Claims
- 1. A compressor control system, comprising:
a compressor that is selectively operable while energized in at least two states, including a first state corresponding to a first capacity and a second state corresponding to a second capacity lower than said first capacity; a load sensor for sensing a property indicative of demand for cooling; a controller coupled to said load sensor for producing a variable duty cycle control signal in which the duty cycle is a function of demand for cooling; said controller being coupled to said compressor for causing said compressor to selectively alternate between said first and second states in response to said variable duty cycle control signal, thereby adjusting the capacity of said compressor to the demand for cooling while said compressor is energized.
- 2. The control system of claim 1 wherein said compressor pumps a refrigerant under pressure and wherein said controller produces said variable duty cycle control signal with a variable cycle time that is a function of fluctuations in refrigerant pressure.
- 3. The control system of claim 1 wherein said load sensor is a temperature sensor.
- 4. The control system of claim 1 further comprising pressure sensor coupled to said controller.
- 5. The control system of claim 1 wherein said load sensor is a temperature sensor and further comprising pressure sensor coupled to said controller.
- 6. The control system of claim 1 wherein said load sensor senses a property having a first rate of change and wherein said control system further comprising second load sensor that senses a second property having a second rate of change, said second rate of change being substantially greater than said first rate of change.
- 7. The control system of claim 6 wherein said load sensor senses changes in temperature and wherein said second load sensor senses changes in pressure.
- 8. The control system of claim 1 wherein said compressor includes fluid compressing members and mechanism for selectively rendering said compressing members effective and ineffective to thereby assume said first state and said second state, respectively.
- 9. The control system of claim 1 wherein said compressor includes an electric motor and wherein said compressor is configured such that said electric motor remains energized in said first and second states.
- 10. The control system of claim 1 wherein said compressor has two mechanical elements separated by a seal, said mechanical elements being movable relative to one another to develop fluid pressure and wherein said compressor includes mechanism to selectively break said seal in response to said control signal to thereby alter said fluid pressure developed while allowing said mechanical elements to maintain substantially constant relative movement with one another.
- 11. The control system of claim 1 wherein said compressor is a scroll compressor.
- 12. The control system of claim 10 wherein said compressor is a scroll compressor and said two mechanical elements are scroll members.
- 13. A refrigeration system comprising,
a refrigeration case; an evaporator disposed in said case; a condenser and compressor coupled in fluid communication with said evaporator; said condenser being disposed on said case and having means for transferring heat to ambient; said compressor comprising a pulse width modulated variable capacity compressor; a load sensor disposed in said case a controller responsive to said load sensor and coupled to said compressor for providing a variable duty cycle control signal to said compressor whereby said compressor is modulated between first capacity and second capacity states while operating to thereby adjust the operating capacity of the refrigeration system to its thermal load.
- 14. The refrigeration system of claim 13 further comprising a second refrigeration case having a second evaporator disposed therein, said second evaporator being coupled in fluid communication with said condenser.
- 15. The refrigeration system of claim 13 further comprising a second refrigeration case having a second evaporator disposed therein, said second evaporator being coupled in fluid communication with said compressor.
- 16. The refrigeration system of claim 13 wherein said load sensor is a temperature sensor.
- 17. The refrigeration system of claim 13 wherein said controller produces said variable duty cycle control signal with a variable cycle time that is a function of fluctuations in pressure.
- 18. The refrigeration system of claim 13 further comprising pressure sensor coupled to said controller.
- 19. The refrigeration system of claim 13 further comprising refrigerant regulator valve coupled in fluid communication with said evaporator and being electrically controlled by said variable duty cycle control signal to further adjust the capacity of said refrigeration system.
- 20. The refrigeration system of claim 19 wherein said valve includes a stepper motor.
