Arendals Fossekompani ASA

Norway

Back to Profile

1-76 of 76 for Arendals Fossekompani ASA and 2 subsidiaries Sort by
Query
Aggregations
IP Type
        Patent 69
        Trademark 7
Jurisdiction
        United States 27
        World 24
        Canada 24
        Europe 1
Owner / Subsidiary
Tekna Plasma Systems Inc. 69
[Owner] Arendals Fossekompani ASA 4
EFD Induction a.s. 3
Date
2024 November 1
2024 4
2023 7
2022 3
2021 4
See more
IPC Class
B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge 12
H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid 12
B33Y 70/00 - Materials specially adapted for additive manufacturing 11
B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops 10
B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium 10
See more
NICE Class
37 - Construction and mining; installation and repair services 5
42 - Scientific, technological and industrial services, research and design 5
01 - Chemical and biological materials for industrial, scientific and agricultural use 3
06 - Common metals and ores; objects made of metal 3
09 - Scientific and electric apparatus and instruments 2
See more
Status
Pending 15
Registered / In Force 61

1.

Apparatus for Synthesizing Carbon Nanotubes

      
Application Number 18688960
Status Pending
Filing Date 2022-10-19
First Publication Date 2024-11-21
Owner
  • LG Chem, Ltd. (Republic of Korea)
  • Tekna Plasma Systems Inc. (Canada)
Inventor
  • Kim, Dong Sik
  • Guo, Jiayin
  • Kim, Tae Hoon
  • Lee, Hyung Jin
  • Min, Geun Gi
  • Song, Doo Hoon
  • Kang, Soo Hee
  • Kim, Ye Byeol
  • Kim, Byoung Jin
  • Lee, Sung Hyun

Abstract

An apparatus for producing carbon nanotubes includes a plasma apparatus and a CVD reactor which are connected in series is disclosed, and a nanoparticle catalyst in an aerosol state prepared in the plasma apparatus is transferred into the CVD reactor to synthesize carbon nanotubes, thereby continuously synthesizing the carbon nanotubes having excellent physical properties.

IPC Classes  ?

  • B01J 19/08 - Processes employing the direct application of electric or wave energy, or particle radiationApparatus therefor
  • C01B 32/159 - Carbon nanotubes single-walled
  • C01B 32/16 - Preparation

2.

Process And Apparatus For Producing Powder Particles By Atomization Of A Feed Material In The Form Of An Elongated Member

      
Application Number 18597297
Status Pending
Filing Date 2024-03-06
First Publication Date 2024-06-27
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • B33Y 70/00 - Materials specially adapted for additive manufacturing
  • H05H 1/38 - Guiding or centering of electrodes
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid

3.

PARTICULATE ANODE MATERIALS AND METHODS FOR THEIR PREPARATION BY INDUCTIVELY-COUPLED PLASMA

      
Application Number 18223212
Status Pending
Filing Date 2023-07-18
First Publication Date 2024-03-21
Owner
  • HYDRO-QUÉBEC (Canada)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Dolbec, Richard
  • Boulos, Maher
  • Leblanc, Dominic
  • Guerfi, Abdelbast
  • Zaghib, Karim

Abstract

There is provided a method of manufacturing nanoparticles comprising the steps of feeding a core precursor into a plasma torch in a plasma reactor, thereby producing a vapor of silicon or alloy thereof; and allowing the vapor to migrate to a quenching zone of the plasma reactor, thereby cooling the vapor and allowing condensation of the vapor into a nanoparticle core made of the silicon or alloy thereof, wherein the quenching gas comprises a passivating gas precursor that reacts with the surface of the core in the quenching zone produce a passivation layer covering the core, thereby producing said nanoparticles. The present invention also relates to nanoparticles comprising a core covered with a passivation layer, the core being made of silicon or an alloy thereof, as well as their use, in particular in the manufacture of anodes.

IPC Classes  ?

  • H01M 4/36 - Selection of substances as active materials, active masses, active liquids
  • B22F 1/054 - Nanosized particles
  • B22F 1/102 - Metallic powder coated with organic material
  • B22F 1/145 - Chemical treatment, e.g. passivation or decarburisation
  • B22F 1/16 - Metallic particles coated with a non-metal
  • B22F 9/04 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from solid material, e.g. by crushing, grinding or milling
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material
  • B22F 9/30 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using chemical processes with decomposition of metal compounds, e.g. by pyrolysis
  • B32B 5/30 - Layered products characterised by the non-homogeneity or physical structure of a layer characterised by the presence of two or more layers which comprise fibres, filaments, granules, or powder, or are foamed or specifically porous one layer comprising granules or powder

4.

NANOSIZE POWDER ADVANCED MATERIALS, METHOD OF MANUFACTURING AND OF USING SAME

      
Application Number 17767674
Status Pending
Filing Date 2020-10-09
First Publication Date 2024-02-15
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Guo, Jiayin
  • Cauchy, Xavier

Abstract

The present disclosure describes processes and apparatuses for manufacturing advanced nanosize powder materials that address at least some of the known issues of scalability, continuity, and quality inherent in prior art processes and apparatuses. Also described are nanosized powders with advantageous chemical and/or physical properties that can be used in various applications. The apparatus for producing nanoparticles, comprising a feeding mechanism for feeding a precursor material in fluid form toward a reaction zone along a feed path; a plasma device configured for generating a plasma jet in the reaction zone impinging upon the precursor material at a convergence point between streamlines of the plasma jet and the feed path to produce a reactant gaseous mixture, the plasma jet streamlines being at an angle with respect to the feed path, and a cooling zone receiving the reactant gaseous mixture to cause nucleation and produce the nanoparticles.

IPC Classes  ?

  • C01B 33/029 - Preparation by decomposition or reduction of gaseous or vaporised silicon compounds other than silica or silica-containing material by decomposition of monosilane
  • B01J 19/08 - Processes employing the direct application of electric or wave energy, or particle radiationApparatus therefor
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid

5.

Process and apparatus for producing powder particles by atomization of a feed material in the form of an elongated member

      
Application Number 17370939
Grant Number 11638958
Status In Force
Filing Date 2021-07-08
First Publication Date 2023-04-27
Grant Date 2023-05-02
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • H05H 1/38 - Guiding or centering of electrodes
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B33Y 70/00 - Materials specially adapted for additive manufacturing

6.

METHOD FOR SYNTHESIZING CARBON NANOTUBES

      
Document Number 03232423
Status Pending
Filing Date 2022-10-19
Open to Public Date 2023-04-27
Owner
  • LG CHEM, LTD. (Republic of Korea)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Kim, Dong Sik
  • Guo, Jiayin
  • Kim, Tae Hoon
  • Lee, Hyung Jin
  • Min, Geun Gi
  • Song, Doo Hoon
  • Kang, Soo Hee
  • Kim, Ye Byeol
  • Kim, Byoung Jin
  • Lee, Sung Hyun

Abstract

The present invention relates to a method for synthesizing carbon nanotubes by using a nanoparticle catalyst prepared by condensation after vaporization of catalytic raw material using plasma. When the manufacturing method of the present invention is used, the synthesized carbon nanotubes may have high crystallinity, and mass synthesis may be facilitated.

IPC Classes  ?

  • C01B 32/162 - Preparation characterised by catalysts
  • B01J 19/08 - Processes employing the direct application of electric or wave energy, or particle radiationApparatus therefor
  • B82Y 40/00 - Manufacture or treatment of nanostructures

7.

APPARATUS FOR SYNTHESIZING CARBON NANOTUBES

      
Document Number 03232446
Status Pending
Filing Date 2022-10-19
Open to Public Date 2023-04-27
Owner
  • LG CHEM, LTD. (Republic of Korea)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Kim, Dong Sik
  • Guo, Jiayin
  • Kim, Tae Hoon
  • Lee, Hyung Jin
  • Min, Geun Gi
  • Song, Doo Hoon
  • Kang, Soo Hee
  • Kim, Ye Byeol
  • Kim, Byoung Jin
  • Lee, Sung Hyun

Abstract

The present invention relates to a carbon nanotube manufacturing apparatus including a plasma device and a CVD reactor which are connected in series, in which a nanoparticle catalyst in an aerosol state prepared in the plasma device is transferred into the CVD reactor to synthesize carbon nanotubes, and thus carbon nanotubes having excellent physical properties can be continuously synthesized.

IPC Classes  ?

  • C01B 32/164 - Preparation involving continuous processes
  • C01B 32/162 - Preparation characterised by catalysts
  • B01J 13/00 - Colloid chemistry, e.g. the production of colloidal materials or their solutions, not otherwise provided forMaking microcapsules or microballoons
  • B01J 19/08 - Processes employing the direct application of electric or wave energy, or particle radiationApparatus therefor
  • B01J 19/24 - Stationary reactors without moving elements inside

8.

Process and apparatus for producing powder particles by atomization of a feed material in the form of an elongated member

      
Application Number 17956504
Grant Number 11951549
Status In Force
Filing Date 2022-09-29
First Publication Date 2023-03-30
Grant Date 2024-04-09
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure related to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • H05H 1/38 - Guiding or centering of electrodes
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • B33Y 70/00 - Materials specially adapted for additive manufacturing
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid

9.

RAILWAY-RAIL INDUCTION WELDING DEVICE, APPARATUS AND ASSOCIATED METHOD

      
Application Number GB2022052333
Publication Number 2023/041912
Status In Force
Filing Date 2022-09-15
Publication Date 2023-03-23
Owner
  • MIRAGE LTD (United Kingdom)
  • EFD INDUCTION AS (Norway)
Inventor
  • Rosvic, Bjorn
  • Kiste, Gunnar

Abstract

A railway-rail induction welding device (10) which comprises a copper tubular body (14) having a cooling-fluid inlet and a cooling-fluid outlet. The copper tubular body has a rail-facing rail-heating portion (18) and a cooling-fluid return portion (20). The rail-facing rail-heating portion (18) has a longitudinal extent which is non-linear and profiled to correspond or substantially correspond to one side of a railway rail to be treated. A lateral extent of the rail-facing rail-heating portion (18) is non-uniform along the said longitudinal extent.

IPC Classes  ?

  • B23K 13/01 - Welding by high-frequency current heating by induction heating
  • B23K 37/04 - Auxiliary devices or processes, not specially adapted for a procedure covered by only one of the other main groups of this subclass for holding or positioning work
  • E01B 29/46 - Devices for holding, positioning, or urging together the rail ends
  • B23K 101/26 - Railway- or like rails

10.

AMPWELL

      
Application Number 1718136
Status Registered
Filing Date 2023-02-02
Registration Date 2023-02-02
Owner ARENDALS FOSSEKOMPANI ASA (Norway)
NICE Classes  ?
  • 09 - Scientific and electric apparatus and instruments
  • 37 - Construction and mining; installation and repair services
  • 42 - Scientific, technological and industrial services, research and design

Goods & Services

Power supply devices and power supply apparatus, namely stationary and mobile energy charging modules and power storage devices; batteries; batteries, namely, anode batteries, lithium batteries, dry cell batteries, vaporizer batteries, lithium ion batteries, nickel cadmium batteries, solar batteries and secondary lithium batteries; chargers for electric accumulators; computer software for power supply, computer software for battery management and management of energy systems. Installation, maintenance and repair of batteries, power supply units and power storage units; charging batteries, power supply units and power storage units; replacement of batteries, power supply units and power storage units. Research, development and testing of batteries, power supply units and power storage units.

