délivré - en vigueur
Date de dépôt 2022-05-18
Date de publication 2022-11-24
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Liu, Qingyou
  • Deng, Xingqiao
  • Wang, Fan
  • Fei, Chunxia

Abrégé

The present invention relates to a planar double-enveloping toroidal worm gear set and a manufacturing method therefor. The planar double-enveloping toroidal worm gear set at least comprises: a worm (100) and a gear (200) having rotation axes that are non-coplanar. The worm (100) at least comprises a left half-section worm (110) and a right half-section worm (120) that are coaxially sleeved. The worm (100) is manufactured by the following method: in a machining process, a worm first rotation direction (500) in which the left half-section worm (110) rotates about a worm rotation axis (140) is opposite to a worm second rotation direction (510) in which the right half-section worm (120) rotates around the worm rotation axis (140). Compared with common cylindrical worm drive, the toroidal worm drive can simultaneously contact more worm gear teeth to achieve multi-tooth contact and double-line contact. An included angle between a contact line and the relative sliding speed direction is close to 90°, so that a lubricating oil film is easily formed. The comprehensive curvature radius between meshed tooth surfaces is large, and the bearing capacity is stronger.

Classes IPC  ?

  • F16H 1/16 - Transmissions à engrenages pour transmettre un mouvement rotatif sans engrenages à mouvement orbital comportant uniquement deux organes engrenés dont les axes ne sont pas parallèles comportant une vis sans fin et une roue à vis sans fin
  • F16H 55/28 - Dispositifs particuliers de rattrapage de jeu entre les dentures
  • B23P 15/14 - Fabrication d'objets déterminés par des opérations non couvertes par une seule autre sous-classe ou un groupe de la présente sous-classe de pièces d'engrenage, p. ex. de pignons

87.

Method for identifying reef-shoal reservoir in faulted lacustrine basin based on “basement structure-paleogeomorphology-seismic facies” progressive constraint

      
Numéro d'application 17721531
Numéro de brevet 11656376
Statut Délivré - en vigueur
Date de dépôt 2022-04-15
Date de la première publication 2022-10-27
Date d'octroi 2023-05-23
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Wen, Huaguo
  • Luo, Xin
  • Peng, Cai
  • Li, Yun
  • Wei, Yan

Abrégé

A method for identifying a reef-shoal reservoir in a faulted lacustrine basin based on a basement structure-paleogeomorphology-seismic facies progressive constraint, including: analyzing a basement structure of a work area; establishing a paleogeomorphology classification standard according to thickness, reflection structure and stratigraphic dip; based on well-seismic calibration and forward modeling, establishing a seismic facies classification standard for reef-shoal facies belts under different paleo-geomorphic conditions, and quantitatively predicting and describing a reservoir in the reef-shoal facies belts using seismic facies-controlled inversion; and according to analysis results of basement structure characteristic, paleogeomorphology classification and seismic facies, establishing a method for predicting a favorable reservoir.

Classes IPC  ?

88.

Method for computing factor of safety of a slope

      
Numéro d'application 17334804
Numéro de brevet 11460603
Statut Délivré - en vigueur
Date de dépôt 2021-05-31
Date de la première publication 2022-10-04
Date d'octroi 2022-10-04
Propriétaire
  • Chengdu University of Technology (Chine)
  • Shanghai Dianji University (Chine)
  • State Grid Sichuan Electric Power Research Institute (Chine)
Inventeur(s)
  • Wang, Wei
  • Griffiths, Denwood Vaughan
  • Yang, Wangzhifu
  • Bu, Xianghang

Abrégé

c, and compute overturning moments of slid masses above and below external water level of the critical slip surface. Step 6: resolve an equivalent unit weight. Step 7: resolve the factor of safety FS.

Classes IPC  ?

  • G01V 99/00 - Matière non prévue dans les autres groupes de la présente sous-classe
  • G06F 30/23 - Optimisation, vérification ou simulation de l’objet conçu utilisant les méthodes des éléments finis [MEF] ou les méthodes à différences finies [MDF]

89.

