EP4569597A1 - Cooling system for a superconducting generator - Google Patents
Cooling system for a superconducting generatorInfo
- Publication number
- EP4569597A1 EP4569597A1 EP22797926.7A EP22797926A EP4569597A1 EP 4569597 A1 EP4569597 A1 EP 4569597A1 EP 22797926 A EP22797926 A EP 22797926A EP 4569597 A1 EP4569597 A1 EP 4569597A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- thermal
- extension member
- busbar
- cooling system
- flexible connector
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K55/00—Dynamo-electric machines having windings operating at cryogenic temperatures
- H02K55/02—Dynamo-electric machines having windings operating at cryogenic temperatures of the synchronous type
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K55/00—Dynamo-electric machines having windings operating at cryogenic temperatures
- H02K55/02—Dynamo-electric machines having windings operating at cryogenic temperatures of the synchronous type
- H02K55/04—Dynamo-electric machines having windings operating at cryogenic temperatures of the synchronous type with rotating field windings
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K9/00—Arrangements for cooling or ventilating
- H02K9/22—Arrangements for cooling or ventilating by solid heat conducting material embedded in, or arranged in contact with, the stator or rotor, e.g. heat bridges
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K9/00—Arrangements for cooling or ventilating
- H02K9/22—Arrangements for cooling or ventilating by solid heat conducting material embedded in, or arranged in contact with, the stator or rotor, e.g. heat bridges
- H02K9/223—Heat bridges
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K2213/00—Specific aspects, not otherwise provided for and not covered by codes H02K2201/00 - H02K2211/00
- H02K2213/03—Machines characterised by numerical values, ranges, mathematical expressions or similar information
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K9/00—Arrangements for cooling or ventilating
- H02K9/22—Arrangements for cooling or ventilating by solid heat conducting material embedded in, or arranged in contact with, the stator or rotor, e.g. heat bridges
- H02K9/225—Heat pipes
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E40/00—Technologies for an efficient electrical power generation, transmission or distribution
- Y02E40/60—Superconducting electric elements or equipment; Power systems integrating superconducting elements or equipment
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S505/00—Superconductor technology: apparatus, material, process
- Y10S505/825—Apparatus per se, device per se, or process of making or operating same
- Y10S505/876—Electrical generator or motor structure
- Y10S505/877—Rotary dynamoelectric type
- Y10S505/878—Rotary dynamoelectric type with cooling
Definitions
- the present disclosure relates to superconducting machines, and more particularly, to improved cooling systems for superconducting machines.
- a wind turbine includes a plurality of rotor blades coupled via the rotor hub to the main shaft of the turbine.
- the rotor hub is positioned on top of a tubular tower or base.
- Utility grade wind turbines i.e., wind turbines designed to provide electrical power to a utility grid
- the rotor blades convert wind energy into a rotational torque or force that drives the generator, rotationally coupled to the rotor.
- the superconducting generator includes an armature winding assembly that, unlike conventional machine (e.g., conventional, non-superconducting generator) configurations, rotates within a superconducting field assembly, which includes a cryostat with superconducting field coils inside the cryostat.
- the superconducting magnet windings must be cooled below their critical temperature (i.e., the temperature at which the winding material changes from the normal resistive state and becomes a superconductor).
- their critical temperature i.e., the temperature at which the winding material changes from the normal resistive state and becomes a superconductor.
- the windings are cooled to temperatures significantly below their critical temperature, because the lower the temperature, the better the superconductive windings work.
- a lower temperature enables the superconductive windings to withstand higher currents and magnetic fields without returning to their non-superconductive state.
- liquid cooling or mechanical cooling are commonly used to maintain the windings at temperatures sufficient to maintain superconductivity.
- liquid cooling liquid helium may be used as a coolant, which has a boiling point of 4.2 Kelvin that is below the critical temperature of most winding materials.
- the superconducting magnet and the liquid helium are contained in a thermally insulated container called a cryostat.
- mechanical cooling may generally include cooling of
- various components of the cooling system and superconducting generator may be arranged in separate regions within the superconducting machine so the components can be maintained at different temperatures. By separating the components in this manner, undesired thermal transfer between the components may be reduced. However, displacement and motion between such components due to thermal expansion and contraction must be accounted for.
- undesirable thermal contact resistances may occur as a result of securing different components to each other to form the cooling system. If such resistances increase above a certain threshold, the increase may result in the superconducting generator operating sub-optimally or the windings operating in a non-superconducting state.
- the present disclosure is directed to an improved cooling system for a superconductive generator that addresses the aforementioned issues.
