Claims
- 1. A controller for a compressor, characterized by:
- first means for sensing fluid flow properties in a fluid flow path around a compressor flow axis to produce first signals that manifest circumferential asymmetry of said fluid flow;
- second means for providing a second signal that manifests the time rate of change of the mass flow of said fluid in the flow path;
- signal processing means comprising means for a providing a first processor signal from said first signals with a value that manifests the magnitude of said circumferential asymmetry; and for adding said first processing signal with said second signal to produce a control signal; and
- third means for modifying said fluid flow as function of the magnitude of said control signal.
- 2. The controller described in claim 1, further characterized in that said first processor signal manifests the first spatial Fourier coefficient for said circumferential asymmetry.
- 3. The controller described in claim 2, further characterized in that said first processor signal manifests the square of the first spatial Fourier coefficient for said circumferential asymmetry.
- 4. The controller described in claim 2, further characterized in that said first means comprises a plurality of static pressure sensors located along the circumference of said flow path.
- 5. The controller described in claim 3, further characterized in that said second means comprises a total pressure sensor located in said flow path.
- 6. The controller described in claim 1, further characterized in that said signal processor comprises means for producing a second processor signal that manifests the integral of said first processor signal and for adding said first processor signal, said second processor signal and said second signal to produce said control signal.
- 7. The controller described in claim 1, further characterized in that said signal processor comprises means for producing a second processor signal that manifests the integral of the difference between said first processor signal and a stored value for said first processor signal and for adding said first processor signal, said second processor signal and said second signal to produce said control signal.
- 8. The controller described in claim 7, further characterized in that said signal processor comprises means for producing said second processor signal at a constant minimum value greater than or equal to zero when said integral is less than a first range of values and a constant first maximum value when said integral is greater than said first range of values.
- 9. The controller described in claim 6, further characterized in that said first processor signal manifests the first spatial Fourier coefficient for said circumferential asymmetry.
- 10. The controller described in claim 1, further characterized in that said value of said first signal manifests the square of a value for said circumferential asymmetry and said signal processing means comprises means for providing a second processor signal that manifests the integral of the difference between said value for said circumferential asymmetry and stored value for said circumferential asymmetry, and for adding said first processor signal, said second processor signal and said second signal to produce said control signal.
- 11. The controller described in claim 10, further characterized in that said first processor signal is the first spatial Fourier coefficient for said circumferential asymmetry.
- 12. The controller described in claim 11, further characterized in that said first means comprises a plurality of static pressure sensors located along the circumference of the flow path.
- 13. The controller described in claim 12, further characterized in that said second means comprises a total pressure sensor located in the flow path.
- 14. A controller for a compressor, characterized by:
- a plurality of first probe means each for producing one of a plurality a first flow signals that manifests static pressure at an individual circumferential locations around compressor flow axis;
- second probe means for providing a second flow signal that manifests the time rate of change of the mass flow of said liquid in the flow path;
- signal processing means comprising means for providing an asymmetry signal from said first flow signals with a value that manifests the magnitude of circumferential asymmetry around said compressor flow axis; for a providing a first processor signal that manifests the square of said value; and for producing a control signal that manifests the sum of said first processor signal and said second signal; and
- means for reducing the value of said first asymmetry signal by altering the magnitude of mass flow in the compressor as function of the magnitude of said control signal.
- 15. The controller described in claim 14, further characterized in that said signal processing means comprises means for storing a first value that manifests a desired magnitude for said asymmetry signal; for providing a processor error signal that manifests the difference between the value of said asymmetry signal and said first value; for providing an integration signal by integrating said processor error signal; and for providing said control signal with a magnitude that manifests the sum of said first processor signal, said second signal and said integration signal.
- 16. The controller described in claim 15, further characterized in that said signal processing means comprises means for providing said integration signal by integrating said processor error signal to provide a second processor signal and selecting one of two stored values based on the magnitude of said second processor signal.
- 17. The controller described in claim 16, further characterized in that said asymmetry signal manifests the amplitude of the first spatial Fourier coefficient.
- 18. A gas turbine engine, characterized by;
- first means for sensing airflow in a flow path around a compressor flow axis in the inlet to a compressor stage of the engine to produce a plurality of static pressure signals for different circumferential locations around the airflow path;
- second means for providing a second signal that manifests a rate of change of the mass flow of said airflow;
- signal processing means comprising means for providing an asymmetry signal from said static pressure signals, said asymmetry signal having a value manifesting the magnitude of circumferential asymmetry of said airflow around said axis; for providing a first processor signal that manifests the square of said asymmetry signal; and for adding said first processor signal with said second signal to produce a control signal; and
- third means for modifying said mass flow as function of the magnitude of said control signal to reduce the value of said asymmetry signal.
- 19. The gas turbine engine described in claim 18, further characterized in that said signal processing means comprises means for producing a second processor signal that manifests the integral of the difference between the value of said asymmetry signal and a stored value for said asymmetry signal; for producing said control signal with a value that manifests the sum of said first processor signal, said second processor signal and said second signal and for storing said stored value.
- 20. The gas turbine engine described in claim 19, further characterized in that said second signal processor signal has a first value when said integral signal is below a threshold value and a second value when said integral signal is above said threshold value.