Displacement measuring device and speed measuring method of drilling traction robot

      
Numéro d'application 17387956
Numéro de brevet 11781420
Statut Délivré - en vigueur
Date de dépôt 2021-07-28
Date de la première publication 2022-09-29
Date d'octroi 2023-10-10
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Zhao, Jianguo
  • Liu, Qingyou
  • Zhu, Haiyan
  • Wang, Guorong

Abrégé

The invention relates to a displacement measuring device and a velocity measuring method of a drilling traction robot. The measuring device comprises a support bar, a stopper, a hydraulic, a piston of the hydraulic, a displacement sensor, a seal baffle, a waveguide, a magnetic ring, and a magnetic ring support plate. The invention can realize instant measurement and instant feedback of the velocity of the drilling traction robot and can provide data reference for automatic drilling of the drilling traction robot.

Classes IPC  ?

  • G01D 5/14 - Moyens mécaniques pour le transfert de la grandeur de sortie d'un organe sensibleMoyens pour convertir la grandeur de sortie d'un organe sensible en une autre variable, lorsque la forme ou la nature de l'organe sensible n'imposent pas un moyen de conversion déterminéTransducteurs non spécialement adaptés à une variable particulière utilisant des moyens électriques ou magnétiques influençant la valeur d'un courant ou d'une tension
  • E21B 47/01 - Dispositifs pour supporter des instruments de mesure sur des trépans, des tubes, des tiges ou des câbles de forageProtection des instruments de mesure dans les trous de forage contre la chaleur, les chocs, la pression ou similaire
  • E21B 47/26 - Stockage des données en fond de puits, p. ex. dans une mémoire ou sur un support d'enregistrement
  • E21B 23/00 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage
  • E21B 47/06 - Mesure de la température ou de la pression
  • E21B 7/04 - Forage dirigé

90.

Method for monitoring large deformation of tunnel surrounding rock based on automatic target tracking and ranging system

      
Numéro d'application 17666297
Numéro de brevet 12259227
Statut Délivré - en vigueur
Date de dépôt 2022-02-07
Date de la première publication 2022-08-11
Date d'octroi 2025-03-25
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Meng, Lubo
  • Fan, Junqi
  • Sun, Guosong
  • Kong, Fuli
  • Li, Tianbin
  • Shi, Xiaoyan
  • Zhou, Wei
  • Liu, Enlai
  • Zhu, Xing

Abrégé

A method for monitoring large deformation of a surrounding rock of a tunnel based on an automatic targeting and ranging system includes: acquiring, by a camera module, a target monitoring image; identifying a center image position in the target monitoring image; performing, by a laser ranging module, an automatic targeting and ranging task according to the center image position; and calculating a deformation offset of each target of left wall targets, right wall targets and a vault target based on an automatic targeting and ranging result corresponding to the target. The method solves the problem that a laser ranging device fails to measure a target at a fixed angle and obtains a real and accurate deformation offset thereby greatly improving the reliability of the large deformation monitoring result of the surrounding rock of the tunnel.

Classes IPC  ?

  • G01C 3/08 - Utilisation de détecteurs électriques de radiations
  • E21F 17/00 - Procédés ou dispositifs destinés à être utilisés dans les mines ou tunnels, non couverts ailleurs
  • G01B 11/16 - Dispositions pour la mesure caractérisées par l'utilisation de techniques optiques pour mesurer la déformation dans un solide, p. ex. indicateur optique de déformation
  • G06T 7/73 - Détermination de la position ou de l'orientation des objets ou des caméras utilisant des procédés basés sur les caractéristiques
  • H04N 23/695 - Commande de la direction de la caméra pour modifier le champ de vision, p. ex. par un panoramique, une inclinaison ou en fonction du suivi des objets

91.

