Surface cooler for aero engine
10125684 ยท 2018-11-13
Assignee
Inventors
Cpc classification
F28D2021/0021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/2241
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/20
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
F02C3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/323
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/22141
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/201
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D25/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gas turbine engine has a surface cooler having a cooler member defining a fluid passage and at least partially contained in an airfoil shaped flow guide member. The cooler member is disposed within a bypass duct and supported on one of the duct walls. The flow guide member provides a smooth outer surface to guide a main portion of a bypass air stream passing over the surface cooler, and defines an inner air channel between the flow guide member and that supporting one of the duct walls for a secondary portion of the bypass air stream to pass through the inner air channel.
Claims
1. A gas turbine engine having a surface cooler disposed within an annular bypass duct and supported on one of outer and inner walls of the annular bypass duct, the surface cooler comprising: a cooler member defining a fluid passage for a fluid flow to pass therethrough, an airfoil shaped flow guide member including a leading edge and a trailing edge with respect to an air stream passing axially through the annular bypass duct, the cooler member being at least partially contained in the airfoil shaped flow guide member, and a support device supporting the airfoil shaped flow guide member and the cooler member in spaced relation to said one of the outer and inner walls of the annular bypass duct.
2. The gas turbine engine as defined in claim 1 wherein the support device comprises a plurality of heat transfer members connected to and extending from the cooler member or the airfoil shaped flow guide member toward said one of the outer and inner walls of the annular bypass duct.
3. The gas turbine engine as defined in claim 2 wherein the plurality of heat transfer members are spaced apart one from another and radially extending between the airfoil shaped flow guide member and said one of the outer and inner walls of the annular bypass duct.
4. The gas turbine engine as defined in claim 2 wherein the airfoil shaped flow guide member in an axial cross-section comprises a convex outer surface for guiding a main portion of the air stream to pass over the surface cooler, and an inner surface for guiding a secondary portion of the air stream to pass through the plurality of heat transfer members.
5. The gas turbine engine as defined in claim 2 wherein the airfoil shaped flow guide member comprises a leading edge section located upstream of the plurality of heat transfer members, the leading edge section having a concave inner surface in an axial cross-section thereof for diffusing a secondary portion of the air stream to pass through the plurality of heat transfer members.
6. The gas turbine engine as defined in claim 1 wherein the airfoil shaped flow guide member comprises a trailing edge section located downstream of the plurality of heat transfer members to control mixing of a main portion of the air stream passing over the surface cooler with a secondary portion of the air stream exiting from an air channel formed between the airfoil shaped flow guide member and said one of the outer and inner walls.
7. A gas turbine engine comprising an annular bypass duct defined radially between an outer wall and an inner wall around a core engine, and a surface cooler disposed within the bypass duct and supported on one of the outer and inner walls, the surface cooler including a cooler member defining a fluid passage for a fluid flow to pass therethrough, a plurality of heat transfer members spaced apart one from another and radially projecting from the cooler member, and an airfoil shaped flow guide member having a leading edge and a trailing edge with respect to an air stream axially passing through the bypass duct, the cooler member being directly connected to the airfoil shaped flow guide member, the plurality of heat transfer members being located radially between the airfoil shaped flow guide member and said one of the outer and inner walls.
8. The gas turbine engine as defined in claim 7 wherein the plurality of heat transfer members are connected to both the cooler member and the airfoil shaped flow guide member.
9. The gas turbine engine as defined in claim 7 wherein the fluid passage is at least partially embedded in the airfoil shaped flow guide member.
10. The gas turbine engine as defined in claim 7 wherein the plurality of heat transfer members are supported on and in direct contact with said one of the outer and inner walls.
11. The gas turbine engine as defined in claim 7 wherein the plurality of heat transfer members are supported by a support member in radially spaced apart relation to said one of the outer and inner walls.
12. The gas turbine engine as defined in claim 7 wherein the surface cooler is annular.
13. The gas turbine engine as defined in claim 7 wherein the surface cooler is a circumferential section of an annular profile.
14. The gas turbine engine as defined in claim 7 wherein the airfoil shaped flow guide member in an axial cross-section comprises a convex outer surface for guiding a main portion of the air stream to pass over the surface cooler, and an inner surface for guiding a secondary portion of the air stream to pass through the plurality of heat transfer members.
15. The gas turbine engine as defined in claim 14 wherein the airfoil shaped flow guide member comprises a trailing edge section located downstream of the plurality of heat transfer members to control mixing of the main portion and secondary portion of the air stream.
16. The gas turbine engine as defined in claim 7 wherein the airfoil shaped flow guide member comprises a leading edge section located upstream of the plurality of heat transfer members, the leading edge section having a concave inner surface in an axial cross-section thereof for diffusing a secondary portion of the air stream to pass through the spaced apart plurality of heat transfer members.
