Claims
- 1. A dynamic pressure probe comprising a holder body having a first passage therein adapted to receive a pressure signal, a pressure sensor including at least a pressure sensing portion located within a sleeve seated within a pressure sensor housing portion, said sleeve engaged with a wall of said housing portion; said pressure sensor including a diaphragm having one face exposed to a pressure chamber within said sleeve between said pressure sensor and said wall; wherein an aperture in said wall of said housing connects said pressure chamber to said first passage; and wherein said first passage continues axially beyond said aperture in a flow direction to an acoustic damping coil wound about a vertical axis.
- 2. The probe of claim 1 wherein opposite ends of said sleeve are provided with O-ring seals for sealing said pressure chamber relative to said housing portion.
- 3. The probe of claim 1 wherein said sleeve includes a first diameter region in which the sensing portion of said pressure sensor is located, and a second larger diameter region in which said diaphragm is located.
- 4. The probe of claim 1 wherein said pressure chamber has an acoustic resonance frequency greater than a corresponding frequency of the pressure signal.
- 5. The probe of claim 1 wherein said first passage is substantially perpendicular to said sleeve and said pressure chamber.
- 6. The probe of claim 1 wherein a second passage is formed in said holder body, adapted to receive extracted compressor discharge air.
- 7. The probe of claim 6 wherein an inlet to said first passage is axially spaced from an inlet to said second passage.
- 8. The probe of claim 1 wherein said second passage is arranged to supply compressor discharge air to an opposite end of said acoustic damping coil.
- 9. The probe of claim 1 wherein said sensor includes a radial flange engaged with an outer edge of said sleeve.
- 10. The probe of claim 9 wherein said pressure sensing portion of said sensor is secured within said sleeve by means of a flange connector in compressive engagement with said radial flange.
- 11. The probe of claim 1 wherein said damping coil has an inside diameter substantially equal to an inside diameter of said first passage.
- 12. The probe of claim 1 wherein heating means are provided for raising the temperatures inside said damping coil sufficiently to prevent condensation from forming inside said coil.
- 13. The probe of claim 1 wherein a distance from the pressure sensor to an end of said damping coil is sufficient to insure complete damping of said pressure signal in a direction away from said signal.
- 14. A dynamic pressure probe comprising a holder body having a first passage therein adapted to receive a pressure signal, a pressure sensor including at least a pressure sensing portion located within a sleeve seated within a pressure sensor housing portion, said sleeve engaged with a wall of said housing portion; said pressure sensor including a diaphragm having one face exposed to a pressure chamber within said sleeve between said pressure sensor and said wall; wherein an aperture in said wall of said housing connects said pressure chamber to said first passage; and wherein heating means are provided for raising the temperatures inside said damping coil sufficiently to prevent condensation from forming inside said coil.
- 15. The dynamic pressure probe of claim 14 wherein said damping coil has an inside diameter substantially equal to an inside diameter of said first passage.
- 16. The dynamic pressure probe of claim 14 wherein a distance from the pressure sensor to an end of said damping coil is sufficient to insure complete damping of said pressure signal in a direction away from said signal.
- 17. A dynamic pressure probe comprising a holder body having a first passage therein adapted to receive a pressure signal, a pressure sensor including at least a pressure sensing portion located within a sleeve seated within a pressure sensor housing portion, said sleeve engaged with a wall of said housing portion; said pressure sensor including a diaphragm having one face exposed to a pressure chamber within said sleeve between said pressure sensor and said wall; wherein an aperture in said wall of said housing connects said pressure chamber to said first passage; and wherein a distance from the pressure sensor to an end of said damping coil is sufficient to insure complete damping of said pressure signal in a direction away from said signal.
- 18. The dynamic pressure probe of claim 17 wherein said sleeve includes a first diameter region in which the sensing portion of said pressure sensor is located, and a second larger diameter region in which said diaphragm is located.
- 19. A method of obtaining a dynamic pressure signal from a combustor comprising:
a) supplying a dynamic pressure signal from the combustor through a first passage, said first passage exposed to a mutually perpendicularly arranged sensor diaphragm remote from said combustor; b) transmitting said pressure signal beyond said sensor diaphragm to a signal damping mechanism including at least one helical coil wound about a vertical axis.
- 20. The method of claim 19 and further comprising:
c) supplying compressor discharge air to said signal damping mechanism to remove any condensation therein.
- 21. The method of claim 19 wherein step a) is carried out by attaching a probe holder to an outer wall of the combustor, with a forward tip of said probe holder having an inlet to said first passage, projecting through a combustor liner spaced radially inwardly of said outer wall.
- 22. The method of claim 21 wherein step c) is carried out by providing a second passage in said probe holder with an inlet exposed to compressor discharge air in a radial space between said outer wall and said combustor liner.
- 23. The method of claim 19 and further comprising providing a heat source for raising the temperatures inside said damping coil sufficiently to prevent condensation from forming inside said coil.
- 24. The method of claim 19 wherein a distance D from the pressure sensor to a remote end of said damping coil is sufficient to insure complete damping of said pressure signal in a direction away from said signal.
- 25. The method of claim 24 wherein said distance D is equal to L2+n(2πR) where L2 is a distance between a measurement point of said dynamic pressure signal and said damping coil, n is the number of individual turns in said helical coil and R is a radius of said helical coil.
Parent Case Info
[0001] This is a continuation-in-part of application Ser. No. 09/989,102 filed Nov. 21, 2001.
Divisions (1)
|
Number |
Date |
Country |
Parent |
10064199 |
Jun 2002 |
US |
Child |
10751929 |
Jan 2004 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09989102 |
Nov 2001 |
US |
Child |
10064199 |
Jun 2002 |
US |