Claims
- 1. A composite heat dissipation assembly, comprising:
a thermally conductive body defining at least one channel having side walls; said side walls being spaced apart a distance from one another; and a heat transfer conduit having an outer dimension, frictionally retained in said channel.
- 2. The composite heat dissipation assembly of claim 1, wherein said heat transfer conduit is a sealed tubular pipe filled with a phase change media.
- 3. The composite heat dissipation assembly of claim 1, wherein said thermally conductive body is net shape molded from an elastomeric composite material loaded with a thermally conductive filler.
- 4. The composite heat dissipation assembly of claim 3, wherein said thermally conductive filler is selected from the group consisting of alumina, boron nitride, metal flakes, carbon and combinations thereof.
- 5. The composite heat dissipation assembly of claim 3, wherein said thermally conductive filler is boron nitride grains.
- 6. The composite heat dissipation assembly of claim 1, wherein said distance between said side walls of said channel is less than said outer dimension of said heat transfer conduit.
- 7. The composite heat dissipation assembly of claim 1, wherein said geometry of said thermally conductive body further includes integrally formed surface area enhancements.
- 8. The composite heat dissipation assembly of claim 7, wherein said integrally formed surface area enhancements are selected from the group consisting of pins, fins and rods.
- 9. The composite heat dissipation assembly of claim 1, said body further comprising:
integrally formed conformable interface pads connected to said thermally conductive body.
- 10. A method of manufacturing a heat dissipation assembly, comprising the steps of:
forming a thermally conductive material having at least one channel having side walls, said side walls being spaced apart from one another at a distance; providing a sealed tubular pipe filled with a phase change media, said pipe having an outer diameter; and installing said tubular pipe into said channel; frictionally retaining said tubular pipe in said channel.
- 11. The method of claim 10, wherein said step of providing a sealed tubular pipe comprises providing a tubular pipe manufactured of metal.
- 12. The method of claim 10, wherein said phase change media in said sealed tubular pipe is water.
- 13. The method of claim 10, wherein said phase change media in said sealed tubular pipe is ammonia.
- 14. The method of claim 10, wherein said step of providing a sealed tubular pipe comprises providing a tubular pipe manufactured of metal.
- 15. The method of claim 10, wherein said step of forming a thermally conductive material comprises net shape molding a thermally conductive elastomeric composition.
- 16. The method of claim 10, wherein said distance between said side walls of said channel is less than said outer diameter of said tubular pipe.
- 17. A thermally conductive elastomeric composite heat dissipation assembly, comprising:
a thermally conductive body including an elastomeric base matrix loaded with a thermally conductive filler, said body including surface area enhancements and at least one channel having side walls, said side walls being spaced apart at a distance from one another; interface pads, said interface pads being integrally formed with said outer component; and a sealed tubular pipe filled with a phase change media, said pipe having an outer diameter, said outer diameter being larger than said distance between said side walls of said channel, said tubular pipe frictionally retained in said channel.
- 18. The composite heat dissipation assembly of claim 17, wherein said thermally conductive outer component is net shape molded.
- 19. The composite heat dissipation assembly of claim 17, wherein said thermally conductive filler is selected from the group consisting of alumina, boron nitride, metal flakes, carbon and combinations thereof.
- 20. The composite heat dissipation assembly of claim 17, wherein said thermally conductive filler is boron nitride grains.
- 21. The composite heat dissipation assembly of claim 17, wherein said integrally formed surface area enhancements are selected from the group consisting of pins, fins and rods.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to and claims priority from earlier filed provisional patent application No. 60/316,483, filed Aug. 31, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60316483 |
Aug 2001 |
US |