US2026055932A1PendingUtilityA1

Gas refrigerating machine, method for operating a gas refrigerating machine and method for manufacturing a gas refrigerating machine having a housing

Assignee: JustAirTech GmbHPriority: Oct 28, 2020Filed: Oct 31, 2025Published: Feb 26, 2026
Est. expiryOct 28, 2040(~14.2 yrs left)· nominal 20-yr term from priority
Inventors:SEDLAK HOLGER
F25B 2309/005F25B 2309/004F25B 9/14F25B 9/06F25B 2500/18F25B 2339/047F25B 2309/003F25B 40/00F25B 29/003F25B 11/04F25B 9/004
94
PatentIndex Score
0
Cited by
0
References
0
Claims

Abstract

A gas refrigerating machine comprising: an input for a gas to be cooled; a recuperator comprising a first recuperator output; a compressor comprising a compressor input, the compressor input being coupled to the first recuperator output; a heat exchanger; a turbine; a gas output; and a housing, wherein the housing comprises a wall, wherein the input for the gas to be cooled is located in the wall, wherein the gas output is located in the wall, and wherein the recuperator, the compressor, the turbine and the heat exchanger are arranged in the housing.

Claims

exact text as granted — not AI-modified
1 . A gas refrigerating machine comprising:
 an input for a gas to be cooled;   a recuperator comprising a first recuperator output;   a compressor comprising a compressor input, the compressor input being coupled to the first recuperator output;   a heat exchanger;   a turbine;   a gas output; and   a housing,   wherein the housing comprises a wall, wherein the input for the gas to be cooled is located in the wall, wherein the gas output is located in the wall, and wherein the recuperator, the compressor, the turbine and the heat exchanger are arranged in the housing.   
     
     
         2 . The gas refrigerating machine according to  claim 1 , wherein the recuperator comprises a first recuperator input, the first recuperator output, a second recuperator input and a second recuperator output,
 wherein the compressor comprises the compressor input and a compressor output,   wherein the heat exchanger comprises a first heat exchanger input and a first heat exchanger output on a primary side, a second heat exchanger input and a second heat exchanger output on a secondary side, wherein the first heat exchanger input is coupled to the compressor output, and wherein the first heat exchanger output is coupled to the second recuperator input, and   wherein the turbine comprises a turbine input and a turbine output, wherein the turbine input is connected to the second recuperator output, and wherein the gas output is coupled to the turbine output.   
     
     
         3 . The gas refrigerating machine according to  claim 1 , wherein the compressor input is connected to a suction region delimited by an intake wall and extending away from the compressor, and wherein the recuperator extends at least partially around the suction region and is delimited by the intake wall. 
     
     
         4 . The gas refrigerating machine according to  claim 1 ,
 wherein the compressor is arranged above the turbine in an operating direction of the gas refrigerating machine.   
     
     
         5 . The gas refrigerating machine according to  claim 1 , comprising a drive motor having a rotor and a stator, wherein the compressor comprises a compressor wheel, wherein the turbine comprises a turbine wheel, wherein the compressor wheel and the turbine wheel are arranged on a common axis, and wherein the rotor of the drive motor is arranged on the common axis, which interacts with the stator of the drive motor. 
     
     
         6 . The gas refrigerating machine according to  claim 1 , comprising a drive motor having a rotor, wherein the compressor comprises a compressor wheel, wherein the turbine comprises a turbine wheel, and wherein the compressor wheel has a larger diameter than the rotor of the drive motor or a larger diameter than the turbine wheel 
     
     
         7 . The gas refrigerating machine according to  claim 5 , wherein the rotor is arranged between the compressor wheel and the turbine wheel. 
     
     
         8 . The gas refrigerating machine according to  claim 6 ,
 wherein the compressor wheel, a first axis portion, the rotor, a second axis portion, and the turbine wheel are formed integrally.   
     
     
         9 . The gas refrigerating machine according to  claim 6 ,
 wherein a first bearing portion is formed on the compressor wheel and a second bearing portion is formed on the turbine wheel.   
     
     
         10 . The gas refrigerating machine according to  claim 6 ,
 wherein the rotor is formed of a non-ferromagnetic material, and wherein the gas refrigerating machine comprises a ferromagnetic back element disposed around the rotor, and wherein the gas refrigerating machine comprises magnets disposed on the ferromagnetic back element.   
     
     
         11 . The gas refrigerating machine according to  claim 1 , wherein the recuperator is arranged in an outer region of a volume of the gas refrigerating machine and the compressor input is arranged in an inner region of the volume of the gas refrigerating machine. 
     
     
         12 . The gas refrigerating machine according to  claim 1 , wherein the recuperator comprises a volumetric shape comprising a central opening located in a central region, forming a suction region, wherein an intake wall extends from a first end of the central opening forming the compressor input to a second end closed by a cover. 
     