- the present disclosure is directed to a cooling system for a superconducting machine.
- the cooling system includes a thermal shield, a cryocooler, and an extension member.
- the cryocooler is thermally coupled to the thermal shield via at least one thermal busbar and at least one flexible connector, the at least one thermal busbar secured across the at least one flexible connector.
- the extension member is secured to the at least one thermal busbar and the thermal shield so as to position the at least one thermal busbar at a location that minimizes a length of the at least one flexible connector.
- the extension member includes at least one bend.
- the at least one bend defines an angle ranging from about 30 degrees to about 150 degrees
- the extension member includes a plurality of member components secured together to form the least one bend
- extension member is integral with the at least one thermal busbar
- the extension member is a separate component from the at least one thermal busbar
- the at least one flexible connector includes a plurality of flexible connectors, wherein the extension member includes a twisted portion including a wider surface to allow the plurality of flexible connectors to have approximately a same length
- the at least one flexible connector includes a length ranging from about 50 millimeters (mm) to less than about 300 mm [0018] In still other embodiments, the at least one flexible connector includes one of a braided wire, a foil member, or a heat pipe
- the extension member defines one of an L- shape, a U-shape, an I-shape, or an S-shape
- the present disclosure is directed to a method of cooling a superconducting machine.
- the method includes positioning a thermal shield circumferentially around a cold mass of the superconducting machine.
- the method also includes thermally coupling a cryocooler to the thermal shield via a plurality of flexible connectors.
- the method further includes securing a thermal busbar across the plurality of flexible connectors.
- the method still further includes securing an extension member to the thermal busbar and to the thermal shield, wherein the extension member positions the thermal busbar at a location with respect to the cryocooler that minimizes a length of the plurality of flexible connectors.
- the method yet further includes operating the cryocooler to cool the superconducting machine.
- the present disclosure is directed to a superconducting machine.
- the superconducting machine includes a cold mass, a thermal shield, a cryocooler, and an extension member.
- the cold mass includes a plurality of superconducting coils.
- the thermal shield encompasses the cold mass.
- the cryocooler is thermally coupled to the thermal shield via at least one thermal busbar and at least one flexible connector, the at least one thermal busbar secured across the at least one flexible connector.
- the extension member is secured to the at least one thermal busbar and the thermal shield so as to position the at least one thermal busbar at a location that minimizes a length of the at least one flexible connector.
- FIG. 1 illustrates an internal, perspective view of an embodiment of a nacelle of a wind turbine having a superconducting machine according to the present disclosure
- FIG. 2 illustrates a perspective view of an embodiment of a superconducting machine according to the present disclosure
- FIG. 3 illustrates an internal, perspective view of an embodiment of a superconducting machine
- FIG. 4 illustrates a simplified, , cross-sectional view of a superconducting machine according to the present disclosure
- FIG. 5 illustrates a partial, internal view of an embodiment of a superconducting machine according to the present disclosure, particularly illustrating details of a cooling system of the superconducting machine;
- FIG. 6 illustrates a partial, perspective view of an embodiment of a thermal shield of a superconducting machine according to the present disclosure
- FIGS. 7A-7C illustrate various embodiments of extension members that can be secured to a thermal busbar and a thermal shield of a superconducting machine to position the thermal busbar at a location that minimizes a length of a flexible connector according to the present disclosure
- FIG. 8 illustrates a flow diagram of an embodiment of a method of cooling a superconducting machine according to the present disclosure.
- the present disclosure is directed to a cooling system for a superconducting generator.
- the superconducting generator may include a thermal shield, a cryocooler, and an extension member.
- the cryocooler is thermally coupled to the thermal shield by a thermal busbar and at least one flexible connector.
- the thermal busbar is secured across the flexible connector(s).
- the extension member is secured to the thermal busbar and the thermal shield to position the thermal busbar at a location that minimizes the length of the flexible connector(s). Accordingly, the length of the flexible connector(s) can be minimized, thereby reducing thermal conduction losses, and improving the efficiency of the cooling system.
- FIG. 1 illustrates an internal, perspective view of a nacelle of a wind turbine having a superconducting machine 10 according to the present disclosure.
- the superconducting machine 10 may include an armature winding assembly 12, a field winding assembly 14, a plurality of conducting coils 16 (such as superconducting or non-superconducting coils), and a thermally insulated vacuum vessel 18.
- the field winding assembly 14 may be a stationary component of the superconducting machine 10 with a first electromagnetic component configuration in the form of the conducting coils 16 that provide a magnetic field in which the armature winding assembly 12 with a second electromagnetic component configuration rotates.
