Claims
- 1. A method for refrigeration system control, said method comprising:
measuring a first parameter from a first circuit, where the first circuit includes at least one refrigeration case; measuring a second parameter from a second circuit, where the second circuit includes at least one refrigeration case; determining a first valve position for a first electronic evaporator pressure regulator associated with the first circuit based upon the first parameter; determining a second valve position for a second electronic evaporator pressure regulator associated with the second circuit based upon the second parameter; and electronically controlling the first evaporator pressure regulator and the second evaporator pressure regulator to control the temperature in the first circuit and the second circuit.
- 2. The method as defined in claim 1 further comprising electronically controlling a compressor rack suction pressure based upon a lead circuit selected from the first circuit and the second circuit.
- 3. The method as defined in claim 2 wherein the lead circuit is selected based upon the lowest temperature set point for the first circuit and the second circuit.
- 4. The method as defined in claim 3 wherein the evaporator pressure regulator associated with the lead circuit is substantially 100% open.
- 5. The method as defined in claim 4 further comprising determining a new lead circuit if the lead circuit is in defrost.
- 6. The method as defined in claim 1 wherein the first parameter and the second parameter are pressure measurements.
- 7. The method as defined in claim 6 wherein the first and the second evaporator pressure regulators are controlled based upon the pressure measurements and at least one of a relative humidity measurement inside a building and a sub-cooling value of a liquid refrigerant delivered to the first and second circuits.
- 8. The method as defined in claim 7 further comprising determining an error value between the pressure measurements and a circuit pressure set point derived from at least one of the relative humidity inside the building and the sub-cooling of the liquid refrigerant.
- 9. The method as defined in claim 8 further comprising determining a percent valve opening for the first and the second evaporator pressure regulators based upon the error value and electronically adjusting a valve position of the first and the second evaporator pressure regulators.
- 10. The method as defined in claim 1 wherein the first parameter and the second parameter are temperature measurements.
- 11. The method as defined in claim 10 wherein at least one of an average and a minimum/maximum of the temperature measurements is used for electronically controlling the first and second evaporator pressure regulators.
- 12. The method as defined in claim 11 further comprising determining an error value between the at least one of an average and a minimum/maximum of the temperature measurements and a circuit temperature set point.
- 13. The method as defined in claim 12 further comprising determining a percent valve opening for the first and second evaporator pressure regulators based upon the error value and electronically adjusting a valve position of the first and second evaporator pressure regulators.
- 14. The method as defined in claim 1 further comprising floating a circuit temperature of at least one of the first circuit and the second circuit based upon a simulated product temperature measurement.
- 15. A method for refrigeration system control, said method comprising:
identifying a lead circuit having a lowest temperature set point from a plurality of circuits, each circuit having at least one refrigeration case; initializing a suction pressure set point for a compressor rack having at least one compressor based upon the identified lead circuit; determining a change in suction pressure set point based upon measured parameters from the lead circuit; and updating the suction pressure set point based upon the change in suction pressure set point.
- 16. The method as defined in claim 15 further comprising determining if the lead circuit is in defrost.
- 17. The method as defined in claim 16 further comprising identifying a new lead circuit if the lead circuit is in defrost based upon the next lowest temperature set point from the plurality of circuits.
- 18. The method as defined in claim 17 further comprising initializing a new suction pressure set point for the compressor rack based upon the new identified lead circuit.
- 19. The method as defined in claim 15 wherein initializing the suction pressure set point is based upon the saturation pressure of the lead circuit set point.
- 20. The method as defined in claim 15 wherein determining the change in suction pressure set point further includes performing fuzzy logic to determine the change in the suction pressure set point.
- 21. The method as defined in claim 15 further comprising setting an electronic regulator valve of the lead circuit at 100% open.
- 22. The method as defined in claim 15 further comprising floating at least one of the plurality of circuit temperature of circuits based upon a product simulation temperature.
- 23. The method as defined in claim 15 further comprising electronically controlling an electronic regulator valve associated with the lead circuit based upon measured parameters from the lead circuit.
- 24. A method for refrigeration system control, said method comprising:
setting a maximum allowable product temperature for a circuit having at least one refrigeration case; determining a product simulated temperature for the circuit; calculating a difference between the product simulated temperature and the maximum allowable product temperature; and adjusting a temperature set point of the circuit based upon the calculated difference.