1,4-SULFOBRIDGED POLYCYCLIC COMPOUND CONTAINING DIHYDROBENZOFURAN STRUCTURE, AND PREPARATION METHOD AND USE THEREFOR

      
Numéro d'application CN2022081576
Numéro de publication 2022/167002
Statut Délivré - en vigueur
Date de dépôt 2022-03-18
Date de publication 2022-08-11
Propriétaire CHENGDU UNIVERSITY (Chine)
Inventeur(s)
  • Zhao, Jianqiang
  • Zhou, Shun
  • Yuan, Weicheng
  • You, Yong
  • Wang, Zhenhua

Abrégé

Disclosed is a 1,4-sulfobridged polycyclic compound containing a dihydrobenzofuran structure, belonging to the field of organic synthesis, and having a structure as shown in formula (I). Further disclosed is a preparation method therefor comprising: dissolving 2-nitrobenzofuran (II) and 5H-thiazolinone (III) in an organic solvent, then adding a molecular sieve and a chiral catalyst, stirring to react at room temperature under the protection of argon, and after the reaction is completed, separating and purifying to obtain a 1,4-sulfobridged polycyclic compound containing a dihydrobenzofuran structure. The multi-ring compound provided by the present invention has a dihydrobenzofuran and a 1,4-sulfobridged piperidinone substructure. Also disclosed is a use of the compound in the preparation of an anti-tumor drug, and the compound has good potential value in anti-tumor drug research. The preparation method of the present invention has the advantages of novelty, simplicity, convenient operation, mild reaction conditions, high yield, high stereoselectivity, etc.

Classes IPC  ?

92.

Dynamic damage evaluation instrument of drilling fluid based on glass core

      
Numéro d'application 17647599
Numéro de brevet 11650194
Statut Délivré - en vigueur
Date de dépôt 2022-01-11
Date de la première publication 2022-07-21
Date d'octroi 2023-05-16
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • She, Jiping
  • Zhang, Hao
  • Yang, Bin
  • Yang, Yang
  • Li, Yang
  • Ni, Jianjun
  • Teng, Gege
  • Zhong, Ying

Abrégé

A dynamic damage evaluation instrument of drilling fluid based on a glass core includes a controller and a support. A kettle body is provided on the support, a well for receiving drilling fluid is provided inside the kettle body, and a well cover is provided at an upper end of the kettle body. A core holding assembly communicating with the well is provided at a side of the kettle body, and a metering assembly is movably provided at the other end of the core holding assembly. A stirrer for stirring drilling fluid is provided inside the well, and a power component for driving the stirrer is provided outside the kettle body. A data detection hole for mounting a temperature and pressure sensor and a pressurization hole for mounting a pressurization device are formed on the well cover.

Classes IPC  ?

93.

OXINDOLE DERIVATIVE AND PHARMACEUTICAL USE THEREOF

      
Numéro d'application CN2020136898
Numéro de publication 2022/126441
Statut Délivré - en vigueur
Date de dépôt 2020-12-16
Date de publication 2022-06-23
Propriétaire CHENGDU UNIVERSITY (Chine)
Inventeur(s)
  • Zhao, Lifeng
  • Deng, Junfeng
  • Zhang, Lidan
  • Chu, Yiwen
  • Song, Xuejiao

Abrégé

Provided are an oxindole derivative and a pharmaceutical use thereof. The structure of the oxindole derivative is shown in formula (A). Experimental results show that the provided compound has significantly improved pharmacokinetic properties compared with BIBF1120, has an excellent inhibition effect on VEGFR, FGFR and PDGFR, can be used as an inhibitor of VEGFR, FGFR and/or PDGFR, as an angiogenesis inhibitor, and as a drug for preventing and/or treating various tumors including pharyngeal squamous cell carcinoma, and has wide application prospects.

Classes IPC  ?