- the armature winding assembly 12 may instead be stationary while the field winding assembly 14 rotates.
- FIGS. 2-4 various views of an embodiment of the superconducting machine 10 are illustrated according to the present disclosure.
- FIG. 2 illustrates a perspective view of an embodiment of the superconducting machine 10 according to the present disclosure
- FIG. 3 illustrates an internal, perspective view of an embodiment of the superconducting machine 10 according to the present disclosure
- FIG. 4 illustrates a simplified, cross-sectional view of a superconducting magnet according to the present disclosure
- FIG. 5 illustrates a partial, internal view of an embodiment of the cooling system according to the present disclosure.
- superconducting machines may be used in a variety of apparatuses or applications.
- superconducting machines may include or apply to, but should not be construed as limited to, renewable energy (e.g., such as wind power generation), magnetic resonance imaging (MRI) machines, nuclear magnetic resonance (NMR) spectrometers, superconducting generators or motors, non-superconducting generators or motors, mass spectrometers, fusion reactors, particle accelerators, levitation, guidance, and proplsion, and similar.
- renewable energy e.g., such as wind power generation
- MRI magnetic resonance imaging
- NMR nuclear magnetic resonance
- the superconducting machine 10 includes the thermally insulated vacuum vessel 18, which is generally referred to as a cryostat.
- a cryostat generally refers to a device used to maintain low cryogenic temperatures.
- the superconducting machine 10 also generally includes a cold mass 28, athermal shield 30 arranged circumferentially and encompassing the cold mass 28, and a cooling system 32.
- the cold mass 28 may be a stationary component, such as the field winding assembly 14 that provides a stationary magnetic field within which the armature winding assembly 12 rotates.
- the cold mass 28 may include the plurality of conducting coils 16 (FIG. 1).
- the vacuum vessel 18 may be a non-rotatable component supporting the field winding assembly 14.
- the rotatable component may be oriented to rotate relative to the non-rotatable component during operation of the superconducting machine 10.
- the thermal shield 30 is configured to intercept and/or block radiation (as indicated by arrows 34) from the vacuum vessel 18.
- the cooling system 32 is configured to provide a cooling fluid 35, such as a cryogen, to at least one superconducting circuit 36 or coil arranged inside the vacuum vessel 18, supported by an internal structure 38 (FIG. 3) and in fluid communication with one or more cryogen tanks 40.
- the vacuum vessel 18 insulates the superconducting circuit(s) 36 such that the circuit(s) 36 may be cooled to near absolute zero, e.g., to 10 Kelvin (K) and preferably to 4 K.
- the superconducting circuit(s) 36 may include a plurality of conduits 42 that carry the cryogen from the cryogen tank 40 to the internal structure 38.
- the superconducting circuit(s) 36 may be arranged in a coil shape and may be configured for generating a magnetic field. As shown particularly in FIG. 2, the superconducting machine 10 may further include a power supply 44 for energizing the superconducting circuit(s) 36.
- the superconducting circuit(s) 36 in its superconducting state, does not have an electrical resistance and therefore can conduct much larger electric currents than ordinary wires, creating intense magnetic fields. Furthermore, during operation, the superconducting circuit(s) 36 must be cooled below their critical temperature, the temperature at which the wire material changes from the normal resistive state and becomes a superconductor. Typically, the superconducting circuit(s) 36 are cooled to temperatures significantly below their critical temperature, because the lower the temperature, the better superconductive windings work — the higher the currents and magnetic fields they can stand without returning to their non- superconductive state.
- the cooling system 32 may be secured to the thermal shield 30 of the superconducting machine 10 via at least one thermal busbar 46.
- the thermal busbar 46 is thermally coupled to the thermal shield 30 and a cryocooler 48.
- the cryocooler 48 is thermally coupled to the thermal shield 30 via the thermal busbar 46 and at least one flexible connector 110 (FIGS. 5 and 6).
- the thermal busbar 46 is secured across the flexible connector(s) 110.
- the flexible connector(s) 110 may be braided wires, foil members, or heat pipes. Thus, heat is removed via the thermal busbar 46 to the cooling system 32.
- FIG. 4 the thermal busbar 46 is thermally coupled to the thermal shield 30 and a cryocooler 48.
- the cryocooler 48 is thermally coupled to the thermal shield 30 via the thermal busbar 46 and at least one flexible connector 110 (FIGS. 5 and 6).
- the thermal busbar 46 is secured across the flexible connector(s) 110.
- the flexible connector(s) 110 may be braided wires, foil members
- the cooling system 32 further includes an extension member 102 secured to the thermal busbar(s) 46 and the thermal shield 30 so as to position the thermal busbar(s) 46 at a location that minimizes a length of the flexible connector 110.