     
         13 . The gas refrigerating machine according to  claim 1 , comprising a suction region delimited by an intake wall, wherein the suction region has a first end, a second end, and a continuously increasing opening area from the first end to the second end, and wherein the intake wall is formed to be continuous or stepless. 
     
     
         14 . The gas refrigerating machine according to  claim 1 , wherein the recuperator comprises a counter-flow heat exchanger. 
     
     
         15 . The gas refrigerating machine according to  claim 14 , wherein the recuperator comprises a counter-flow heat exchanger, wherein the gas refrigerating machine is configured so that the gas moves through the input for the gas, from an outside of the counter-flow heat exchanger to an inside of the counter-flow heat exchanger, and wherein the gas refrigerating machine is configured so that the gas discharged from the counter-flow heat exchanger moves from the inside of the counter-flow heat exchanger to the outside of the counter-flow heat exchanger. 
     
     
         16 . The gas refrigerating machine according to  claim 1 ,
 wherein the wall of the housing comprises a bottom wall, and wherein the gas output is formed in the bottom wall of the gas refrigerating machine set up in an operating direction of the gas refrigerating machine, and wherein the gas output is shaped such that the gas output can be placed on a refrigerant gas inlet in a bottom portion of a room in which the gas refrigerating machine can be installed.   
     
     
         17 . The gas refrigerating machine according to  claim 1 ,
 wherein the gas refrigerating machine comprises a bottom wall, and wherein the gas output is formed in the bottom wall of the gas refrigerating machine set up in an operating direction of the gas refrigerating machine, wherein the gas refrigerating machine comprises a moisture collecting device for collecting a condensate, wherein the moisture collecting device is formed in the gas output.   
     
     
         18 . The gas refrigerating machine according to  claim 1 , wherein the housing comprises a diameter between 0.5 m and 1.5 m and a height between 1.0 m and 2.5 m. 
     
     
         19 . The gas refrigerating machine according to  claim 1 ,
 wherein the gas output has a gas output opening area, wherein the turbine comprises a turbine output having a turbine output opening area, wherein the turbine output opening area is smaller than the gas output opening area, and wherein an intermediate opening area between the gas output opening area and the turbine output opening area is continuously widening from the turbine output opening area to the gas output opening area.   
     
     
         20 . The gas refrigerating machine according to  claim 1 , wherein the housing comprises an elongated shape, wherein the input for the gas to be cooled comprises a plurality of perforations in an upper portion with respect to an operating direction of the gas refrigerating machine of the housing or a wall of the recuperator, and wherein the gas output comprises an opening in a lower portion of the housing with respect to the operating direction of the gas refrigerating machine, the opening comprising an opening area which is at least 50% of a cross-sectional area of the housing in the upper portion. 
     
     
         21 . The gas refrigerating machine according to  claim 1 ,
 wherein the compressor comprises a suction region and an output-side guide chamber, and wherein the compressor is arranged to move gas via the suction region into the compressor input from top to bottom, and to feed compressed gas from the bottom into the heat exchanger with the output-side guide chamber.   
     
     
         22 . The gas refrigerating machine according to  claim 1 , wherein the heat exchanger comprises a wedge-shaped or disc-shaped volume and a heat exchanger input is arranged on the outside of the wedge-shaped or disc-shaped volume and a heat exchanger output is arranged on the inside of the wedge-shaped or disc-shaped volume, or wherein the heat exchanger input is arranged at the bottom of the wedge-shaped or disc-shaped volume and the heat exchanger output is arranged at the top of the wedge-shaped or disc-shaped volume. 
     
     
         23 . The gas refrigerating machine according to  claim 1 , wherein the recuperator has a volume comprising a counter-flow heat exchanger structure in an outer region of the volume and a suction region in an inner region of the volume, a first recuperator input, a first recuperator output, a second recuperator input, and a second recuperator output,
 wherein the first recuperator input is arranged on an outside of the outer region,   wherein the first recuperator output is arranged at the inner region of the volume, the first recuperator output being configured to direct the gas into the suction region,   wherein the second recuperator input is arranged at the inner region of the volume,   wherein the second recuperator output is arranged at the outer region of the volume,   wherein the first recuperator input and the second recuperator output are fluidically separated in the recuperator, and   wherein the first recuperator output and the second recuperator input are fluidically separated in the recuperator.   
     
     
         24 . The gas refrigerating machine according to  claim 1 , wherein the recuperator comprises interconnected first gas channels extending from the first recuperator input to the first recuperator output, and interconnected second gas channels extending between the second recuperator input and the second recuperator output,
 wherein the interconnected first gas channels and the interconnected second gas channels are arranged in a thermal interaction,   wherein the recuperator comprises, at the second recuperator input, a first collection region connecting the interconnected second gas channels on one side and extending along the inner region of the volume and forming the second recuperator input, and a second collection region connecting the interconnected second gas channels on another side and extending along an edge portion of the outer region of the volume and forming the second recuperator output, wherein an intake wall delimits the first collection region and separates the first collection region from the suction region.   
     
