Swirl reducing gas turbine engine recuperator
09766019 · 2017-09-19
Assignee
Inventors
- Andreas Eleftheriou (Woodbridge, CA)
- David Menheere (Georgetown, CA)
- Daniel Alecu (Toronto, CA)
- Darius Jehangir Karanjia (Mississauga, CA)
- Daniel Van Den Ende (Mississauga, CA)
Cpc classification
F28F2250/102
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2265/30
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
F28D21/0003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2265/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02C7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gas turbine engine recuperator recuperator including exhaust passages providing fluid flow communication between an exhaust inlet and an exhaust outlet, the exhaust inlet being oriented to receive exhaust flow from a turbine of the engine and the exhaust outlet being oriented to deliver the exhaust flow to atmosphere, the exhaust passages having an arcuate profile in a plane perpendicular to a central axis of the recuperator to reduce a swirl of the exhaust flow. Air passages are in heat exchange relationship with the exhaust passages and providing fluid flow communication between an air inlet and an air outlet, design to sealingly respective plenum of the gas turbine engine.
Claims
1. A recuperator configured to extend within an exhaust duct of a gas turbine engine, the recuperator comprising: exhaust passages providing fluid flow communication between an exhaust inlet and an exhaust outlet, the exhaust inlet being oriented to receive exhaust flow from a turbine of the engine and the exhaust outlet being oriented to deliver the exhaust flow to atmosphere, the exhaust passages having an arcuate profile in a plane perpendicular to a central axis of the recuperator to reduce a swirl of the exhaust flow, the arcuate profile defining a curve having a concave side facing a same circumferential direction from adjacent the exhaust inlet to adjacent the exhaust outlet and the arcuate profile configured to direct the exhaust flow in an arcuate direction from the exhaust inlet to the exhaust outlet; air passages in heat exchange relationship with the exhaust passages and providing fluid flow communication between an air inlet and an air outlet; an inlet connection member defining the air inlet and being designed to sealingly engage a first plenum in fluid flow communication with a compressor discharge of the gas turbine engine; an outlet connection member defining the air outlet and being designed to sealingly engage a second plenum containing a combustor of the gas turbine engine; and circumferential splitters extending upstream from the exhaust inlet of the recuperator and curved in the plane perpendicular to the central axis of the recuperator to reduce the swirl of the exhaust flow.
2. The recuperator as defined in claim 1, wherein the recuperator is a plate heat exchanger.
3. The recuperator as defined in claim 1, wherein the air and exhaust passages are relatively oriented such as to define a mixed counter flow and double pass cross flow heat exchanger.
4. The recuperator as defined in claim 1, wherein the splitters are oriented progressively from an axial or substantially axial direction at an upstream end thereof to a radial or substantially radial direction at a downstream end thereof with respect to a center line of the recuperator.
5. The recuperator as defined in claim 1, wherein the recuperator comprises a plurality of identical and independent arcuate segments.
6. A gas turbine engine comprising: a compressor section having a discharge in fluid flow communication with a first plenum; a combustor contained in a second plenum; a turbine section in fluid flow communication with the combustor; an exhaust duct in fluid flow communication with the turbine section; and a recuperator located in the exhaust duct, the recuperator defining: exhaust passages providing fluid flow communication between an exhaust inlet and an exhaust outlet, the exhaust inlet and exhaust outlet extending across the exhaust duct with the exhaust inlet being in fluid flow communication with the turbine section, the exhaust passages having an arcuate profile in a plane perpendicular to a central axis of the recuperator to reduce a swirl of the exhaust flow, air passages in heat exchange relationship with the exhaust passages and providing fluid flow communication between an air inlet and an air outlet, an inlet connection member defining the air inlet and sealingly engaging the first plenum to receive pressurized air from the compressor, an outlet connection member defining the air outlet and sealingly engaging the second plenum containing the combustor, and circumferential splitters extending within the exhaust duct upstream of the exhaust inlet, the splitters being curved in the plane perpendicular to the central axis of the recuperator, the splitters supported by radially extending struts having an asymmetrical airfoil shape twisted to reduce the swirl of the exhaust flow.
7. The gas turbine engine as defined in claim 6, wherein the recuperator is a plate heat exchanger.
8. The gas turbine engine as defined in claim 6, wherein the air and exhaust passages are relatively oriented such as to define a mixed counter flow and double pass cross flow heat exchanger.
9. The gas turbine engine as defined in claim 6, wherein the splitters extend from the exhaust inlet and form part of the recuperator.
10. The gas turbine engine as defined in claim 6, wherein the splitters are oriented progressively from an axial or substantially axial direction at an upstream end thereof to a radial or substantially radial direction at a downstream end thereof with respect to a center line of the recuperator.