- 21. A cooling system comprising,
a housing; an evaporator disposed in said housing; a condenser and compressor coupled in fluid communication with said evaporator; said condenser being disposed on said housing and having means for transferring heat to ambient; said compressor comprising a pulse width modulated variable capacity compressor; a load sensor disposed in said case a controller responsive to said load sensor and coupled to said compressor for providing a variable duty cycle control signal to said compressor whereby said compressor is modulated between first capacity and second capacity states while operating to thereby adjust the operating capacity of the cooling system to its thermal load.
- 22. The cooling system of claim 21 further comprising a second housing having a second evaporator disposed therein, said second evaporator being coupled in fluid communication with said condenser.
- 23. The cooling system of claim 21 further comprising a second housing having a second evaporator disposed therein, said second evaporator being coupled in fluid communication with said compressor.
- 24. The cooling system of claim 21 wherein said load sensor is a temperature sensor.
- 25. The cooling system of claim 21 wherein said controller produces said variable duty cycle control signal with a variable cycle time that is a function of fluctuations in pressure.
- 26. The cooling system of claim 21 further comprising pressure sensor coupled to said controller.
- 27. The cooling system of claim 21 further comprising refrigerant regulator valve coupled in fluid communication with said evaporator and being electrically controlled by said variable duty cycle control signal to further adjust the capacity of said refrigeration system.
- 28. An adaptive self-tuning controller for a refrigerant pressure effecting component of refrigeration system, comprising:
a control processor coupled to said pressure effecting component for providing closed loop control over said component based on an error signal; said control processor including memory for storing first processing instructions for performing a control algorithm that includes at least one programmably adjustable gain factor; said control processor including memory for storing second processing instructions for adaptively changing said programmably adjustable gain factor by periodically generating a new gain factor; said second processing instructions causing said control processor to:
(a) monitor fluctuation in said error signal and generate a numeric value indicative of the percent fluctuation in said error signal over a predetermined time; (b) fuzzify said numeric value by applying a membership function to generate a set of fuzzy input values indicative of degree of membership; (c) apply a predetermined set of rules upon said fuzzy input values to generate a set of fuzzy output values, the predetermined set of rules reflecting the degree to which the gain factor associated with a given member of said membership function is to be changed; and (d) defuzzifying said fuzzy output values by a combining operation yielding said new gain factor.
- 29. The controller of claim 28 wherein said first processing instructions cause said control processor to effect proportional closed loop control and wherein said gain factor is a proportioning constant.
- 30. The controller of claim 29 wherein said first processing instructions further cause said control processor to effect integral closed loop control.
- 31. The controller of claim 28 wherein said first processing instructions cause said control processor to effect integral closed loop control and wherein said gain factor is an integrating constant.
- 32. The controller of claim 28 wherein said membership function defines a plurality of linguistic variables representing different ranges of error values.
- 33. The controller of claim 32 wherein said linguistic variables include at least three linguistic variables representing predefined, LARGE, MEDIUM and SMALL error value ranges.
- 34. The controller of claim 28 wherein said membership function defines at least three overlapping ranges of membership function values such that at least some of said numeric values indicative of percent fluctuation map onto more than one membership function value.
- 35. The controller of claim 28 wherein said second processing instructions further cause said control processor to monitor direction of fluctuation in said error signal and wherein said predetermined set of rules includes a first subset of rules for positive error signal fluctuations and a second subset of rules for negative error signal fluctuations.
- 36. The controller of claim 28 wherein said second processing instructions cause said controller to defuzzify said fuzzy output values by calculating the centroid of said fuzzy output values to derive a multiplier that is applied to said programmably adjustable gain factor to yield said new gain factor.
- 37. The controller of claim 28 wherein said pressure effecting component is a compressor.
- 38. The controller of claim 28 wherein said pressure effecting component is a valve.
- 39. The controller of claim 28 wherein said pressure effecting component is a stepper regulator valve.