- 25. The method as defined in claim 24 further comprising decreasing the temperature set point of the circuit if the calculated difference is greater than a first limit and increasing the temperature set point of the circuit if the calculated difference is less than a second limit.
- 26. The method as defined in claim 25 further comprising maintaining the temperature set point of the circuit if the calculated difference is between the first limit and the second limit.
- 27. The method as defined in claim 24 further comprising adaptively adjusting a suction pressure set point for a compressor rack having at least one compressor.
- 28. The method as defined in claim 27 further comprising determining a lead circuit from a plurality of circuits, where each circuit has at least one refrigeration case, based upon a lowest temperature set point for the plurality of circuits.
- 29. The method as defined in claim 28 further comprising determining if the lead circuit is in defrost and selecting a new lead circuit corresponding to the next lowest temperature set point if the lead circuit is in defrost.
- 30. The method as defined in claim 24 further comprising electronically controlling an evaporator pressure regulator associated with the circuit.
- 31. The method as defined in claim 30 further comprising electronically controlling the evaporator pressure regulator based upon at least one of relative humidity (RH) inside a building and a sub-cooling value of refrigerant delivered to the circuit.
- 32. The method as defined in claim 30 further comprising electronically controlling the evaporator pressure regulator based upon the product simulation temperature.
- 33. The method as defined in claim 24 wherein the product simulation temperature is an average product simulation temperature based upon a plurality of product simulation temperatures taken over a predetermined period.
- 34. An apparatus for refrigeration system control, said apparatus comprising:
a plurality of circuits including a lead circuit, each circuit having at least one refrigeration case, said lead circuit having a lowest temperature set point from said plurality of circuits; an electronic evaporator pressure regulator in communication with each circuit, each of said electronic evaporator pressure regulators operable to control a temperature of one of said circuits; a sensor in communication with each circuit and operable to measure a parameter from said circuit; a plurality of compressors, each compressor forming a part of a compressor rack; and a controller operable to control each electronic evaporator pressure regulator to control the temperature in said plurality of circuits by determining a change in said parameter from said lead circuit and updating a set point based upon the change in said parameter.
- 35. The apparatus as defined in claim 34 wherein said electronic evaporator pressure regulator of said lead circuit is substantially one hundred percent open.
- 36. The apparatus as defined in claim 34 wherein each of said sensors in communication with each of said circuits is operable to measure a refrigerant pressure of each of said circuits.
- 37. The apparatus as defined in claim 36 wherein said evaporator pressure regulators are controlled based upon said refrigerant pressure measurements and at least one of a relative humidity measurement inside a building and a sub-cooling value of a liquid refrigerant delivered to said plurality of circuits.
- 38. The apparatus as defined in claim 37 wherein said controller determines an error value between said refrigerant pressure measurement and a circuit pressure set point derived from at least one of the relative humidity inside the building and the sub-cooling of the liquid refrigerant.
- 39. The apparatus as defined in claim 34 wherein said sensor measures temperature.
- 40. The apparatus as defined in claim 39 wherein at least one of an average of a minimum/maximum of the temperature measurement is used for electronically controlling said evaporator pressure regulators.
- 41. The apparatus as defined in claim 40 wherein said controller determines an error value between the at least one of an average and a minimum/maximum of the temperature measurements and a circuit temperature set point.
- 42. The apparatus as defined in claim 41 wherein said controller determines a percent value opening for said evaporator pressure regulators based on the error value and electronically adjusting a valve position of said plurality of evaporator pressure regulators.
- 43. The apparatus as defined in claim 39 wherein said controller floats a circuit temperature of at least one of said plurality of circuits based upon a simulated product temperature measurement.
- 44. The apparatus as defined in claim 43 wherein said controller averages product simulation temperature based on a plurality of product simulation temperatures taken over a predetermined period.
- 45. The apparatus as defined in claim 34 further comprising identifying a new lead circuit from the plurality of circuits if said lead circuit is in defrost.
- 46. The apparatus as defined in claim 45 further comprising initializing a new suction pressure set point for the compressor rack based upon said new identified lead circuit.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of U.S. patent application Ser. No. 09/539,563 filed on Mar. 31, 2000, which is hereby incorporated by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09539563 |
Mar 2000 |
US |
Child |
10061703 |
Feb 2002 |
US |