Maintaining superheat conditions in a compressor

Information

  • Patent Grant
  • 11624539
  • Patent Number
    11,624,539
  • Date Filed
    Friday, January 17, 2020
    5 years ago
  • Date Issued
    Tuesday, April 11, 2023
    a year ago
Abstract
An illustrative example refrigerant system includes a compressor configured to pressurize a refrigerant fluid. The compressor includes a sump portion. A heater is situated to heat at least the sump portion. A controller is configured to selectively operate the heater to apply heat to at least the sump portion while the compressor is off to establish and maintain a superheat condition in the compressor.
Description
BACKGROUND

Air conditioning and refrigeration systems are well known. A typical refrigerant circuit includes a compressor, a condenser, an expansion valve and an evaporator. While such circuits have proven useful and reliable, there are certain conditions that may occur that can adversely affect the system.


For example, under some conditions, such as when the system is idle or shut down, liquid refrigerant tends to migrate to the coldest parts of the system. The compressor is often the coldest component because it is typically within the outdoor equipment. If liquid refrigerant is left in the compressor it is possible for the liquid refrigerant to mix with oil in the compressor. One problem associated with such a mixture is that it may develop into a foam when the compressor begins to operate, and oil may be introduced into other portions of the circuit, depleting the oil in the compressor and increasing the risk of damage or premature wear of compression elements. Another problem that may arise is that the refrigerant may dilute the lubricating capacity of the oil, which is needed for proper compressor operation over time.


SUMMARY

An illustrative example embodiment of a refrigerant system includes a compressor configured to pressurize a refrigerant fluid. The compressor includes a sump portion. A heater is situated to heat at least the sump portion. A controller is configured to selectively operate the heater to apply heat to at least the sump portion while the compressor is off to maintain a superheat condition in the compressor.


In an embodiment having one or more features of the system of the previous paragraph, the controller is configured to determine whether the superheat condition exists in the compressor based on a temperature and a pressure associated with the compressor.


In an embodiment having one or more features of the system of any of the previous paragraphs, the compressor includes a shell and the pressure is inside the shell.


In an embodiment having one or more features of the system of any of the previous paragraphs, the temperature is at least one of inside or on the shell.


In an embodiment having one or more features of the system of any of the previous paragraphs, the controller is configured to determine a minimum temperature to maintain the superheat condition based on the pressure.


In an embodiment having one or more features of the system of any of the previous paragraphs, the controller is configured to determine at least one of the temperature and the pressure based on a temperature or pressure of another component of the refrigerant system in fluid communication with the compressor.


In an embodiment having one or more features of the system of any of the previous paragraphs, the controller is configured to operate the heater to apply a first amount of heat when a current temperature of the compressor is below a minimum temperature needed for the superheat condition, the controller is configured to operate the heater to apply a second amount of heat when the superheat condition exists, and the first amount of heat is greater than the second amount of heat.


An illustrative example method of controlling a temperature of a compressor of a refrigerant system includes operating a heater for heating at least a sump portion of the compressor while the compressor is off to maintain a superheat condition in the compressor.


An embodiment having one or more features of the method of the previous paragraph includes determining whether the superheat condition exists in the compressor based on a temperature and a pressure associated with the compressor.


In an embodiment having one or more features of the method of any of the previous paragraphs, the compressor includes a shell and the pressure is inside the shell.


In an embodiment having one or more features of the method of any of the previous paragraphs, the temperature is at least one of inside or on the shell.


An embodiment having one or more features of the method of any of the previous paragraphs includes determining a minimum temperature to maintain the superheat condition based on the pressure.


An embodiment having one or more features of the method of any of the previous paragraphs includes determining at least one of the temperature and the pressure based on a temperature or pressure of another component of the refrigerant system in fluid communication with the compressor


An embodiment having one or more features of the method of any of the previous paragraphs includes operating the heater to apply a first amount of heat when a current temperature of the compressor is below a minimum temperature needed for the superheat condition and operating the heater to apply a second amount of heat when the superheat condition exists. The first amount of heat is greater than the second amount of heat.


An illustrative example refrigerant system controller includes a processor and memory including instructions that are executable by the processor to operate a heater for heating at least a sump portion of a compressor while the compressor is off to maintain a superheat condition in the compressor.