11.

AMPWELL

      
Serial Number 79364961
Status Registered
Filing Date 2023-02-02
Registration Date 2024-09-24
Owner ARENDALS FOSSEKOMPANI ASA (Norway)
NICE Classes  ?
  • 09 - Scientific and electric apparatus and instruments
  • 37 - Construction and mining; installation and repair services
  • 42 - Scientific, technological and industrial services, research and design

Goods & Services

Power supply devices and power supply apparatus, namely, stationary and mobile energy charging modules and power storage devices, namely, electrical storage batteries; batteries; batteries, namely, anode batteries, lithium batteries, dry cell batteries, vaporizer batteries, lithium ion batteries, nickel cadmium batteries, solar batteries and secondary lithium batteries; chargers for electric accumulators; downloadable computer software for power supply, downloadable computer software for battery management and management of energy systems Installation, maintenance and repair of batteries, power supply units and power storage units; charging batteries, power supply units and power storage units; replacement of batteries, power supply units and power storage units Research, development and testing of batteries, power supply units and power storage units

12.

BORON NITRIDE NANOTUBES AND PROCESSES FOR PRODUCING SAME

      
Application Number CA2021051752
Publication Number 2022/120472
Status In Force
Filing Date 2021-12-07
Publication Date 2022-06-16
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor Cauchy, Xavier

Abstract

The present disclosure relates to as-produced BNNTs having low impurity contents, a process and an apparatus for making same. The BNNTs have an average diameter of about 10 nm or less and having an impurity content of ≤ 20 wt.%, wherein the impurity content is measured after manufacture of the BNNTs and prior to a purification process. The process and apparatus are configured to provide a heated gas stream of boron species which is hydrogen-free, cooling the gas stream and incorporating a nitrogen-containing gas into the cooled gas stream under conditions to obtain the BNNTs. The process and apparatus thus afford manufacturing BNNTs whiles avoiding formation of hazardous boron hydrides.

IPC Classes  ?

  • C01B 21/064 - Binary compounds of nitrogen with metals, with silicon, or with boron with boron
  • B82Y 40/09 -

13.

BORON NITRIDE NANOTUBES AND PROCESSES FOR PRODUCING SAME

      
Document Number 03204686
Status Pending
Filing Date 2021-12-07
Open to Public Date 2022-06-16
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor Cauchy, Xavier

Abstract

The present disclosure relates to as-produced BNNTs having low impurity contents, a process and an apparatus for making same. The BNNTs have an average diameter of about 10 nm or less and having an impurity content of = 20 wt.%, wherein the impurity content is measured after manufacture of the BNNTs and prior to a purification process. The process and apparatus are configured to provide a heated gas stream of boron species which is hydrogen-free, cooling the gas stream and incorporating a nitrogen-containing gas into the cooled gas stream under conditions to obtain the BNNTs. The process and apparatus thus afford manufacturing BNNTs whiles avoiding formation of hazardous boron hydrides.

IPC Classes  ?

  • C01B 21/064 - Binary compounds of nitrogen with metals, with silicon, or with boron with boron

14.

Metallic powders for use as electrode material in multilayer ceramic capacitors and method of manufacturing and of using same

      
Application Number 17461174
Grant Number 12098444
Status In Force
Filing Date 2021-08-30
First Publication Date 2022-02-17
Grant Date 2024-09-24
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Guo, Jiayin
  • Bouchard, Eric
  • Dolbec, Richard

Abstract

The present disclosure generally relates to metallic powders for use in multilayer ceramic capacitors, to multilayer ceramic capacitors containing same and to methods of manufacturing such powders and capacitors. The disclosure addresses the problem of having better controlled smaller particle size distribution, with minimal contaminant contents which can be implemented at an industrial scale.

IPC Classes  ?

  • H01G 4/008 - Selection of materials
  • B22F 1/052 - Metallic powder characterised by the size or surface area of the particles characterised by a mixture of particles of different sizes or by the particle size distribution
  • B22F 1/054 - Nanosized particles
  • B22F 1/065 - Spherical particles
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material
  • C22C 1/04 - Making non-ferrous alloys by powder metallurgy
  • H01G 4/012 - Form of non-self-supporting electrodes
  • H01G 4/30 - Stacked capacitors

15.

Process and apparatus for producing powder particles by atomization of a feed material in the form of an elongated member

      
Application Number 17185490
Grant Number 11059099
Status In Force
Filing Date 2021-02-25
First Publication Date 2021-07-08
Grant Date 2021-07-13
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • H01H 1/42 - Knife-and-clip contacts
  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • H05H 1/38 - Guiding or centering of electrodes
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B33Y 70/00 - Materials specially adapted for additive manufacturing

16.

NANOSIZE POWDER ADVANCED MATERIALS, METHOD OF MANUFACTURING AND OF USING SAME

      
Document Number 03157524
Status Pending
Filing Date 2020-10-09
Open to Public Date 2021-04-15
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Cauchy, Xavier

Abstract

The present disclosure describes processes and apparatuses for manufacturing advanced nanosize powder materials that address at least some of the known issues of scalability, continuity, and quality inherent in prior art processes and apparatuses. Also described are nanosized powders with advantageous chemical and/or physical properties that can be used in various applications. The apparatus for producing nanoparticles, comprising a feeding mechanism for feeding a precursor material in fluid form toward a reaction zone along a feed path; a plasma device configured for generating a plasma jet in the reaction zone impinging upon the precursor material at a convergence point between streamlines of the plasma jet and the feed path to produce a reactant gaseous mixture, the plasma jet streamlines being at an angle with respect to the feed path, and a cooling zone receiving the reactant gaseous mixture to cause nucleation and produce the nanoparticles.

IPC Classes  ?

  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B82Y 30/00 - Nanotechnology for materials or surface science, e.g. nanocomposites
  • B82Y 40/00 - Manufacture or treatment of nanostructures

17.

NANOSIZE POWDER ADVANCED MATERIALS, METHOD OF MANUFACTURING AND OF USING SAME

      
Application Number CA2020051365
Publication Number 2021/068084
Status In Force
Filing Date 2020-10-09
Publication Date 2021-04-15
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Cauchy, Xavier

Abstract

The present disclosure describes processes and apparatuses for manufacturing advanced nanosize powder materials that address at least some of the known issues of scalability, continuity, and quality inherent in prior art processes and apparatuses. Also described are nanosized powders with advantageous chemical and/or physical properties that can be used in various applications. The apparatus for producing nanoparticles, comprising a feeding mechanism for feeding a precursor material in fluid form toward a reaction zone along a feed path; a plasma device configured for generating a plasma jet in the reaction zone impinging upon the precursor material at a convergence point between streamlines of the plasma jet and the feed path to produce a reactant gaseous mixture, the plasma jet streamlines being at an angle with respect to the feed path, and a cooling zone receiving the reactant gaseous mixture to cause nucleation and produce the nanoparticles.

IPC Classes  ?

  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B82Y 30/00 - Nanotechnology for materials or surface science, e.g. nanocomposites
  • B82Y 40/00 - Manufacture or treatment of nanostructures

18.

ALYTIC

      
Application Number 1582935
Status Registered
Filing Date 2020-12-14
Registration Date 2020-12-14
Owner ARENDALS FOSSEKOMPANI ASA (Norway)
NICE Classes  ? 36 - Financial, insurance and real estate services

Goods & Services

Investment and investment management services.

19.

ALYTIC

      
Serial Number 79307404
Status Registered
Filing Date 2020-12-14
Registration Date 2022-04-05
Owner ARENDALS FOSSEKOMPANI ASA (Norway)
NICE Classes  ? 36 - Financial, insurance and real estate services

Goods & Services

Investment management services; investment management, mainly related to data and competence-driven companies

20.

ADDITIVE MANUFACTURING POWDERS WITH IMPROVED PHYSICAL CHARACTERISTICS, METHOD OF MANUFACTURE AND USE THEREOF

      
Application Number CA2020050590
Publication Number 2020/220143
Status In Force
Filing Date 2020-05-01
Publication Date 2020-11-05
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Cauchy, Xavier
  • Rahma, Hakim

Abstract

In additive manufacturing operations, powders used in stereolithographic processes need to be precisely spread out in a uniform fashion at every pass of the stereolithographic process to ensure predictability in powder surface morphology. Typically, this is difficult to achieve with conventional powders because often these powders suffer from poor flowability, which may further deteriorate over time, and impairs the efficiency of the stereolithographic processes. The present disclosure describes additive manufacturing powders having improved physical characteristics such as flowability and tap density, which are less sensitive or insensitive to ambient humidity. For example, there is described a powder that includes spherical particles having a particle size distribution of less than 1000 micrometers and having a measurable flowability as determined in accordance with ASTM B213 at 75% relative humidity.

IPC Classes  ?

  • B22F 1/00 - Metallic powderTreatment of metallic powder, e.g. to facilitate working or to improve properties
  • B22F 1/02 - Special treatment of metallic powder, e.g. to facilitate working, to improve properties; Metallic powders per se, e.g. mixtures of particles of different composition comprising coating of the powder
  • B22F 3/10 - Sintering only
  • B29C 64/153 - Processes of additive manufacturing using only solid materials using layers of powder being selectively joined, e.g. by selective laser sintering or melting
  • B33Y 70/00 - Materials specially adapted for additive manufacturing
  • B33Y 70/10 - Composites of different types of material, e.g. mixtures of ceramics and polymers or mixtures of metals and biomaterials
  • C04B 35/00 - Shaped ceramic products characterised by their compositionCeramic compositionsProcessing powders of inorganic compounds preparatory to the manufacturing of ceramic products
  • C08L 25/06 - Polystyrene
  • C08L 77/00 - Compositions of polyamides obtained by reactions forming a carboxylic amide link in the main chainCompositions of derivatives of such polymers

21.

ADDITIVE MANUFACTURING POWDERS WITH IMPROVED PHYSICAL CHARACTERISTICS, METHOD OF MANUFACTURE AND USE THEREOF

      
Document Number 03138388
Status Pending
Filing Date 2020-05-01
Open to Public Date 2020-11-05
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Cauchy, Xavier
  • Rahma, Hakim

Abstract

In additive manufacturing operations, powders used in stereolithographic processes need to be precisely spread out in a uniform fashion at every pass of the stereolithographic process to ensure predictability in powder surface morphology. Typically, this is difficult to achieve with conventional powders because often these powders suffer from poor flowability, which may further deteriorate over time, and impairs the efficiency of the stereolithographic processes. The present disclosure describes additive manufacturing powders having improved physical characteristics such as flowability and tap density, which are less sensitive or insensitive to ambient humidity. For example, there is described a powder that includes spherical particles having a particle size distribution of less than 1000 micrometers and having a measurable flowability as determined in accordance with ASTM B213 at 75% relative humidity.

IPC Classes  ?

  • B22F 1/00 - Metallic powderTreatment of metallic powder, e.g. to facilitate working or to improve properties
  • B33Y 70/00 - Materials specially adapted for additive manufacturing
  • B29C 64/153 - Processes of additive manufacturing using only solid materials using layers of powder being selectively joined, e.g. by selective laser sintering or melting
  • B33Y 70/10 - Composites of different types of material, e.g. mixtures of ceramics and polymers or mixtures of metals and biomaterials
  • B22F 3/10 - Sintering only
  • C04B 35/00 - Shaped ceramic products characterised by their compositionCeramic compositionsProcessing powders of inorganic compounds preparatory to the manufacturing of ceramic products
  • C08L 25/06 - Polystyrene
  • C08L 77/00 - Compositions of polyamides obtained by reactions forming a carboxylic amide link in the main chainCompositions of derivatives of such polymers

22.

