Shaped leading edge of cast plate fin heat exchanger
10962306 ยท 2021-03-30
Assignee
Inventors
- Michael A. Disori (Glastonbury, CT, US)
- William P. Stillman (Sturbridge, MA, US)
- Adam J. Diener (Marlborough, CT, US)
- Alexander Broulidakis (Tolland, CT, US)
- David J. Hyland (Portland, CT, US)
- Jeremy Styborski (East Hartford, CT, US)
Cpc classification
F28F3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2255/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger assembly includes a plate including a plate portion having a leading edge, a trailing edge, an inlet side and an outlet side. The leading edge of the plate portion includes a terminal tip and a varying radius that decreases in a direction toward the terminal tip. An inlet manifold is on the inlet side. An outlet manifold is on the outlet side. A cast plate for a plate fin heat exchanger is also disclosed.
Claims
1. A heat exchanger assembly comprising: a plate including a plate portion having a leading edge, a trailing edge, an inlet side and an outlet side, wherein the leading edge of the plate portion includes a terminal tip and a varying radius that decreases in a direction toward the terminal tip, wherein the plate portion includes a plurality of internal passages extending between a corresponding plurality of inlets on the inlet side and a corresponding plurality of outlets on the outlet side and one of the plurality of internal passages includes a leading edge passage disposed closest to the leading edge, wherein a wall thickness between the leading edge passage and the leading edge increases in a direction toward the terminal tip; an inlet manifold on the inlet side; and an outlet manifold on the outlet side.
2. The heat exchanger assembly as recited in claim 1, including a plurality of fin portions extending outward from a top surface and a bottom surface of the plate portion, wherein each of the plurality of fin portions include a forward most end that is spaced apart from the terminal tip.
3. The heat exchanger assembly as recited in claim 2, wherein the forward most end of each of the plurality of fin portions is tapered in a direction away from the terminal tip.
4. The heat exchanger assembly as recited in claim 1, wherein the plate portion includes a top surface parallel to a bottom surface, and the varying radius tapers from both the top surface and bottom surface at an intersection point spaced apart from the terminal tip and at least one of the plurality of passages is disposed at least partially forward of the intersection point.
5. The heat exchanger assembly as recited in claim 4, including a uniform wall thickness between each of the plurality of passages and the top and bottom surfaces of the plate portion.
6. The heat exchanger assembly as recited in claim 4, wherein one of the plurality of internal passages includes a leading edge passage disposed closest to the leading edge, the leading edge passage including a width different than each of the other plurality of passages.
7. The heat exchanger assembly as recited in claim 4, wherein the plurality of passages are one of a stadium shape, elliptical shape, oval shape and rectilinear shape in cross-section.
8. A heat exchanger assembly comprising: a plate including a plate portion having a leading edge, a trailing edge, an inlet side and an outlet side, wherein the leading edge of the plate portion includes a terminal tip and a varying radius that decreases in a direction toward the terminal tip, wherein the plate comprises a plurality of plate portions extending between a common inlet face and a common outlet face, wherein a cooling flow channel is disposed between two of the plurality of plate portions and includes fins extending from top and bottom surfaces of each of the plurality of plate portions; an inlet manifold on the inlet side; and an outlet manifold on the outlet side.
9. The heat exchanger assembly as recited in claim 1, wherein the trailing edge includes a second terminal tip and a trailing edge surface with a varying radius that decreases in a direction toward the second terminal tip.
10. The heat exchanger assembly as recited in claim 9, including a trailing edge passage disposed at least partially aft of an intersection point between the top and bottom surfaces and the trailing edge surface.
11. The heat exchanger assembly as recited in claim 1, wherein the plate comprises a single unitary part.
12. A cast plate for a plate fin heat exchanger comprising: a plate portion having a leading edge, trailing edge, an inlet side and an outlet side, wherein the leading edge of the plate portion includes a terminal tip and a varying radius that decreases in a direction toward the terminal tip, wherein the varying radius tapers beginning from at least one of a top surface and a bottom surface at an intersection point spaced apart from the terminal tip and at least one of a plurality of passages through the plate portion is disposed at least partially forward of the intersection point, wherein one of the plurality of passages includes a leading edge passage disposed closest to the leading edge, wherein a wall thickness between the leading edge passage and the leading edge increases in a direction toward the terminal tip.
13. The cast plate as recited in claim 12, including a plurality of fin portions extending outward from a top surface and a bottom surface of the plate portion, wherein each of the plurality of fin portions includes a forward most end that is spaced apart from the leading edge and tapered in a direction away from the terminal tip.
14. The cast plate as recited in claim 12, wherein the plurality of passages are one of a stadium shape, elliptical shape, oval shape and rectilinear shape in cross-section.
15. The cast plate as recited in claim 12, wherein the cast plate comprises a plurality of plate portions extending between a common inlet face and a common outlet face, wherein a cooling flow channel is disposed between two of the plurality of plate portions and includes fins extending from top and bottom surface of each of the plurality of plate portions.
