The disclosure relates to gas turbine engines and, more particularly, to an air system for providing pressurized air to a compressor bleed valve.
In an aerospace gas turbine engine, pressurized air may be used to control the operation of a pneumatically-operated compressor bleed valve that may be selectively opened and closed to maintain the operability of the gas turbine engine. Depending on the operating conditions of the gas turbine engine and on the source of the pressurized air, some debris could potentially be carried by the pressurized air and the presence of such debris in the pressurized air delivered to the compressor bleed valve may not be desirable.
In one aspect, there is provided an orifice pack for delivering pressurized air to a compressor bleed valve, the orifice pack comprising: a body defining a diffusion chamber extending along a central axis, the diffusion chamber having an inlet fluidly connectable to a source of pressurized air; a vent removably mounted to the body, the vent having a tapering passage, the diffusion chamber and the tapering passage aligned longitudinally and sequentially along the central axis when the vent is mounted to the body, the tapering passage converging towards a first outlet passage in an axial direction away from the diffusion chamber for venting a first portion of the pressurized air from the diffusion chamber; and a second outlet passage branching off from the diffusion chamber at an axial location between the inlet and the tapering passage, the second outlet passage fluidly connectable to the compressor bleed valve for directing a second portion of the pressurized air from the diffusion chamber to the compressor bleed valve.
In another aspect, there is provided a compressor bleed valve arrangement for selectively bleeding air from a compressor, the compressor bleed valve arrangement comprising: a pneumatically-operable compressor bleed valve having a control port; and an orifice pack fluidly connected to the control port of the pneumatically-operable compressor bleed valve, the orifice pack including: a conduit having a central axis and including: an inlet fluidly connectable to a source of pressurized air, the inlet defining a first constriction; a first outlet for releasing a first portion of the pressurized air from the conduit, the first outlet defining a second constriction; a diffusion chamber extending axially from the first constriction towards the second constriction; a tapering passage extending axially from the diffusion chamber to the second constriction, the tapering passage converging towards the central axis in an axial direction away from the inlet; and a second outlet for releasing a second portion of the pressurized air from the diffusion chamber, the second outlet disposed axially at a downstream end of the diffusion chamber adjacent to the tapering passage, the second outlet fluidly connected to the control port of the pneumatically-operable compressor bleed valve.
In a further aspect, there is provided a gas turbine engine comprising: a compressor for pressurizing air; a combustor in which the pressurized air is mixed with fuel and ignited for generating a stream of combustion gas; a turbine for extracting energy from the combustion gas, the compressor, the combustor and the turbine being operatively disposed along a gas path of the gas turbine engine; a pneumatically-operable compressor bleed valve for bleeding pressurized air from the compressor; and an orifice pack for pneumatically controlling an operation of the compressor bleed valve, the orifice pack including: a conduit having a central axis and including: an inlet for receiving a quantity of bleed air extracted from the gas path downstream of the compressor bleed valve, the inlet defining a first constriction; an outlet for releasing a first portion of the bleed air from the conduit, the outlet defining a second constriction; a diffusion chamber extending axially from the first constriction towards the second constriction; a tapering passage extending axially from the diffusion chamber to the second constriction, the tapering passage converging towards the central axis in an axial direction away from the inlet; and a control air outlet for releasing a second portion of the bleed air from the diffusion chamber, the control air outlet disposed axially at a downstream end of the diffusion chamber adjacent to the tapering passage and fluidly connected to the pneumatically-operable compressor bleed valve.
Reference is now made to the accompanying figures in which:
The following description discloses systems and methods for feeding pressurized air to a pneumatically-operated compressor bleed valve of a gas turbine engine. In some situations, venting a portion of the pressurized air upstream of the compressor bleed valve may prevent some of the debris carried by the pressurized air from being delivered to the compressor bleed valve. In some situations, ejecting contaminants from the stream of pressurized air upstream of the compressor bleed valve may promote reliability and consistency in the operation of the compressor bleed valve.
The term “connected” may include both direct connection (in which two elements contact each other) and indirect connection (in which at least one additional element is located between the two elements).
The term “substantially” as used herein may be applied to modify any quantitative representation which could permissibly vary without resulting in a change in the basic function to which it is related.
Aspects of various embodiments are described through reference to the drawings.