     
         25 . The gas refrigerating machine according to  claim 1 , wherein the heat exchanger is arranged between the recuperator and the compressor. 
     
     
         26 . The gas refrigerating machine according to  claim 1 , wherein the turbine comprises a turbine input, the turbine input being connected to a second recuperator output via a connection region, the connection region extending around the heat exchanger. 
     
     
         27 . The gas refrigerating machine according to  claim 1 , wherein the heat exchanger is a gas-liquid heat exchanger and comprises a secondary input, a secondary output, and a conduit structure placed in a volume through which gas flows,
 wherein the conduit structure is configured so that a liquid can flow through the conduit structure, and wherein the conduit structure is coupled to the secondary input and the secondary output.   
     
     
         28 . The gas refrigerating machine according to  claim 1 , wherein the housing comprises a liquid outlet from the heat exchanger and a liquid inlet to the heat exchanger, and
 wherein the gas refrigerating machine comprises a heat sink and a circuit connecting the heat sink, the liquid inlet, and the liquid outlet, the circuit comprising a pump.   
     
     
         29 . The gas refrigerating machine according to  claim 1 ,
 wherein the recuperator comprises a volume which completely encloses a suction region, the suction region and the volume of the recuperator extending by a distance greater than 10 cm away from the compressor input, and   wherein the input for the gas to be cooled is formed by first ends of first gas channels, wherein second ends of the first gas channels open into the suction region, and wherein the first gas channels are distributed throughout the volume of the recuperator to direct gas into the suction region from multiple sides.   
     
     
         30 . The gas refrigerating machine according to  claim 1 ,
 comprising an electronics module for supplying power to a drive motor for the compressor or for providing control data to an element of the gas refrigerating machine or for acquiring sensor data from an element of the gas refrigerating machine, wherein the electronics module is disposed in a region within the housing of the gas refrigerating machine, the region being configured to cool the electronics module.   
     
     
         31 . The gas refrigerating machine according to  claim 1 , comprising an electronics module for supplying power to a drive motor for the compressor or for providing control data to an element of the gas refrigerating machine or for acquiring sensor data from an element of the gas refrigerating machine, wherein the turbine comprises a turbine output, and wherein the electronics module is disposed in a region between the turbine output and the gas output and the wall of the housing outside the gas output. 
     
     
         32 . The gas refrigerating machine according to  claim 1 , comprising an electronics module for supplying power to a drive motor for the compressor or for providing control data to an element of the gas refrigerating machine or for acquiring sensor data from an element of the gas refrigerating machine,
 wherein the electronics module is disposed in a region between a base of a compressor wheel of the compressor and a base of a turbine wheel of the turbine.   
     
     
         33 . The gas refrigerating machine according to  claim 1 , comprising an electronics module for supplying power to a drive motor for the compressor or for providing control data to an element of the gas refrigerating machine or for acquiring sensor data from an element of the gas refrigerating machine,
 wherein the electronics module is disposed on a boundary member of a turbine input of the turbine, the electronics module being further disposed outside the turbine input of the turbine.   
     
     
         34 . The gas refrigerating machine according to  claim 1 , comprising an electronics module for supplying power to a drive motor for the compressor or for providing control data to an element of the gas refrigerating machine or for acquiring sensor data from an element of the gas refrigerating machine,
 wherein the electronics module comprises an opening in a center of the electronics module and is disk-shaped and extends around a stator of a drive motor for the compressor or is formed integrally with the stator, and is disposed in a region between a base of a compressor wheel of the compressor and a base of a turbine wheel of the turbine.   
     
     
         35 . A method for operating a gas refrigerating machine comprising: an input for a gas to be cooled; a recuperator; a compressor comprising a compressor input, the compressor input being coupled to a first recuperator output; a heat exchanger; a turbine; a housing with a wall, wherein the input for the gas to be cooled is located in the wall; and a gas output located in the wall of the housing, the method comprising:
 sucking gas to be cooled through the input located in the wall of the housing; and   outputting cooled gas through the gas output located in the wall of the housing, wherein the recuperator, the compressor, the turbine and the heat exchanger are located in the housing.   
     
     
         36 . A method for manufacturing a gas refrigerating machine comprising: an input for a gas to be cooled; a recuperator comprising a first recuperator output; a compressor comprising a compressor input; a heat exchanger; a turbine; a housing comprising a wall; and a gas output, the method comprising:
 coupling the compressor input to the first recuperator output;   locating the input for the gas to be cooled in the wall;   locating the gas output in the wall, and   arranging the recuperator, the compressor, the turbine and the heat exchanger in the housing.

Join the waitlist — get patent alerts

Track US2026055932A1 — get alerts on status changes and closely related new filings.

We store only your email — no account needed. See our privacy policy.