16. The cast plate as recited in claim 12, wherein the cast plate comprises a single unitary part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(10) Referring to
(11) The example plate 12 is a single cast unitary part including the fin portions 30 that extend from a plate portion 32. The plate portion 32 includes a leading edge 22 and trailing edge 24. The cooling airflow 20 initially encounters the plate 12 at the leading edge 22 and flows over the top and bottom surfaces 36, 38 toward the trailing edge 24. It should be appreciated that although one example plate 12 is disclosed as cast, other fabrication techniques and methods could be used, such a machining, and are within the contemplation of this disclosure.
(12) Referring to
(13) The plate 12 includes the plurality of passages 40 that extend between a corresponding plurality of inlets 34 on the inlet side 26 to a corresponding plurality of outlets 35 on the outlet side 28. Each of the plurality of passages 40 extending through the plate portion 32 include a cross-sectional shape. In the disclosed example each of the passages includes a stadium shape in cross section. It should appreciated that each of the passages 40 may be of a different cross-section including oval, elliptical and rectilinear shapes in cross-section. Moreover other shapes as are known and provided in the art may also be utilized in or within contemplation of this disclosure. The leading edge 22 of the example plate portion 12 includes a leading edge passage 44 which has a different configuration than the other passages 40 through the plate portion 32.
(14) Referring to
(15) In this example the varying radius 48 maintains laminar flow characteristics of the cooling flow 20 as it flows along the top and bottom surfaces 36, 38. As appreciated other shapes may be utilized within the contemplation of this disclosure that include different varying radii that decreases towards the terminal tip 42 to provide improved air flow characteristics that maintain a laminar flow along the top and bottom surfaces 36, 38 of the plate portion 32.
(16) The leading edge passage 44 extends forward past the intersection plane 46 into the leading edge 22. Each of the plurality of passages 40 include a common width 58. In this example embodiment the leading edge passage 44 includes a width 60 that is different than the width 58 of the other passages 40 not disposed within the leading edge 22. In this example the width 60 is greater than the width 58, however, the width 60 may be smaller to provide the desired wall thickness within the leading edge 22.
(17) The leading edge passage 44 also includes a wall 56 within the leading edge 22 forward of the intersection plane 46. The wall 56 includes thicknesses 52, 55, and 54 that increase in a direction towards the terminal tip 42 beginning from the intersection plane 46. The increased thickness of the wall 56 in the direction towards the terminal tip 42 improves durability and survivability of the case plate 12. Although the wall thicknesses 52, 55, and 54 are shown in the disclosed example as symmetric about a horizontal plane 45, the wall thicknesses 52, 55, and 54 may vary asymmetrically about the plane 45 to provide a desired impact protection and heat transfer.
(18) Fin portions 30 disposed on the top and bottom surfaces 36, 38 of the plate portion 32 extend past the intersection plane 46 and include a tapered edge 33 forward of the intersection plane 46 that begins aft of the intersection plane 46. The tapered edge 33 of the fin portions 30 also improves durability and airflow characteristics. Each of the fin portions 30 include a forward most end 35 that is spaced apart from the terminal tip 42. The tapered edge 33 begins at the forward most end 35 that is spaced apart from the terminal tip 42.
(19) Referring to
(20) Additionally the trailing edge 24 includes a trailing edge passage 78 which is the aft-most passage of the plurality of passages 40. In this example the trailing edge passage 78 includes a width 80 that is greater than the common width 58 of the other plurality of passages 40. Moreover the trailing edge passage 78 extends past the trailing edge intersection plane 70 into the trailing edge 24. The trailing edge 24 includes a trailing edge wall 75 with a thickness that increases in a direction towards the terminal tip 64. The wall 75 includes varying wall thicknesses 76, 74 and 72 that increase in a direction toward the terminal tip 64.
(21) Referring to
(22) Referring to
(23) The example plate 92 includes a leading edge 112 and a trailing edge 110. The leading edge 112 and trailing edge 110 include the same features and configuration as is disclosed in previous
(24) The example plate 92 includes a plurality of plate portions 98 that each define a plurality of passages 116 that extend between a corresponding plurality of inlets 114 and outlets 108. Each of the outlets 108 open onto a common outlet face 104. The common outlet face 104 is a flat plane through which each of the outlets 108 for each of the four plate portions 98 is disposed. The outlet face 104 is surrounded by an outlet perimeter 115. Similarly, the plurality of inlets 114 open onto an inlet face 106. The inlet face 106 is similar to the outlet face 104 and includes the plurality of inlets 114 that open and are disposed within the inlet face 106 surrounded by an inlet perimeter 117.
(25) Referring to
(26) The plate 122 disclosed in
(27) The example disclosed plates 12, 92 are formed as single piece unitary structure and may be formed using casting, additive manufacturing as well as traditional machining. The disclosed heat exchanger assembly include a single unitary plate portion with features on both the leading and trailing edge that improve cooling airflow, thermal transfer and survivability.
(28) Although an example embodiment has been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of this disclosure. For that reason, the following claims should be studied to determine the scope and content of this disclosure.