11. The gas turbine engine as defined in claim 6, wherein the recuperator has a shape substantially conforming to that of the exhaust duct.
12. The gas turbine engine as defined in claim 6, wherein the recuperator comprises a plurality of identical and independent arcuate segments.
Description
DESCRIPTION OF THE DRAWINGS
(1) Reference is now made to the accompanying figures in which:
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DETAILED DESCRIPTION
(16)
(17) Although illustrated as a turbofan engine, the gas turbine engine 10 may alternately be another type of engine, for example a turboshaft engine, also generally comprising in serial flow communication a compressor section, a combustor, and a turbine section, and a propeller shaft supporting a propeller and rotated by a low pressure portion of the turbine section through a reduction gearbox.
(18) Referring to
(19) A recuperator 30 extends across the exhaust duct 24, such that the exhaust gas from the turbine section 18 circulates therethrough. The recuperator 30 also provides the fluid flow communication between the combustor plenum 26 and the compressor plenum 28, as will be further detailed below.
(20) Referring to
(21) Referring particularly to
(22) The exhaust fluid passages 42 communicate with a same exhaust inlet 50 defined by the radially inward end of the segment 32 and with a same exhaust outlet 52 defined by the radially outward end of the segment 32. The exhaust inlet and outlet 50, 52 extend across the exhaust duct 24, with the exhaust inlet 50 located in proximity of the turbine section 18.
(23) Referring to
(24) Referring back to
(25) Alternately, the inlet connection member 58 may define a rigid connection with the compressor plenum 28, with the outlet connection member 74 defining a floating connection with the combustor plenum 26.
(26) Referring back to
(27) In a particular embodiment, the exhaust passages 42 have a flaring shape, i.e. the cross-sectional area of each exhaust passage 42 increases from the exhaust inlet 50 to the exhaust outlet 52, such as to diffuse the exhaust flow. The exhaust inlet 50 thus has a smaller cross-sectional area than that of the exhaust outlet 52. Referring particularly to
(28) In the alternate embodiment shown in
(29) In a particular embodiment, the recuperator 30 also reduces the swirl of the exhaust flow. As can be seen from
(30) Referring now to
(31) The recuperator 130 extends within the exhaust duct 24 closer to the turbine section 18 than the previously described embodiment. Each segment 132 includes an exhaust inlet 150 defined by a radially extending end of the segment 132 located in proximity of the turbine section 18 and in communication with the exhaust passages 142. The exhaust inlet 150 is oriented such that the exhaust gas flows axially or approximately axially therethrough. Each segment 132 also includes an exhaust outlet 152 in communication with exhaust passages 142, and oriented such that the exhaust gas flows outwardly radially or approximately outwardly radially therethrough.
(32) The air passages 140 communicate with a same air inlet 156 defined at one end thereof and with a same air outlet 172 defined at the opposed end thereof. The air inlet 156 is defined by an inlet connection member 158 which is designed to sealingly engage the compressor plenum 28 for circulating the compressed air. The air inlet 156 is oriented such that the compressed air flows axially or approximately axially therethrough. The inlet connection member 158 includes a support 164 surrounding the inlet 156 which is rigidly connected to the compressor plenum 28, for example through an appropriate type of fasteners with a compressible seal ring or a gasket (not shown) therebetween. The inlet connection member 158 thus defines a rigid connection with the compressor plenum 28.
(33) The air outlet 172 is defined by an outlet connection member 174 which is designed to sealingly engage the combustor plenum 26 for delivering the heated compressed air to the combustor 16. The air outlet 172 is oriented such that the heated compressed air flows radially outwardly or approximately radially outwardly therethrough. The outlet connection member 174 includes a duct 176 which is engaged in a corresponding opening of the combustor plenum 26, Referring to
(34) As can be seen in
(35) In a particular embodiment, the recuperator 130 also reduces the swirl of the exhaust flow. As can be seen from
(36) In the above described embodiments, each segment 32, 132 of the recuperator 30, 130 is only connected to the engine 10 through the inlet and outlet connection members 58, 158, 74, 174, and the segments 32, 132 are independent from each other. Since one of these connection members defines a floating connection, some relative movement is allowed between each segment 32, 132 of the recuperator 30, 130 and the remainder of the gas turbine engine 10, such as to accommodate some amount of thermal expansion without impeding the seal of the connections.
(37) The above description is meant to be exemplary only, and one skilled in the art will recognize that changes may be made to the embodiments described without departing from the scope of the invention disclosed. Modifications which fall within the scope of the present invention will be apparent to those skilled in the art, in light of a review of this disclosure, and such modifications are intended to fall within the appended claims.