Metallic powders for use as electrode material in multilayer ceramic capacitors and method of manufacturing and of using same

      
Application Number 16472799
Grant Number 11127530
Status In Force
Filing Date 2019-01-30
First Publication Date 2020-10-22
Grant Date 2021-09-21
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Jiayin, Guo
  • Bouchard, Eric
  • Dolbec, Richard

Abstract

The present disclosure generally relates to metallic powders for use in multilayer ceramic capacitors, to multilayer ceramic capacitors containing same and to methods of manufacturing such powders and capacitors. The disclosure addresses the problem of having better controlled smaller particle size distribution, with minimal contaminant contents which can be implemented at an industrial scale.

IPC Classes  ?

  • B22F 1/00 - Metallic powderTreatment of metallic powder, e.g. to facilitate working or to improve properties
  • H01G 4/008 - Selection of materials
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material
  • H01G 4/012 - Form of non-self-supporting electrodes
  • H01G 4/30 - Stacked capacitors

23.

Process and apparatus for producing powder particles by atomization of a feed material in the form of an elongated member

      
Application Number 16891798
Grant Number 11565319
Status In Force
Filing Date 2020-06-03
First Publication Date 2020-09-24
Grant Date 2023-01-31
Owner TEKNA PLASMA SYSTEMS INC. (USA)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • H05H 1/38 - Guiding or centering of electrodes
  • B33Y 70/00 - Materials specially adapted for additive manufacturing

24.

Process and apparatus for producing powder particles by atomization of a feed material in the form of an elongated member

      
Application Number 16784667
Grant Number 11110515
Status In Force
Filing Date 2020-02-07
First Publication Date 2020-06-04
Grant Date 2021-09-07
Owner TEKNA PLASMA SYSTEMS INC. (USA)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • H05H 1/38 - Guiding or centering of electrodes
  • B33Y 70/00 - Materials specially adapted for additive manufacturing

25.

METHOD FOR PRODUCING BORON NITRIDE NANOMATERIAL, BORON NITRIDE NANOMATERIAL, METHOD FOR PRODUCING COMPOSITE MATERIAL, COMPOSITE MATERIAL, AND METHOD FOR PURIFYING BORON NITRIDE NANOMATERIAL

      
Application Number JP2019035695
Publication Number 2020/090240
Status In Force
Filing Date 2019-09-11
Publication Date 2020-05-07
Owner
  • HITACHI METALS, LTD. (Japan)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor Okai, Makoto

Abstract

[Problem] To provide a method for producing a boron nitride nanomaterial, the method making it possible to more reliably remove boron from a boron nitride composition that includes boron, the boron nitride composition being produced using, e.g., thermal plasma vapor deposition. [Solution] This method for producing a boron nitride nanomaterial comprises: a nanomaterial generation step for generating a boron nitride nanomaterial in which boron grains are encapsulated in boron nitride fullerene; an oxidation treatment step for forming boron oxide on at least the surface layer of the boron grains by exposing the boron nitride nanomaterial to an oxidizing environment; and a mechanical shock application step for applying mechanical shock to remove the boron grains in the boron nitride nanomaterial that has undergone the oxidation treatment step, the boron nitride nanomaterial being immersed in a solvent that dissolves boron oxide.

IPC Classes  ?

  • C01B 21/064 - Binary compounds of nitrogen with metals, with silicon, or with boron with boron
  • B82Y 30/00 - Nanotechnology for materials or surface science, e.g. nanocomposites
  • B82Y 40/00 - Manufacture or treatment of nanostructures
  • C08K 3/38 - Boron-containing compounds
  • C08L 101/00 - Compositions of unspecified macromolecular compounds

26.

MANUFACTURING METHOD OF BORON NITRIDE NANOMATERIAL AND BORON NITRIDE NANOMATERIAL, MANUFACTURING METHOD OF COMPOSITE MATERIAL AND COMPOSITE MATERIAL, AND METHOD OF PURIFYING BORON NITRIDE NANOMATERIAL

      
Document Number 03110834
Status In Force
Filing Date 2019-09-11
Open to Public Date 2020-05-07
Grant Date 2023-02-21
Owner
  • HITACHI METALS, LTD. (Japan)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor Okai, Makoto

Abstract

Provided is a method of manufacturing a boron nitride nanomaterial, in which boron can be removed more certainly from a boron nitride composition comprising boron that is manufactured using, for example, the thermal plasma vapor growth method. One aspect of the method of manufacturing a boron nitride nanomaterial comprises: a nanomaterial producing step of producing a boron nitride nanomaterial in which a boron grain(s) is included in a boron nitride fullerene; an oxidation treatment step of forming boron oxide on at least a surface layer of the boron grain(s) by exposing the boron nitride nanomaterial to an oxidizing environment; and a mechanical shock imparting step of applying a mechanical shock for removing the boron grain(s) from the boron nitride nanomaterial that has undergone the oxidation treatment step, while the boron nitride nanomaterial is immersed in a solvent that dissolves the boron oxide.

IPC Classes  ?

  • C01B 21/064 - Binary compounds of nitrogen with metals, with silicon, or with boron with boron
  • B82Y 30/00 - Nanotechnology for materials or surface science, e.g. nanocomposites
  • B82Y 40/00 - Manufacture or treatment of nanostructures
  • C08K 3/38 - Boron-containing compounds
  • C08L 101/00 - Compositions of unspecified macromolecular compounds

27.

BORON NITRIDE NANOTUBE MATERIAL, BORON NITRIDE NANOTUBE COMPOSITE MATERIAL, AND METHOD FOR PRODUCING BORON NITRIDE NANOTUBE MATERIAL

      
Application Number JP2019030442
Publication Number 2020/031883
Status In Force
Filing Date 2019-08-02
Publication Date 2020-02-13
Owner
  • HITACHI METALS, LTD. (Japan)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor Okai Makoto

Abstract

Provided are: a BNNT material in which BNNT is dispersed and bundling is minimized, and a BNNT composite material using the same; and a method for producing a BNNT material. This boron nitride nanotube material (10) is characterized by including boron nitride nanotubes (1), and boron nitride fullerene hollow particles (7), wherein the boron nitride fullerene hollow particles (7) are dispersed between the boron nitride nanotubes (1).

IPC Classes  ?

  • C01B 21/064 - Binary compounds of nitrogen with metals, with silicon, or with boron with boron
  • B82Y 30/00 - Nanotechnology for materials or surface science, e.g. nanocomposites
  • B82Y 40/00 - Manufacture or treatment of nanostructures
  • C08K 3/38 - Boron-containing compounds
  • C08K 7/04 - Fibres or whiskers inorganic
  • C08K 7/22 - Expanded, porous or hollow particles
  • C08L 27/12 - Compositions of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a halogenCompositions of derivatives of such polymers not modified by chemical after-treatment containing fluorine atoms
  • C08L 101/00 - Compositions of unspecified macromolecular compounds
  • C08L 101/04 - Compositions of unspecified macromolecular compounds characterised by the presence of specified groups containing halogen atoms
  • C22C 32/00 - Non-ferrous alloys containing at least 5% by weight but less than 50% by weight of oxides, carbides, borides, nitrides, silicides or other metal compounds, e.g. oxynitrides, sulfides, whether added as such or formed in situ
  • C22C 47/00 - Making alloys containing metallic or non-metallic fibres or filaments

28.

Nanoparticles comprising a core covered with a passivation layer, process for manufacture and uses thereof

      
Application Number 16490845
Grant Number 11749798
Status In Force
Filing Date 2018-03-02
First Publication Date 2019-12-19
Grant Date 2023-09-05
Owner
  • HYDRO-QUEBEC (Canada)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Dolbec, Richard
  • Boulos, Maher
  • Leblanc, Dominic
  • Guerfi, Abdelbast
  • Zaghib, Karim

Abstract

There is provided a method of manufacturing nanoparticles comprising the steps of feeding a core precursor into a plasma torch in a plasma reactor, thereby producing a vapor of silicon or alloy thereof; and allowing the vapor to migrate to a quenching zone of the plasma reactor, thereby cooling the vapor and allowing condensation of the vapor into a nanoparticle core made of the silicon or alloy thereof, wherein the quenching gas comprises a passivating gas precursor that reacts with the surface of the core in the quenching zone produce a passivation layer covering the core, thereby producing said nanoparticles. The present invention also relates to nanoparticles comprising a core covered with a passivation layer, the core being made of silicon or an alloy thereof, as well as their use, in particular in the manufacture of anodes.

IPC Classes  ?

  • B32B 5/30 - Layered products characterised by the non-homogeneity or physical structure of a layer characterised by the presence of two or more layers which comprise fibres, filaments, granules, or powder, or are foamed or specifically porous one layer comprising granules or powder
  • B22F 1/16 - Metallic particles coated with a non-metal
  • H01M 4/36 - Selection of substances as active materials, active masses, active liquids
  • B22F 9/04 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from solid material, e.g. by crushing, grinding or milling
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material
  • B22F 9/30 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using chemical processes with decomposition of metal compounds, e.g. by pyrolysis
  • B22F 1/054 - Nanosized particles
  • B22F 1/102 - Metallic powder coated with organic material
  • B22F 1/145 - Chemical treatment, e.g. passivation or decarburisation
  • B82Y 30/00 - Nanotechnology for materials or surface science, e.g. nanocomposites
  • B82Y 40/00 - Manufacture or treatment of nanostructures
  • H05H 1/30 - Plasma torches using applied electromagnetic fields, e.g. high-frequency or microwave energy

29.

TEKNA

      
Serial Number 88675753
Status Pending
Filing Date 2019-10-31
Owner Tekna Plasma Systems Inc. (Canada)
NICE Classes  ?
  • 01 - Chemical and biological materials for industrial, scientific and agricultural use
  • 06 - Common metals and ores; objects made of metal
  • 37 - Construction and mining; installation and repair services
  • 42 - Scientific, technological and industrial services, research and design

Goods & Services

Engineered spherical tungsten carbide, tungsten, tantalum, molybdenum, silicon, titanium, aluminum, nickel alloys and silica powders for use in industry and science; nano metallic powders and plasma powder spherodization for use in research and development, industry and science; Ceramic powders used in research and development, in manufacturing, in industry and science; plasma treated ceramic powders for use in research and development, in manufacturing, in industry and science; ceramic nano powders for use in research and development, in manufacturing, in industry and science Metallic engineered spherical powders for use in manufacturing, in industry and science; plasma treated metallic powders for use in manufacturing, in industry and science; metallic nanopowders for use in manufacturing, in industry and science Maintenance of atomization systems, electronic induction systems and electromagnetic systems for manufacturing engineered spherical tungsten carbide, tungsten, tantalum, molybdenum, silicon, titanium, aluminum, nickel alloys and silica powders for use in industry and science, metallic and ceramic engineered spherical powders for use in manufacturing, in industry and science, plasma treated metallic and ceramic powders for use in manufacturing, in industry and science, metallic and ceramic nanopowders for use in manufacturing, in industry and science and for manufacturing engineered nano metallic powders and plasma powder spherodization and structural parts therefor Product research and development in the fields of engineered spherical tungsten carbide, tungsten, tantalum, molybdenum, silicon, titanium, aluminum, nickel alloys and silica powders for use in industry and science, nano metallic powders and plasma powder spherodization, metallic and ceramic engineered spherical powders for use in manufacturing, in industry and science, plasma treated metallic and ceramic powders for use in manufacturing, in industry and science, metallic and ceramic nanopowders for use in manufacturing, in industry and science

30.

