HEAT DISSIPATION UNIT AND HEAT DISSIPATION DEVICE USING SAME
20200232717 ยท 2020-07-23
Inventors
- Pai-Ling Kao (Shenzhen, CN)
- Dan-Jun Chen (Shenzhen, CN)
- Guo-Hui Li (Shenzhen, CN)
- Fu-Ming Zhong (Shenzhen, CN)
Cpc classification
F28F2250/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2240/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2215/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A heat dissipation unit and a heat dissipation device using same are disclosed. The heat dissipation device includes a base and one or more heat dissipation units. The base has a first side and an opposite second side; and the heat dissipation units respectively include at least one radiation fin correspondingly provided on the first side of the base. The radiation fin is formed by correspondingly closing a first plate member and a second plate member to each other, such that a plurality of independent flow channels is defined between the closed first and second plate member. And, the independent flow channels respectively have an amount of working fluid filled therein.
Claims
1. A heat dissipation unit, comprising at least one radiation fin; the radiation fin being formed by correspondingly closing a first plate member and a second plate member to each other, such that one or more independent flow channels are defined between the closed first and second plate members; and the independent flow channels respectively having an amount of working fluid filled therein.
2. The heat dissipation unit as claimed in claim 1, wherein the radiation fin is formed with one or more recesses; the recesses being formed on one of the first and the second plate member, and the correspondingly closed first and second plate members together closing the recesses, such that the closed recesses form the independent flow channels.
3. The heat dissipation unit as claimed in claim 1, wherein the radiation fin is formed with a plurality of recesses; the recesses including a plurality of first recesses formed on the first plate member and a plurality of second recesses formed on the second plate member; and the correspondingly closed first and second plate members bringing the first recesses and the second recesses to face and close one another in one-to-one correspondence, such that the paired and closed first and second recesses form the independent flow channels.
4. The heat dissipation unit as claimed in claim 1, wherein the radiation fin further includes one or more heat transfer elements sandwiched between the first and the second plate member; and the independent flow channels being correspondingly formed in the heat transfer elements.
5. The heat dissipation unit as claimed in claim 2, wherein the recesses are formed on the radiation fin by a mechanical process; and the mechanical process being stamping.
6. The heat dissipation unit as claimed in claim 3, wherein the recesses are formed on the radiation fin by a mechanical process; and the mechanical process being stamping.
7. The heat dissipation unit as claimed in claim 2, wherein the recesses can be different in length, and the longer recesses and the shorter recesses being alternately arranged on the first and/or the second plate member; and wherein the recesses can be parallelly arranged on the first and/or the second plate member to extend perpendicularly to or at an angle with respect to two opposite edges of the radiation fin.
8. The heat dissipation unit as claimed in claim 3, wherein the recesses can be different in length, and the longer recesses and the shorter recesses being alternately arranged on the first and/or the second plate member; and wherein the recesses can be parallelly arranged on the first and/or the second plate member to extend perpendicularly to or at an angle with respect to two opposite edges of the radiation fin.
9. The heat dissipation unit as claimed in claim 1, wherein the independent flow channels respectively have at least one wick structure provided therein; and the wick structure being selected from the group consisting of a mesh structure, a fibrous structure, a porous structure and a grooved structure.
10. The heat dissipation unit as claimed in claim 4, wherein the independent flow channels respectively have at least one wick structure provided therein; and the wick structure being selected from the group consisting of a mesh structure, a fibrous structure, a porous structure and a grooved structure.
11. The heat dissipation unit as claimed in claim 9, wherein the radiation fin further includes a coating; and the coating being provided on inner wall surfaces of the independent flow channels and/or the wick structure.
12. The heat dissipation unit as claimed in claim 10, wherein the radiation fin further includes a coating; and the coating being provided on inner wall surfaces of the independent flow channels and/or the wick structure.
13. The heat dissipation unit as claimed in claim 1, wherein the radiation fin further includes a plurality of ribs formed at locations that are not formed with the independent flow channels, so as to give the radiation fin an enhanced structural strength; and the ribs being extended longitudinally or transversely with respect to the radiation fin or arranged on the radiation fin in a staggered manner.
14. A heat dissipation device, comprising: a base having a first side and an opposite side; and one of more heat dissipation units respectively including at least one radiation fin and being correspondingly provided on the first side of the base; the radiation fin being formed by correspondingly closing a first plate member and a second plate member to each other, such that one or more independent flow channels are defined between the closed first and second plate member; and the independent flow channels respectively having an amount of working fluid filled therein.
15. The heat dissipation device as claimed in claim 14, wherein the radiation fin is formed with one or more recesses; the recesses being formed on one of the first and the second plate member, and the correspondingly closed first and second plate members together closing the recesses, such that the closed recesses form the independent flow channels.
16. The heat dissipation device as claimed in claim 14, wherein the radiation fin is formed with a plurality of recesses; the recesses including a plurality of first recesses formed on the first plate member and a plurality of second recesses formed on the second plate member; and the correspondingly closed first and second plate members bringing the first recesses and the second recesses to face and close one another in one-to-one correspondence, such that the paired and closed first and second recesses form the independent flow channels.
