Claims
- 1. A fluid compressor, comprising:a blade array rotatable about a rotational axis, each blade of the array having a root, a tip, a leading edge a trailing edge, a suction surface extending from the leading edge to the trailing edge, a pressure surface spaced from the suction surface and also extending from the leading edge to the trailing edge and a projected chord, each blade spanning a fluid flowpath that channels a stream of fluid through the compressor; and a casing having a flowpath surface circumscribing and spanwisely spaced from the blade tips, the casing including a compartment in fluid communication with the flowpath, wherein the compartment is configured to extract fluid from and inject fluid into the flowpath, the compartment having a volume sufficiently large to attenuate circumferential pressure differences across the blade tip and to keep fluid pressure within the compartment approximately circumferentially uniform during normal operation of the compressor thereby attenuating circumferential variation in flowpath pressure and resisting vorticity induced fluid dynamic instabilities.
- 2. The fluid compressor of claim 1 wherein the compartment comprises a circumferentially extending chamber and a single passage circumferentially coextensive with the chamber, the passage having a slot connecting the passage to the chamber and a mouth connecting the passage to the flowpath, the passage being defined at least in part by an upstream wall and a downstream wall, both walls extending to and adjoining the flowpath surface at respective upstream and downstream lips bordering the passage mouth.
- 3. The fluid compressor of claim 2 wherein the upstream wall is oriented at an acute angle relative to the adjoining flowpath surface, and the downstream wall is oriented at an obtuse angle relative to the adjoining flowpath surface so that fluid flowing from the passage to the flowpath enters the flowpath with a streamwise directional component.
- 4. The fluid compressor of claim 3 wherein the acute and the obtuse angles are selected so that the walls are parallel and define a groove of uniform width.
- 5. The fluid compressor of claim 2 wherein the chamber is circumferentially segmented into a number of subchambers, the number of subchambers being no greater than about one order of magnitude less than the quantity of blades comprising the blade array.
- 6. The fluid compressor of claim 2 wherein the passage downstream lip is no further upstream than the leading edge of the blade array at the blade tips.
- 7. The fluid compressor of claim 6 wherein the passage upstream lip is no further downstream than the trailing edge of the blade array at the blade tips.
- 8. The fluid compressor of claim 2 wherein the mouth has a streamwise length of between about 2% and 25% of the projected tip chord, and the mouth is positioned so that at least a portion of the mouth is streamwisely coextensive with the projected tip chord.
- 9. The fluid compressor of claim 2 wherein the blade array has a blade pitch, and the passage has a depth of at least about 10% of the blade pitch.
- 10. The fluid compressor of claim 2 wherein the chamber and the passage each have a volume and the chamber volume is at least as large as the passage volume.
- 11. The fluid compressor of claim 10 wherein the chamber volume is no more than about ten times the passage volume.
- 12. The fluid compressor of claim 2 wherein the flowpath extends substantially parallel to the rotational axis.
- 13. The fluid compressor of claim 2 wherein at least a portion of the flowpath extends approximately normal to the rotational axis.
- 14. The fluid compressor of claim 2 wherein the passage includes a valve for regulating fluid communication between the flowpath and the chamber.
- 15. A fluid compressor for a turbine engine, comprising:a hub rotatable about a rotational axis; a blade array extending outwardly from the hub, each blade of the array having a root, a tip, a leading edge a trailing edge and a projected tip chord, each blade spanning a fluid flowpath that channels a stream of fluid through the compressor; a casing having a flowpath surface circumscribing and spanwisely spaced from the blade tips, the casing having a compartment comprising a circumferentially extending pressure compensation chamber and a single passage circumferentially coextensive with the chamber, the chamber and passage each having a volume, the passage also having a slot connecting the passage to the chamber and a mouth connecting the passage to the flowpath, wherein the passage extracts fluid from and injects fluid into the flowpath, the passage being defined at least in part by an upstream wall and a downstream wall, both walls extending to and adjoining the flowpath surface at respective upstream and downstream lips bordering the passage mouth, the mouth having a streamwise length between about 2% and 25% of the projected tip chord and being positioned so that at least a portion of the mouth is streamwisely coextensive with the projected tip chord, the upstream wall being oriented at an acute angle relative to the adjoining flowpath surface, and the downstream wall being oriented at an obtuse angle relative to the adjoining flowpath surface, the chamber volume being sufficiently large to attenuate circumferential pressure differences across the blade tip and to keep fluid pressure within the compartment approximately circumferentially uniform during normal operation of the compressor thereby attenuating circumferential variation in flowpath pressure and resisting vorticity induced fluid dynamic instabilities.
Parent Case Info
This is a continuation of application Ser. No. 09/208,355 filed on Dec. 10,1998, now U.S. Pat. No. 6,231,301.
US Referenced Citations (9)
Continuations (1)
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Number |
Date |
Country |
Parent |
09/208355 |
Dec 1998 |
US |
Child |
09/811745 |
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US |