Engine 10 may include a system 20 for feeding pressurized air that is used as “muscle air” to control a function of a compressor bleed valve 22 (referred hereinafter as “bleed valve 22”) of engine 10. Bleed valve 22 may be pneumatically-operated and may be opened to release air from compressor 14 to ambient environment 32. Bleed valve 22 may be opened to relieve pressure in a portion of gas path 19 at a stage of compressor 14. Bleed valve 22 may be a poppet valve having a hole, usually round or oval and a tapered plug, usually a disk shape on the end of a shaft. The shaft may guide the plug portion by sliding through a valve guide. A pressure differential may be used to seal the valve and, under certain operating conditions, open the valve. In some embodiments, bleed valve 22 may be similar to the type of air bleed valve disclosed in U.S. Pat. No. 8,572,985 B2 (titled: AIR FILTRATION SYSTEM FOR GAS TURBINE ENGINE PNEUMATIC SYSTEM), which is incorporated herein by reference. System 20 may receive pressurized air from gas generator casing 23 of engine 10 and may distribute the pressurized air between bleed valve 22 and ambient environment 32 (e.g. atmosphere) as explained below.
The function of bleed valve 22 may be controlled by forces acting on opposite sides of bleed valve 22 which may relate to the respective air pressures P1, P2 at different locations along gas path 19. In some embodiments of bleed valve 22, a spring may be provided to bias bleed valve 22 toward the open or closed position. In reference to
In some embodiments, the orifice pack 24 is provided in the form of a “tee” having a body 31 including a primary branch defining a diffusion chamber 34 between inlet 26 and the first outlet 28 and a secondary branch branching off at right angles from the primary branch at an axial location of the body 31 generally corresponding to a downstream end of the diffusion chamber 34. The secondary branch defines an outlet passage 30′ extending through the wall of the diffusion chamber 34 in the primary branch. The secondary branch fluidly connects the diffusion chamber 34 to the second outlet 30, which is, in turn, connected in fluid communication to a control port of the bleed valve 22.
The diffusion chamber 34 is configured for reducing the velocity and increasing the static pressure of the air passing through the system 20. According to some embodiments, the diffusion chamber 34 may have a cylindrical configuration, including a constant circular cross-sectional area.
In some embodiments, inlet 26 may include an inlet orifice defining a constriction (i.e., narrowing or reduced cross-sectional area of the available flow passage) relative to the diffusion chamber 34. In some embodiments, the inlet 26 may include an orifice insert 26a adapted to be removably installed in a central inlet bore 26b of body 31. For instance, the orifice insert 26a may be threadably engaged with an internally threaded portion of the inlet bore 26b. In this way, a set of differently calibrated orifice inserts offering different flow cross-sectional areas may be selectively installed at the inlet end of the body 31 according to the flow parameters of the intended application.
As illustrated in
Still referring to
As shown in
Sill referring to
According to one or more embodiments, the taper extension piece 28a is threadably mounted to the body 31. According to the embodiment shown in
Like extension piece 28a, the outlet orifice piece 28b has an externally threaded end 28b′ threadably engageable with complementary internal threads of a threaded bore 28a″ defined at an end of the extension piece 28a opposite to its male end 28a′. The interface C between the downstream end of the extension piece 28a and the outlet orifice piece 28b is sized to minimize steps and gaps that could interfere with the flow of contamination particles. A minimal step can, however, be intentionally provided between the tapered extension piece 28a and outlet orifice piece 28b to help the entire orifice pack assembly continue to produce the necessary pressure for the bleed valve 22.
According to the embodiment shown in
In operation, the orifice pack 24, 24′ channels the high-pressure air through the inlet 26 into the diffusion chamber 34 from which a first portion F1 of the air vents to atmosphere 32 through the tapering passage 28c and the first outlet passage 28d. A second portion F2 of the air is tapped from the downstream end of the diffusion chamber 34 just upstream of the tapering passage 28c and fed to the bleed valve 22 via the second outlet 30. Any contamination taken from the gas generator case 23 will pass through the orifice pack inlet 26 and the major part will vent to atmosphere 32 through the first outlet 28. The tapering passage 28c extending axially in continuity from the diffusion chamber 34 will help the contamination particles carried by the air to flow toward the first outlet passage 28b, thereby reducing the chances of contaminants travelling to the bleed valve 22 via the second outlet 30.
The embodiments described in this document provide non-limiting examples of possible implementations of the present technology. Upon review of the present disclosure, a person of ordinary skill in the art will recognize that changes may be made to the embodiments described herein without departing from the scope of the present technology.
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