LIQUID-COOLING HEAT SINK
20170181317 ยท 2017-06-22
Inventors
- CHENG-CHIEN WAN (Tainan City, TW)
- CHENG-FENG WAN (TAINAN CITY, TW)
- HAO-HUI LIN (TAINAN CITY, TW)
- HSIAO-CHING CHEN (TAINAN CITY, TW)
- WEI-CHE HSIAO (TAINAN CITY, TW)
- TUNG-HSIN LIU (TAINAN CITY, TW)
Cpc classification
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/2039
ELECTRICITY
F28F9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20254
ELECTRICITY
International classification
Abstract
A liquid-cooling heat sink has a heat-conductive tube and multiple heat-conductive units arranged adjacent to the heat-conductive tube. The heat-conductive tube has a first tube and a second tube. An isolation member having an isolation channel is located between the first tube and the second tube. The isolation member obstructs the heat exchange between the first tube and the second tube. A first delivery tube and a second delivery tube of each one of the heat-conductive bodies respectively connect to the first tube and the second tube of the heat-conductive tube, thereby integrating the first tube and the second tube and obstructing the heat exchange between the cooling liquids with different temperatures. Each of the heat-conductive units distributes the cooling liquids with different temperatures by the heat-conductive tube, thereby simplifying the pipeline setting and reducing the volume of the liquid-cooling heat sink.
Claims
1. A liquid-cooling heat sink comprising: a heat-conductive tube having two opposite sides; a first tube having at least one first fluid channel defined longitudinally in the first tube; a first wall surrounding the at least one first fluid channel; a second tube formed on the first tube; a second tube having at least one second fluid channel defined longitudinally in the second tube; and a second wall surrounding the at least one second fluid channel; and an isolation member formed between and connecting to the first tube and the second tube and having at least one isolation channel defined between the first tube and the second tube; and multiple connecting walls surrounding the at least one isolation channel and connecting the first wall of the first tube and the second wall of the second tube; and multiple heat-conductive units located on the two opposite sides of the heat-conductive tube, and each heat-conductive unit having a heat-conductive body having a fluid channel; each fluid channel having an entrance end and an exit end; a first delivery tube having two ends, one end of the first delivery tube connecting to the entrance end of the fluid channel, and the other end of the first delivery tube connecting to the at least one first fluid channel of the first tube; and a second delivery tube having two ends, one end of the second delivery tube connecting to the exit end of the fluid channel, and the other end of the second delivery tube connecting to the at least one second fluid channel of the second tube.
2. The liquid-cooling heat sink as claimed in claim 1, wherein the at least one first fluid channel is implemented as multiple first fluid channels; a first partition is formed between each two adjacent first fluid channels; and at least one first compartment channel is formed in each first partition.
3. The liquid-cooling heat sink as claimed in claim 1, wherein the at least one second fluid channel is implemented as multiple second fluid channels; a second partition is formed between each two adjacent second fluid channels; and at least one second compartment channel is formed in each second partition.
4. The liquid-cooling heat sink as claimed in claim 1, wherein the at least one first fluid channel is implemented as multiple first fluid channels; a first partition is formed between each two adjacent first fluid channels; at least one first compartment channel is formed in each first partition; the at least one second fluid channel is implemented as multiple second fluid channels; a second partition is formed between each two adjacent second fluid channels; and at least one second compartment channel is formed in each second partition.
5. The liquid-cooling heat sink as claimed in claim 4, wherein the first tube is elongated; the first tube has two first fluid channels, one first partition, and one first compartment channel; the first compartment channel and the first fluid channels extend along an axial direction of the first tube; the second tube is elongated; the second tube is located above the first tube; the second tube has two second fluid channels, one second partition, and one second compartment channel; and the second compartment channel and the two second fluid channels extend along an axial direction of the second tube.
6. The liquid-cooling heat sink as claimed in claim 5, wherein the fluid channel is continuously curved.
7. The liquid-cooling heat sink as claimed in claim 5, wherein the heat-conductive units are arranged into two sets located respectively on the two opposite sides of the heat-conductive tube; and the fluid channel of the heat-conductive body is continuously curved.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF INVENTION
[0034] With reference to
[0035] With reference to
[0036] With reference to
[0037] With reference to
[0038] With reference to
[0039] In the preferred embodiment, the second tube 12 is elongated and is located above the first tube 11. The second tube 12 has two second fluid channels 121. The second tube 12 further has a second partition 123, a second compartment channel 124, and multiple second mounting holes 125. The second partition 123 is formed between the two second fluid channels 121. The second compartment channel 124 is formed in the second partition 123. The second compartment channel 124 and the second fluid channels 121 extend along an axial direction of the second tube 12. The second mounting holes 125 are defined in the second wall 122 at spaced intervals and communicate with the two second fluid channels 121 and an outer surface of the second tube 12.
[0040] With reference to
[0041] With reference to
[0042] With reference to
[0043] With reference to the
[0044] Furthermore, the isolation channel 131 formed in the isolation member 13 accommodates air and serves as an air layer for thermal insulation. The air layer obstructs heat exchange between the first tube 11 and the second tube 12 during the flowing process of the cooling liquid in the heat-conductive tube 10. The air layer makes the first tube 11 and the second tube 12 independent from each other. Therefore, the cooling liquid flowing in the first tube 11 will not be influenced by the hotter cooling liquid flowing in the second tube 12 above and may maintain the capability of heat dissipation.