COMPLIANT PIN FIN HEAT SINK WITH BASE INTEGRAL PINS
20170287809 ยท 2017-10-05
Inventors
Cpc classification
H01L21/4875
ELECTRICITY
International classification
F28F3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L21/48
ELECTRICITY
Abstract
A compliant pin fin heat sink includes a flexible base plate having a thickness of from about 0.2 mm to about 0.5 mm. A plurality of pins extends from the flexible base plate and is formed integral with the flexible base plate by forging. A flexible top plate is connected to and spaced from the flexible base plate. The plurality of pins is disposed between the flexible base plate and the flexible top plate.
Claims
1. A compliant pin fin heat sink comprising: a flexible base plate; a plurality of pins extending from the flexible base plate and formed integral with the flexible base plate; and a flexible top plate connected to and spaced from the flexible base plate, the plurality of pins disposed between the flexible base plate and the flexible top plate.
2. The compliant pin fin heat sink of claim 1, wherein the plurality of pins is forged in the flexible base plate.
3. The compliant pin fin heat sink of claim 1, wherein the flexible based plate and the plurality of pins comprise copper.
4. The compliant pin fin heat sink of claim 1, wherein the compliant pin fin sink is flexible under an applied load of from about 50 pounds to about 300 pounds in an area of the compliant pin fin sink containing the plurality of pins.
5. The compliant pin fin heat sink of claim 1, wherein each pin in the plurality of pins extends from the flexible base plate a distance of from about 1 mm to about 5 mm.
6. The compliant pin fin heat sink of claim 1, wherein the plurality of pins comprise a center to center spacing of from about 0.8 mm to about 2 mm and a diameter of from about 0.4 mm to about 1 mm.
7. The compliant pin fin heat sink of claim 1, wherein: the flexible base plate comprises a length of about 50 mm and a width of about 50 mm; and the plurality of pins defines a rectangular area having 25 mm long sides.
8. The compliant pin fin heat sink of claim 1, further comprising a flow blocking structure disposed between and in contact with the flexible base plate and the flexible top plate, the flow block structure defining a flow channel between the flexible base plate and the flexible top plate and the plurality of pins disposed in the flow channel.
9. The compliant pin fin heat sink of claim 8, wherein the flow blocking structure comprises an elastomer.
10. The compliant pin fin heat sink of claim 8, wherein the flexible top plate comprises a liquid inlet and a liquid outlet passing through the flexible top plate, the liquid inlet and liquid outlet in communication with the flow channel.
11. The compliant pin fin heat sink of claim 8, wherein: the plurality of pins comprises a plurality of separate groups of pins; the flow blocking structure comprises a plurality of separate flow channels; and each one of the plurality of separate groups of pins is disposed in one of the plurality of separate flow channels.
12. The compliant pin fin heat sink of claim 11, wherein the flexible top plate comprises a plurality of liquid inlets and a plurality of liquid outlets passing through the flexible top plate, each one of the plurality of separate flow channels in communication with one of the plurality of liquid inlets and one of the plurality of liquid outlets.
13. A compliant pin fin heat sink comprising: a flexible base plate comprising a thickness of from about 0.2 mm to about 0.5 mm; a plurality of pins extending from the flexible base plate and formed integral with the flexible base plate; and a flexible top plate connected to and spaced from the flexible base plate, the plurality of pins disposed between the flexible base plate and the flexible top plate.
14. The compliant pin fin heat sink of claim 13, wherein the plurality of pins is forged in the flexible base plate.
15. The compliant pin fin heat sink of claim 13, wherein: the compliant pin fin heat sink further comprises a flow blocking structure disposed between and in contact with the flexible base plate and the flexible top plate, the flow block structure defining a flow channel between the flexible base plate and the flexible top plate and the plurality of pins disposed in the flow channel; and the flexible top plate comprises a liquid inlet and a liquid outlet passing through the flexible top plate, the liquid inlet and liquid outlet in communication with the flow channel.
16. The compliant pin fin heat sink of claim 15, wherein the flow blocking structure comprises an elastomer.
17. The compliant pin fin heat sink of claim 15, wherein: the plurality of pins comprises a plurality of separate groups of pins; the flow blocking structure comprises a plurality of separate flow channels; each one of the plurality of separate groups of pins is disposed in one of the plurality of separate flow channels; and the flexible top plate comprises a plurality of liquid inlets and a plurality of liquid outlets passing through the flexible top plate, each one of the plurality of separate flow channels in communication with one of the plurality of liquid inlets and one of the plurality of liquid outlets.
18. A method for forming a compliant pin fin heat sink, the method comprising: forging a plurality of pins in a flexible base plate comprising copper and having a thickness of from about 0.2 mm to about 0.5 mm; and connecting a flexible top plate to the base plate such that the plurality of pins is disposed between the flexible base plate and the flexible top plate.
