Stepped fairing modulated exhaust cooling
10087884 ยท 2018-10-02
Assignee
Inventors
Cpc classification
F02K1/822
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64D33/04
PERFORMING OPERATIONS; TRANSPORTING
F02K1/1292
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K1/09
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T50/60
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F02K1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K1/1223
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02K1/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K1/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64D33/04
PERFORMING OPERATIONS; TRANSPORTING
F02K1/82
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Aspects of the disclosure are directed to a system of an aircraft, comprising: at least one fairing, a liner, and an actuator configured to cause the at least one fairing to be translated relative to the liner in order to obtain a modulation of a metering area between the liner and the at least one fairing.
Claims
1. A system for a gas turbine engine, comprising: at least one fairing; a liner; a convergent flap and a divergent flap that define a throat of the system; and an actuator configured to cause the at least one fairing to be translated relative to the liner in order to obtain a modulation of a metering area between the liner and the at least one fairing, wherein the modulation of the metering area by the actuator controls a radial dimension of the throat, and wherein the modulation of the metering area by the actuator adjusts a bypass ratio between a first flow that is subjected to combustion in a core of the gas turbine engine and a second flow that bypasses the core.
2. The system of claim 1, wherein the at least one fairing comprises a plurality of fairings.
3. The system of claim 1, wherein the at least one airing comprises metal.
4. The system of claim 1, wherein the metering area is based on a shape of the liner relative to a shape of the at least one fairing.
5. The system of claim 1, wherein the metering area is based on a position of the liner relative to a position of the at least one fairing.
6. The system of claim 1, wherein the metering area is based on a gap that exists between the liner and the at least one fairing.
7. The system of claim 1, wherein the system is associated with an exhaust of the gas turbine engine.
8. A gas turbine engine, comprising: a combustor section; an exhaust nozzle; at least one fairing; a liner; a convergent flap and a divergent flap that define a throat of the exhaust nozzle; and an actuator configured to cause the at least one fairing to be translated relative to the liner to obtain a modulation of a metering area between the liner and the at least one fairing, wherein the modulation of the metering area controls a dimension of the throat, and wherein the modulation of the metering area adjusts a bypass ratio between a first flow that is subjected to combustion in the combustor section and a second flow that bypasses the combustor section.
9. The gas turbine engine of claim 8, wherein the modulation of the metering area controls a radial dimension of the throat.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present disclosure is illustrated by way of example and not limited in the accompanying figures in which like reference numerals indicate similar elements.
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) It is noted that various connections are set forth between elements in the following description and in the drawings (the contents of which are included in this disclosure by way of reference). It is noted that these connections are general and, unless specified otherwise, may be direct or indirect and that this specification is not intended to be limiting in this respect. A coupling between two or more entities may refer to a direct connection or an indirect connection. An indirect connection may incorporate one or more intervening entities.
(6) In accordance with various aspects of the disclosure, apparatuses, systems and methods are described for modulating a metering area in relation to a nozzle throat area. The metering may be based on a relationship between a liner and one or more fairings. The modulated metering may be used to extract thrust in conjunction with one or more flows.
(7) Aspects of the disclosure may be applied in connection with a gas turbine engine. For example,
(8)
(9) One skilled in the art would appreciate that, in connection with the design and operation of an engine (e.g., engine 10), there may exist at least two flows. A first such flow, which may be referred to as a core flow 40, may pass through the engine hardware and be subjected to combustion in, e.g., the first engine hot section 16. A secondary flow, which may be referred to as a bypass flow 50, bypasses the engine core. A bypass ratio may be established for denoting the ratio between the bypass flow 50 and the core flow 40.
(10) Aspects of the disclosure may be used to adjust the bypass ratio. For example, aspects of the disclosure may be used to reduce the bypass flow or increase the core flow. An adjustment of the bypass ratio may be provided in order control or regulate engine performance/efficiency. In this respect, a metering of the flow(s) may be provided.
(11) Referring to
(12) Synchronization (sync) rings 202 are configured to move forward and aft (or left and right, respectively, in
(13) The system 200 may include a liner 230. The liner 230, which may be referred to as an augmented liner, may define a channel 232 that conveys at least a portion of the bypass flow. The sync rings 202, a portion of the static structure 212, and a portion of the bypass channel 232 may be representative of a modulated exhaust cooling (MEC) area 240. The area 240 is referred to as being modulated due to the fact that its size/dimension may change based at least in part on a position of the liner 230 relative to one or more fairings as described further below.
(14) An axial translation of one or more of the components described above may serve to control a radial dimension of the nozzle throat area 250, a portion of which is shown via a dashed line in
(15) The system 200 also includes a sync ring fairing 260 and a c-flap/c-seal fairing 262. The role/function of such fairings 260 and 262 are described in further detail below.
(16) In some instances, a discharge area is (significantly) larger than a metering area. This may be inefficient from a perspective of aerodynamics and may result in a loss of flow momentum. To maximize/increase performance, it may be desirable for the metering area and the discharge area to he approximately the same, but capable of varying with the nozzle throat area. In doing so, momentum of the flow may be maintained and it may be possible to gain or extract some thrust from the flow.
(17) Referring now to
(18) In
(19) The fairings 350 and 352 may be made of one or more materials (e.g., metal, composite, etc.). The shape/geometry/form-factor of the fairings 350 and 352 may be selected in conjunction with the shape/geometry/form-factor of the liner 330 to obtain the particular metering area 340. The metering area 340 may also be based on, or a function of, the position of the augmented liner 330 relative to the fairings 350 and 352, and any gap that may exist between the augmented liner 330 and the fairings 350 and 352. In this respect, a modulation of the metering area 340 may be obtained based on these input factors/conditions. The modulation of the metering area 340 may be stepped in the sense that the metering area 340 may take on discrete values. In some embodiments, the modulation of the metering area 340 may be continuous in the sense that the metering area 340 may assume a value within a continuous range of values.
(20) Technical effects and benefits of this disclosure include a realization of an exit flow that is approximately the same as a metering flow. In this manner, performance/efficiency may be increased/maximized by being able to extract thrust from the flow. Furthermore, such thrust may be obtained without a need to incorporate/implement a separate actuation mechanism, thereby maximizing/increasing reliability and minimizing/reducing complexity and weight. In this respect, a passive metering is provided as a function of the nozzle throat area.
(21) Aspects of the disclosure have been described in terms of illustrative embodiments thereof. Numerous other embodiments, modifications, and variations within the scope and spirit of the appended claims will occur to persons of ordinary skill in the art from a review of this disclosure. For example, one of ordinary skill in the art will appreciate that the steps described in conjunction with the illustrative figures may be performed in other than the recited order, and that one or more steps illustrated may be optional in accordance with aspects of the disclosure.