Description
DESCRIPTION OF THE DRAWINGS
(1) Reference is now made to the accompanying figures in which:
(2)
(3)
(4)
(5)
(6) It will be noted that throughout the appended drawings, like features are identified by like reference numerals.
DETAILED DESCRIPTION
(7) A bypass gas turbine engine seen general in
(8) It is noted that the term axial, radial and circumferential used throughout the description and appended claims are defined with respect to the engine axis 41. The term upstream and downstream are defined with respect to the stream of bypass air as shown by arrow 21.
(9) Referring to
(10) Various fluid passage configurations of the surface cooler 45 may be used. For example, the cooler member 47 may include a plurality of tubes connected in a serpentine pattern and installed in the airfoil shaped flow guide member 49 or attached to a surface of the airfoil shaped flow guide member 49 for example by welding or soldering. In another exemplary configuration, the airfoil shaped flow guide member 49 may be made of a metal plate or sheet metal and the cooler member 47 may be a piece of metal plate or sheet metal with a depressed portion formed as a labyrinthine fluid passageway or as a serpentine or tortuous passageway. Such a metal plate or sheet metal cooler member 47 with the depressed portion may be attached to the metal plate or sheet metal of the airfoil shaped flow guide member 49 such that the depressed portion defines the required fluid passage 43 having the desired labyrinthine or serpentine or tortuous configuration between the airfoil shaped flow guide member 49 and the cooler member 47, which is described in detail in the Applicant's U.S. Pat. No. 7,377,100 and incorporated by reference herein.
(11) The airfoil shaped flow guide member 49 may be configured in an airfoil like cooler shape including a leading edge, a trailing edge and an outer surface 53 extending axially between the leading edge and the trailing edge. The outer surface 53 may be smooth and streamlined such as in a convex profile. The airfoil shaped flow guide member 49 may also have an inner surface 55. The cooler member 47 may be attached to the inner surface 55 or may be embedded in the airfoil shaped flow guide member 49 through the inner surface 55 as illustrated in
(12) The plurality of fins 51 or heat transfer members may be circumferentially spaced apart one from another and may radially extend between the airfoil shaped flow guide member 49 and one of the outer and inner bypass duct walls 39, 44 which supports the surface cooler 45 (supported on the inner bypass duct wall 44 in this embodiment as illustrated in
(13) The airfoil shaped flow guide member 49 may have a leading edge section 57 located upstream of the fins 51 or heat transfer members. The inner surface 55 of the airfoil shaped flow guide member 49 at the leading edge section 57 may be configured for example in a concave profile in an axial cross-section thereof, to diffuse a secondary portion 21b of the bypass airstream 21 to pass between the spaced apart fins 51 or heat transfer members and through the surface cooler 45. The smooth and convex outer surface 53 of the airfoil shaped flow guide member 49 provides a smooth guidance for a main portion 21a of the bypass airstream 21 to pass over the surface cooler 45 with a reduced pressure drop of the flow. The diffused secondary portion of the bypass airstream 21 has a reduced velocity which results in an increased heat transfer rate with the fins or heat transfer members while passing between the spaced apart fins 51 or heat transfer members.
(14) The airfoil shaped flow guide member 49 may have a trailing edge section 59 located downstream of the fins 51 or heat transfer members to control mixing of the main portion 21a of the bypass airstream 21 flowing over the surface cooler 45 with the secondary portion 21b of the bypass airstream 21 exiting from an air channel formed between the airfoil shaped flow guide member 49 and the inner bypass duct wall 44.
(15) Referring to
(16) It should be understood that various configurations of a cooling matrix which is directly connected to or forms part of the cooler member 47, may replace the fins 51 or other heat transfer members. The cooling matrix allows the secondary portion 21b of the bypass airstream 21 to flow therethrough and thus to improve heat transfer performance of the surface cooler 45.
(17) It should also be understood that in the embodiments of
(18) The surface cooler according to the described embodiments advantageously provides a smooth and streamlined cooler outer surface which guides the main stream of the bypass air flow over the surface cooler and thus the pressure loss is reduced in contrast to a surface cooler without such an airfoil shaped flow guide member. The surface cooler of the described embodiments also advantageously provides an inner airflow channel such that a secondary portion of the bypass airstream entering such a channel is diffused to a lower velocity which is optimum for heat transfer while causing lower drag. Therefore, the surface cooler of the described embodiments reduces the total air pressure loss due to the coolers being in the bypass air duct and maintains or even improves the efficiency of the coolers. Furthermore, the lower total pressure loss in the bypass air duct will reduce fuel burn of such aero engines.
(19) 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 described subject matter. Modifications which fall within the scope of the described subject matter 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.