SECONDARILY APPLIED COLD SIDE FEATURES FOR CAST HEAT EXCHANGER
20190310031 ยท 2019-10-10
Inventors
- Michael A. Disori (Glastonbury, CT, US)
- Dave J. Hyland (Portland, CT, US)
- Jeremy Styborski (East Hartford, CT, US)
- Adam J. Diener (Marlborough, CT, US)
- Alexander Broulidakis (Tolland, CT, US)
Cpc classification
F28F3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2215/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanger includes a primary plate including a first surface, a second surface, a leading edge, a trailing edge and a plurality of internal passages extending between an inlet and an outlet. A secondary plate is attached to at least one of the first surface and second surface of the primary plate. The secondary plate includes heat transfer structures. A method is also disclosed.
Claims
1. A heat exchanger comprising: a primary plate including a first surface, a second surface, a leading edge, a trailing edge and a plurality of internal passages extending between an inlet and an outlet; and a secondary plate attached to at least one of the first surface and second surface of the primary plate, the secondary plate including heat transfer structures.
2. The heat exchanger as recited in claim 1, wherein the heat transfer structures of the secondary plate includes a plurality of fin portions.
3. The heat exchanger as recited in claim 2, wherein the heat transfer features of the secondary plate includes augmentation structures.
4. The heat exchanger as recited in claim 3, wherein the fin portions comprises rows extending between the leading edge and trailing edge and a channel bottom between the rows, wherein the augmentation structures are disposed on the channel bottom.
5. The heat exchanger as recited in claim 4, wherein the augmentation structures are further disposed at least some of the plurality of fin portions.
6. The heat exchanger as recited in claim 3, wherein the augmentation structures extend from the channel bottom up a side of at least one of the plurality of fin portions bordering the channel bottom.
7. The heat exchanger as recited in claim 6, wherein the augmentation structures comprise trip strips that alternate between extending up one of the plurality of fin portions on one side of the bottom channel and extending up another of the plurality of fin portion on another side of the bottom channel.
8. The heat exchanger as recited in claim 3, wherein the augmentation structure comprises one of a continuous uninterrupted wall, an interrupted wall, a pedestal, a dimple and a groove.
9. The heat exchanger as recited in claim 1, wherein the primary plate and the secondary plate comprise a common material.
10. The heat exchanger as recited in claim 1, wherein the primary plate and the secondary plate are formed from different materials.
11. The heat exchanger as recited in claim 1, including a joint between the secondary plate and the primary plate, the joint comprising one of a brazed joint, a transient liquid phase joint and a diffusion bonded joint.
12. The heat exchanger as recited in claim 1, including a plurality of primary plates formed as a single unitary structure and a plurality of secondary plates attached to at least one of the first surface and second surface of each of the plurality of primary plates.
13. The heat exchanger as recited in claim 12, including spaces disposed between the plurality of primary plates and at least one secondary plate disposed within each of the spaces.
14. A heat exchanger comprising: a primary plate including a first surface, a second surface, a leading edge, a trailing edge and a plurality of internal passages extending between an inlet and an outlet; and a secondary plate attached to at least one of the first surface and second surface of the primary plate, the secondary plate including means for transferring heat.
15. The heat exchanger as recited in claim 14, wherein the means for transferring heat of the secondary plate includes a plurality of fin portions.
16. The heat exchanger as recited in claim 15, wherein the fin portions comprises rows extending between the leading edge and trailing edge and a channel bottom between the rows, wherein a means for thermal transfer is disposed on the channel bottom.
17. The heat exchanger as recited in claim 16, wherein the means for thermal transfer is further disposed on at least some of the plurality of fin portions.
18. The heat exchanger as recited in claim 14, including a joint between the secondary plate and the primary plate, the joint comprising one of a brazed joint, a transient liquid phase joint and a diffusion bonded joint.
19. A method of assembling a heat exchanger comprising: casting a primary plate including a first surface, second surface, a leading edge, a trailing edge and a plurality of internal passages extending between an inlet and an outlet; forming at least one secondary plate including heat transfer structures; and attaching the secondary plate to at least one of the first surface and second surface of the primary plate.
20. The method as recited in claim 19, wherein the heat transfer structures comprise at least one of a plurality of fin portions and augmentation structures.
21. The method as recited in claim 20, including forming the secondary plate to include a bottom channel between fin portions and forming the augmentation structures to extend from the channel bottom up a side of at least one of the plurality of fin portions bordering the channel bottom.
22. The method as recited in claim 19, including forming the primary plate and the secondary plate from a common material.
23. The method as recited in claim 19, including forming the primary plate and the secondary plate from different materials.
24. The method as recited in claim 19, including forming a joint between the secondary plate and the primary plate, the joint comprising one of a brazed joint, a transient liquid phase joint and a diffusion bonded joint.
