A net-like structure layer production device (1) includes: a pressure vessel (10) that houses, under predetermined pressure, a treatment solution (21) and a glass base material (22) immersed in the treatment solution (21); pressurization means for pressurizing the pressure vessel (10); and stirring means for stirring the treatment solution (21), and a net-like structure layer is produced on a surface of the glass base material (22) in the treatment solution (21) under an alkaline environment.
NATIONAL UNIVERSITY CORPORATION HOKKAIDO UNIVERSITY (Japon)
GOTOH EDUCATIONAL CORPORATION (Japon)
FOREST RESEARCH AND MANAGEMENT ORGANIZATION (Japon)
NATIONAL UNIVERSITY CORPORATION UNIVERSITY OF TOYAMA (Japon)
Inventeur(s)
Inatsu, Masaru
Onomura, Shiho
Nanko, Kazuki
Sakaguchi, Ryuta
Hamada, Atsushi
Abrégé
This manufacturing method is for manufacturing an observation device (110) for observing precipitation particles such as raindrops. The manufacturing method comprises: a step for preparing an antenna module (30) that transmits electromagnetic waves (E) and receives electromagnetic waves (E) reflected by a storage container (20) and electromagnetic waves (E) reflected by precipitation particles; a step for outputting information relating to a placement position for placing the antenna module (30) in the storage container (20) on the basis of the value of the dielectric constant of the wall (21) of the storage container (20), the value of the thickness of the wall (21), and a theoretical formula for converting a function indicating the relationship between the electromagnetic waves (E) transmitted from the antenna module (30) and the electromagnetic waves (E) reflected by the storage container (20) into a function having, as variables, the dielectric constant of the wall (21), the thickness of the wall (21), and the placement position; and a step for storing the antenna module (30) in the storage container (20) and placing the antenna module (30) at the placement position.
A gas engine (100) according to one aspect of the present disclosure comprises: a cylinder (11); a piston (12) that reciprocates inside the cylinder (11) and has a cavity (32) formed within a range including the center of a top surface; a fuel injector (18) that directly injects gas fuel toward the center of the top surface of the piston (12); and an ignition device (17) that ignites an air-fuel mixture of the gas fuel and air.
F02B 23/10 - Autres moteurs caractérisés par des chambres de combustion d'une forme ou d'une structure particulières pour améliorer le fonctionnement avec allumage commandé avec admission séparée de l'air et du combustible dans le cylindre
F02D 19/02 - Commande des moteurs caractérisés par l'emploi de combustible non liquide, de combustibles multiples ou de substances non combustibles ajoutées au mélange carburant particulière aux moteurs fonctionnant avec des combustibles gazeux
F02M 21/02 - Appareils pour alimenter les moteurs en combustibles non liquides, p. ex. en combustibles gazeux stockés sous forme liquide en combustibles gazeux
The net-like structure layer formation device (1) comprises a pressure vessel (10) that houses a treatment solution (21) and a glass base material (22) immersed in the treatment solution (21) under a predetermined pressure, a pressurizing means for pressurizing the pressure vessel (10), and a stirring means for stirring the treatment solution (21) and forms a net-like structure layer on the surface of the glass base material (22) in the treatment solution (21) in an alkaline environment.
The problem of the present invention is to provide a remover for gel nails which is excellent in terms of gel-nail removal and the property of moisturizing the nails and skin. This remover for gel nails comprises a compound represented by formula (1), a monohydric alcohol, a dihydric or higher, aliphatic alcohol, and an ester compound.
A thin film sensor includes an insulating layer provided on a surface of a measurement target, and a sensor layer that is laminated on the insulating layer, and includes a plurality of regions partitioned by a groove that is provided by irradiation of a laser and penetrates in a thickness direction. Among the plurality of regions, at least one region corresponds to a sensor region that senses a pressure applied to the measurement target or a temperature of the measurement target, and other regions each correspond to a non-sensor region that does not sense a pressure applied to the measurement target or a temperature of the measurement target.
Provided are: a sliding member having excellent conformability; a method for manufacturing a sliding member; and a sliding system. A sliding member 10 comprises polymer monolith 2 formed on a sliding side surface of a metal base material 1, the sliding side surface having a surface roughness Ra of 0.5 to 1000 μm with respect to a counterpart member.
B32B 5/18 - Produits stratifiés caractérisés par l'hétérogénéité ou la structure physique d'une des couches caractérisés par le fait qu'une des couches contient un matériau sous forme de mousse ou essentiellement poreux
B32B 27/38 - Produits stratifiés composés essentiellement de résine synthétique comprenant des résines époxy
F16C 33/12 - Composition structuraleEmploi de matériaux spécifiés ou de traitement particulier des surfaces, p. ex. contre la rouille
F16C 33/14 - Procédés particuliers de fabricationRodage
F16C 33/20 - Surface de glissement principalement constituée de matériaux plastiques
C08J 9/26 - Mise en œuvre de substances macromoléculaires pour produire des matériaux ou objets poreux ou alvéolairesLeur post-traitement par élimination d'une phase solide d'un objet ou d'une composition macromoléculaire, p. ex. par lessivage
C08J 5/16 - Fabrication de matériaux ou d'objets à coefficient de friction réduit
C23C 26/00 - Revêtements non prévus par les groupes
9.
MOVING BODY DATA PROCESSING DEVICE, AND COMPUTER PROGRAM
This invention has: a collection database for storing moving body position data indicating the positions of a plurality of moving bodies at different times; a mesh data storage unit for storing mesh data relating to a plurality of meshes formed by dividing the ground surface by a prescribed size; a mesh matching processing unit for matching the positions of a plurality of moving bodies at different times with one of the meshes, on the basis of the moving body position data and the mesh data; a mesh string conversion unit for performing, on the basis of the result of the mesh matching process, a conversion into one or more mesh strings indicating the travel trajectory of one or more moving bodies; and an image generation unit for generating a travel trajectory image based on the mesh string.
A method for evaluating insulation properties, the method being provided with: a step α for applying a DC voltage to a first insulator under prescribed application conditions, and measuring an integral value of a current flowing through the first insulator from the start of application of the DC voltage until a prescribed time has elapsed after the end of application of the DC voltage; a step β for applying a DC voltage to a second insulator under the same application conditions as in step α, and measuring an integral value of a current flowing through the second insulator from the start of application of the DC voltage until a prescribed time has elapsed after the end of application of the DC voltage; and a step γ for comparing a first graph showing the relationship between the elapsed time and the integral value obtained in step α and a second graph showing the relationship between the elapsed time and the integral value obtained in step β, and thereby evaluating the difference between the insulation properties of the first insulator and the insulation properties of the second insulator that accompany the application of the DC voltage.
G01R 31/12 - Test de la rigidité diélectrique ou de la tension disruptive
G01R 31/02 - Essai des appareils, des lignes ou des composants électriques pour y déceler la présence de courts-circuits, de discontinuités, de fuites ou de connexions incorrectes de lignes