This application claims the priority benefit of Taiwan application serial no. 111200468, filed on Jan. 13, 2022. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a heat dissipation device.
The heat pipe is usually installed in the heat dissipation module through processes such as flattening, bending and shaping. However, irregularly shaped heat pipes will increase the path length for heat transfer, resulting in loss of heat transfer efficiency. In addition, in order to match the irregular-shaped heat pipes, the position of the heat-radiating fins should avoid the bending part of the heat pipes. Therefore, the effective heat dissipation area is reduced and the heat dissipation performance is affected.
A heat dissipation device including a heat dissipation fin group, a plurality of heat pipes, and a vapor chamber is provided. The heat dissipation fin group includes a plurality of fins arranged along an extension direction and is divided into a first fin group, a second fin group, and a third fin group. The third fin group is disposed between the first fin group and the second fin group.
Each fin of the first fin group and the second group includes a plurality of through holes. Each fin of the third fin group includes a plurality of notches. The heat pipes are cylindrical structure. The heat pipes are disposed through the first fin group and the second fin group by the through holes. A part of the heat pipes corresponding to the third fin group is in contact with the notches, and the other part is exposed to the outside.
The vapor chamber is correspondingly disposed on the third fin group and includes a plurality of grooves. The vapor chamber is in contact with the heat pipes exposed from the grooves. Wherein the grooves extend along the extension direction and have a shape associated with the cylindrical structure.
A groove is formed on the vapor chamber in the application. And the groove corresponds to the shape of the heat pipes, thereby increasing the effective heat dissipation area between the heat pipe and the heat pipe. And the heat pipes adopt a straight pipe structure, and no additional shaping is required. Therefore, the loss of heat transfer efficiency can be reduced, thereby improving the heat transfer efficiency of the heat pipes.
The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
Referring to
The third fin group 113 is disposed between the first fin group 111 and the second fin group 112, wherein each fin of the first fin group 111 and the second group 112 includes a plurality of through holes 114, and each fin of the third fin group 113 includes a plurality of notches 115. In an embodiment, the fins are arranged in parallel with each other.
Referring to
A part of the heat pipes 120 corresponding to the third fin group 113 is in contact with the notches 115, and the other part is exposed to the outside. In short, the heat pipes 120 pass through the heat dissipation fin group 110 and contact the first fin group 111, the second fin group 112 and the third fin group 113 respectively. Meanwhile, both ends of each heat pipe 120 protrude from two sides of the heat dissipation fin group 110 respectively.
Referring to
In an embodiment, the grooves 131 extend along the extension direction D and have a shape associated with the cylindrical structure of the heat pipes 120.
Referring to
Referring to
In an embodiment, the heat dissipation fin group 110 punches out a positioning groove 115 for each fin 111 through a punching process. Therefore, each of the positioning grooves 115 can closely match the shape of each of the heat pipes 120 to increase the heat exchange area between the vapor chamber 130 and each of the heat pipes 120.
In an embodiment, heat pipes 120 are welded in the corresponding grooves 131 through a solder material. In addition, the vapor chamber 130 and the heat dissipation fin group 110 are fixed by welding or locking with each other, so that each of the heat pipes 120 is limited between the corresponding positioning grooves 115 and the grooves 131.
Referring to
Referring to
In an embodiment, the thermally conductive sheets is made of graphite, silicone or ceramic.
Referring to
The heat absorption portion 121 is disposed between the positioning grooves 115 and the grooves 131 to absorb the heat H from the vapor chamber 130. The heat dissipation portions 122 contact the first fin group 111 and the second fin group 112 of the heat dissipation fin group 110 for transferring the heat H of the heat absorption portion 121 to the heat dissipation fin group 110.
Referring to
Then, the heat conduction medium 124 releases heat and condenses into liquid again and distributes the inner cavity 123 near the bottom of the vapor chamber 130 through the heat exchange action of the first fin group 111, the second fin group 112 and the third fin group 113 of the heat dissipation fin group 110. Therefore, through the above-mentioned heat conduction medium 124 circulating between evaporation and condensation, heat is transferred to the first fin group 111, the second fin group 112 and the third fin group 113 of the heat dissipation fin group 110 through heat conduction.
Referring to
Then, the vapor chamber 130 transfers the heat to the plurality of heat pipes 120, so that the heat transfer medium 134 releases the heat and condenses into a liquid state again and is distributed in the inner cavity 133 and close to the surface S. Therefore, through the above-mentioned heat transfer medium 134 circulating between evaporation and condensation, the heat of the heat source 200 is transferred to the plurality of heat pipes 120 through heat conduction, thereby achieving the effects of heat conduction and heat diffusion.
In an embodiment, the volumes of the heat conduction medium 124 and the heat transfer medium 134 are respectively half of the volumes of the inner cavity 123 and the inner cavity 133. In other embodiments, the volume of the heat conduction medium is determined according to the heat dissipation requirements.
In an embodiment, the heat pipes 120 and the vapor chamber 130 are made of metal material, and the inner cavity 123 and the inner cavity 133 are both provided with capillary structures to facilitate the flow of the heat conducting medium.
Referring to
Referring to
Then, with the operation of a plurality of fans 160, the cold air passes through the third fin group 113, the first fin group 111 and the second fin group 112 for heat exchange, thereby transferring the heat of the heat source 200 to the air.
A groove is formed on the vapor chamber in the application. And the groove corresponds to the shape of the heat pipes, thereby increasing the effective heat dissipation area between the heat pipe and the heat pipe. And the heat pipes adopt a straight pipe structure, and no additional shaping is required. Therefore, the loss of heat transfer efficiency is reduced, thereby improving the heat transfer efficiency of the heat pipes.
It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure covers modifications and variations provided that they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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111200468 | Jan 2022 | TW | national |
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Number | Date | Country |
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106802100 | Jun 2017 | CN |
210491493 | May 2020 | CN |
102021126988 | Oct 2022 | DE |
M302251 | Dec 2006 | TW |
624377 | Mar 2022 | TW |
Entry |
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Machine Translation TW 624377U (Year: 2021). |
Number | Date | Country | |
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20230221078 A1 | Jul 2023 | US |