Heatsink assembly, method of manufacturing a heatsink assembly, and an electrical device
11764125 ยท 2023-09-19
Assignee
Inventors
Cpc classification
H01L23/373
ELECTRICITY
F28F21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B32B37/18
PERFORMING OPERATIONS; TRANSPORTING
F28F21/089
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H01L23/373
ELECTRICITY
F28F21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heatsink assembly, a method of producing a heat sink assembly and an electrical device. The heatsink assembly including a heatsink having a surface for receiving a heat source, a copper insert and a layer of low density pyrolytic graphite. The copper insert and the layer of low density pyrolytic graphite are arranged on the surface of the heatsink in layers to form a heat transferring assembly, and the heat transferring assembly is adapted to receive a heat source for transferring the heat from the heat source to the heatsink.
Claims
1. A heatsink assembly, comprising: a heatsink having a surface for receiving a heat source; a copper insert; and a layer of low density pyrolytic graphite having a density in a range of 0.25 g/cm.sup.3 to 1.8 g/cm.sup.3, wherein the copper insert and the layer of low density pyrolytic graphite are arranged on the surface of the heatsink in layers to form a heat transferring assembly, and wherein the heat transferring assembly is configured to receive the heat source to transfer heat from the heat source to the heatsink.
2. The heatsink assembly according to claim 1, wherein the layer of low density pyrolytic graphite comprises a compressed layer comprising at least one sheet of low density pyrolytic graphite.
3. The heatsink assembly according to claim 2, wherein the compressed layer of low density pyrolytic graphite is on the surface of the heatsink and the copper insert is attached to the heatsink on top of the said compressed layer and arranged to hold the said layer in compressed state, and a surface of the copper insert is adapted to form the surface of the heat transferring assembly.
4. The heatsink assembly according to claim 3, wherein the surface of the heatsink comprises an indent and the compressed layer of low density pyrolytic graphite is arranged in the indent of the surface of the heatsink and the copper insert attached to the edges of the intend.
5. The heatsink assembly according to claim 1, wherein a thermal interface material layer is arranged on the surface of the heat transferring assembly.
6. The heatsink assembly according to claim 2, wherein the compressed layer of low density pyrolytic graphite is arranged between two copper inserts to form the heat transferring assembly.
7. The heatsink assembly according to claim 6, wherein the two copper inserts are in the form of copper sheets between which the compressed layer of low density pyrolytic graphite is arranged.
8. The heatsink assembly according to claim 7, wherein the two copper sheets are welded together to form a structure in which the layer of low density pyrolytic graphite is held compressed.
9. The heatsink assembly according to claim 7, wherein the copper sheets form a top and a bottom of a box-like structure, and the compressed layer of low density pyrolytic graphite is arranged in the box-like structure.
10. The heatsink assembly according to claim 8, wherein the surface of the heatsink comprises an indent and the two copper sheets with a layer of low density pyrolytic graphite compressed between the sheets is arranged in the indent.
11. The heatsink assembly according to claim 8, wherein a thermal interface material layer is arranged between the heat transferring assembly and the heat sink and on the surface of the heat transferring assembly.
12. The heatsink assembly according to claim 1, wherein a thermal interface material layer is arranged on a surface of the heat transferring assembly.
13. The heatsink assembly according to claim 8, wherein the copper sheets form a top and a bottom of a box-like structure, and the compressed layer of low density pyrolytic graphite is arranged in the box-like structure.
14. The heatsink assembly according to claim 9, wherein the surface of the heatsink comprises an indent and the two copper sheets with a layer of low density pyrolytic graphite compressed between the sheets are arranged in the indent.
15. The heatsink assembly according to claim 9, wherein a thermal interface material layer is arranged between the heat transferring assembly and the heat sink and on a surface of the heat transferring assembly.
16. The heatsink assembly according to claim 2, wherein a thermal interface material layer is arranged on a surface of the heat transferring assembly.
17. A method of producing a heatsink assembly, the method comprising: providing a heatsink having a surface for receiving a heat source; providing a copper insert and a layer of low density pyrolytic graphite having a density in a range of 0.25 g/cm.sup.3 to 1.8 g/cm.sup.3; and arranging the copper insert and the layer of low density pyrolytic graphite on the surface of the heatsink in layers to form a heat transferring assembly.
18. The method according to claim 17, wherein the method comprises further compressing one or multiple of sheets of low density pyrolytic graphite to form a compressed layer of low density pyrolytic graphite to be used in the heat transferring assembly.
19. The method according to claim 18, wherein the method comprises: providing an indent to the surface of the heatsink, arranging one or multiple of sheets of low density pyrolytic graphite to the indent, compressing the one or multiple of sheets of low density pyrolytic graphite with the copper insert, and attaching the copper insert to the heatsink with the one or multiple of sheets of low density pyrolytic graphite in compressed state between the copper insert and the heatsink.
