US20040089000A1 - Clutching mechanism for positive displacement air cycle system - Google Patents

Clutching mechanism for positive displacement air cycle system Download PDF

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Publication number
US20040089000A1
US20040089000A1 US10/292,857 US29285702A US2004089000A1 US 20040089000 A1 US20040089000 A1 US 20040089000A1 US 29285702 A US29285702 A US 29285702A US 2004089000 A1 US2004089000 A1 US 2004089000A1
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Prior art keywords
expander
air
compressor
passenger compartment
heat exchanger
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Abandoned
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US10/292,857
Inventor
Brian Christen
Wayne Schnaidt
Thomas Gielda
Shane Harte
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Visteon Global Technologies Inc
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Visteon Global Technologies Inc
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Priority to US10/292,857 priority Critical patent/US20040089000A1/en
Assigned to VISTEON GLOBAL TECHNOLOGIES, INC. reassignment VISTEON GLOBAL TECHNOLOGIES, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: CHRISTEN, BRIAN JOHN, GIELDA, THOMAS PAUL, HARTE, SHANE A., SCHNAIDT, WAYNE CHARLES
Publication of US20040089000A1 publication Critical patent/US20040089000A1/en
Abandoned legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60HARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
    • B60H1/00Heating, cooling or ventilating [HVAC] devices
    • B60H1/32Cooling devices
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60HARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
    • B60H1/00Heating, cooling or ventilating [HVAC] devices
    • B60H1/32Cooling devices
    • B60H1/3204Cooling devices using compression
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B9/00Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point
    • F25B9/06Compression machines, plants or systems, in which the refrigerant is air or other gas of low boiling point using expanders