  • C07D 209/34 - Atomes d'oxygène en position 2
  • A61K 31/496 - Pipérazines non condensées contenant d'autres hétérocycles, p. ex. rifampine, thiothixène ou sparfloxacine
  • A61P 35/04 - Agents anticancéreux spécifiques pour le traitement des métastases
  • A61P 35/00 - Agents anticancéreux

94.

Unmanned aerial vehicle (UAV)-based intelligent anomaly identification method for petroleum pipeline inspection

      
Numéro d'application 17453651
Numéro de brevet 11353162
Statut Délivré - en vigueur
Date de dépôt 2021-11-05
Date de la première publication 2022-06-07
Date d'octroi 2022-06-07
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Li, Qiong
  • Yue, Lin
  • Zhang, Yu
  • He, Jianjun

Abrégé

An unmanned aerial vehicle (UAV)-based intelligent anomaly identification method for petroleum pipeline inspection is provided. The precise UAV cruise technology is combined with a target detection algorithm to design an intelligent petroleum pipeline inspection method, which realizes fast anomaly detection for petroleum pipeline inspection based on the existing computer processing capability. In addition, a lot of optimization algorithms and improvements are made for target detection under special working conditions of UAV inspection, and a dedicated target detection network model adapted to these conditions is trained. The UAV-based intelligent anomaly identification method realizes accurate, real-time anomaly reporting for petroleum pipeline inspection, reduces the blindness of manual inspection, greatly improves inspection efficiency, reduces labor costs, and has practicability.

Classes IPC  ?

  • G01V 3/165 - Prospection ou détection électrique ou magnétiqueMesure des caractéristiques du champ magnétique de la terre, p. ex. de la déclinaison ou de la déviation spécialement adaptée à l'utilisation pendant le transport, p. ex. par une personne, un véhicule ou un bateau fonctionnant au moyen de champs magnétiques ou électriques produits ou modifiés par l'objet ou par le dispositif de détection
  • F17D 5/00 - Protection ou surveillance des installations
  • G06T 7/00 - Analyse d'image
  • H04N 7/18 - Systèmes de télévision en circuit fermé [CCTV], c.-à-d. systèmes dans lesquels le signal vidéo n'est pas diffusé
  • H04N 5/232 - Dispositifs pour la commande des caméras de télévision, p.ex. commande à distance
  • G06T 7/73 - Détermination de la position ou de l'orientation des objets ou des caméras utilisant des procédés basés sur les caractéristiques
  • G06T 7/60 - Analyse des attributs géométriques
  • G05D 1/10 - Commande de la position ou du cap dans les trois dimensions simultanément
  • B64C 39/02 - Aéronefs non prévus ailleurs caractérisés par un emploi spécial

95.

All-optical optical parametric oscillator

      
Numéro d'application 17319104
Numéro de brevet 11327386
Statut Délivré - en vigueur
Date de dépôt 2021-05-13
Date de la première publication 2022-05-10
Date d'octroi 2022-05-10
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Yin, Ming
  • Luo, Yongzhi
  • Lin, Xiyue

Abrégé

i of the OPO idler light.

Classes IPC  ?

  • G02F 1/39 - Optique non linéaire pour la génération ou l'amplification paramétrique de la lumière, des infrarouges ou des ultraviolets
  • G02F 1/35 - Optique non linéaire
  • G02F 1/37 - Optique non linéaire pour la génération de l'harmonique deux
  • G02F 1/355 - Optique non linéaire caractérisée par les matériaux utilisés

96.

System and method for pumping lubricant in gas pipeline

      
Numéro d'application 17372414
Numéro de brevet 12060973
Statut Délivré - en vigueur
Date de dépôt 2021-07-09
Date de la première publication 2022-01-13
Date d'octroi 2024-08-13
Propriétaire CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Zhao, Jianguo
  • Wang, Guorong
  • Liu, Qingyou
  • Han, Shuo
  • Dong, Run
  • Dai, Jiliang

Abrégé

A system for pumping lubricant in a gas transportation pipeline includes a pipeline robot and a control terminal system. The pipeline robot includes a lubricant position detection, module, a lubricant pumping module, an electro-hydraulic control system, a data acquisition and processing system, and a lubricant sucking port. The location at which the lubricant deposits can be detected online, and the lubricant staving in the gas transportation pipeline can be removed in real time. The system is highly automatic and efficient. Resistance against the natural as transportation is reduced effectively, the efficiency of transporting the natural gas is improved, and safety of transporting the natural gas is ensured.

