IP Library › Granted Patent US 12,336,143
Granted Patent B2
US 12,336,143 · App. 17/535,287 · Granted Jun 17, 2025

Systems and methods for three-dimensional vapor chambers in immersion-cooled datacenters

Inventors: Luke Thomas Gregory (Mercer Island, WA); Brandon Earl Gary (Seattle, WA)
Assignee: Microsoft Technology Licensing, LLC
H05K7/203F28F13/187H05K7/20827
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Quick Facts
Patent No.
US 12,336,143
App. No.
17/535,287
Granted
Jun 17, 2025
Kind
B2
Abstract

A vapor chamber includes a main body, a first vertical structure, and an enhanced boiling surface. The main body has a first surface and defines a first portion of an interior volume. The first vertical structure protrudes transverse to the main body and defines a second portion of the interior volume. The enhanced boiling surface is on at least a portion of the first vertical structure.

Claims (27)

1. A vapor chamber comprising:

a main body having a first surface and defining a first portion of an interior volume;

a first vertical structure protruding transverse to the main body and defining a second portion of the interior volume, the first vertical structure having a heat transfer surface for transferring heat to an environment of the vapor chamber, wherein the heat transfer surface is an enhanced boiling surface comprising an enhanced boiling surface texture having an increased number of nucleation sites to promote formation of vapor bubbles at the heat transfer surface of the first vertical structure, wherein the enhanced boiling surface is a first enhanced boiling surface covering a first portion of the heat transfer surface, and wherein a second enhanced boiling surface that is different from the first enhanced boiling surface covers a second portion of the heat transfer surface.

2. The vapor chamber of claim 1 , wherein the enhanced boiling surface is a surface coating having the enhanced boiling surface texture.

3. The vapor chamber of claim 1 , wherein the first vertical structure is a vertical structure of a plurality of vertical structures of the vapor chamber extending transverse to the main body and forming a plurality of channels, wherein each of the plurality of channels includes the heat transfer surface, and wherein the vapor chamber includes the enhanced boiling surface comprising the enhanced boiling surface texture on only the heat transfer surface in the plurality of channels to concentrate the formation of vapor bubbles in the plurality of channels and promote flow of immersion fluid through the plurality of channels.

4. The vapor chamber of claim 1 , wherein the second enhanced boiling surface includes more nucleation sites for promoting vapor bubble formation than the first enhanced boiling surface.

5. The vapor chamber of claim 1 , wherein the first enhanced boiling surface is positioned proximate a bottom of the vapor chamber in a direction of immersion working fluid flow, and the second enhanced boiling surface is positioned above the first enhanced boiling surface in the direction of immersion working fluid flow.

6. The vapor chamber of claim 1 , wherein a third enhanced boiling surface that is different from the first enhanced boiling surface and the second enhanced boiling surface covers a third portion of the heat transfer surface.

7. The vapor chamber of claim 6 , wherein the first enhanced boiling surface, the second enhanced boiling surface, and the third enhanced boiling surface are positioned in series in a direction of immersion working fluid flow.

8. The vapor chamber of claim 6 , wherein the third enhanced boiling surface includes more nucleation sites for promoting vapor bubble formation than the first enhanced boiling surface and the second enhanced boiling surface.

9. A vapor chamber comprising:

a main body having a major surface and defining a first portion of an interior volume; and

a first vertical structure protruding transverse to the main body from the major surface and defining a second portion of the interior volume, the first vertical structure having a longitudinal axis, the first vertical structure having a first end on the longitudinal axis that is positioned at the major surface and a second end on the longitudinal axis that is positioned at the major surface, wherein a first width of the first end of the first vertical structure is greater than a second width of the second end of the first vertical structure.

10. The vapor chamber of claim 9 , further comprising a second vertical structure, wherein the first vertical structure and the second vertical structure define a channel therebetween.

11. The vapor chamber of claim 10 , wherein the channel varies in width along at least a portion of a length of the first vertical structure.

12. The vapor chamber of claim 9 , further comprising an enhanced boiling surface on at least a portion of the first vertical structure.

13. The vapor chamber of claim 9 , further comprising a wicking structure in the interior volume.

14. The vapor chamber of claim 9 , wherein an interior volume height varies along at least a portion of a length of the vapor chamber.

15. A vapor chamber comprising:

a main body having a first surface and defining a first portion of an interior volume;

a first vertical structure protruding transverse to the main body and defining a second portion of the interior volume, the first vertical structure having a longitudinal dimension, wherein an external wall thickness of an external wall of the first vertical structure varies along the longitudinal dimension; and

a wicking structure in the interior volume.

16. The vapor chamber of claim 15 , wherein a porosity of the wicking structure varies along at least a portion of a length of the vapor chamber.

17. The vapor chamber of claim 16 , wherein the porosity of the wicking structure increases away from the main body.

18. The vapor chamber of claim 15 , wherein an interior surface of the external wall is non-planar.

19. The vapor chamber of claim 15 , further comprising an enhanced boiling surface on at least a portion of the first vertical structure.

20. The vapor chamber of claim 15 , wherein the second portion of the interior volume has a periodic cross-section.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 27, 2021
From: GREGORY, LUKE THOMAS; GARY, BRANDON EARL
To: MICROSOFT TECHNOLOGY LICENSING, LLC
Reel/Frame 058484/0684 →
Continuity (1)
Related Publication 20230164953A1 · May 25, 2023
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