Definitions

  • the present invention relates to air cycle air conditioning systems and to systems that also deliver charged air to an automobile engine.
  • Conventional air conditioning systems for conditioning air within a passenger compartment of a vehicle include a cooling and a heating system.
  • the cooling system is typically a refrigerant based vapor compression system.
  • the system includes a compressor, a condenser, an expansion device, an evaporator and a refrigerant supply.
  • air in the vehicle passenger compartment is cooled by blowing the air over the evaporator and thereby transferring heat from the air to the refrigerant.
  • the refrigerant is then cycled back to the compressor and compressed, cooled in the condenser, expanded by the expansion device and then routed back to the evaporator to complete the cycle.
  • the air heating system is also a closed system, however, it is not pressurized.
  • liquid coolant from the engine cooling system is pumped to a heat exchanger called a heater core.
  • the vehicle passenger compartment air to be heated is blown over the heater core transferring the heat from the liquid coolant in the heater core to the passenger compartment air.
  • Air cycle air conditioning systems are also well known, especially in airplanes. Air cycle air conditioning systems operate based off the compression and expansion of air. For example, an airplane has a ready supply of compressed air from the airplane's jet engine compressor. The compressed air may be expanded in a cooling turbine to provide chilled air for cooling and pressurization of the airplane's passenger compartment.
  • an air cycle air conditioning system for treating air contained within a passenger compartment of a vehicle.
  • the system includes a compressor for receiving air from the passenger compartment and compressing the air, thereby producing charged air.
  • An expander selectively coupled to the compressor for expanding the air, thereby cooling the air communicated to the passenger compartment.
  • the system includes an air-to-air heat exchanger that cools the air received by the compressor and supplies the cooled charged air to the vehicle's engine as well as to the expander.
  • the system includes an air-to-air heat exchanger having a water separator for removing a portion of water from the air passing through the heat exchanger.
  • the system includes a clutch for selectively coupling and decoupling the compressor from the expander.
  • the system includes a valve located between the heat exchanger and the expander for reducing air flow to the expander.
  • the system includes a bleed tube that connects an inlet of the expander to an outlet of the expander.
  • the expander is a positive displacement expander and a variable displacement expander.
  • variable displacement expander is a reciprocating type of expander in which a stroke of the expander may be adjusted to vary a displacement of the expander.
  • variable displacement expander is a screw type expander wherein an inlet point is varied to change a displacement of the expander.
  • a method for treating air contained within a passenger compartment of a vehicle using an air cycle air conditioning system includes receiving air from the passenger compartment and compressing the air, thereby producing charged air using a compressor, expanding the air using an expander selectively coupled to the compressor, thereby cooling the air communicated to the passenger compartment, cooling the air received by the compressor, and supplying the cooled charged air to the vehicle's engine using an air-to-air heat exchanger.
  • FIG. 1 is a schematic diagram of an air cycle air conditioning system for a vehicle, in accordance with the present invention.
  • FIG. 2 is a schematic diagram of an air cycle air conditioning system for a vehicle having a bleed line connecting an inlet of expander to an outlet of expander, in accordance with the present invention.
  • System 10 for selectively cooling or heating a passenger compartment of a vehicle is provided, in accordance with the present invention.
  • System 10 includes a compressor 12 coupled to a vehicle engine 14 through a pulley and belt drive arrangement 16 .
  • Compressor 12 is an air cycle compressor and would replace a conventional automotive air conditioning compressor.
  • system 10 includes an expander 18 , an intercooler 20 , a water separator 22 , a fan 24 and a heater core 26 .
  • Expander 18 expands the air in system 10 which lowers the temperature of the air, lowers the pressure of the air to sub-atmospheric pressure, and condenses a portion of water vapor contained in the air. Expander 18 is connected to compressor 12 through shafts 28 and 30 which are in turn coupled to a clutch mechanism 32 .
  • Clutch mechanism 32 is an electromagnetic clutch used in prior art A/C systems for engaging and disengaging the A/C compressor. However, the present invention contemplates using any other suitable clutch mechanism for engaging and disengaging expander 18 from compressor 12 . Further, the present invention contemplates other means and arrangements for selectively coupling compressor 12 to expander 18 .
