Pierced thermal interface constructions
11774190 ยท 2023-10-03
Assignee
Inventors
Cpc classification
F28F3/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20454
ELECTRICITY
B21D53/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
F28F7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Pierced thermal interface constructions including a thermal interface material (TIM) structure comprising: a TIM sheet comprising a plurality of piercings, where each of the plurality of piercings comprises a cavity and displaced material, and where the displaced material from each of the plurality of piercings protrudes away from the TIM sheet.
Claims
1. A system comprising: a heat-generating electronic component comprising a non-flat surface; a heat exchanger positioned on the electronic component along the non-flat surface, wherein a gap exists between the heat exchanger and the electronic component, and wherein the gap is a portion of the non-flat surface of the electronic component that is separated from the heat exchanger by a greater distance than at least one other portion of the non-flat surface; and a thermal interface material (TIM) sheet placed between the electronic component and the heat exchanger, the TIM sheet comprising a plurality of piercings positioned in the gap between the heat exchanger and the electronic component, wherein each of the plurality of piercings comprise a cavity and displaced material protruding away from the TIM sheet.
2. The system of claim 1, further comprising: a viscous TIM placed in at least one cavity and guided away from the TIM sheet by the displaced material.
3. The system of claim 1, wherein the TIM sheet is without piercings at a portion of the non-flat surface of the electronic component separated from the heat exchanger by a smaller distance than the gap.
4. The system of claim 1, wherein the plurality of piercings alter a thermal conductivity direction of the TIM sheet.
5. The system of claim 1, wherein the displaced material from each of the plurality of piercings protrudes above and below the TIM sheet.
6. The system of claim 1, wherein the displaced material from at least one of the plurality of piercings is attached to at least two sides of the cavity.
7. The system of claim 1, wherein the plurality of piercings include at least two different sized cavities.
8. The system of claim 1, wherein a portion of the TIM sheet is placed between the electronic component and the heat exchanger within the gap.
9. The system of claim 8, wherein the plurality of piercings of the TIM sheet are positioned only at the portion of the TIM sheet that is within the gap between the heat exchanger and the electronic component.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(8) Exemplary methods, apparatus, and products for pierced thermal interface constructions in accordance with the present invention are described with reference to the accompanying drawings, beginning with
(9) The TIM sheet (100) is a single, continuous sheet or pad of thermal conducting material. The TIM sheet may be a single material type, such as a graphite TIM sheet. Alternatively, the TIM sheet may be a composite material, such as a silicone and acrylate matrix TIM sheets. The TIM sheet (100) may include carbon particles, platelet fiber, nanotubes, metal particles, or ceramic metal oxide particles including, but not limited to, thermally conductive ceramic particles such as aluminum nitride, boron nitride, zinc oxide, and aluminum oxide. Further, the TIM sheet may be compressible in that as pressure is applied to the TIM sheet, the thickness of the TIM sheet may be reduced.
(10) The displaced material (104) is TIM sheet material displaced (i.e., moved) during the creation of the piercing and piercing cavity (102). The displaced material (104) is moved away from the TIM sheet (100). In the example of
(11) The pierced TIM sheet (100) depicted in
(12) Different ways in which the TIM sheet (100) is pierced may result in different physical relationships between the cavity (102) and displaced material (104). The displaced material (104) may be attached to a single side of the cavity (102), resembling a rectangular, triangular, or round door with a single hinge attaching the door to the cavity (102). Similarly, the displaced material (104) may be attached to two sides of the cavity (102), resembling a rectangular, triangular, or circular double-door with a hinge on two sides of the cavity (102). As another example, the displaced material (104) may be a group of triangles each attached to a section of the cavity (102). A pierced TIM sheet (100) in which at least one of the plurality of piercings is attached to at least two sides of the cavity has advantage of creating greater thermal contact (relative to an unpierced TIM) with elements above and below the pierced TIM sheet without requiring additional TIMs.
(13) Although the example of
(14) Although the example of
(15) The piercings of the TIM sheet (100) may be made in a wide variety of patterns. Further, at least one portion of the TIM sheet (100) may include no piercings. Such portions of the TIM sheet (100) may be used between elements in direct thermal contact or with minimal gap sizes. Advantages of including portions of the TIM sheet (100) without piercings increases the functionality of a single TIM sheet (100) as the same TIM sheet (100) may be used in narrow and wider gaps.
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(18) By creating a piercing in the TIM sheet (100), the direction of the thermal conductivity of the TIM sheet (100) is altered. Specifically, an element in thermal contact with the displaced material (104) conducts heat toward the TIM sheet (100) more efficiently than an element in thermal contact with an unpierced portion of the TIM sheet. This is because the direction of higher thermal conductivity is altered by the piercing and displaced material (104).
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(20) The electronic component (204) is an element that generates heat from operation. The electronic component (204) may be a central or graphics processing unit. The heat exchanger (202) is a mechanism, such as a cold plate, that transfers heat from an electronic component (204) to a fluid medium and dissipated. The heat exchanger (200) may be a liquid or air cooled.
(21) As shown in
(22) The portions of the TIM sheet (100) without piercings is placed at a portion of the electronic component (204) that is separated from the heat exchanger (202) by a small distance relative to the gap (206). This provides the advantage of using a single TIM sheet in a location where one portion of the distance between the heat-producing component and a heat exchanger or spreader plate requires only the width of an unpierced TIM sheet while using the same TIM sheet (100) for thermal contact within gaps (206) between the same elements.
(23) The TIM sheet (100) may be accompanied by an additional viscous TIM (such as a thermal grease or paste including phase change materials with conductive filler particle additions) placed adjacent to the TIM sheet (100). As the viscous TIM and TIM sheet (100) are compressed together, the piercings (208) guide the viscous TIM through the cavity and along the displaced material away from the TIM sheet (100). This provides the advantage of an additional TIM material to fill the piercings a create additional thermal contact.
(24) If the electronic component (204) warps further as time passes, the pierced TIM sheet (100) may be replaced by a different TIM sheet that includes a different pattern and/or configuration of piercings.
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(27) A TIM sheet (600) is placed between the upper forming plate (602) and the lower forming plate (604). The upper forming plate (602) and the lower forming plate (604) are pressed together to drive the forming plate piercing nails (608) through the TIM sheet (600) and through the corresponding forming plate cavities (606). The forming plate cavities (606) may shape the displaced material of the cavity as the forming plate piercing nails (608) pass through. The system may optionally include forming plate piercing nails attached to the upper forming plate (602) toward the lower forming plate (604) with corresponding forming plate cavities in the lower forming plate (604). Such a system may be used to create piercings with displaced material protruding above and below the TIM sheet (600).
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(29) It will be understood from the foregoing description that modifications and changes may be made in various embodiments of the present invention without departing from its true spirit. The descriptions in this specification are for purposes of illustration only and are not to be construed in a limiting sense. The scope of the present invention is limited only by the language of the following claims.