In an embodiment having one or more features of the controller of the previous paragraph, the instructions include instructions that are executable by the processor to determine whether the superheat condition exists in the compressor based on a temperature and a pressure associated with the compressor.


In an embodiment having one or more features of the controller of any of the previous paragraphs, the instructions include instructions that are executable by the processor to determine a minimum temperature to maintain the superheat condition based on the pressure.


In an embodiment having one or more features of the controller of any of the previous paragraphs, the instructions include instructions that are executable by the processor to determine at least one of the temperature and the pressure based on a temperature or pressure of another component of the refrigerant system in fluid communication with the compressor.


In an embodiment having one or more features of the controller of any of the previous paragraphs, the compressor includes a shell, the pressure is inside the shell, and the temperature is at least one of inside or on the shell.


In an embodiment having one or more features of the controller of any of the previous paragraphs, the instructions include instructions that are executable by the processor to operate the heater to apply a first amount of heat when a current temperature of the compressor is below a minimum temperature needed for the superheat condition, and operate the heater to apply a second amount of heat when the superheat condition exists. The first amount of heat is greater than the second amount of heat.


The various features and advantages of at least one disclosed example embodiment will become apparent to those skilled in the art from the following detailed description. The drawings that accompany the detailed description can be briefly described as follows.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 schematically illustrates selected portions of a refrigerant system according to an embodiment of the present disclosure.



FIG. 2 is a flow chart diagram summarizing an example control method according to an embodiment of the present disclosure.





DETAILED DESCRIPTION


FIG. 1 schematically illustrates a system 20 that includes a refrigerant circuit capable of operating as a heat pump or providing air conditioning or refrigeration, for example. The refrigerant circuit includes a first heat exchanger 22, a compressor 24, a second heat exchanger 26 and an expansion valve 28 that operate in a known manner. In some implementations, the first heat exchanger 22 is configured to be situated within a temperature conditioned space, such as a building or a residence, and the second heat exchanger 26 is configured to be situated outside the space. The direction of refrigerant fluid flow through the circuit will be consistent with the intended operation as a heat pump or air conditioner.


A controller 30, which includes a processor or another computing device and memory, is configured to control operation of the compressor. In some situations, the compressor 24 remains idle or inoperative. Under certain circumstances, such as when cooling is needed, the controller 30 turns on the compressor 24 and causes it to operate such that the compressor 24 pressurizes refrigerant fluid within the circuit in a known manner.


A heater 32 is associated with the compressor 24. In the illustrated example system, the compressor 24 includes a sump portion 34 and a shell 36. The heater 32 is situated to heat at least the sump portion 34 of the compressor 24. The controller 30 is configured to selectively operate the heater 32. While the compressor 24 is off, the controller 30 causes the heater 32 to operate to maintain a superheat condition in the compressor 24.



FIG. 2 is a flowchart diagram 40 that summarizes an example control strategy. At 42, the compressor 24 turns off, which may be based on a command from the controller 30.


The controller 30 determines a temperature and a pressure associated with the compressor 24 and, at 44, determines if the temperature and pressure correspond to a superheat condition in the compressor 24. Although not illustrated, known temperature and pressure sensors may be included in various locations within the system 20 to provide such information to the controller 30. In the illustrated example embodiment, the controller 30 determines a pressure within the shell 36 of the compressor 24 and a temperature on or in the shell 36. In some embodiments, the controller 30 determines a pressure near the compressor 24 and a corresponding temperature.


The controller 30 uses the temperature and pressure information to determine whether a superheat condition exists in the compressor 24. A superheat condition is that which includes a temperature and pressure that is above the saturation point of the refrigerant. The superheat condition ensures that any refrigerant in the compressor 24 is in a vapor state and no liquid refrigerant is allowed to accumulate in the compressor 24. There are known pressure and temperature relationships that correspond to superheat conditions and the controller 30 uses at least one such relationship to determine whether the determined temperature satisfies a minimum temperature requirement to maintain superheat conditions given the determined pressure.


At 46, the controller 30 causes the heater 32 to operate to apply a first amount of heat when the temperature and pressure do not correspond to a superheat condition. The first amount of heat is intended to raise the temperature of at least the sump portion 34 of the compressor 24 to establish superheat conditions in the compressor 24. The first amount of heat may be sufficient, for example, to vaporize any liquid refrigerant in the compressor 24.