20. An electronic device, comprising: at least one heat generating semiconductor component; and a heatsink assembly, the heatsink assembly comprising a heatsink, a copper insert, and a layer of low density pyrolytic graphite having a density in a range of 0.25 g/cm.sup.3 to 1.8 g/cm.sup.3, wherein the copper insert and the layer of low density pyrolytic graphite are arranged on a surface of the heatsink in layers to form a heat transferring assembly, and wherein the at least one heat generating semiconductor component is attached to the heat transferring assembly to transfer heat from the at least one heat generating semiconductor component to the heatsink.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In the following the invention will be described in greater detail by means of preferred embodiments with reference to the accompanying drawings, in which
(2)
(3)
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DETAILED DESCRIPTION OF THE INVENTION
(6)
(7) The embodiment of
(8) In the embodiment of
(9)
(10) In the embodiment of
(11)
(12) For keeping the layer 23 of low density pyrolytic graphite in compressed state, the copper sheets 21, 22 are fastened to each other. In the embodiment of
(13) As shown in
(14) The surface area of the heat transferring assembly is preferably larger than the surface area of the heat generating component that is to be attached to the heatsink assembly. When the copper insert and the low density pyrolytic graphite layer have a larger surface area, the heat is spread effectively and evenly to the body of the heatsink, which is typically aluminium.
(15) With reference to
(16) Preferably the method comprises compressing one or multiple of sheets of low density pyrolytic graphite to form a compressed layer of low density pyrolytic graphite to be used in the heat transferring assembly. As the sheet or sheets of low density pyrolytic graphite is compressed, good thermal properties are obtained.
(17) According to an embodiment of the invention an indent is provided to the surface of the heatsink and the one or multiple of sheets are arranged in the intend. The sheets are compressed using the copper insert, and the copper insert is attached to the heatsink.
(18) Preferably the indent and the copper insert are dimensioned such that when compressed, the edges or sides of the copper insert are close to the inner edges of the indent. That is to say that the indent and the copper insert have substantially same shape and size such that the indent can be attached to the heatsink. The attachment of the copper insert is preferably carried out by laser welding.
(19) According to another embodiment two copper plates are provided and one or multiple of sheets of low density pyrolytic graphite is arranged between the two copper inserts. A pressure is applied to compress the one or multiple of sheets of low density pyrolytic graphite between the two copper inserts. As the one or multiple of sheets of low density pyrolytic graphite are in compressed state, the copper inserts are attached to each other. The copper inserts with the sheets in compressed state are further arranged on the surface of the heatsink. The attached copper inserts are arranged to form the place to which heat generating component is to be attached.
(20) According to an embodiment, the copper inserts are in the form of copper sheets which, when attached together, produce a box-like structure. This means that one of the sheets have structures which produce sidewalls for the box-like structure. In the embodiment, sheets of low density pyrolytic graphite are placed on one of the copper sheets and the other one is used for compressing the graphite sheets. While the graphite sheets are in compressed state, the copper sheets with side walls are attached to each other so that a box-like structure is obtained in which the graphite sheets are in compressed state.
(21) The obtained box-like structure is placed on a surface of the heatsink, and preferably to a recess or indent made in the surface of the heatsink. The box-like structure produces a heat transferring assembly, and it is adapted for receiving a heat source such as a power electronic module in thermal connection.
(22) The disclosure relates also to an electronic device comprising at least one heat generating semiconductor component. The heat generating component is preferably a semiconductor component or a power electronic module. The device further comprises a heatsink assembly comprising a heatsink, a copper insert and a layer of low density pyrolytic graphite. In the device, the copper insert and the layer of low density pyrolytic graphite are arranged on the surface of the heatsink in layers to form a heat transferring assembly. Further the at least one heat generating semiconductor component is attached thermally to the heat transferring assembly for transferring the heat from the semiconductor component to the heatsink.
(23) The device of the invention has advantages provided by the heatsink assembly. The assembly enables to produce a reliable electronic device in which the cooling of the semiconductor components is enhanced. Further, as the heatsink assembly utilizes the heatsink in efficient manner, the size of the heatsink and also the electronic device can be reduced. The device may be, for example, an inverter or a frequency converter, in which power electronic modules are employed.
(24)
(25) The sheets of low density pyrolytic graphite are typically very thin. The amount of sheets and thus the thickness of the layer may vary depending on the design of the heatsink assembly.
(26) It will be obvious to a person skilled in the art that, as the technology advances, the inventive concept can be implemented in various ways. The invention and its embodiments are not limited to the examples described above but may vary within the scope of the claims.