TEKNA

      
Application Number 018144200
Status Registered
Filing Date 2019-10-29
Registration Date 2020-05-22
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
NICE Classes  ?
  • 01 - Chemical and biological materials for industrial, scientific and agricultural use
  • 06 - Common metals and ores; objects made of metal
  • 37 - Construction and mining; installation and repair services
  • 42 - Scientific, technological and industrial services, research and design

Goods & Services

Engineered spherical tungsten carbide, silicon and silica powders for use in industry and science; spherical plasma powder; ceramic engineered spherical powders for use in manufacturing, in industry and science; plasma treated ceramic powders for use in manufacturing, in industry and science; ceramic nanopowders for use in manufacturing, in industry and science. Metallic engineered spherical powders for use in manufacturing, in industry and science; plasma treated metallic powders for use in manufacturing, in industry and science; metallic nanopowders for use in manufacturing, in industry and science; engineered spherical tungsten, tantalum, molybdenum, titanium, aluminum, Nickel alloys powders for use in industry and science; nano metallic powders. Maintenance of atomisation systems, electronic induction systems and electromagnetic systems for manufacturing engineered spherical tungsten carbide, tungsten, tantalum, molybdenum, silicon, titanium, aluminum, Nickel alloys and silica powders for use in industry and science; Maintenance of atomisation systems, electronic induction systems and electromagnetic systems for manufacturing metallic and ceramic engineered spherical powders for use in manufacturing, in industry and science, plasma treated metallic and ceramic powders for use in manufacturing, in industry and science, metallic and ceramic nanopowders for use in manufacturing, in industry and science and for manufacturing engineered nano metallic powders and plasma powder spherodization and structural parts therefor. Research and development in the fields of engineered spherical tungsten carbide, tungsten, tantalum, molybdenum, silicon, titanium, aluminum, Nickel alloys and silica powders for use in industry and science, nano metallic powders and plasma powder spherodization, metallic and ceramic engineered spherical powders for use in manufacturing, in industry and science, plasma treated metallic and ceramic powders for use in manufacturing, in industry and science; Research and development in the fields of engineered metallic and ceramic nanopowders for use in manufacturing, in industry and science.

31.

TEKNA

      
Application Number 198976700
Status Pending
Filing Date 2019-10-10
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
NICE Classes  ?
  • 01 - Chemical and biological materials for industrial, scientific and agricultural use
  • 06 - Common metals and ores; objects made of metal
  • 37 - Construction and mining; installation and repair services
  • 42 - Scientific, technological and industrial services, research and design

Goods & Services

(1) Engineered spherical tungsten carbide, tungsten, tantalum, molybdenum, silicon, titanium, aluminum, Nickel alloys and silica powders for use in industry and science; nano metallic powders and plasma powder spherodization. (2) Metallic and ceramic engineered spherical powders for use in manufacturing, in industry and science; plasma treated metallic and ceramic powders for use in manufacturing, in industry and science; metallic and ceramic nanopowders for use in manufacturing, in industry and science. (1) Maintenance of atomisation systems, electronic induction systems and electromagnetic systems for manufacturing engineered spherical tungsten carbide, tungsten, tantalum, molybdenum, silicon, titanium, aluminum, Nickel alloys and silica powders for use in industry and science, metallic and ceramic engineered spherical powders for use in manufacturing, in industry and science, plasma treated metallic and ceramic powders for use in manufacturing, in industry and science, metallic and ceramic nanopowders for use in manufacturing, in industry and science and for manufacturing engineered nano metallic powders and plasma powder spherodization and structural parts therefor. (2) Research and development in the fields of engineered spherical tungsten carbide, tungsten, tantalum, molybdenum, silicon, titanium, aluminum, Nickel alloys and silica powders for use in industry and science, nano metallic powders and plasma powder spherodization, metallic and ceramic engineered spherical powders for use in manufacturing, in industry and science, plasma treated metallic and ceramic powders for use in manufacturing, in industry and science, metallic and ceramic nanopowders for use in manufacturing, in industry and science.

32.

METALLIC POWDERS FOR USE AS ELECTRODE MATERIAL IN MULTILAYER CERAMIC CAPACITORS AND METHOD OF MANUFACTURING AND OF USING SAME

      
Application Number CA2019050115
Publication Number 2019/148277
Status In Force
Filing Date 2019-01-30
Publication Date 2019-08-08
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Bouchard, Eric
  • Dolbec, Richard

Abstract

The present disclosure generally relates to metallic powders for use in multilayer ceramic capacitors, to multilayer ceramic capacitors containing same and to methods of manufacturing such powders and capacitors. The disclosure addresses the problem of having better controlled smaller particle size distribution, with minimal contaminant contents which can be implemented at an industrial scale.

IPC Classes  ?

  • H01G 4/008 - Selection of materials
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material
  • H01G 4/30 - Stacked capacitors
  • H01G 4/12 - Ceramic dielectrics

33.

METALLIC POWDERS FOR USE AS ELECTRODE MATERIAL IN MULTILAYER CERAMIC CAPACITORS AND METHOD OF MANUFACTURING AND OF USING SAME

      
Document Number 03045573
Status In Force
Filing Date 2019-01-30
Open to Public Date 2019-07-30
Grant Date 2020-02-25
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Bouchard, Eric
  • Dolbec, Richard

Abstract

The present disclosure generally relates to metallic powders for use in multilayer ceramic capacitors, to multilayer ceramic capacitors containing same and to methods of manufacturing such powders and capacitors. The disclosure addresses the problem of having better controlled smaller particle size distribution, with minimal contaminant contents which can be implemented at an industrial scale.

IPC Classes  ?

  • H01G 4/008 - Selection of materials
  • B22F 9/04 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from solid material, e.g. by crushing, grinding or milling
  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying
  • C04B 41/88 - Metals
  • H01G 4/12 - Ceramic dielectrics

34.

METALLIC POWDERS FOR USE AS ELECTRODE MATERIAL IN MULTILAYER CERAMIC CAPACITORS AND METHOD OF MANUFACTURING AND OF USING SAME

      
Document Number 03065687
Status In Force
Filing Date 2019-01-30
Open to Public Date 2019-07-30
Grant Date 2021-03-02
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Bouchard, Eric
  • Dolbec, Richard

Abstract

The present disclosure generally relates to metallic powders for use in multilayer ceramic capacitors, to multilayer ceramic capacitors containing same and to methods of manufacturing such powders and capacitors. The disclosure addresses the problem of having better controlled smaller particle size distribution, with minimal contaminant contents which can be implemented at an industrial scale.

IPC Classes  ?

  • H01G 4/008 - Selection of materials
  • B22F 9/04 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from solid material, e.g. by crushing, grinding or milling
  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying
  • C04B 41/88 - Metals
  • H01G 4/12 - Ceramic dielectrics

35.

METALLIC POWDERS FOR USE AS ELECTRODE MATERIAL IN MULTILAYER CERAMIC CAPACITORS AND METHOD OF MANUFACTURING AND OF USING SAME

      
Document Number 03106174
Status Pending
Filing Date 2019-01-30
Open to Public Date 2019-07-30
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Bouchard, Eric
  • Dolbec, Richard

Abstract

(12) INTERNATIONAL APPLICATION PUBLISHED UNDER THE PATENT COOPERATION TREATY (PCT) (19) World Intellectual Property 111111 1011E1 11E110111 11111 11111 11010111010 11111 1101 0 Ill 1 101111E1110 1111E1111 Organization International Bureau (10) International Publication Number (43) International Publication Date WO 2019/148277 Al 08 August 2019 (08.08.2019) WIPO I PC T (51) International Patent Classification: MG, MK, MN, MW, MX, MY, MZ, NA, NG, NI, NO, NZ, H0IG 4/008 (2006.01) HO1G 4/30 (2006.01) OM, PA, PE, PG, PH, PL, PT, QA, RO, RS, RU, RW, SA, B22F 9/12 (2006.01) HO1G 4/12 (2006.01) SC, SD, SE, SG. SK, SL, SM, ST, SV, SY, TH, TJ, TM, TN, TR, TT, TZ, UA, UG, US, UZ, VC, VN, ZA, ZM, ZW. (21) International Application Number: PCT/CA2019/050115 (84) Designated States (unless otherwise indicated .1?)r every kind of regional protection available): ARIPO (BW, GIL (22) International Filing Date: GM, KE, LR, LS, MW, MZ, NA, RW, SD, SL, ST, SZ, TZ, 30 January 2019 (30.01.2019) UG, ZM, ZW), Eurasian (AM, AZ, BY, KG, KZ, RU, TJ, (25) Filing Language: English TM), European (AL, AT, BE, BG, CH, CY, CZ, DE, DK, EE, ES, FL FR GB, GR, HR HU, IE, IS, IT, LT, LU, LV, (26) Publication Language: English MC, MK, MT, NL, NO, PL, PT, RO, RS, SE, SI, SK, SM, (30) Priority Data: TR), OAPI (BF, BJ, CF, CG, CI, CM, GA, GN, GQ, GW, 62/623.708 30 January 2018 (30.01.2018) US KM, ML, MR, NE, SN, TD, TG). (71) Applicant: TEKNA PLASMA SYSTEMS INC. Published: [CA/CA]; 2935 Boul. Industriel, Sherbrooke, Québec J1L ¨ with internati 2T9 (CA). onal search report (Art. 21(3)) ¨ in black and white; the international application as filed (72) Inventors: GUO, Jiayin; 2638 me Alfred-Desrochers, contained color or greyscale and is available for download Sherbooke, Québec J1K 0A3 (CA). BOUCHARD, Eric; from INTENTSCOPE 2213-3535, Avenue Papirteau, Montreal, Québec 1-12K 4J9 (CA). DOLBEC, Richard; 27, rue de L'Ancre, Varennes, Québec J3X 2A6 (CA). = (74) Agent: SMART & BIGGAR; 1000 De La Gauchetiere Street West, Suite 3300, Montreal, Québec H3B 4W5 (CA). (81) Designated States (unless otherwise indicated for every kind of national protection available): AE, AG, AL, AM, AO, AT, AU, AZ, BA, BB, BG, BH, BN, BR, BW, BY, BZ, CA, CH, CL, CN, CO, CR, CU, CZ, DE, DJ, DK, DM, DO, DZ, EC, EE, EG, ES, FI, GB, GD, GE, GH, GM, GT, HN, HR, HU, ID, IL, IN, fR, IS, JO, JP, KE, KG, KH, KN, KP, KR, KW, KZ, LA, LC, LK, LR, LS, LU, LY, MA, MD, ME, = (54) Title: METALLIC POWDERS FOR USE AS ELECTRODE MATERIAL IN MULTELAYER CERAMIC CAPACITORS AND __ METHOD OF MANUFACTURING AND OF USING SAME Evaporating metal with doping agent 22 Cooling vapors to recombine metal and doping agent 24 cc 71. FIG. 1 = (57) Abstract: The present disclosure generally relates to metallic powders for use in multilayer ceramic capacitors, to multilayer = ceramic capacitors containing same and to methods of manufacturing such powders and capacitors. The disclosure addresses the problem esi of haying better controlled smaller particle size distribution, with minimal contaminant contents which cart be implemented at an V industrial scale. Date Recue/Date Received 2021-02-11

IPC Classes  ?