- 21. A gas turbine engine having a rotary compressor with a compressor inlet and an engine control, characterized by:
- a plurality of static pressure sensors located around the circumference of the compressor inlet each providing a static pressure signal for its location;
- a total pressure sensor for providing a total pressure signal manifesting average total flow in the compressor;
- said engine control comprising a signal processor for receiving each static pressure signal and said total pressure and for providing a flow asymmetry signal that manifests the first Fourier spatial coefficient for the flow asymmetry manifested by said static pressure signals; for providing a first processor signal that manifests the square of said asymmetry signal; for providing a time rate of change signal manifesting the time rate of change of said total pressure signal; and for providing a control signal that manifests the sum of said first processor signal and said time rate of change signal; and
- a compressor bleed valve for discharging compressor flow as function of the magnitude of said control signal to reduce the magnitude of said first signal.
- 22. A gas turbine engine having a rotary compressor with a compressor inlet and an engine control, characterized by:
- a plurality of static pressure sensors located around the circumference of the compressor inlet each providing a static pressure signal for its location;
- a total pressure sensor for providing a total pressure signal manifesting average total flow in the compressor;
- said engine control comprising a signal processor for receiving each static pressure signal and said total pressure and for providing a flow asymmetry signal that manifests the first Fourier spatial coefficient for the flow asymmetry manifested by said static pressure signals; for storing a first value representing a desired magnitude for said flow asymmetry signal; for providing a first processor signal that manifests the square of said asymmetry signal; for providing a second processor signal that manifests the difference between said asymmetry signal and said first value; for providing a derivative signal manifesting the time rate of change of said total pressure signal; for integrating said second processor signal to produce an integration signal; for providing a control signal that manifests the sum of said first processor signal, said derivative signal and said integration signal; and
- a compressor bleed valve for discharging compressor flow as function of the magnitude of said control signal to reduce the magnitude of said first signal.
- 23. A method of controlling compressor fluid flow in a rotary compressor characterized by:
- sensing compressor fluid flow static pressure at locations along the circumference of the fluid flow to produce first flow signals;
- sensing axial mass flow to produce a second flow signal that manifests a time rate of change of the mass flow of said fluid in the flow path;
- providing a first processor signal from said first signals with a value that manifests the magnitude of circumferential asymmetry of said fluid flow around said axis;
- adding said first processor signal with said second signal to produce a control signal; and
- reducing the value of said first processor signal by altering the magnitude of said mass flow as function of the magnitude of said control signal.
- 24. The method described in claim 23, further characterized in that said first processor signal manifests the square of said magnitude of circumferential asymmetry.
- 25. The method described in claim 24, further characterized in that said magnitude of circumferential asymmetry is the first spatial Fourier coefficient.
- 26. The method described in claim 23, further characterized by producing a second processor signal that manifests the integral of said first processor signal and adding said first processor signal, said second processor signal and said second signal to produce said control signal.
- 27. The method described in claim 26, further characterized by providing said second processor signal by limiting said integral to a constant of zero or greater when said integral is less than a first range of values and to a constant maximum constant value when said integral is greater than said first range of values.
- 28. A stall and surge controller for a compression system, the compression system including a compressor with a flow path disposed about a flow axis, the controller including:
- means for monitoring the flow through the compressor comprising:
- means for sensing circumferential asymmetry of the fluid flowing within the flow path of the compressor to produce a parameter a that corresponds to the amount of asymmetry; and
- means for sensing perturbations in the time rate of change of mass flow throughout the flow path of the compressor to produce a parameter d that corresponds to the size of the perturbation; and actuation means for modifying the flow field within the flow path of the compressor responsive to the sum of a and d according to the control law comprising:
- A=k.sub.1 .alpha.+k.sub.2 .delta.
- where A corresponds to the amount of flow disruption produced by the actuation system, k.sub.1 is a predetermined gain for the asymmetry parameter .alpha., and k.sub.2 is a predetermined gain for the time rate of change of mass flow perturbation parameter .delta..
- 29. The controller according to claim 28, wherein the asymmetry parameter a is the square of the amplitude of the first spatial Fourier coefficient (.vertline.SFC1.vertline.) of the circumferential asymmetry of the flow properties within the flow path of the compressor.
- 30. The controller described in claim 28, wherein said control law is A=k.sub.1 .alpha.+k.sub.2 .delta.+k.sub.3 .intg.(.alpha..sub.k -.alpha.)dt, .alpha..sub.k being a stored value for .alpha. and k.sub.3 is a predetermined gain.
- 31. The controller described in claim 28, wherein said term A is summed with an integral term k.sub.3 .intg.(.alpha..sub.k -.alpha.)dt, .alpha..sub.k being a stored value for .alpha. and k.sub.3 is a predetermined gain, and said integral term having a preset minimum value and a preset maximum value.
- 32. The controller described in claim 31, wherein the value of .alpha. is adjusted to reduce the difference between the integral term and said preset maximum value.
Parent Case Info
This application has been filed under 35 U.S.C. 371 based on PCT/US95/17145 filed on Nov. 2, 1995, which is a CIP of earlier application Ser. No. 08/355,763, now abandoned.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
102e Date |
371c Date |
PCT/US95/17145 |
11/2/1995 |
|
|
11/2/1995 |
11/2/1995 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO97/00381 |
1/3/1997 |
|
|
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
4550564 |
Callahan et al. |
Nov 1985 |
|
5340127 |
Freeman et al. |
Aug 1994 |
|
Foreign Referenced Citations (1)
Number |
Date |
Country |
401211696 |
Aug 1989 |
JPX |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
355763 |
Dec 1994 |
|