Classes IPC  ?

  • F16N 31/00 - Dispositifs pour recueillir ou retenir le lubrifiant dans les machines ou appareils ou pour l'en évacuer
  • E21B 23/00 - Appareils pour déplacer, mettre en place, verrouiller, libérer ou retirer, les outils, les packers ou autres éléments dans les trous de forage
  • F16L 55/26 - Hérissons ou chariots, c.-à-d. dispositifs pouvant se déplacer dans un tuyau ou dans une conduite et portant ou non un moyen de propulsion autonome
  • F16L 101/00 - Utilisation ou application des hérissons ou des chariots
  • F16N 29/00 - Dispositifs particuliers dans les installations ou les systèmes de lubrification indiquant ou détectant des conditions indésirablesUtilisation des dispositifs sensibles à ces conditions dans les installations ou les systèmes de lubrification
  • F17D 5/00 - Protection ou surveillance des installations

97.

Method for splicing vector polygon regions with holes

      
Numéro d'application 17144525
Numéro de brevet 11205285
Statut Délivré - en vigueur
Date de dépôt 2021-01-08
Date de la première publication 2021-12-21
Date d'octroi 2021-12-21
Propriétaire
  • SICHUAN TIANYI ECOLOGICAL GARDEN GROUP CO. LTD (Chine)
  • CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
Inventeur(s)
  • Deng, Fei
  • Yu, Siling
  • Wang, Yufan
  • Huang, Yuanxiang
  • Wang, Lina

Abrégé

The present invention discloses a method for splicing vector polygon regions with holes, comprising the steps of: acquiring any two vector polygon regions A1 and A2 to be spliced, the outer frame P1 of A1 and the outer frame P2 of A2; judging whether P1 and P2 have overlapping parts; storing the connection relationship of the non-overlapping edges and the non-overlapping edges of P1 and P2 in a data table T; performing intersection on the overlapping edges of P1 and P2 and storing the overlapping edges in the data table T; traversing the data table T, finding the connection relationship of edges, and constructing the splicing of vector polygon regions. According to the scheme, the present invention has the advantages of wide application range, high splicing efficiency and the like, and has high practical value and popularization value in the technical field of vector graphics splicing.

Classes IPC  ?

  • G06T 11/20 - Traçage à partir d'éléments de base, p. ex. de lignes ou de cercles
  • G06T 5/50 - Amélioration ou restauration d'image utilisant plusieurs images, p. ex. moyenne ou soustraction
  • G06T 3/40 - Changement d'échelle d’images complètes ou de parties d’image, p. ex. agrandissement ou rétrécissement

98.

SEA CREATURE CLEANING ROBOT FOR INTAKE TUNNEL FOR NUCLEAR POWER PLANT

      
Numéro d'application CN2020083390
Numéro de publication 2021/189527
Statut Délivré - en vigueur
Date de dépôt 2020-04-04
Date de publication 2021-09-30
Propriétaire
  • CHENGDU UNIVERSITY OF INFORMATION TECHNOLOGY (Chine)
  • CHENGDU UNIVERSITY OF TECHNOLOGY (Chine)
  • SOUTHWEST JIAOTONG UNIVERSITY (Chine)
Inventeur(s)
  • Zhang, Gexiang
  • Yang, Qiang
  • Deng, Bin
  • Yao, Guangle
  • Zhang, Liang
  • Lei, Yue
  • Xu, Xin
  • Li, Zhiwei
  • Wang, Qi
  • Zhao, Jinyu
  • He, Dong
  • Wang, Cong
  • Liao, Jianyu
  • He, Peiheng
  • Zuo, Rong