  • H01G 4/008 - Selection of materials
  • B22F 1/052 - Metallic powder characterised by the size or surface area of the particles characterised by a mixture of particles of different sizes or by the particle size distribution
  • B22F 1/054 - Nanosized particles
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material

36.

NANOPARTICLES COMPRISING A CORE COVERED WITH A PASSIVATION LAYER, PROCESS FOR MANUFACTURE AND USES THEREOF

      
Document Number 03054854
Status Pending
Filing Date 2018-03-02
Open to Public Date 2018-09-07
Owner
  • HYDRO-QUEBEC (Canada)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Dolbec, Richard
  • Boulos, Maher
  • Leblanc, Dominic
  • Guerfi, Abdelbast
  • Zaghib, Karim

Abstract

There is provided a method of manufacturing nanoparticles comprising the steps of feeding a core precursor into a plasma torch in a plasma reactor, thereby producing a vapor of silicon or alloy thereof; and allowing the vapor to migrate to a quenching zone of the plasma reactor, thereby cooling the vapor and allowing condensation of the vapor into a nanoparticle core made of the silicon or alloy thereof, wherein the quenching gas comprises a passivating gas precursor that reacts with the surface of the core in the quenching zone produce a passivation layer covering the core, thereby producing said nanoparticles. The present invention also relates to nanoparticles comprising a core covered with a passivation layer, the core being made of silicon or an alloy thereof, as well as their use, in particular in the manufacture of anodes.

IPC Classes  ?

  • B22F 1/145 - Chemical treatment, e.g. passivation or decarburisation
  • B22F 1/054 - Nanosized particles
  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • H01M 4/04 - Processes of manufacture in general

37.

NANOPARTICLES COMPRISING A CORE COVERED WITH A PASSIVATION LAYER, PROCESS FOR MANUFACTURE AND USES THEREOF

      
Application Number CA2018050247
Publication Number 2018/157256
Status In Force
Filing Date 2018-03-02
Publication Date 2018-09-07
Owner
  • HYDRO-QUÉBEC (Canada)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Guo, Jiayin
  • Dolbec, Richard
  • Boulos, Maher
  • Leblanc, Dominic
  • Guerfi, Abdelbast
  • Zaghib, Karim

Abstract

There is provided a method of manufacturing nanoparticles comprising the steps of feeding a core precursor into a plasma torch in a plasma reactor, thereby producing a vapor of silicon or alloy thereof; and allowing the vapor to migrate to a quenching zone of the plasma reactor, thereby cooling the vapor and allowing condensation of the vapor into a nanoparticle core made of the silicon or alloy thereof, wherein the quenching gas comprises a passivating gas precursor that reacts with the surface of the core in the quenching zone produce a passivation layer covering the core, thereby producing said nanoparticles. The present invention also relates to nanoparticles comprising a core covered with a passivation layer, the core being made of silicon or an alloy thereof, as well as their use, in particular in the manufacture of anodes.

IPC Classes  ?

  • B22F 1/02 - Special treatment of metallic powder, e.g. to facilitate working, to improve properties; Metallic powders per se, e.g. mixtures of particles of different composition comprising coating of the powder
  • B22F 9/16 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using chemical processes
  • H01M 4/04 - Processes of manufacture in general

38.

Process and apparatus for producing powder particles by atomization of a feed material in the form of an elongated member

      
Application Number 15666655
Grant Number 10688564
Status In Force
Filing Date 2017-08-02
First Publication Date 2017-11-16
Grant Date 2020-06-23
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • H01H 1/42 - Knife-and-clip contacts
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • H05H 1/38 - Guiding or centering of electrodes
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B33Y 70/00 - Materials specially adapted for additive manufacturing

39.

Process and apparatus for producing powder particles by atomization of a feed material in the form of an elongated member

      
Application Number 15394417
Grant Number 09751129
Status In Force
Filing Date 2016-12-29
First Publication Date 2017-04-20
Grant Date 2017-09-05
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Auger, Alexandre
  • Jurewicz, Jerzy W.

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • B33Y 70/00 - Materials specially adapted for additive manufacturing

40.

INDUCTION PLASMA TORCH WITH HIGHER PLASMA ENERGY DENSITY

      
Application Number CA2016050754
Publication Number 2017/000065
Status In Force
Filing Date 2016-06-27
Publication Date 2017-01-05
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Dignard, Nicolas
  • Auger, Alexandre
  • Thellend, Sébastien

Abstract

An induction plasma torch comprises a tubular torch body, a tubular insert, a plasma confinement tube and an annular channel. The tubular torch body has upstream and downstream sections defining respective inner surfaces. The tubular insert is mounted to the inner surface of the downstream section of the tubular torch body. The plasma confinement tube is disposed in the tubular torch body, coaxial therewith. The plasma confinement tube has a tubular wall having a thickness tapering off in an axial direction of plasma flow. The annular channel is defined between, on one hand, the inner surface of the upstream section of the tubular torch body and an inner surface of the insert and, on the other hand, an outer surface of the tubular wall of the plasma confinement tube. The cooling channel carries a fluid for cooling the plasma confinement tube.

IPC Classes  ?

41.

INDUCTION PLASMA TORCH WITH HIGHER PLASMA ENERGY DENSITY

      
Document Number 02988198
Status Pending
Filing Date 2016-06-27
Open to Public Date 2017-01-05
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Dignard, Nicolas
  • Auger, Alexandre
  • Thellend, Sebastien

Abstract

An induction plasma torch comprises a tubular torch body, a tubular insert, a plasma confinement tube and an annular channel. The tubular torch body has upstream and downstream sections defining respective inner surfaces. The tubular insert is mounted to the inner surface of the downstream section of the tubular torch body. The plasma confinement tube is disposed in the tubular torch body, coaxial therewith. The plasma confinement tube has a tubular wall having a thickness tapering off in an axial direction of plasma flow. The annular channel is defined between, on one hand, the inner surface of the upstream section of the tubular torch body and an inner surface of the insert and, on the other hand, an outer surface of the tubular wall of the plasma confinement tube. The cooling channel carries a fluid for cooling the plasma confinement tube.

IPC Classes  ?

42.

Induction plasma torch with higher plasma energy density

      
Application Number 15194815
Grant Number 10028368
Status In Force
Filing Date 2016-06-28
First Publication Date 2016-12-29
Grant Date 2018-07-17
Owner Tekna Plasma Systems, Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Dignard, Nicolas
  • Auger, Alexandre
  • Thellend, Sébastien

Abstract

An induction plasma torch comprises a tubular torch body, a tubular insert, a plasma confinement tube and an annular channel. The tubular torch body has upstream and downstream sections defining respective inner surfaces. The tubular insert is mounted to the inner surface of the downstream section of the tubular torch body. The plasma confinement tube is disposed in the tubular torch body, coaxial therewith. The plasma confinement tube has a tubular wall having a thickness tapering off in an axial direction of plasma flow. The annular channel is defined between, on one hand, the inner surface of the upstream section of the tubular torch body and an inner surface of the insert and, on the other hand, an outer surface of the tubular wall of the plasma confinement tube. The cooling channel carries a fluid for cooling the plasma confinement tube.

IPC Classes  ?

  • H05H 1/28 - Cooling arrangements
  • H05H 1/30 - Plasma torches using applied electromagnetic fields, e.g. high-frequency or microwave energy

43.

High performance induction plasma torch

      
Application Number 15178068
Grant Number 10893600
Status In Force
Filing Date 2016-06-09
First Publication Date 2016-11-03
Grant Date 2021-01-12
Owner TEKNA PLASMA SYSTEMS INC. (USA)
Inventor
  • Boulos, Maher I.
  • Dignard, Nicolas
  • Auger, Alexandre
  • Jurewicz, Jerzy
  • Thellend, Sebastien

Abstract

An induction plasma torch comprises a tubular torch body, a plasma confinement tube disposed in the tubular torch body coaxial therewith, a gas distributor head disposed at one end of the plasma confinement tube and structured to supply at least one gaseous substance into the plasma confinement tube; an inductive coupling member embedded within the tubular torch body for applying energy to the gaseous substance to produce and sustain plasma in the plasma confinement tube, and an electrically conductive capacitive shield on an inner surface of the tubular torch body. The capacitive shield is segmented into axial strips interconnected at one end. Axial grooves are machined in the inner surface of the tubular torch body, the axial grooves being interposed between the axial strips.

IPC Classes  ?

  • H05H 1/30 - Plasma torches using applied electromagnetic fields, e.g. high-frequency or microwave energy
  • H05H 1/28 - Cooling arrangements
  • H05H 1/26 - Plasma torches

44.

Process and apparatus for producing powder particles by atomization of a feed material in the form of an elongated member

      
Application Number 15040168
Grant Number 09718131
Status In Force
Filing Date 2016-02-10
First Publication Date 2016-06-23
Grant Date 2017-08-01
Owner TEKNA PLASMA SYSTEMS, INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops
  • H05H 1/38 - Guiding or centering of electrodes

45.

PROCESS AND APPARATUS FOR PRODUCING POWDER PARTICLES BY ATOMIZATION OF A FEED MATERIAL IN THE FORM OF AN ELONGATED MEMBER

      
Document Number 03047663
Status In Force
Filing Date 2015-03-09
Open to Public Date 2015-09-17
Grant Date 2020-01-14
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in and pre-heated by a pre-heating device which can be a plasma torch. A forward portion of the feed material is fed through a cooled elongated structure from the pre-heating device into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets can be an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium
  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying

46.

PROCESS AND APPARATUS FOR PRODUCING POWDER PARTICLES BY ATOMIZATION OF A FEED MATERIAL IN THE FORM OF AN ELONGATED MEMBER

      
Document Number 03065675
Status In Force
Filing Date 2015-03-09
Open to Public Date 2015-09-17
Grant Date 2021-10-12
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Auger, Alexandre
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium

47.

PROCESS AND APPARATUS FOR PRODUCING POWDER PARTICLES BY ATOMIZATION OF A FEED MATERIAL IN THE FORM OF AN ELONGATED MEMBER

      
Document Number 03089670
Status In Force
Filing Date 2015-03-09
Open to Public Date 2015-09-17
Grant Date 2021-06-22
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Auger, Alexandre
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge
  • B33Y 70/00 - Materials specially adapted for additive manufacturing
  • B29C 64/141 - Processes of additive manufacturing using only solid materials
  • B29C 64/30 - Auxiliary operations or equipment
  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium
  • C04B 35/626 - Preparing or treating the powders individually or as batches
  • C08J 3/12 - Powdering or granulating

48.

PROCESS AND APPARATUS FOR PRODUCING POWDER PARTICLES BY ATOMIZATION OF A FEED MATERIAL IN THE FORM OF AN ELONGATED MEMBER

      
Application Number CA2015050174
Publication Number 2015/135075
Status In Force
Filing Date 2015-03-09
Publication Date 2015-09-17
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B01J 2/02 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops

49.

