IP Library Granted Patent US 10,840,167
Granted Patent B2
US 10,840,167 · App. 16/194,560 · Granted Nov 17, 2020

Integrated heat spreader with configurable heat fins

Inventors: Andrew McNamara (Austin, TX); Swagata Kalve (West Lafayette, IN)
Assignee: ADVANCED MICRO DEVICES, INC.
H01L23/473H01L23/367H01L23/3736H05K7/20272H05K7/20281H05K7/20409
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Quick Facts
Patent No.
US 10,840,167
App. No.
16/194,560
Granted
Nov 17, 2020
Kind
B2
Abstract

Various integrated heat spreaders and methods of making the same are disclosed. In one aspect, an integrated heat spreader to provide thermal management of a first heat generating component on a circuit board is provided. The integrated heat spreader includes a shell that has an internal space, at least one inlet port to receive a coolant to cool the first heat generating component and at least one outlet port to discharge the coolant. Plural heat fins are connected to the shell in the internal space. The heat fins are selectively connectable to the shell in multiple arrangements to provide selected flow rates of the coolant in one or more regions of the internal space.

Claims (34)

1. An integrated heat spreader to provide thermal management of a first heat generating component on a circuit board, comprising:

a shell having an internal space, at least one inlet port to receive a coolant to cool the first heat generating component and at least one outlet port to discharge the coolant;

plural pre-fabricated heat fins connected to the shell in the internal space; and

wherein the pre-fabricated heat fins are selectively connectable to the shell in multiple arrangements to provide selected flow rates of the coolant in one or more regions of the internal space.

2. The integrated heat spreader of claim 1 , comprising the circuit board, the integrated heat spreader being mounted on the circuit board over the first heat generating component.

3. The integrated heat spreader of claim 2 , wherein the first heat generating component is in fluid communication with the coolant.

4. The integrated heat spreader of claim 2 , wherein the first heat generating component is not in fluid communication with the coolant.

5. The integrated heat spreader of claim 1 , wherein the pre-fabricated heat fins are connected to the shell by friction.

6. The integrated heat spreader of claim 1 , wherein at least one of the pre-fabricated heat fins is in physical contact with the first heat generating component.

7. The integrated heat spreader of claim 1 , wherein each of at least some of the pre-fabricated fins comprises a coolant inlet port and a coolant outlet port.

8. The integrated heat spreader of claim 1 , wherein the shell comprises plural slots to receive the pre-fabricated heat fins.

9. The integrated heat spreader of claim 1 , wherein at least some of the pre-fabricated heat fins have a textured exterior surface.

10. The integrated heat spreader of claim 1 , comprising a second heat generating component on the circuit board, the pre-fabricated heat fins being arranged to provide a first fraction of an inlet flow rate of the coolant past the first heat generating component and a second fraction of the inlet flow rate of the coolant past the second heat generating component.

11. A semiconductor chip device, comprising:

a circuit board;

a first heat generating component mounted on the circuit board;

an integrated heat spreader mounted on the circuit board to provide thermal management of the first heat generating component, the integrated heat spreader including a shell having an internal space, at least one inlet port to receive a coolant to cool the first heat generating component and at least one outlet port to discharge the coolant, and plural pre-fabricated heat fins connected to the shell in the internal space; and

wherein the pre-fabricated heat fins are selectively connectable to the shell in multiple arrangements to provide selected flow rates of the coolant in one or more regions of the internal space.

12. The semiconductor chip device of claim 11 , wherein the first heat generating component is in fluid communication with the coolant.

13. The semiconductor chip device of claim 11 , wherein the first heat generating component is not in fluid communication with the coolant.

14. The semiconductor chip device of claim 11 , wherein the pre-fabricated heat fins are connected to the shell by friction.

15. The semiconductor chip device of claim 11 , wherein at least one of the pre-fabricated heat fins is in physical contact with the first heat generating component.

16. The semiconductor chip device of claim 11 , wherein each of at least some of the pre-fabricated fins comprises a coolant inlet port and a coolant outlet port.

17. The semiconductor chip device of claim 11 , comprising a second heat generating component on the circuit board, the pre-fabricated heat fins being arranged to provide a first fraction of an inlet flow rate of the coolant past the first heat generating component and a second fraction of the inlet flow rate of the coolant past the second heat generating component.

18. A method of manufacturing an integrated heat spreader operable to provide thermal management of a first heat generating component on a circuit board, comprising:

fabricating a shell having an internal space, at least one inlet port to receive a coolant to cool the first heat generating component and at least one outlet port to discharge the coolant;

connecting plural pre-fabricated heat fins to the shell in the internal space; and

wherein the pre-fabricated heat fins are selectively connectable to the shell in multiple arrangements to provide selected flow rates of the coolant in one or more regions of the internal space.

19. The method of claim 18 , comprising mounting the integrated heat spreader on the circuit board over the first heat generating component.

20. The method of claim 19 , wherein the first heat generating component is in fluid communication with the coolant.

21. The method of claim 19 , wherein the first heat generating component is not in fluid communication with the coolant.

22. The method of claim 19 , wherein at least one of the pre-fabricated heat fins is in physical contact with the first heat generating component.

23. The method of claim 18 , comprising connecting the pre-fabricated heat fins to the shell by friction.

24. The method of claim 18 , wherein the circuit comprises a second heat generating component, the method comprising arranging the pre-fabricated heat fins to provide a first fraction of an inlet flow rate of the coolant past the first heat generating component and a second fraction of the inlet flow rate of the coolant past the second heat generating component.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 20, 2018
From: KALVE, SWAGATA
To: ADVANCED MICRO DEVICES, INC.
Reel/Frame 047552/0350 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 19, 2018
From: MCNAMARA, ANDREW
To: ADVANCED MICRO DEVICES, INC.
Reel/Frame 047537/0086 →
Continuity (1)
Related Publication 20200161215A1 · May 21, 2020