IP Library Patent Application 18882985
Patent Application
App. No. 18/882,985

POROUS SPREADER ASSISTED JET AND SPRAY IMPINGEMENT COOLING SYSTEMS

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Quick Facts
Patent No.
US None
App. No.
18/882,985
Abstract

An impingement cooling system includes a porous heat spreader and a nozzle configured to direct a fluid as a jet and/or as a spray impinging upon the porous heat spreader. The porous heat spreader is made of a thermally-conductive material such as a metal, metal alloy, carbon/graphite, or ceramic, and is in thermal contact with a heat source. The nozzle may be configured to direct the fluid as a jet comprising a single component liquid or gas (including air) or a liquid mixture such as water-glycol or other coolants. The nozzle may be configured to direct the fluid as a spray comprising a single component liquid or gas (including air) or a liquid mixture such as water-glycol or other coolants. The cooling system may include one or more nozzles, which may direct the cooling fluid orthogonally or at an oblique angle to an impingement plate.

Claims (29)

1 . An impingement cooling system comprising:

a porous heat spreader in thermal contact with a heat source;

two or more nozzles each configured to direct a fluid as a jet or a spray impinging upon the porous heat spreader; and

a baseplate disposed between the porous heat spreader and the heat source, and

wherein the two or more nozzles are each configured to direct the fluid at different angles relative to the baseplate.

2 . The impingement cooling system of claim 1 , wherein the porous heat spreader is made of one of: a metal, a metal alloy, carbon, graphite, or ceramic.

3 . The impingement cooling system of claim 1 , wherein the porous heat spreader is comprises a pin-fin matrix.

4 . The impingement cooling system of claim 1 , wherein the porous heat spreader comprises a porous media that is one of: fibrous, a foam, or unstructured.

5 . The impingement cooling system of claim 1 , wherein the fluid is configured to undergo a phase change from a liquid to a gas on or within the porous heat spreader.

6 . The impingement cooling system of claim 1 , wherein at least one nozzle of the two or more nozzles is configured to direct the fluid orthogonally to the baseplate.

7 . The impingement cooling system of claim 1 , wherein at least one nozzle of the two or more nozzles is configured to direct the fluid at an oblique angle to the baseplate.

8 . The impingement cooling system of claim 1 , wherein the porous heat spreader is spatially homogeneous and isotropic.

9 . The impingement cooling system of claim 1 , wherein the porous heat spreader is anisotropic.

10 . The impingement cooling system of claim 9 , wherein the porous heat spreader has a spatially-varying microstructure and porosity.

11 . The impingement cooling system of claim 9 , wherein the porous heat spreader has first porosity at a first location where the fluid impinges thereupon, and wherein the porous heat spreader has a second porosity, less than the first porosity, at a second location spaced apart from the first location.

12 . The impingement cooling system of claim 11 , wherein the porous heat spreader has a third porosity greater than the second porosity at a third location, wherein the second location is between the first location and the third location.

13 . The impingement cooling system of claim 1 , wherein the porous heat spreader has a monolithic structure.

14 . The impingement cooling system of claim 1 , wherein the porous heat spreader is a one of a plurality of discrete porous heat spreaders, with each of the discrete porous heat spreaders configured to conduct heat from a common heat source.

15 . The impingement cooling system of claim 1 , wherein the porous heat spreader is a one of a plurality of discrete porous heat spreaders, with the plurality of discrete porous heat spreaders configured to conduct heat from a plurality of independent heat sources.

16 . An impingement cooling system comprising:

a porous heat spreader having at least one spatially-varying property; and

two or more nozzles each configured to direct a fluid as a jet or a spray impinging upon the porous heat spreader; and

a baseplate adjacent to the porous heat spreader,

wherein the two or more nozzles are each configured to direct the fluid at different angles relative to the baseplate, and

wherein the at least one spatially-varying property includes at least one of a microstructure or a porosity.

17 . The impingement cooling system of claim 16 , wherein the at least one spatially-varying property includes both the microstructure and the porosity.

18 . The impingement cooling system of claim 17 , wherein the porous heat spreader has first porosity at a first location where the fluid impinges thereupon, and wherein the porous heat spreader has a second porosity, less than the first porosity, at a second location spaced apart from the first location.

19 . The impingement cooling system of claim 18 , wherein the porous heat spreader has a third porosity greater than the second porosity at a third location, wherein the second location is between the first location and the third location.

20 . The impingement cooling system of claim 16 , wherein at least one nozzle of the two or more nozzles is configured to direct the fluid orthogonally to the baseplate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 12, 2024
From: BALACHANDAR, RAM; SRIDHAR, ABISHEK; IYER, LAKSHMI VARAHA, DR.; SCHLAGER, GERD, DR.
To: MAGNA INTERNATIONAL INC.
Reel/Frame 068566/0344 →