PROCESS AND APPARATUS FOR PRODUCING POWDER PARTICLES BY ATOMIZATION OF A FEED MATERIAL IN THE FORM OF AN ELONGATED MEMBER

      
Document Number 03030794
Status In Force
Filing Date 2015-03-09
Open to Public Date 2015-09-17
Grant Date 2020-06-02
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Auger, Alexandre
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a solid wire material, which is provided in the form of a roll of solid wire material. The apparatus includes a feeding mechanism configured to progressively uncoil the roll of the solid wire material and linearly feed the uncoiled solid wire material toward an atomization zone. The apparatus includes a channel, where the feeding mechanism is configured to continuously feed the solid wire material into the atomization zone through the channel along a feed path. The channel is sized to match a transverse dimension of the solid wire material so that the channel becomes substantially closed for creating a gas-tight seal while allowing the solid wire material to linearly advance therethrough. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying
  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium
  • B28B 1/54 - Producing shaped articles from the material specially adapted for producing articles from molten material, e.g. slag

50.

PROCESS AND APPARATUS FOR PRODUCING POWDER PARTICLES BY ATOMIZATION OF A FEED MATERIAL IN THE FORM OF AN ELONGATED MEMBER

      
Document Number 03039695
Status In Force
Filing Date 2015-03-09
Open to Public Date 2015-09-17
Grant Date 2019-10-29
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in and pre-heated by a pre-heating device which can be a plasma torch. A forward portion of the feed material is moved in a channel from the pre- heating device into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying
  • B28B 1/54 - Producing shaped articles from the material specially adapted for producing articles from molten material, e.g. slag

51.

PROCESS AND APPARATUS FOR PRODUCING POWDER PARTICLES BY ATOMIZATION OF A FEED MATERIAL IN THE FORM OF AN ELONGATED MEMBER

      
Document Number 03118414
Status Pending
Filing Date 2015-03-09
Open to Public Date 2015-09-17
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy W.
  • Auger, Alexandre

Abstract

The present disclosure relates to a process and an apparatus for producing powder particles by atomization of a feed material in the form of an elongated member such as a wire, a rod or a filled tube. The feed material is introduced in a plasma torch. A forward portion of the feed material is moved from the plasma torch into an atomization nozzle of the plasma torch. A forward end of the feed material is surface melted by exposure to one or more plasma jets formed in the atomization nozzle. The one or more plasma jets being includes an annular plasma jet, a plurality of converging plasma jets, or a combination of an annular plasma jet with a plurality of converging plasma jets. Powder particles obtained using the process and apparatus are also described.

IPC Classes  ?

  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium

52.

POWDER FLOW MONITOR AND METHOD FOR IN-FLIGHT MEASUREMENT OF A FLOW OF POWDER

      
Application Number CA2014050501
Publication Number 2014/190437
Status In Force
Filing Date 2014-05-29
Publication Date 2014-12-04
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Stanowski, Radoslaw
  • Boulos, Maher

Abstract

The present disclosure relates a powder flow monitor having a powder transport tube, a sensor of a flow of powder in the powder transport tube, and an oscillator configured to impart a cleaning vibration to the powder transport tube. A method of in-flight monitoring of a flow of powder using the powder flow monitor, and uses thereof, are also provided.

IPC Classes  ?

  • G01F 15/12 - Cleaning arrangementsFilters
  • B65G 53/66 - Use of indicator or control devices, e.g. for controlling gas pressure, for controlling proportions of material and gas, for indicating or preventing jamming of material
  • G01F 1/74 - Devices for measuring flow of a fluid or flow of a fluent solid material in suspension in another fluid
  • G01N 15/06 - Investigating concentration of particle suspensions

53.

High performance induction plasma torch

      
Application Number 13498736
Grant Number 09380693
Status In Force
Filing Date 2012-02-02
First Publication Date 2012-10-18
Grant Date 2016-06-28
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Dignard, Nicolas
  • Auger, Alexandre
  • Jurewicz, Jerzy
  • Thellend, Sébastien

Abstract

A plasma confinement tube for use in an induction plasma torch is disclosed. The plasma confinement tube defines a geometrical axis and an outer surface. The plasma confinement tube includes a capacitive shield comprising a film of conductive material applied to the outer surface of the plasma confinement tube and segmented into axial strips. The axial strips are interconnected at one end. Axial grooves are machined in the outer surface of the plasma confinement tube, and interposed between the axial strips. The conductive film may have a thickness smaller than a skin-depth calculated for a frequency of operation of the induction plasma torch and an electrical conductivity of the conductive material of the film.

IPC Classes  ?

  • H05H 1/30 - Plasma torches using applied electromagnetic fields, e.g. high-frequency or microwave energy
  • H05H 1/28 - Cooling arrangements

54.

HIGH PERFORMANCE INDUCTION PLASMA TORCH

      
Application Number CA2012000094
Publication Number 2012/103639
Status In Force
Filing Date 2012-02-02
Publication Date 2012-08-09
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher, I.
  • Dignard, Nicolas
  • Auger, Alexandre
  • Jurewicz, Jerzy
  • Thellend, Sébastien

Abstract

An induction plasma torch comprises a tubular torch body, a plasma confinement tube disposed in the tubular torch body coaxial therewith, a gas distributor head disposed at one end of the plasma confinement tube and structured to supply at least one gaseous substance into the plasma confinement tube; an inductive coupling member for applying energy to the gaseous substance to produce and sustain plasma in the plasma confinement tube, and a capacitive shield including a film of conductive material applied to the outer surface of the plasma confinement tube or the inner surface of the tubular torch body. The film of conductive material is segmented into axial strips interconnected at one end. The film of conductive material has a thickness smaller than a skin-depth calculated for a frequency of a current supplied to the inductive coupling member and an electrical conductivity of the conductive material of the film. Aaxial grooves can be machined in the outer surface of the plasma confinement tube or the inner surface of the tubular torch body, the axial grooves being interposed between the axial strips.

IPC Classes  ?

  • H05H 1/30 - Plasma torches using applied electromagnetic fields, e.g. high-frequency or microwave energy
  • H05H 1/28 - Cooling arrangements

55.

HIGH PERFORMANCE INDUCTION PLASMA TORCH

      
Document Number 02826474
Status In Force
Filing Date 2012-02-02
Open to Public Date 2012-08-09
Grant Date 2020-06-09
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher
  • Dignard, Nicolas
  • Auger, Alexandre
  • Thellend, Sebastien
  • Jurewicz, Jerzy

Abstract

An induction plasma torch comprises a tubular torch body, a plasma confinement tube disposed in the tubular torch body coaxial therewith, a gas distributor head disposed at one end of the plasma confinement tube and structured to supply at least one gaseous substance into the plasma confinement tube; an inductive coupling member for applying energy to the gaseous substance to produce and sustain plasma in the plasma confinement tube, and a capacitive shield including a film of conductive material applied to the outer surface of the plasma confinement tube or the inner surface of the tubular torch body. The film of conductive material is segmented into axial strips interconnected at one end. The film of conductive material has a thickness smaller than a skin-depth calculated for a frequency of a current supplied to the inductive coupling member and an electrical conductivity of the conductive material of the film. Aaxial grooves can be machined in the outer surface of the plasma confinement tube or the inner surface of the tubular torch body, the axial grooves being interposed between the axial strips.

IPC Classes  ?

  • H05H 1/30 - Plasma torches using applied electromagnetic fields, e.g. high-frequency or microwave energy
  • H05H 1/28 - Cooling arrangements

56.

Plasma reactor for the synthesis of nanopowders and materials processing

      
Application Number 13259760
Grant Number 09516734
Status In Force
Filing Date 2010-03-24
First Publication Date 2012-08-09
Grant Date 2016-12-06
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy
  • Guo, Jiayin

Abstract

A plasma reactor comprises a torch body comprising a plasma torch for generating plasma, a reactor section in fluid communication with the torch body for receiving the plasma from the plasma torch, and a quench section in fluid communication with the reactor section. The quench section comprises an inner wall defining a quench chamber, the inner wall has a serrated configuration, and the quench chamber has an upstream end adjacent the reactor section and an opposite downstream end. The plasma reactor also comprises at least one heating element in thermal communication with the reactor section, wherein the at least one heating element provides for selectively modulating a temperature within the reactor section.

IPC Classes  ?

  • H05H 1/00 - Generating plasmaHandling plasma
  • H05H 1/30 - Plasma torches using applied electromagnetic fields, e.g. high-frequency or microwave energy
  • B01J 19/08 - Processes employing the direct application of electric or wave energy, or particle radiationApparatus therefor
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • H05H 1/44 - Plasma torches using an arc using more than one torch

57.

TITANIUM METAL PRODUCTION APPARATUS AND PRODUCTION METHOD FOR TITANIUM METAL

      
Application Number JP2011076422
Publication Number 2012/070452
Status In Force
Filing Date 2011-11-16
Publication Date 2012-05-31
Owner
  • HITACHI METALS, LTD. (Japan)
  • TEKNA Plasma Systems Inc. (Canada)
Inventor
  • Han Gang
  • Shoji Tatsuya
  • Uesaka Shujiroh
  • Fukumaru Mariko
  • Boulos Maher I.
  • Guo Jiayin
  • Jurewicz Jerzy

Abstract

A titanium metal production apparatus is provided with (a) a first flow channel that supplies magnesium in a state of gas, (b) a second flow channel that supplies titanium tetrachloride in a state of gas, (c) a gas mixing section in which the magnesium and titanium tetrachloride in a state of gas are mixed and the temperature is controlled to be 1600°C or more, (d) a titanium metal deposition section in which particles for deposition are arranged so as to be movable, the temperature is in the range of 715 to 1500°C, and the absolute pressure is 50 kPa to 500 kPa, and (e) a mixed gas discharge section which is in communication with the titanium metal deposition section.

IPC Classes  ?

  • C22B 34/12 - Obtaining titanium
  • C22B 5/04 - Dry processes by aluminium, other metals, or silicon
  • F27D 11/06 - Induction heating, i.e. in which the material being heated, or its container or elements embodied therein, form the secondary of a transformer

58.

DEVICE FOR PRODUCING TITANIUM METAL, AND METHOD FOR PRODUCING TITANIUM METAL

      
Application Number JP2011076506
Publication Number 2012/070461
Status In Force
Filing Date 2011-11-17
Publication Date 2012-05-31
Owner
  • HITACHI METALS, LTD. (Japan)
  • TEKNA Plasma Systems Inc. (Canada)
Inventor
  • Boulos Maher I.
  • Guo Jiayin
  • Jurewicz Jerzy
  • Han Gang
  • Uesaka Shujiroh
  • Shoji Tatsuya

Abstract

A device for producing titanium metal comprises (a) a first heating unit that heats and gasifies magnesium and a first channel that feeds the gaseous magnesium, (b) a second heating unit that heats and gasifies titanium tetrachloride so as to have a temperature of at least 1600ºC and a second channel that feeds the gaseous titanium tetrachloride, (c) a venturi section at which the second channel communicates with an entrance channel, the first channel merges into a throat and as a result the magnesium and the titanium tetrachloride combine in the throat and a mixed gas is formed in the exit channel, and in which the temperature of the throat and the exit channel is regulated to be at least 1600ºC, (d) a titanium metal deposition unit that communicates with the exit channel and has a substrate for deposition with a temperature in the range of 715-1500ºC, and (e) a mixed gas discharge channel that communicates with the titanium metal deposition unit.

IPC Classes  ?

