Air conditioning system
US-2024384904-A1 · Nov 21, 2024 · US
US9823005B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9823005-B2 |
| Application number | US-201414763436-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 24, 2014 |
| Priority date | Jan 25, 2013 |
| Publication date | Nov 21, 2017 |
| Grant date | Nov 21, 2017 |
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Methods and systems for detecting and recovering from control instability caused by impeller stall in a chiller system are provided. In one embodiment, an impeller stall detection and recovery component of a chiller control unit calculates a control error signal frequency spectrum for an evaporator leaving water temperature, determines whether a high frequency signal content of the control error signal frequency spectrum exceeds acceptable limits, and adjusts a surge boundary control curve downward by a predetermined incremental value in order to resolve instability caused by impeller stall.
Opening claim text (preview).
The invention claimed is: 1. A method for detecting and recovering from control instability caused by impeller stall in a chiller system that includes a centrifugal compressor, a chiller control unit and one or more inlet guide vanes, the method comprising: calculating a chiller control error signal based on a chilled water set point temperature signal, an evaporator leaving water temperature signal, a design delta temperature signal that is indicative of a design delta temperature across an evaporator of the chiller system and a lift compensation signal, wherein calculating the chiller control error signal includes using a leaving water temperature control algorithm; determining a frequency spectrum of the chiller control error signal to obtain a controller error signal frequency spectrum signal, wherein the frequency spectrum of the chiller control error signal is determined using a fast Fourier transform algorithm; detecting, via the chiller control unit, whether an impeller stall event has occurred based on the controller error signal frequency spectrum signal; restoring stable operation of the centrifugal compressor when an impeller stall event is detected. 2. The method of claim 1 , wherein the fast Fourier transform algorithm is a 64 point fast Fourier transform algorithm. 3. The method of claim 1 , wherein detecting whether the impeller stall event has occurred based on the controller error signal frequency spectrum signal includes at least one of: a high frequency signal content of the controller error signal frequency spectrum signal exceeding a low frequency signal content of the controller error signal frequency spectrum signal; or the high frequency signal content of the controller error signal frequency spectrum signal exceeding a set point threshold level. 4. The method of claim 1 , wherein detecting whether the impeller stall event has occurred based on the controller error signal frequency spectrum signal includes both of: a high frequency signal content of the controller error signal frequency spectrum signal exceeding a low frequency signal content of the controller error signal frequency spectrum signal; and the high frequency signal content of the controller error signal frequency spectrum signal exceeding a set point threshold level. 5. The method of claim 1 , wherein restoring stable operation of the centrifugal compressor includes: operating the chiller system under a surge boundary characteristic that is incrementally smaller than a previously operated at surge boundary characteristic. 6. The method of claim 1 , wherein restoring stable operation of the centrifugal compressor includes at least one of increasing a compressor speed of the centrifugal compressor or decreasing an opening position of the one or more inlet guide vanes. 7. A chiller system comprising: a centrifugal compressor; one or more inlet guide vanes; and a chiller control unit that includes an impeller stall detection and recovery component, the impeller stall detection and recovery component includes: a control error signal module configured to calculate a chiller control error signal based on a chilled water set point temperature signal, an evaporator leaving water temperature signal, a design delta temperature signal and a lift compensation signal, a control error signal frequency spectrum module configured to determine a frequency spectrum of the chiller control error signal to obtain a controller error signal frequency spectrum signal, wherein the control error signal frequency spectrum module is configured to determine the frequency spectrum of the chiller control error signal using a fast Fourier transform algorithm, an impeller stall detection module configured to detect whether an impeller stall event has occurred based on the controller error signal frequency spectrum signal, and an impeller stall recovery module configured to restore stable operation of the centrifugal compressor when an impeller stall event is detected. 8. The chiller system of claim 7 , wherein the control error signal module is configured to calculate the chiller control error signal using a leaving water temperature control algorithm. 9. The chiller system of claim 7 , wherein the fast Fourier transform algorithm is a 64 point fast Fourier transform algorithm. 10. The chiller system of claim 7 , wherein the impeller stall detection module is configured to detect whether the impeller stall event has occurred when at least one of: a high frequency signal content of the controller error signal frequency spectrum signal exceeds a low frequency signal content of the controller error signal frequency spectrum signal, or the high frequency signal content of the controller error signal frequency spectrum signal exceeds a set point threshold level. 11. The chiller system of any of claim 7 , wherein the impeller stall detection module is configured to detect whether the impeller stall event has occurred when both of: a high frequency signal content of the controller error signal frequency spectrum signal exceeds a low frequency signal content of the controller error signal frequency spectrum signal, and the high frequency signal content of the controller error signal frequency spectrum signal exceeds a set point threshold level. 12. The chiller system of claim 7 , wherein the impeller stall recover module is configured to restore stable operation of the centrifugal compressor by operating the chiller system under a surge boundary characteristic this is incrementally smaller than a previously operated at surge boundary characteristic. 13. The chiller system of claim 7 , the impeller stall recover module is configured to restore stable operation of the centrifugal compressor by at least one of: increasing a compressor speed of the centrifugal compressor, or decreasing an opening position of the one or more inlet guide vanes. 14. The chiller system of claim 7 , wherein the design delta temperature signal is indicative of a design delta temperature across an evaporator of the chiller system.
Calculation of parameters · CPC title
for compression type machines, plants or systems · CPC title
at the inlet · CPC title
of the evaporator · CPC title
of the fluid heated by the condenser · CPC title
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