The controller 30 continues to monitor the pressure and temperature at 44 until a superheat condition exists in the compressor 24. When that condition exists, the controller 30 operates the heater at 48 to apply a second, lower amount of heat to maintain the superheat condition in the compressor 24.


In the illustrated example embodiment, the controller 30 continues the operation of the heater 32 as long as the compressor is off. The controller 30 in some embodiments dynamically adjusts the heat supplied by the heater 32 to maintain the superheat condition in the compressor 24 while using as little energy as possible.


One aspect of the illustrated example embodiment is that it minimizes or eliminates the possibility of liquid refrigerant collecting in the compressor 24 while the compressor is off. Maintaining a superheat condition in the compressor 24 also minimizes or eliminates the possibility of refrigerant condensation as the compressor 24 starts up at the beginning of a subsequent operating cycle. Keeping liquid refrigerant out of the compressor 24 enhances system efficiency and extends the useful life of the compressor components and the oil used to lubricate those components. The example embodiment is also more energy efficient than systems that apply heat for other reasons or based on other conditions because only as much heat as is needed to maintain a superheat condition in the compressor 24 will be applied.


The preceding description is exemplary rather than limiting in nature. Variations and modifications to the disclosed examples may become apparent to those skilled in the art that do not necessarily depart from the essence of this invention. The scope of legal protection given to this invention can only be determined by studying the following claims.

Claims
  • 1. A refrigerant system, comprising: a compressor configured to pressurize a refrigerant fluid, the compressor including a sump portion;a heater situated to heat at least the sump portion; anda controller that is configured to selectively operate the heater to apply heat to at least the sump portion while the compressor is off to maintain a superheat condition in the compressor and determine whether the superheat condition exists in the compressor based on a temperature and a pressure associated with the compressor,wherein the compressor includes a shell and the pressure is inside the shell.
  • 2. The refrigerant system of claim 1, wherein the temperature is at least one of inside or on the shell.
  • 3. The refrigerant system of claim 1, wherein the controller is configured to determine a minimum temperature to maintain the superheat condition based on the pressure.
  • 4. The refrigerant system of claim 1, wherein the controller is configured to determine at least one of the temperature and the pressure based on a temperature or pressure of another component of the refrigerant system in fluid communication with the compressor.
  • 5. The refrigerant system of claim 1, wherein the controller is configured to operate the heater to apply a first amount of heat when a current temperature of the compressor is below a minimum temperature needed for the superheat condition;the controller is configured to operate the heater to apply a second amount of heat when the superheat condition exists; andthe first amount of heat is greater than the second amount of heat.
  • 6. A method of controlling a temperature of a compressor in a refrigerant system, the method comprising: operating a heater for heating at least a sump portion of the compressor while the compressor is off to maintain a superheat condition in the compressor,determining whether the superheat condition exists in the compressor based on a temperature and a pressure associated with the compressor, anddetermining a minimum temperature to maintain the superheat condition based on the pressure.
  • 7. The method of claim 6, wherein the compressor includes a shell; andthe pressure is inside the shell.
  • 8. The method of claim 7, wherein the temperature is at least one of inside or on the shell.
  • 9. The method of claim 6, comprising determining at least one of the temperature and the pressure based on a temperature or pressure of another component of the refrigerant system in fluid communication with the compressor.
  • 10. The method of claim 6, comprising operating the heater to apply a first amount of heat when a current temperature of the compressor is below a minimum temperature needed for the superheat condition; andoperating the heater to apply a second amount of heat when the superheat condition exists;wherein the first amount of heat is greater than the second amount of heat.
  • 11. A refrigerant system controller comprising a processor and memory including instructions that are executable by the processor to operate a heater for heating at least a sump portion of a compressor while the compressor is off to maintain a superheat condition in the compressor, the instructions including instructions that are executable by the processor to operate the heater to apply a first amount of heat when a current temperature of the compressor is below a minimum temperature needed for the superheat condition and operate the heater to apply a second amount of heat when the superheat condition exists, wherein the first amount of heat is greater than the second amount of heat.
  • 12. The refrigerant system controller of claim 11, wherein the instructions include instructions that are executable by the processor to determine whether the superheat condition exists in the compressor based on a temperature and a pressure associated with the compressor.
  • 13. The refrigerant system controller of claim 12, wherein the instructions include instructions that are executable by the processor to determine a minimum temperature to maintain the superheat condition based on the pressure.
  • 14. The refrigerant system controller of claim 12, wherein the instructions include instructions that are executable by the processor to determine at least one of the temperature and the pressure based on a temperature or pressure of another component of the refrigerant system in fluid communication with the compressor.
  • 15. The refrigerant system controller of claim 12, wherein the compressor includes a shell;the pressure is inside the shell; andthe temperature is at least one of inside or on the shell.
  • 16. A refrigerant system, comprising: a compressor configured to pressurize a refrigerant fluid, the compressor including a sump portion;a heater situated to heat at least the sump portion; anda controller that is configured to: selectively operate the heater to apply heat to at least the sump portion while the compressor is off to maintain a superheat condition in the compressor,operating the heater to apply a first amount of heat when a current temperature of the compressor is below a minimum temperature needed for the superheat condition, andoperating the heater to apply a second amount of heat when the superheat condition exists, wherein the first amount of heat is greater than the second amount of heat.
  • 17. The refrigerant system of claim 16, wherein the controller is configured to determine a minimum temperature to maintain the superheat condition based on the pressure.
  • 18. The refrigerant system of claim 16, wherein the controller is configured to determine whether the superheat condition exists in the compressor based on a temperature and a pressure associated with the compressor.
  • 19. The refrigerant system of claim 18, wherein the compressor includes a shell,the pressure is inside the shell, andthe temperature is at least one of inside or on the shell.
  • 20. The refrigerant system of claim 16, wherein the controller is configured to determine a minimum temperature to maintain the superheat condition based on the pressure.
CROSS REFERENCE TO RELATED APPLICATION