  • C22B 34/12 - Obtaining titanium
  • C22B 5/04 - Dry processes by aluminium, other metals, or silicon
  • F27D 11/06 - Induction heating, i.e. in which the material being heated, or its container or elements embodied therein, form the secondary of a transformer

59.

METAL TITANIUM PRODUCTION DEVICE AND METAL TITANIUM PRODUCTION METHOD

      
Application Number JP2011055184
Publication Number 2011/125402
Status In Force
Filing Date 2011-03-07
Publication Date 2011-10-13
Owner
  • HITACHI METALS, LTD. (Japan)
  • TEKNA Plasma Systems Inc. (Canada)
Inventor
  • Han Gang
  • Shoji Tatsuya
  • Uesaka Shujiroh
  • Fukumaru Mariko
  • Boulos Maher I.
  • Guo Jiayin
  • Jurewicz Jerzy

Abstract

A metal titanium production device comprising: (a) a magnesium evaporation unit in which solid magnesium is evaporated and a first flow path which is communicated with the evaporation unit and through which gaseous magnesium is supplied; (b) a second flow path through which gaseous titanium tetrachloride is supplied; (c) a gas mixing unit which is communicated with the first flow path and the second flow path and in which the gaseous magnesium is mixed with titanium tetrachloride, the absolute pressure is adjusted to 50 to 500 kPa and the temperature is adjusted to 1600˚C or higher; (d) a metal titanium precipitation unit which is communicated with the gas mixing unit and in which a precipitation substrate having at least partially a temperature of 715 to 1500˚C is placed and the absolute pressure is adjusted to 50 to 500 kPa; and (e) a mixed gas discharge unit which is communicated with the metal titanium precipitation unit.

IPC Classes  ?

  • C22B 34/12 - Obtaining titanium
  • C22B 5/04 - Dry processes by aluminium, other metals, or silicon

60.

PROCESS FOR PRODUCTION OF METAL BALL

      
Application Number JP2010069310
Publication Number 2011/125250
Status In Force
Filing Date 2010-10-29
Publication Date 2011-10-13
Owner
  • HITACHI METALS, LTD. (Japan)
  • TEKNA Plasma Systems Inc. (Canada)
Inventor
  • Fukumaru Mariko
  • Han Gang
  • Shoji Tatsuya
  • Boulos Maher I.

Abstract

Disclosed is a process for producing a metal ball, which comprises the steps of: providing a predetermined mass of a raw material piece; making a plasma flame by a high-frequency energy generated from a plasma working gas and a high-frequency induction coil and increasing the nitrogen concentration in a plasma generation space to 2 vol% or more; introducing the raw material piece into the plasma flame to melt the raw material piece and spheroidizing the molten product; and solidifying the molten and speroidized raw material. Nitrogen can be introduced into the metal ball through the speroidizing step and the solidifying step.

IPC Classes  ?

  • B22D 25/02 - Special casting characterised by the nature of the product by its peculiarity of shapeSpecial casting characterised by the nature of the product of works of art
  • B22D 23/00 - Casting processes not provided for in groups
  • B22F 1/00 - Metallic powderTreatment of metallic powder, e.g. to facilitate working or to improve properties
  • B22F 9/04 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from solid material, e.g. by crushing, grinding or milling

61.

METHOD FOR PRODUCING TITANIUM METAL

      
Application Number JP2010059084
Publication Number 2010/137688
Status In Force
Filing Date 2010-05-28
Publication Date 2010-12-02
Owner
  • HITACHI METALS, LTD. (Japan)
  • TEKNA Plasma Systems Inc. (Canada)
Inventor
  • Han Gang
  • Uesaka Shujiroh
  • Shoji Tatsuya
  • Fukumaru Mariko
  • Boulos Maher I.
  • Guo Jiayin
  • Jurewicz Jerzy

Abstract

Disclosed is a method for producing titanium metal, which comprises: (a) a step in which a mixed gas is formed by supplying titanium tetrachloride and magnesium into a mixing space that is held at an absolute pressure of 50-500 kPa and at a temperature not less than 1700˚C; (b) a step in which the mixed gas is introduced into a deposition space; (c) a step in which titanium metal is deposited and grown on a substrate for deposition; and (d) a step in which the mixed gas after the step (c) is discharged. In this connection, the deposition space has an absolute pressure of 50-500 kPa, the substrate for deposition is arranged in the deposition space, and at least a part of the substrate for deposition is held within the temperature range of 715-1500˚C.

IPC Classes  ?

  • C22B 34/12 - Obtaining titanium
  • C22B 5/04 - Dry processes by aluminium, other metals, or silicon

62.

PLASMA REACTOR FOR THE SYNTHESIS OF NANOPOWDERS AND MATERIALS PROCESSING

      
Document Number 02756143
Status In Force
Filing Date 2010-03-24
Open to Public Date 2010-09-30
Grant Date 2017-08-29
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher
  • Jurewicz, Jerzy
  • Guo, Jiayin

Abstract

A process and apparatus for producing nanopowders and materials processing is described herein. A plasma reactor comprising a torch body comprising a plasma torch for generating a plasma; a reactor section in fluid communication with the torch body for receiving a plasma discharge and further being in fluid communication with a quench section; and at least one heating element in thermal communication with the reactor section and wherein the at least one heating element provides for selectively modulating the temperature within the reactor section is described herein.

IPC Classes  ?

  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium
  • B01J 19/08 - Processes employing the direct application of electric or wave energy, or particle radiationApparatus therefor
  • B01J 19/24 - Stationary reactors without moving elements inside
  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying
  • H05H 1/26 - Plasma torches

63.

PLASMA REACTOR FOR THE SYNTHESIS OF NANOPOWDERS AND MATERIALS PROCESSING

      
Application Number CA2010000443
Publication Number 2010/108272
Status In Force
Filing Date 2010-03-24
Publication Date 2010-09-30
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher, I.
  • Jurewicz, Jerzy
  • Guo, Jiayin

Abstract

A process and apparatus for producing nanopowders and materials processing is described herein. A plasma reactor comprising a torch body comprising a plasma torch for generating a plasma; a reactor section in fluid communication with the torch body for receiving a plasma discharge and further being in fluid communication with a quench section; and at least one heating element in thermal communication with the reactor section and wherein the at least one heating element provides for selectively modulating the temperature within the reactor section is described herein.

IPC Classes  ?

  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium
  • B01J 19/08 - Processes employing the direct application of electric or wave energy, or particle radiationApparatus therefor
  • B01J 19/24 - Stationary reactors without moving elements inside
  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying
  • H05H 1/26 - Plasma torches

64.

IN-LINE WELD SEAM HEAT TREATMENT METHOD AND APPARATUS WITH INTERNAL SELECTIVE HEATING OF THE WELDED JOINT

      
Application Number NO2009000244
Publication Number 2010/002269
Status In Force
Filing Date 2009-06-29
Publication Date 2010-01-07
Owner EFD INDUCTION AS (Norway)
Inventor
  • Markegård. Leif
  • Asperheim, John, Inge

Abstract

The present application relates to a method and an apparatus for in a high frequency welding (HFW) or electrical resistance welding (ERW) line to perform in-line seam heat treatment of an established welded joint on a pipe (1) made from roll- formed plate material, the welded joint being heated inductively from the exterior side of the pipe (1) downstream of a welding location. The method provides for selective heating (7) of the welded joint from the interior of the pipe (1) downstream of the welding location at least one heating zone, such heating from the interior, when operative, being performed simultaneously and in addition to the external heating (4, 5, 6). The apparatus comprises in addition to exterior heating means (4, 5, 6) downstream of a welding location also induction heating means (7) located inside the pipe (1) for selective operation to heat the welded joint from the interior of the pipe (1) downstream of the welding location at least one heating zone, said operation when selected being additional and simultaneous with operation of the external heating means (4, 5, 6).

IPC Classes  ?

  • B23K 11/04 - Flash butt welding
  • B23K 11/087 - Seam welding not restricted to one of the preceding subgroups for rectilinear seams
  • B23K 13/02 - Seam welding
  • B21C 37/08 - Making tubes with welded or soldered seams
  • C21D 9/50 - Heat treatment, e.g. annealing, hardening, quenching or tempering, adapted for particular articlesFurnaces therefor for welded joints
  • C21D 1/42 - Induction heating

65.

ELECTRIC WELDING OF ALUMINIUM OR ALUMINIUM ALLOY

      
Application Number NO2008000457
Publication Number 2009/082238
Status In Force
Filing Date 2008-12-17
Publication Date 2009-07-02
Owner EFD INDUCTION A.S. (Norway)
Inventor Hornæs, Ketil

Abstract

The invention relates to aspects of electric welding of aluminium or aluminium alloy in a magnetic field, wherein the aluminium or aluminium alloy (21; 22) adjacent to a weld joint (18) under formation has an oxide layer (21 '; 22'), and wherein the free end (1 ') of a welding wire (1) is supplied with a surrounding shielding gas. An alternating current, for example selected in the range of 500 Hz - 500 kHz is used as welding current. Furthermore, a welding wire is used that essentially consists of aluminium or aluminium alloy provided with an oxide-inhibiting coating (23'), for example of copper, which forms the outer covering or sheath of the welding wire and/or that as said shielding gas there is used a shielding gas with oxygen incorporated therein, or that the shielding gas is supplied with oxygen during the welding process. The volume amount of oxygen in relation to the shielding gas is in the range of 0.1-5%. When the welding process is carried out in a magnetic field, the minimum frequency of the welding current is selected as a function of the strength of the magnetic field. The invention also indicates a method of producing the welding wire and necessary material conditions for a usable welding gun.

IPC Classes  ?

  • B23K 9/073 - Stabilising the arc
  • B23K 35/02 - Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape
  • B23K 35/08 - Rods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape specially designed for use as electrodes of non-circular cross-sectionRods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape specially designed for use as electrodes with special arrangement, e.g. internal multi-coredRods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape specially designed for use as electrodes of non-circular cross-sectionRods, electrodes, materials, or media, for use in soldering, welding, or cutting characterised by mechanical features, e.g. shape specially designed for use as electrodes with special arrangement, e.g. internal multiple
  • B23K 9/29 - Supporting devices adapted for making use of shielding means

66.

Plasma surface treatment using dielectric barrier discharges

      
Application Number 11831654
Grant Number 08263178
Status In Force
Filing Date 2007-07-31
First Publication Date 2008-06-19
Grant Date 2012-09-11
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Kogelschatz, Ulrich
  • Nessim, Christine

Abstract

A process for the in-flight surface treatment of powders using a Dielectric Barrier Discharge Torch operating at atmospheric pressures or soft vacuum conditions is described herein. The process comprising feeding a powder material into the Dielectric Barrier Discharge Torch yielding powder particles exhibiting a reduced powder agglomeration feature; in-flight modifying the surface properties of the particles; and collecting coated powder particles. An apparatus for surface treating micro- and nanoparticles comprising a Dielectric Barrier Discharge Torch operating at atmospheric pressure or soft vacuum conditions is also described herein.

IPC Classes  ?

  • B05D 5/00 - Processes for applying liquids or other fluent materials to surfaces to obtain special surface effects, finishes or structures
  • H05H 1/24 - Generating plasma
  • H05H 1/02 - Arrangements for confining plasma by electric or magnetic fieldsArrangements for heating plasma
  • C23C 16/00 - Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
  • H01J 7/24 - Cooling arrangementsHeating arrangementsMeans for circulating gas or vapour within the discharge space
  • H05B 31/20 - Mechanical arrangements for feeding electrodes

67.