19. The method of claim 18, wherein forging the plurality of fins further comprises forging the pins to have a length of from about 1 mm to about 5 mm, a diameter of about 0.4 mm to about 1 mm and a center to center spacing of about 0.8 mm to about 2 mm.
20. The method of claim 18, further comprising: placing a flow blocking structure comprising a flow channel between and in contact with the flexible base plate and the flexible top plate such that the plurality of pins is disposed in the flow channel; and creating a liquid inlet and a liquid outlet through the flexible top plate, the liquid inlet and liquid outlet in communication with the flow channel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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[0020] The top 104 or contact surface of the heat generating source is in contact with the compliant pin fin heat sink 100. This contact surface may not be smooth or flat. Therefore, the complaint pin fin heat sink has sufficient flexibility to conform to the shape of the contact surface. A mechanical load 106 is applied through a compressible layer 107 such as an elastomer to the compliant pin fin heat sink on a side opposite the heat generating source. This mechanical load is applied through the compliant pin fin heat sink in the direction of the heat generating source to conform the compliant pin fin heat sink to the contours of the contact surface. Suitable mechanical loads include from about 50 pounds to about 300 pounds. In another embodiment a thermal interface material (TIM) may be disposed between the device top surface and the compliant heat sink.
[0021] The complaint pin fin heat sink includes a flexible base plate 118. The flexible base plate has a thickness 114 of from about 0.2 mm to about 0.5 mm, which is near an order of magnitude thinner than the thickness of base plates in conventional heat sinks, i.e., from about 1 mm to about 5 mm. Suitable shapes for the flexible base plate include, but are not limited to, circular, oblong, triangular and rectangular. Preferably, the flexible base plate is square having a side dimension 130, which corresponds to both the length and width of the flexible base plate, of about 50 mm.
[0022] A plurality of individual pins 124 extend up from the flexible base plate. These pins are formed integral with the flexible base plate using any suitable method to form pins in a plate of material. Preferable, each pin is forged into the flexible base plate. Any suitable method for forging the pins that is known and available in the art can be used. Each pin in the plurality of pins extends from the flexible base plate a distance 120, i.e., has a length, of from about 1 mm to about 5 mm. In one embodiment, each pin has a length of about 3 mm. The pins are arranged in parallel lines to form a grid pattern where the plurality of pins have a center to center spacing 126 between any two adjacent pins in any row or across rows of from about 0.8 mm to about 2 mm. In one embodiment, the center to center spacing is about 1 mm. In one embodiment, each pin has a generally cylindrical shape and a circular cross section, although other cross sectional shapes can be used to improve flow, increase surface area for heat transfer or decrease drag. In one embodiment, each pin has a diameter 128 of from about 0.4 mm to about 1 mm. Preferably, each pin has a diameter of about 0.6 mm. The plurality of pins is arranged in an area having circular, elongated, triangular or rectangular shape. In one embodiment, the area is a square area having sides, i.e., length and width, that are about 25 mm long.
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[0025] The flexible top plate can also include one or more passages 108, i.e., liquid inlets and liquid outlets, passing completely through the flexible top plate in communication with the space 131 to facilitate introduction of the coolant liquid into the space for contact with the plurality of pins. Suitable coolant liquids include, but are not limited to, gases and liquids such as water, a solution of ethylene glycol, diethylene glycol, or propylene glycol in water, deionized water, polyalkylene glycol, cutting fluid, oils and low boiling point liquids such as refrigerants. Inlets and outlets may alternatively be located at other points in the heat sink including the sides or bottom surface outside the contact area.
[0026] In one embodiment, the compliant pin fin heat sink includes at least one flow blocking structure 116 disposed between and in contact with the flexible base plate and the flexible top plate, e.g., within the space or gap 131. The flow blocking structure can be a unitary structure or can be constructed from a plurality of sub-structures. The flow block structure defines a flow channel 133 between the flexible base plate and the flexible top plate and the plurality of pins disposed in the flow channel. The flow channel is configured and sized to prevent or minimize passage of the coolant fluid around the plurality of pins. The flow blocking structure can be constructed for a rigid material such as copper or a flexible material. In one embodiment, the flow blocking structure is an elastomer. When the flow blocking structure is located over or within the heat generating source 102, a flexible material is used as the compliant pin fin heat sink will flex in this area. When the flow blocking material is well outside the heat generating source (for example 1 mm or more), a rigid material, e.g., a metal or hard plastic, can be used.
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[0032] While it is apparent that the illustrative embodiments of the invention disclosed herein fulfill the objectives of the present invention, it is appreciated that numerous modifications and other embodiments may be devised by those skilled in the art. Additionally, feature(s) and/or element(s) from any embodiment may be used singly or in combination with other embodiment(s) and steps or elements from methods in accordance with the present invention can be executed or performed in any suitable order. Therefore, it will be understood that the appended claims are intended to cover all such modifications and embodiments, which would come within the spirit and scope of the present invention.