Abrégé

A sea creature cleaning robot for an intake tunnel for a nuclear power plant. The robot consists of three parts, i.e., a frame (7), cutter assemblies (1), and walking wheel assemblies (2); the frame (7) is used for mounting and fixing cutter mounting seats and crawler wheels; the walking wheel assemblies (2) mounted on the frame (7) enable the entire device to normally walk in a tunnel; the cutter assemblies (1) control the height of cutters (108) by means of hydraulic cylinders to make the cutters contact the inner wall of the tunnel, and the hydraulic cylinders drive the saw-toothed cutters (108) to move back and forth to remove sea creatures attached to the inner wall of the tunnel; the cutter assemblies (1) are uniformly distributed on the frame (7), so as to ensure full coverage of the cleaning range of the cross section of the tunnel. The robot can clean sea creatures in tunnels in place of manual work, circular cutting technology is used, and the cleaning efficiency is significantly improved.

Classes IPC  ?

  • B08B 9/00 - Nettoyage d'objets creux par des procédés ou avec un appareillage spécialement adaptés à cet effet

99.

Pressure oscillation simulation device of deep coalbed methane and method thereof

      
Numéro d'application 17320242
Numéro de brevet 11120710
Statut Délivré - en vigueur
Date de dépôt 2021-05-14
Date de la première publication 2021-09-14
Date d'octroi 2021-09-14
Propriétaire
  • Southwest Petroleum University (Chine)
  • CHENGDU KANGPUSHEN PETROLEUM TECHNOLOGY DEVELOPMENT CO., LTD (Chine)
  • Chengdu University of Technology (Chine)
Inventeur(s)
  • Li, Xiangchen
  • Zhang, Fan
  • Yang, Shan
  • Lin, Yi
  • Chen, Yousheng

Abrégé

The invention relates to a pressure oscillation simulation device of deep coalbed methane and a method thereof. The device includes: a box, a liquid discharge pipe arranged on a bottom portion of the box, a gas source connected to the box through a gas injection pipe, a water source connected to the box through a drainpipe that includes a branch pipe; a measuring system including a pressure measuring member and a liquidometer. The present disclosure can simulate the coalbed pressure oscillation in a coalbed gas exploitation process and be of simple structure and high reliability, and can simulate influences of the pressure oscillation on a wellbore and a stratum environment in the coalbed exploitation process to provide reliable data support for an actual coalbed exploitation; the simulation method of the present disclosure can accurately simulate the pressure oscillation of the wellbore and the stratum.

Classes IPC  ?

  • G09B 25/02 - Modèles à usages non prévus dans , p. ex. dispositif en vraie grandeur pour la démonstration de procédés industrielsModèles à usages non prévus dans , p. ex. dispositif en vraie grandeur pour la démonstration de machines
  • G01F 23/296 - Ondes acoustiques
  • E21B 43/00 - Procédés ou dispositifs pour l'extraction de pétrole, de gaz, d'eau ou de matériaux solubles ou fusibles ou d'une suspension de matières minérales à partir de puits

100.

Anti-adhesion crushing tool for crushing damp ores

      
Numéro d'application 17130788
Numéro de brevet 11465153
Statut Délivré - en vigueur
Date de dépôt 2020-12-22
Date de la première publication 2021-07-22
Date d'octroi 2022-10-11
Propriétaire Chengdu University of Technology (Chine)
Inventeur(s)
  • Deng, Xingqiao
  • Du, Zhifei
  • Wang, Lun
  • Li, Chengfu

Abrégé

The present invention relates to an anti-adhesion crushing tool for crushing damp ores. The anti-adhesion crushing tool can effectively improve the current working environment in attapulgite crushing, and is beneficial to effectively improve the anti-adhesion properties of the attapulgite clay.

Classes IPC  ?

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