  • a pulley and belt arrangement may be employed where a first pulley is fixedly and rotatably coupled to the compressor 12 and a second pulley is fixedly and rotatably coupled to expander 18 and a belt engages the pulleys to transmit a driving torque therebetween.
  • clutch mechanism 32 could be located within one of the pulleys. In operation, the clutch would be engaged to transmit driving torque from the pulley to an input shaft of the expander and disengaged to remove the driving torque form the expander.
  • expander 18 may be decoupled from compressor 12 to prevent the expander from acting like a vacuum pump.
  • An air to air heat exchanger or intercooler 20 is provided in communication with compressor 12 for lowering the temperature of hot compressed air exiting compressor 12 .
  • intercooler 20 includes a water separator for removing water condensing in the intercooler.
  • a portion of the cold and charged air is thereafter provided to engine 14 .
  • system 10 of the present invention provides supercharging of engine 14 .
  • Intercooler 20 exchanges heat contained in the pressurized air with the ambient air.
  • cold air is received by expander 18 and the air is expanded to a point or the temperature may drop below freezing.
  • Water separator 22 is provided in communication with expander 18 therefore further eliminating water from the system. Cold air from expander 18 may then be mixed with outside air by an air mixer 34 before reaching the vehicle's passenger compartment 36 . Air is then re-circulated and may be mixed with outside air by another air mixer 38 before being received by compressor 12 of system 10 .
  • Clutch 32 operates to decouple compressor 12 from expander 18 during selected operating conditions. This is a critical feature in a positive displacement system such as the present invention.
  • the flow rate of the compressor 12 is defined largely by the speed of the compressor.
  • the flow rate of the engine is a function of the intake air boost pressure (supplied by intercooler 20 ) and the engine speed.
  • the inlet pressure to the expander must be reduced. Disadvantageously, the flow through the expander is actually heated. Unchecked the temperature of the air exiting the expander rises to an unacceptable condition for the vehicle occupants.
  • a method for balancing the mass flow rate in system 10 is provided.
  • the method of the instant embodiment contemplates deactivating the expansion process by decoupling expander 18 from compressor 12 .
  • Expander 18 may be decoupled from compressor 12 , for example, by controlling clutch 32 . That is, by causing clutch 32 to disengage.
  • a method for balancing the mass flow rate is provided.
  • the inlet pressure to the expander is reduced by controlling valve 40 .
  • the method of the present invention specifies closing valve 40 to balance the mass flow rate in system 10 .
  • the work of expansion is eliminated.
  • an alternate method for balancing the mass flow rate in system 10 and avoiding the potential heat build up in the expander 18 is to close valve 40 and deactivate the expansion process.
  • the in-built positive displacement process can only occur if the working volume is completely contained.
  • the expansion process may be deactivated by allowing atmospheric air to bleed back to the expander inlet and the to the expansion chamber itself.
  • the atmospheric air is bleed back to the expander inlet 52 and the to the expansion chamber by a bleed line 50 .
  • the air in system 10 is likely to heat up, due to the inefficiencies of the compressor, the air will be sufficiently lower so that high heat will not be generated during average engine boosting periods.
  • a relatively smooth transition for the air flow into the cabin is provided by the method of the present invention, as compared with the instantaneous effect of activating clutch 32 .
  • an alternate embodiment of a method for balancing the mass flow rate in system 10 and avoiding the potential heat build up in the expander 18 is provided.
  • the method of the instant embodiment includes varying the capacity of the expander.
  • varying the capacity is most effectively achieved by varying the stroke.
  • varying the capacity is most effectively achieved by changing the inlet point of the variable pitch expander.
  • care must be taken to keep the in-built expansion ratio at the appropriate level.
  • the inlet point as well as the outlet point would need to be controlled.
  • the present invention has many advantages and benefits over the prior art.
  • the present invention provides an air cycle air conditioning system that also serves as an engine boosting mechanism and further provides a mechanism whereby the flow capacity of the expander may be reduced.
  • the present invention provides a simple to control and simple to implement clutch mechanism to control the flow capacity of the expander.
  • flow valves are activated to balance the mass air flow in system 10 and avoid the potential heat build up in the expander.