This application claims priority to U.S. Provisional Application No. 62/801,774, filed on Feb. 6, 2019.

US Referenced Citations (39)
Number Name Date Kind
2107887 Davenport Feb 1938 A
3133429 Griffin May 1964 A
3705499 Mount et al. Dec 1972 A
4066869 Apoloo et al. Jan 1978 A
4236379 Mueller Dec 1980 A
4888957 Chmielewski Dec 1989 A
5062277 Heitmann et al. Nov 1991 A
5230222 Erbs Jul 1993 A
5369958 Kasai Dec 1994 A
6490882 Tipton Dec 2002 B2
6834513 O'Brien et al. Dec 2004 B2
6886354 Dudley May 2005 B2
6925823 Lifson et al. Aug 2005 B2
8720212 Wakuta et al. May 2014 B2
8734125 McSweeney et al. May 2014 B2
9181939 Pham Nov 2015 B2
9353738 Ramayya May 2016 B2
9551357 Waller Jan 2017 B2
9851135 Pham Dec 2017 B2
9879894 Ramayya Jan 2018 B2
9897360 Yura Feb 2018 B2
9903627 Fraser et al. Feb 2018 B2
9915258 Perez et al. Mar 2018 B2
9939184 Yura et al. Apr 2018 B2
10024591 Goel et al. Jul 2018 B2
10047965 Mackey et al. Aug 2018 B2
10119734 Guldali et al. Nov 2018 B2
20100125368 Bailey et al. May 2010 A1
20140000295 Schuster Jan 2014 A1
20140138451 Pham May 2014 A1
20150185197 Liang et al. Jul 2015 A1
20150276276 Goel et al. Oct 2015 A1
20150330651 Goel Nov 2015 A1
20150330688 Goel et al. Nov 2015 A1
20160265798 Havard, Jr. et al. Sep 2016 A1
20160327323 Goel Nov 2016 A1
20170299240 Mercer Oct 2017 A1
20180080694 Kihara et al. Mar 2018 A1
20200248944 Cluff Aug 2020 A1
Foreign Referenced Citations (5)
Number Date Country
105466095 Apr 2016 CN
106440589 Feb 2017 CN
107255069 Oct 2017 CN
2051024 Jun 2017 EP
2009096620 Aug 2009 WO
Non-Patent Literature Citations (1)
Entry
“Superhead, n.” OED Online. Dec. 2021. Oxford University Press. https://www.oed.com/view/Entry/314183?rskey=SrP0sk&result=1&isAdvanced=false (accessed Dec. 19, 2021). (Year: 2021).
Related Publications (1)
Number Date Country
20200248944 A1 Aug 2020 US
Provisional Applications (1)
Number Date Country
62801774 Feb 2019 US