PLASMA SURFACE TREATMENT USING DIELECTRIC BARRIER DISCHARGES

      
Application Number CA2007001349
Publication Number 2008/014607
Status In Force
Filing Date 2007-07-31
Publication Date 2008-02-07
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher, I.
  • Kogelschatz, Ulrich
  • Nessim, Christine

Abstract

A process for the in-flight surface treatment of powders using a Dielectric Barrier Discharge Torch operating at atmospheric pressures or soft vacuum conditions is described herein. The process comprising feeding a powder material into the Dielectric Barrier Discharge Torch yielding powder particles exhibiting a reduced powder agglomeration feature; in-flight modifying the surface properties of the particles; and collecting coated powder particles. An apparatus for surface treating micro- and nanoparticles comprising a Dielectric Barrier Discharge Torch operating at atmospheric pressure or soft vacuum conditions is also described herein.

IPC Classes  ?

  • C23C 4/12 - Coating by spraying the coating material in the molten state, e.g. by flame, plasma or electric discharge characterised by the method of spraying
  • B05C 19/00 - Apparatus specially adapted for applying particulate materials to surfaces
  • B05D 1/10 - Applying particulate materials
  • C08J 7/04 - Coating
  • C09D 5/46 - Coating compositions, e.g. paints, varnishes or lacquers, characterised by their physical nature or the effects producedFilling pastes for flame-sprayingCoating compositions, e.g. paints, varnishes or lacquers, characterised by their physical nature or the effects producedFilling pastes for electrostatic or whirl-sintering coating

68.

METHOD FOR PRODUCING METAL NANOPOWDERS BY DECOMPOSITION OF METAL CARBONYL USING AN INDUCTION PLASMA TORCH

      
Application Number CA2007000970
Publication Number 2007/137431
Status In Force
Filing Date 2007-05-31
Publication Date 2007-12-06
Owner
  • CVRD INCO LIMITED (Canada)
  • TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Paserin, Vladimir
  • Adams, Richard, S.
  • Boulos, Maher, I.
  • Jurewicz, Jerzy
  • Guo, Jiayin

Abstract

A process for synthesizing metal nanopowders by introducing metal carbonyl into an induction plasma torch. By taking advantage of the much lower dissolution temperature of carbonyl as opposed to the high melting temperature of conventional metal powder feeds less torch power is required. Moreover, in contrast to current powder production techniques utilizing electrode based plasma torches, the induction plasma torch does not introduce contaminants into the nanopowder.

IPC Classes  ?

  • B22F 9/30 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using chemical processes with decomposition of metal compounds, e.g. by pyrolysis
  • B22F 9/06 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material
  • C01G 1/04 - Carbonyls

69.

METHOD FOR PRODUCING METAL NANOPOWDERS BY DECOMPOSITION OF METAL CARBONYL USING AN INDUCTION PLASMA TORCH

      
Document Number 02654013
Status In Force
Filing Date 2007-05-31
Open to Public Date 2007-12-06
Grant Date 2013-03-05
Owner TEKNA PLASMA SYSTEMS, INC. (Canada)
Inventor
  • Paserin, Vladimir
  • Adams, Richard S.
  • Boulos, Maher I.
  • Guo, Jiayin
  • Jurewicz, Jerzy

Abstract

A process for synthesizing metal nanopowders by introducing metal carbonyl into an induction plasma torch. By taking advantage of the much lower dissolution temperature of carbonyl as opposed to the high melting temperature of conventional metal powder feeds less torch power is required. Moreover, in contrast to current powder production techniques utilizing electrode based plasma torches, the induction plasma torch does not introduce contaminants into the nanopowder.

IPC Classes  ?

  • B22F 9/30 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using chemical processes with decomposition of metal compounds, e.g. by pyrolysis
  • B22F 9/06 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material
  • C01G 1/04 - Carbonyls

70.

Plasma synthesis of nanopowders

      
Application Number 11683792
Grant Number 08859931
Status In Force
Filing Date 2007-03-08
First Publication Date 2007-09-27
Grant Date 2014-10-14
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy
  • Guo, Jiayin
  • Fan, Xiaobao
  • Dignard, Nicolas

Abstract

A process and apparatus for preparing a nanopowder are presented. The process comprises feeding a reactant material into a plasma reactor in which is generated a plasma flow having a temperature sufficiently high to vaporize the material; transporting the vapor with the plasma flow into a quenching zone; injecting a preheated quench gas into the plasma flow in the quenching zone to form a renewable gaseous condensation front; and forming a nanopowder at the interface between the renewable controlled temperature gaseous condensation front and the plasma flow.

IPC Classes  ?

  • B23K 9/00 - Arc welding or cutting
  • B01J 8/02 - Chemical or physical processes in general, conducted in the presence of fluids and solid particlesApparatus for such processes with stationary particles, e.g. in fixed beds
  • H05H 1/42 - Plasma torches using an arc with provisions for introducing materials into the plasma, e.g. powder or liquid
  • B22F 9/12 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from gaseous material

71.

PLASMA SYNTHESIS OF NANOPOWDERS

      
Document Number 02581806
Status In Force
Filing Date 2007-03-08
Open to Public Date 2007-09-08
Grant Date 2012-06-26
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy
  • Guo, Jiayin
  • Fan, Xiaobao
  • Dignard, Nicolas

Abstract

A process and apparatus for preparing a nanopowder are presented. The process comprises feeding a reactant material into a plasma reactor in which is generated a plasma flow having a temperature sufficiently high to vaporize the material; transporting the vapour by means of the plasma flow into a quenching zone; injecting a preheated quench gas into the plasma flow in the quenching zone to form a renewable gaseous condensation front; and forming a nanopowder at the interface between the renewable controlled temperature gaseous condensation front and the plasma flow.

IPC Classes  ?

  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium
  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying
  • H05H 1/26 - Plasma torches
  • H05H 1/28 - Cooling arrangements

72.

Process for the synthesis, separation and purification of powder materials

      
Application Number 10569916
Grant Number 07572315
Status In Force
Filing Date 2004-08-19
First Publication Date 2007-06-07
Grant Date 2009-08-11
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Nessim, Christine
  • Normand, Christian
  • Jurewicz, Jerzy

Abstract

The invention concerns a process for the spheroidisation, densification and purification of powders through the combined action of plasma processing, and ultra-sound treatment of the plasma-processed powder. The ultra-sound treatment allows for the separation of the nanosized condensed powder, referred to as ‘soot’, from the plasma melted and partially vaporized powder. The process can also be used for the synthesis of nanopowders through the partial vaporization of the feed material, followed by the rapid condensation of the formed vapour cloud giving rise to the formation of a fine aerosol of nanopowder. In the latter case, the ultra-sound treatment step serves for the separation of the formed nanopowder form the partially vaporized feed material.

IPC Classes  ?

  • B22F 9/14 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes using electric discharge

73.

Induction plasma synthesis of nanopowders

      
Application Number 11341211
Grant Number 08013269
Status In Force
Filing Date 2006-01-27
First Publication Date 2007-02-08
Grant Date 2011-09-06
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy
  • Guo, Jiayin

Abstract

A process and apparatus for synthesizing a nanopowder is presented. In particular, a process for the synthesis of nanopowders of various materials such as metals, alloys, ceramics and composites by induction plasma technology, using organometallic compounds, chlorides, bromides, fluorides, iodides, nitrites, nitrates, oxalates and carbonates as precursors is disclosed. The process comprises feeding a reactant material into a plasma torch in which is generated a plasma flow having a temperature sufficiently high to yield a superheated vapor of the material; transporting said vapor by means of the plasma flow into a quenching zone; injecting a cold quench gas into the plasma flow in the quenching zone to form a renewable gaseous cold front; and forming a nanopowder at the interface between the renewable gaseous cold front and the plasma flow.

IPC Classes  ?

  • B23K 10/00 - Welding or cutting by means of a plasma

74.

INDUCTION PLASMA SYNTHESIS OF NANOPOWDERS

      
Document Number 02595872
Status In Force
Filing Date 2006-01-27
Open to Public Date 2006-08-03
Grant Date 2011-07-12
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy
  • Guo, Jiayin

Abstract

A process and apparatus for synthesizing a nanopowder is presented. In particular, a process for the synthesis of nanopowders of various materials such as metals, alloys, ceramics and composites by induction plasma technology, using organometallic compounds, chlorides, bromides, fluorides, iodides, nitrites, nitrates, oxalates and carbonates as precursors is disclosed. The process comprises feeding a reactant material into a plasma torch in which is generated a plasma flow having a temperature sufficiently high to yield a superheated vapour of the material; transporting said vapour by means of the plasma flow into a quenching zone; injecting a cold quench gas into the plasma flow in the quenching zone to form a renewable gaseous cold front; and forming a nanopowder at the interface between the renewable gaseous cold front and the plasma flow.

IPC Classes  ?

  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium
  • B22F 9/00 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor
  • B22F 9/08 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using physical processes starting from liquid material by casting, e.g. through sieves or in water, by atomising or spraying
  • C01B 13/30 - Removal and cooling of the oxide containing suspension
  • C01G 3/02 - OxidesHydroxides
  • C01G 17/02 - Germanium dioxide

75.

Process for plasma synthesis of rhenium nano and micro powders, and for coatings and near net shape deposits thereof and apparatus therefor

      
Application Number 11041870
Grant Number 07494527
Status In Force
Filing Date 2005-01-25
First Publication Date 2005-09-29
Grant Date 2009-02-24
Owner Tekna Plasma Systems Inc. (Canada)
Inventor
  • Jurewicz, Jerzy W.
  • Guo, Jiayin

Abstract

The reactor is provided with a quench zone for cooling the metallic rhenium so as to yield rhenium nano and micro powders.

IPC Classes  ?

  • B22F 9/22 - Making metallic powder or suspensions thereofApparatus or devices specially adapted therefor using chemical processes with reduction of metal compounds starting from solid metal compounds using gaseous reductors

76.

PROCESS FOR THE SYNTHESIS, SEPARATION AND PURIFICATION OF POWDER MATERIALS

      
Document Number 02551020
Status In Force
Filing Date 2004-08-19
Open to Public Date 2005-03-10
Grant Date 2011-10-18
Owner TEKNA PLASMA SYSTEMS INC. (Canada)
Inventor
  • Boulos, Maher I.
  • Jurewicz, Jerzy
  • Nessim, Christine
  • Normand, Christian

Abstract

The invention concerns a process for the spheroidisation, densification and purification of powders through the combined action of plasma processing, and ultra-sound treatment of the plasma-processed powder. The ultra-sound treatment allows for the separation of the nanosized condensed powder, referred to as 'soot', from the plasma melted and partially vaporized powder. The process can also be used for the synthesis of nanopowders through the partial vaporization of the feed material, followed by the rapid condensation of the formed vapour cloud giving rise to the formation of a fine aerosol of nanopowder. In the latter case, the ultrasound treatment step serves for the separation of the formed nanopowder form the partially vaporized feed material.

IPC Classes  ?

  • B01J 2/04 - Processes or devices for granulating materials, in generalRendering particulate materials free flowing in general, e.g. making them hydrophobic by dividing the liquid material into drops, e.g. by spraying, and solidifying the drops in a gaseous medium