Abstract

An air cycle air conditioning system for treating air contained within a passenger compartment of a vehicle. The system includes a compressor for receiving air from the passenger compartment and compressing the air, thereby producing charged air. Further, an expander is provided selectively coupled to the compressor for expanding the air and cooling the air communicated to the passenger compartment. The system further includes an air-to-air heat exchanger that cools the air received by the compressor-and supplies cooled charged air to the vehicle's engine.

Description

    TECHNICAL FIELD
  • The present invention relates to air cycle air conditioning systems and to systems that also deliver charged air to an automobile engine. [0001]
  • BACKGROUND
  • Conventional air conditioning systems for conditioning air within a passenger compartment of a vehicle include a cooling and a heating system. The cooling system is typically a refrigerant based vapor compression system. The system includes a compressor, a condenser, an expansion device, an evaporator and a refrigerant supply. In operation, air in the vehicle passenger compartment is cooled by blowing the air over the evaporator and thereby transferring heat from the air to the refrigerant. The refrigerant is then cycled back to the compressor and compressed, cooled in the condenser, expanded by the expansion device and then routed back to the evaporator to complete the cycle. [0002]
  • The air heating system is also a closed system, however, it is not pressurized. Typically, liquid coolant from the engine cooling system is pumped to a heat exchanger called a heater core. The vehicle passenger compartment air to be heated is blown over the heater core transferring the heat from the liquid coolant in the heater core to the passenger compartment air. [0003]
  • Air cycle air conditioning systems are also well known, especially in airplanes. Air cycle air conditioning systems operate based off the compression and expansion of air. For example, an airplane has a ready supply of compressed air from the airplane's jet engine compressor. The compressed air may be expanded in a cooling turbine to provide chilled air for cooling and pressurization of the airplane's passenger compartment. [0004]
  • Therefore, it would be desirable to provide an air cycle air conditioning system for an automobile. [0005]
  • SUMMARY
  • In an aspect of the present invention, an air cycle air conditioning system for treating air contained within a passenger compartment of a vehicle is provided. The system includes a compressor for receiving air from the passenger compartment and compressing the air, thereby producing charged air. An expander selectively coupled to the compressor for expanding the air, thereby cooling the air communicated to the passenger compartment. The system includes an air-to-air heat exchanger that cools the air received by the compressor and supplies the cooled charged air to the vehicle's engine as well as to the expander. [0006]
  • In another aspect of the present invention, the system includes an air-to-air heat exchanger having a water separator for removing a portion of water from the air passing through the heat exchanger. [0007]
  • In another aspect of the present invention, the system includes a clutch for selectively coupling and decoupling the compressor from the expander. [0008]
  • In yet another aspect of the present invention, the system includes a valve located between the heat exchanger and the expander for reducing air flow to the expander. [0009]
  • In still another aspect of the present invention, the system includes a bleed tube that connects an inlet of the expander to an outlet of the expander. [0010]
  • In still another aspect of the present invention, the expander is a positive displacement expander and a variable displacement expander. [0011]
  • In yet another aspect of the present invention, the variable displacement expander is a reciprocating type of expander in which a stroke of the expander may be adjusted to vary a displacement of the expander. [0012]
  • In yet another aspect of the present invention, the variable displacement expander is a screw type expander wherein an inlet point is varied to change a displacement of the expander. [0013]
  • In still another aspect of the present invention, a method for treating air contained within a passenger compartment of a vehicle using an air cycle air conditioning system is provided. The method includes receiving air from the passenger compartment and compressing the air, thereby producing charged air using a compressor, expanding the air using an expander selectively coupled to the compressor, thereby cooling the air communicated to the passenger compartment, cooling the air received by the compressor, and supplying the cooled charged air to the vehicle's engine using an air-to-air heat exchanger. [0014]
  • These and other aspects and advantages of the present invention will become apparent upon reading the following detailed description of the invention in combination with the accompanying drawings. [0015]
  • BRIEF DESCRIPTION OF THE FIGURES
  • FIG. 1 is a schematic diagram of an air cycle air conditioning system for a vehicle, in accordance with the present invention; and [0016]
  • FIG. 2 is a schematic diagram of an air cycle air conditioning system for a vehicle having a bleed line connecting an inlet of expander to an outlet of expander, in accordance with the present invention.[0017]
  • DETAILED DESCRIPTION
  • Referring now to FIG. 1, an air cycle [0018] air conditioning system 10 for selectively cooling or heating a passenger compartment of a vehicle is provided, in accordance with the present invention. System 10 includes a compressor 12 coupled to a vehicle engine 14 through a pulley and belt drive arrangement 16. Compressor 12 is an air cycle compressor and would replace a conventional automotive air conditioning compressor. Further, system 10 includes an expander 18, an intercooler 20, a water separator 22, a fan 24 and a heater core 26.