25. The method as recited in claim 19, including forming a plurality of primary plates formed as a single unitary structure and a plurality of secondary plates for attachment to at least one of the first surface and second surface of each of the plurality of primary plates.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0042] Referring to
[0043] It should be appreciated that although an example heat exchanger 10 is show by way of example, other configurations of a heat exchanger are within the contemplation of this disclosure. For example, the plate assemblies 12 may be mated to other inlet and outlet structures different than the disclosed example inlet and outlet manifolds.
[0044] Referring to
[0045] The primary plate 22 includes a plurality of internal passages 30 that extend between an inlet side 32 and an outlet side 34. In this example, the inlet side 32 and outlet side 34 are identical to provide a symmetric primary plate 22.
[0046] Each of the secondary plates 24 are attached to the primary plate 22 and define a plurality of fin portions 26 and heat augmentation structures 28. The heat augmentation structures 28 condition flow between the fins 26 to enhance heat transfer. Moreover, in this example, the primary plate 22 is a one piece unitary cast structure to which the secondary plates 24 are attached.
[0047] Referring to
[0048] The secondary plates 24 include the first side with the fins 26 and a flat joint side 44 that corresponds with the surfaces 40, 42 of the primary plate 22. The side 44 is planer and continuous to provide a uniform mating surface with the primary plate 22. In this example, the secondary plates 24 are joined to the surface 40 and the surface 42 of the primary plate 22 at joints 46a, 46b. The joints 46a, 46b comprise conventional brazed joints to provide a sufficient bond between the primary plate 22 and the secondary plate 24 while also enabling heat transfer between flow within the passages 30 of the primary plate 22 to the secondary plates 24. Other joining techniques between the secondary plates 24 and the primary plate 22 could also be used within the contemplation and scope of this disclosure, such as for example transient liquid or diffusion bonded joints.
[0049] Referring to
[0050] In this example, the trip strips 28 are arranged on the channel bottom 50 and extend up sides 52 of each of the fins 26. Forming of the trip strips 28 to extend from the channel bottom 50 up the sides 52 of the fins 26 is enabled in part by providing these features in the secondary plate 24 that is then attached to the primary plate 22. Moreover, the complex structures and features provided in the secondary plate 24 are enabled in part by forming the secondary plate 24 as a separate unit from the primary plate 22.
[0051] Referring to
[0052] In one example, the heat augmentation structures are pedestals as indicated at 54. In another example embodiment, the heat augmentation structures are depressions and/or groove as schematically shown at 56. The grooves 56 extends along the channel bottom 50 and up the sides 52 of at least some of the fins 26. Additionally, the heat augmentation structures could include a plurality of trip strips 58 angled either toward or away from the direction of cooling air flow. In this example the trip strips 58 are angled in a direction of cooling flow, but could also be angled toward the flow. In addition, another example the trip strip 60 includes a W-shape that extends into the channel 48 from both the channel bottom 50 and fin sides 52.
[0053] Accordingly, it should be understood that many different shapes, sizes, and orientations of heat augmentation structures are within the contemplation and scope of this disclosure. Other shapes, sizes, and density distribution of heat augmentation features can be provided within the plurality of channels 48 defined within the secondary plate 24.
[0054] The materials of the secondary plate 24 and the primary plate 22 can be of a common material to provide a common thermal and mechanical properties. Moreover, the secondary plate 24 may be constructed of a material different than the primary plate 22 to enable the use of materials with different thermal and mechanical properties for the primary plate 22 and the secondary plate 24 to enable advantageous use of different materials.
[0055] Referring to
[0056] Each of the secondary plates 66 are joined to surfaces defined in the primary plate assembly 64. Each of the plate portions 68 include flat surfaces 70 and both a top and a bottom side. Secondary plates 66 include a plurality of fins 80 bounding channels 82 that can include heat augmentation structures of any type or configuration previously disclosed. Spaces 78 between the plate portions 68 define cooling channels 78 with surfaces defined by the secondary plates 66 attached to surfaces of the primary plate 64.
[0057] The example plate assembly 62 includes the cooling channels 82 within a space 78 between the plate portions 68. The spaces 78 include the secondary plates 66 adhered to surfaces 70 of each of the plate portions 68. Accordingly, each of the cooling spaces 78 include secondary plates 66 that define fins 80 and heat augmentation structures 84 to enhance thermal transfer between the hot and cool flows.
[0058] Accordingly, the example plate assemblies include a multi-port construction that separates the cooling side heat transfer features from the passages defined for the hot air flow. Separation of the cool side features in the hot side features enable more complex heat augmentation structures that enable increased thermal transfer efficiencies.
[0059] 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.