17. The heat dissipation device as claimed in claim 14, wherein the radiation fin further includes one or more heat transfer elements sandwiched between the first and the second plate member; and the independent flow channels being correspondingly formed in the heat transfer elements.
18. The heat dissipation device as claimed in claim 15, wherein the recesses are formed on the radiation fin by a mechanical process; and the mechanical process being stamping.
19. The heat dissipation device as claimed in claim 16, wherein the recesses are formed on the radiation fin by a mechanical process; and the mechanical process being stamping.
20. The heat dissipation device as claimed in claim 15, wherein the recesses can be different in length, and the longer recesses and the shorter recesses being alternately arranged on the first and/or the second plate member; and wherein the recesses can be parallelly arranged on the first and/or the second plate member to extend perpendicularly to or at an angle with respect to two opposite edges of the radiation fin.
21. The heat dissipation device as claimed in claim 16, wherein the recesses can be different in length, and the longer recesses and the shorter recesses being alternately arranged on the first and/or the second plate member; and wherein the recesses can be parallelly arranged on the first and/or the second plate member to extend perpendicularly to or at an angle with respect to two opposite edges of the radiation fin.
22. The heat dissipation device as claimed in claim 14, wherein the independent flow channels respectively have at least one wick structure provided therein; and the wick structure being selected from the group consisting of a mesh structure, a fibrous structure, a porous structure and a grooved structure.
23. The heat dissipation device as claimed in claim 17, wherein the independent flow channels respectively have at least one wick structure provided therein; and the wick structure being selected from the group consisting of a mesh structure, a fibrous structure, a porous structure and a grooved structure.
24. The heat dissipation device as claimed in claim 22, wherein the radiation fin further includes a coating; and the coating being provided on inner wall surfaces of the independent flow channels and/or the wick structure.
25. The heat dissipation device as claimed in claim 23, wherein the radiation fin further includes a coating; and the coating being provided on inner wall surfaces of the independent flow channels and/or the wick structure.
26. The heat dissipation device as claimed in claim 14, wherein the radiation fin further includes a plurality of ribs formed at locations that are not formed with the independent flow channels, so as to give the radiation fin an enhanced structural strength; and the ribs being extended longitudinally or transversely with respect to the radiation fin or arranged on the radiation fin in a staggered manner.
27. The heat dissipation device as claimed in claim 14, wherein the base is formed on the first side with one or more fixing grooves, and the radiation fins being fixedly held to the fixing grooves.
28. The heat dissipation device as claimed in claim 27, wherein the radiation fins of the heat dissipation units are fixedly held to the fixing grooves in a manner selected from the group consisting of interference-fit, riveting, welding, adhesive bonding and snap-fit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0030] The present invention will now be described with some preferred embodiments thereof and by referring to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
[0031] Please refer to
[0032] The coating can be provided on one or both of the inner wall surfaces of the independent flow channels 21 and the wick structure 23.
[0033] Please refer to
[0034] To manufacture the radiation fin 20, first perform a mechanical process on one of the first and the second plate member 201, 202 to form the recesses 210; or perform the mechanical process on both of the first and the second plate member 201, 202 to form the first and the second recesses 211, 212, respectively. The mechanical process includes a first step of stamping one or both of the first and the second plate member 201, 202 to form the recesses 210 or the first and the second recesses 211, 212; and a second step of correspondingly closing and fixedly holding the first and the second plate member 201, 202 to each other by welding or any other suitable way, such that the recesses 210 formed on the first or the second plate member 201, 202 respectively form an independent flow channel 21 between the closed first and second plate members 201, 202, or the first and the second recesses 211, 212 formed on the first and the second plate member 201, 202, respectively, are brought to face and close one another in one-to-one correspondence and accordingly, together form a plurality of independent flow channels 21 between the closed first and second plate members 201, 202. Thereafter, air is evacuated from the independent flow channels 21 and a working fluid 22 is filled into the independent flow channels 21 via a fluid filling port 24 provided on the radiation fin 20 (see
[0035] It is noted the recesses 210 or the first and second recesses 211, 212 are not limited to any specific shape, size, arrangement, or extending direction. For example, in a third embodiment of the heat dissipation unit 2, as shown in
[0036] Please refer to
[0037] Please refer to
[0038] Please refer to
[0039] As can be seen in
[0040] By providing the independent flow channels 21 in the radiation fins 20, it is also able to overcome the problem of poor heat dissipation efficiency of the conventional heat dissipation device due to the large volume of the radiation fins thereof. In other words, in the present invention, the provision of the independent flow channels 21 in the radiation fins 20 to enable liquid-vapor circulation of the working fluid 22 in each of the radiation fins 20 allows the heat dissipation device 4 of the present invention to have a largely reduced overall volume while having even better heat dissipation efficiency than the conventional heat dissipation device.
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[0042] In conclusion, compared to the conventional heat dissipation device, the present invention has the following advantages: (1) having largely upgraded heat dissipation efficiency; and (2) having a largely reduced overall volume.
[0043] The present invention has been described with some preferred embodiments thereof and it is understood that many changes and modifications in the described embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.