  • [0019] Expander 18 expands the air in system 10 which lowers the temperature of the air, lowers the pressure of the air to sub-atmospheric pressure, and condenses a portion of water vapor contained in the air. Expander 18 is connected to compressor 12 through shafts 28 and 30 which are in turn coupled to a clutch mechanism 32. Clutch mechanism 32 is an electromagnetic clutch used in prior art A/C systems for engaging and disengaging the A/C compressor. However, the present invention contemplates using any other suitable clutch mechanism for engaging and disengaging expander 18 from compressor 12. Further, the present invention contemplates other means and arrangements for selectively coupling compressor 12 to expander 18. For example, a pulley and belt arrangement may be employed where a first pulley is fixedly and rotatably coupled to the compressor 12 and a second pulley is fixedly and rotatably coupled to expander 18 and a belt engages the pulleys to transmit a driving torque therebetween. Additionally, in this pulley and belt arrangement, clutch mechanism 32 could be located within one of the pulleys. In operation, the clutch would be engaged to transmit driving torque from the pulley to an input shaft of the expander and disengaged to remove the driving torque form the expander.
  • During selective operation, work done by the expanding air within [0020] expander 18 may be directed back to compressor 12 to increase the overall efficiency of system 10. Alternatively, expander 18 may be decoupled from compressor 12 to prevent the expander from acting like a vacuum pump.
  • An air to air heat exchanger or [0021] intercooler 20 is provided in communication with compressor 12 for lowering the temperature of hot compressed air exiting compressor 12. Typically, intercooler 20 includes a water separator for removing water condensing in the intercooler. At an exit of intercooler 20 a portion of the cold and charged air is thereafter provided to engine 14. Thus, system 10 of the present invention provides supercharging of engine 14. Intercooler 20 exchanges heat contained in the pressurized air with the ambient air. Thus, cold air is received by expander 18 and the air is expanded to a point or the temperature may drop below freezing.
  • [0022] Water separator 22 is provided in communication with expander 18 therefore further eliminating water from the system. Cold air from expander 18 may then be mixed with outside air by an air mixer 34 before reaching the vehicle's passenger compartment 36. Air is then re-circulated and may be mixed with outside air by another air mixer 38 before being received by compressor 12 of system 10.
  • Clutch [0023] 32 operates to decouple compressor 12 from expander 18 during selected operating conditions. This is a critical feature in a positive displacement system such as the present invention. The flow rate of the compressor 12 is defined largely by the speed of the compressor. The flow rate of the engine is a function of the intake air boost pressure (supplied by intercooler 20) and the engine speed. To balance the mass flow rate, the inlet pressure to the expander must be reduced. Disadvantageously, the flow through the expander is actually heated. Unchecked the temperature of the air exiting the expander rises to an unacceptable condition for the vehicle occupants.
  • In an embodiment of the present invention a method for balancing the mass flow rate in [0024] system 10 is provided. The method of the instant embodiment contemplates deactivating the expansion process by decoupling expander 18 from compressor 12. Expander 18 may be decoupled from compressor 12, for example, by controlling clutch 32. That is, by causing clutch 32 to disengage.
  • In another embodiment of the invention, a method for balancing the mass flow rate is provided. The inlet pressure to the expander is reduced by controlling [0025] valve 40. More specifically, the method of the present invention specifies closing valve 40 to balance the mass flow rate in system 10. Thus, the work of expansion is eliminated.
  • In yet another embodiment of the present invention, an alternate method for balancing the mass flow rate in [0026] system 10 and avoiding the potential heat build up in the expander 18 is to close valve 40 and deactivate the expansion process. The in-built positive displacement process can only occur if the working volume is completely contained. Thus, as shown in FIG. 2, the expansion process may be deactivated by allowing atmospheric air to bleed back to the expander inlet and the to the expansion chamber itself. In the present embodiment, the atmospheric air is bleed back to the expander inlet 52 and the to the expansion chamber by a bleed line 50. Although, the air in system 10 is likely to heat up, due to the inefficiencies of the compressor, the air will be sufficiently lower so that high heat will not be generated during average engine boosting periods. Advantageously, a relatively smooth transition for the air flow into the cabin is provided by the method of the present invention, as compared with the instantaneous effect of activating clutch 32.
  • In still another embodiment of the present invention, an alternate embodiment of a method for balancing the mass flow rate in [0027] system 10 and avoiding the potential heat build up in the expander 18 is provided. The method of the instant embodiment includes varying the capacity of the expander. In a reciprocating type expander, varying the capacity is most effectively achieved by varying the stroke. In a screw type of expander, varying the capacity is most effectively achieved by changing the inlet point of the variable pitch expander. However, care must be taken to keep the in-built expansion ratio at the appropriate level. In the case of a screw type expander the inlet point as well as the outlet point would need to be controlled.
  • The present invention has many advantages and benefits over the prior art. For example, the present invention provides an air cycle air conditioning system that also serves as an engine boosting mechanism and further provides a mechanism whereby the flow capacity of the expander may be reduced. Moreover the present invention provides a simple to control and simple to implement clutch mechanism to control the flow capacity of the expander. In other embodiments of the present invention flow valves are activated to balance the mass air flow in [0028] system 10 and avoid the potential heat build up in the expander.
  • As any person skilled in the art of air cycle air conditioning systems and to systems that also delivery charged air to an automobile engine will recognize from the previous detailed description and from the figures and claims, modifications and changes can be made to the preferred embodiments of the invention without departing from the scope of this invention defined in the following claims. [0029]