- the extension member 102 is secured at a first end 99 to the thermal busbar 46 and at a second end 101 to the thermal shield 30.
- the first end of the extension member 102 may be secured to the thermal busbar 46 via a first fastener 106.
- the second end 101 of the extension member 102 may be secured to the thermal shield 30 via a second fastener 107.
- the extension member 102 may be a separate component from the thermal busbar 46.
- the extension member 102 may be sized such that the second end 101 extends from the vacuum vessel 18 across the entire length of the thermal shield 30. By doing this, the extension member 102 may better extract heat from the thermal shield 30 by transferring heat axially from the thermal shield 30 to the thermal busbar 46.
- the extension member 102 may be able to maintain gas flow with the cryocooler 48 and the cryogen tanks 40.
- the extension member 102 is configured to effectively reduce the length of the flexible connector 110, and consequently, thermal contact resistances may also be reduced.
- the extension member 102 may allow for the length of the flexible connector(s) 110 to be from about 50 millimeters (mm) to less than about 300 mm.
- the extension member 102 may be a monolithic component, such as a pedestal arrangement, or a segmented component formed of a plurality of member components.
- the extension member may include a first member component 121 attached to the thermal shield 30 and a second member component 122 attached to the first member component 121 and the thermal busbar 46.
- the member components may be joined together at one or more hinge joints 113 such that the shape of the extension member 102 can be modified as needed to connect the extension member 102 between the flexible connectors 110 to the thermal shield 30.
- the extension member 102 when the extension member 102 is a monolithic component, the extension member may be an integral, singular, and continuous piece of material.
- the extension member 102 described herein may have any suitable shape with any number of bends so as to effectively reduce the length of the flexible connector 110.
- the extension member 102 may include at least one bend 114.
- the extension member 102 may also not have a bend 114.
- the extension member 102 may take the form of a pedestal that is a free-standing, I-shaped member that extends from the thermal busbar 46 and connects to the flexible connector(s) 110.
- An extension member 102 without a bend may be particularly useful if the distance between the thermal busbar 46 and the cryocooler 48 is sufficient enough to reduce delta temperature and thermal contact resistances.
- the flexible connector(s) 110 may be attached to the extension member 102. However, if the distance needs to be reduced further, a bend(s) may be provided.
- the bend(s) 114 may define an angle (i.e., between two member components 116, 118 of the extension member 102) ranging from about 30 degrees to about 150 degrees.
- various shapes can be formed to route the extension member 102 from the flexible connectors 110 to the thermal shield 30.
- the extension member 102 may have a generally J-shape (or U-shape) so as to route the extension member 102 from the flexible connectors 110 to the thermal shield 30.
- FIGS. 5 and 7B the extension member 102 may have a generally J-shape (or U-shape) so as to route the extension member 102 from the flexible connectors 110 to the thermal shield 30.
- extension member 102 has a generally S-shape or Z-shape.
- the extension member 102 has a generally L- shape.
- the extension member 102 may also include a twist 120 or twisted portion to further assist with reducing the length of the flexible connectors 110.
- the twist 120 or twisted portion may result in the extension member 102 to more directly face the flexible connector(s) 110 or the thermal busbar 46 such that the flexible connector(s) or thermal busbar 46 may be uniformly attached to the extension member 102.
- the twist 120 is configured to provide a wider surface in relation to the flexible connectors 110.
- the wider surface may allow for flexible connectors 110 to be attached with approximately the same length.
- thermal contact resistances may be made uniform across all the connectors, and the overall efficiency of the cooling system may be increased as a result.
- FIG. 8 a flow diagram of an embodiment of a method of cooling a generator is illustrated according to the present disclosure. In general, the method 200 will be described herein with reference to the superconducting machine 10 and the related cooling systems 32 described herein with reference to FIGS. 1-7.
- the disclosed method 200 may generally be utilized with any superconducting machine having any suitable configuration.
- FIG. 8 depicts steps performed in a particular order for purposes of illustration and discussion, the methods discussed herein are not limited to any particular order or arrangement.
- the method 200 includes positioning a thermal shield circumferentially around a cold mass of the superconducting machine.
- the method 200 includes thermally coupling a cryocooler to the thermal shield via a plurality of flexible connectors. As shown at (206), the method includes securing a thermal busbar across the plurality of flexible connectors. As shown at (208), the method 200 includes securing an extension member to the thermal busbar and to the thermal shield such that the extension member positions the thermal busbar at a location with respect to the cryocooler that minimizes a length of the plurality of flexible connectors. As shown at (210), the method 200 includes operating the cryocooler to cool the generator.