- 40. A compressor control system, comprising:
a compressor that is selectively operable in at least two states, including a first state corresponding to a first capacity and a second state corresponding to a second capacity lower than said first capacity; a load sensor for sensing a property indicative of demand for cooling; a controller coupled to said load sensor for producing a control signal that cycles based on said sensed property and at a cycle time shorter than the time constant of the load; said controller being coupled to said compressor for causing said compressor to selectively alternate between said first and second states in response to said control signal such that the cumulative effect of said selective alternation adjusts the capacity of said compressor to the demand for cooling.
- 41. The control system of claim 40 wherein said control signal is a variable duty cycle control signal and wherein said duty cycle is varied in response to said sensed property.
- 42. The control system of claim 40 wherein said compressor pumps a refrigerant under pressure and wherein said controller produces said control signal with a variable cycle time that is a function of fluctuations in refrigerant pressure.
- 43. The control system of claim 40 wherein said load sensor is a temperature sensor.
- 44. The control system of claim 40 further comprising pressure sensor coupled to said controller.
- 45. The control system of claim 40 wherein said load sensor is a temperature sensor and further comprising pressure sensor coupled to said controller.
- 46. The control system of claim 40 wherein said load sensor senses a property having a first rate of change and wherein said control system further comprising second load sensor that senses a second property having a second rate of change, said second rate of change being substantially greater than said first rate of change.
- 47. The control system of claim 46 wherein said load sensor senses changes in temperature and wherein said second load sensor senses changes in pressure.
- 48. The control system of claim 40 wherein said compressor includes fluid compressing members and mechanism for selectively rendering said compressing members effective and ineffective to thereby assume said first state and said second state, respectively.
- 49. The control system of claim 40 wherein said compressor includes an electric motor and wherein said compressor is configured such that said electric motor remains energized in said first and second states.
- 50. The control system of claim 40 wherein said compressor has two mechanical elements separated by a seal, said mechanical elements being movable relative to one another to develop fluid pressure and wherein said compressor includes mechanism to selectively break said seal in response to said control signal to thereby alter said fluid pressure developed while allowing said mechanical elements to maintain substantially constant relative movement with one another.
- 51. The control system of claim 40 wherein said compressor is a scroll compressor.
- 52. The control system of claim 50 wherein said compressor is a scroll compressor and said two mechanical elements are scroll members.
- 53. The control system of claim 40 wherein said controller is coupled to said compressor such that said compressor selectively alternates between said first and second states at said cycle time.
- 54. The control system of claim 40 wherein said controller produces a control signal that cycles at a cycle time at least four times shorter than the time constant of the load.
- 55. The compressor control system of claim 1 wherein controller provides said variable duty cycle control signal that cycles at a cycle time shorter than the time constant of the load.
- 56. The compressor control system of claim 13 wherein controller provides said variable duty cycle control signal that cycles at a cycle time shorter than the time constant of the load.
- 57. The compressor control system of claim 1 wherein said first state is substantially at one hundred percent capacity and wherein said second state is substantially at zero percent capacity.
- 58. The compressor control system of claim 13 wherein said first state is substantially at one hundred percent capacity and wherein said second state is substantially at zero percent capacity.
- 59. The compressor control system of claim 21 wherein said first state is substantially at one hundred percent capacity and wherein said second state is substantially at zero percent capacity.
- 60. A diagnostic system for a compressor controller, comprising:
a controller adapted for coupling to a compressor, said controller producing a variable duty cycle control signal for adjusting the capacity of said compressor, in which the duty cycle is a function of demand for cooling; a diagnostic module coupled to said controller for monitoring and comparing said duty cycle with at least one predetermined fault value indicative of a system fault condition; and an alert module responsive to said diagnostic module for issuing an alert signal when said duty cycle bears a predetermined relationship to said fault value.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a continuation-in-part application of application Ser. No. 08/486,118, filed Jun. 7, 1995, entitled “Capacity Modulated Scroll Machine.”
Divisions (1)
|
Number |
Date |
Country |
Parent |
09524364 |
Mar 2000 |
US |
Child |
09760994 |
Jan 2001 |
US |