Claims (17)

1. An air cycle air conditioning system for treating air contained within a passenger compartment of a vehicle, the system comprising:
a compressor for receiving air from the passenger compartment and compressing the air, thereby producing charged air;
an expander selectively coupled to the compressor for expanding the air, thereby cooling the air communicated to the passenger compartment; and
an air-to-air heat exchanger, wherein the heat exchanger cools the air received by the compressor and supplies the cooled charged air to the vehicle's engine.
2. The system of claim 1 wherein the air-to-air heat exchanger further comprises a water separator for removing a portion of water from the air passing through the heat exchanger.
3. The system of claim 1 further comprising a clutch for selectively coupling and decoupling the compressor from the expander.
4. The system of claim 1 further comprising a valve located between the heat exchanger and the expander for reducing air flow to the expander.
5. The system of claim 1 further comprising a bleed tube that connects an inlet of the expander to an outlet of the expander.
6. The system of claim 1 wherein the expander is a positive displacement expander.
7. The system of claim 1 wherein the expander is a variable displacement expander.
8. The system of claim 7 wherein the variable displacement expander is a reciprocating type of expander wherein a stroke of the expander may be adjusted to vary a displacement of the expander.
9. The system of claim 7 wherein the variable displacement expander is a screw type expander wherein an inlet point is varied to change a displacement of the expander.
10. A method for treating air contained within a passenger compartment of a vehicle using an air cycle air conditioning system, the method comprising:
receiving air from the passenger compartment and compressing the air, thereby producing charged air using a compressor;
expanding the air using an expander selectively coupled to the compressor for, thereby cooling the air communicated to the passenger compartment;
cooling the air received by the compressor; and
supplying the cooled charged air to the vehicle's engine using an air-to-air heat exchanger.
11. The method of claim 10 further comprising deactivating the expansion process carried out by the expander by decoupling the expander from the compressor when the expander starts to heat the air.
12. The method of claim 10 further comprising deactivating an expansion process carried out by the expander by regulating a valve located upstream of the expander when the expander starts to heat the air.
13. The method of claim 10 further comprising removing a portion of water from the air passing through the heat exchanger.
14. The method of claim 10 further comprising selectively coupling and decoupling the compressor from the expander using a clutch to regulate an expansion process carried out by the expander.
15. The method of claim 10 further comprising redirecting air from an inlet of the expander to an outlet of the expander to regulate an expansion process carried out by the expander.
16. The method of claim 10 further comprising adjusting a variable displacement expander to regulate an expansion process carried out by the expander wherein the variable displacement expander is a reciprocating type of expander and wherein a stroke of the expander is varied to change a displacement of the expander.
17. The method of claim 10 further comprising adjusting a variable displacement expander to regulate an expansion process carried out by the expander, wherein the variable displacement expander is a screw type expander wherein an inlet point is varied to change a displacement of the expander.
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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4015438A (en) * 1975-08-29 1977-04-05 The Garrett Corporation Air cycle air conditioning system for vehicles
US4246759A (en) * 1976-04-28 1981-01-27 Abg-Semca S.A. Method and apparatus for conditioning air
US4262495A (en) * 1979-09-20 1981-04-21 The Boeing Company Cabin-air recirculation system powered by cabin-to-ambient pressure differential
US5628203A (en) * 1993-03-18 1997-05-13 Hagenuk Fahrzeugklima Gmbh Combined cooling and heating process and device for conditioning a room

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4015438A (en) * 1975-08-29 1977-04-05 The Garrett Corporation Air cycle air conditioning system for vehicles
US4246759A (en) * 1976-04-28 1981-01-27 Abg-Semca S.A. Method and apparatus for conditioning air
US4262495A (en) * 1979-09-20 1981-04-21 The Boeing Company Cabin-air recirculation system powered by cabin-to-ambient pressure differential
US5628203A (en) * 1993-03-18 1997-05-13 Hagenuk Fahrzeugklima Gmbh Combined cooling and heating process and device for conditioning a room

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Owner name: VISTEON GLOBAL TECHNOLOGIES, INC., MICHIGAN

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:CHRISTEN, BRIAN JOHN;SCHNAIDT, WAYNE CHARLES;GIELDA, THOMAS PAUL;AND OTHERS;REEL/FRAME:013493/0343

Effective date: 20021111

STCB Information on status: application discontinuation

Free format text: EXPRESSLY ABANDONED -- DURING EXAMINATION