- a cooling system for a superconducting machine comprising: a thermal shield; a cryocooler thermally coupled to the thermal shield via at least one thermal busbar and at least one flexible connector, the at least one thermal busbar secured across the at least one flexible connector; and an extension member secured to the at least one thermal busbar and the thermal shield so as to position the at least one thermal busbar at a location that minimizes a length of the at least one flexible connector.
- Clause 3 The cooling system of clause 2, wherein the at least one bend defines an angle ranging from about 30 degrees to about 150 degrees.
- Clause 7 The cooling system of any of the preceding clauses, wherein the at least one flexible connector comprises a plurality of flexible connectors, wherein the extension member comprises a twisted portion comprising a wider surface to allow the plurality of flexible connectors to have approximately a same length.
- Clause 8 The cooling system of any of the preceding clauses, wherein the at least one flexible connector comprises a length ranging from about 50 millimeters (mm) to less than about 300 mm. Clause 9. The cooling system of any of the preceding clauses, wherein the at least one flexible connector comprises one of a braided wire, a foil member, or a heat pipe.
- a method of cooling a superconducting machine comprising: positioning a thermal shield circumferentially around a cold mass of the superconducting machine; thermally coupling a cryocooler to the thermal shield via a plurality of flexible connectors; securing a thermal busbar across the plurality of flexible connectors; securing an extension member to the thermal busbar and to the thermal shield, wherein the extension member positions the thermal busbar at a location with respect to the cryocooler that minimizes a length of the plurality of flexible connectors; and operating the cryocooler to cool the superconducting machine.
- Clause 13 The method of clause 12, wherein the at least one bend defines an angle ranging from about 30 degrees to about 150 degrees.
- Clause 14 The method of clauses 12-13, wherein the extension member comprises a plurality of member components secured together to form the least one bend.
- the length of the plurality comprise a range from about 50 millimeters (mm) to less than about 300 mm.
- Clause 18 The method of clauses 11-17, wherein the plurality of flexible connectors comprise one of braided wires, foil members or heat pipes.
- Clause 19 The method of clauses 11-18, wherein the extension member defines at least one of an L-shape, a U-shape, an I-shape, or an S-shape.
- a superconducting machine comprising: a cold mass comprising a plurality of superconducting coils; athermal shield encompassing the cold mass; a cryocooler thermally coupled to the thermal shield via at least one thermal busbar and at least one flexible connector, the at least one thermal busbar secured across the at least one flexible connector; and an extension member secured to the at least one thermal busbar and the thermal shield so as to position the at least one thermal busbar at a location that minimizes a length of the at least one flexible connector.
Landscapes
- Engineering & Computer Science (AREA)
- Power Engineering (AREA)
- Containers, Films, And Cooling For Superconductive Devices (AREA)
- Motor Or Generator Cooling System (AREA)
Abstract
Description
Claims
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/US2022/044979 WO2024072381A1 (en) | 2022-09-28 | 2022-09-28 | Cooling system for a superconducting generator |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4569597A1 true EP4569597A1 (en) | 2025-06-18 |
Family
ID=84044714
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP22797926.7A Pending EP4569597A1 (en) | 2022-09-28 | 2022-09-28 | Cooling system for a superconducting generator |
Country Status (5)
| Country | Link |
|---|---|
| EP (1) | EP4569597A1 (en) |
| JP (1) | JP2025532853A (en) |
| KR (1) | KR20250073392A (en) |
| CN (1) | CN119948738A (en) |
| WO (1) | WO2024072381A1 (en) |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5759960A (en) * | 1994-10-27 | 1998-06-02 | General Electric Company | Superconductive device having a ceramic superconducting lead resistant to breakage |
| US10910920B2 (en) * | 2019-05-01 | 2021-02-02 | General Electric Company | Magnetic shield for a superconducting generator |
-
2022
- 2022-09-28 JP JP2025517870A patent/JP2025532853A/en active Pending
- 2022-09-28 CN CN202280100476.5A patent/CN119948738A/en active Pending
- 2022-09-28 KR KR1020257013493A patent/KR20250073392A/en active Pending
- 2022-09-28 EP EP22797926.7A patent/EP4569597A1/en active Pending
- 2022-09-28 WO PCT/US2022/044979 patent/WO2024072381A1/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| CN119948738A (en) | 2025-05-06 |
| KR20250073392A (en) | 2025-05-27 |
| JP2025532853A (en) | 2025-10-03 |
| WO2024072381A1 (en) | 2024-04-04 |
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