Claims
- 1. 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.
- 2. The method as defined in claim 1 wherein the plurality of circuits includes a first circuit and a second circuit, the first circuit including at least one refrigeration case and the second circuit including at least one other refrigeration case.
- 3. The method as defined in claim 2 further comprising the step of measuring the first parameter from the first circuit.
- 4. The method as defined in claim 3 further comprising the step of measuring a second parameter from the second circuit.
- 5. The method as defined in claim 3 further comprising the step of determining a first valve position for a first electronic evaporator pressure regulator associated with the first circuit based upon the first parameter.
- 6. The method as defined in claim 5 further comprising the step of determining a second valve position for a second electronic evaporator pressure regulator associated with the second circuit based upon the second parameter.
- 7. The method as defined in claim 6 further comprising the step of 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.
- 8. The method as defined in claim 2 further comprising the step of determining a first valve position for a first electronic evaporator pressure regulator associated with the first circuit in response to said step of determining a change in suction pressure set point based upon measured parameters from the lead circuit.
- 9. The method as defined in claim 1 further comprising the step of determining if the lead circuit is in defrost.
- 10. The method as defined in claim 9 further comprising the step of 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.
- 11. The method as defined in claim 10 further comprising the step of initializing a new suction pressure set point for the compressor rack based upon the new identified lead circuit.
- 12. The method as defined in claim 1 wherein the step of initializing the suction pressure set point is based upon the saturation pressure of the lead circuit set point.
- 13. The method as defined in claim 1 wherein the step of determining the change in suction pressure set point further includes performing fuzzy logic to determine the change in the suction pressure set point.
- 14. The method as defined in claim 1 further comprising the step of setting an electronic regulator valve of the lead circuit at 100% open.
- 15. The method as defined in claim 1 further comprising the step of floating at least one of the plurality of circuit temperature of circuits based upon a product simulation temperature.
- 16. The method as defined in claim 1 further comprising the step of electronically controlling an electronic regulator valve associated with the lead circuit based upon measured parameters from the lead circuit.
- 17. 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.
- 18. The method as defined in claim 17 further comprising the step of electronically controlling a compressor rack suction pressure based upon a lead circuit selected from the first circuit and the second circuit.
- 19. The method as defined in claim 18 wherein the lead circuit is selected based upon the lowest temperature set point for the first circuit and the second circuit.
- 20. The method as defined in claim 19 wherein the evaporator pressure regulator associated with the lead circuit is substantially 100% open.
- 21. The method as defined in claim 20 further comprising the step of determining a new lead circuit if the lead circuit is in defrost.
- 22. The method as defined in claim 17 wherein the first parameter and the second parameter are pressure measurements.
- 23. The method as defined in claim 22 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.
- 24. The method as defined in claim 23 further comprising the step of 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.
- 25. The method as defined in claim 24 further comprising the step of 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.
- 26. The method as defined in claim 17 wherein the first parameter and the second parameter are temperature measurements.
- 27. The method as defined in claim 26 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.
- 28. The method as defined in claim 27 further comprising the step of 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.
- 29. The method as defined in claim 28 further comprising the step of 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.
- 30. The method as defined in claim 17 further comprising the step of floating a circuit temperature of at least one of the first circuit and the second circuit based upon a simulated product temperature measurement.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of U.S. patent application Ser. No. 10/061,703 filed on Feb. 1, 2002, which is a divisional of U.S. patent application Ser. No. 09/539,563 filed on Mar. 31, 2000, which are hereby incorporated by reference.
Divisions (2)
|
Number |
Date |
Country |
Parent |
10061703 |
Feb 2002 |
US |
Child |
10146848 |
May 2002 |
US |
Parent |
09539563 |
Mar 2000 |
US |
Child |
10146848 |
May 2002 |
US |