SPECIAL-SHAPED TUBE COOLING AND HEAT DISSIPATION SYSTEM
20230235926 · 2023-07-27
Inventors
Cpc classification
F25B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2321/0252
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A special-shaped tube cooling and heat dissipation system includes a cooling module including a cooling chip, a liquid cooling tube, a cooling fin block and a first fan for generating cold air, a heat dissipation module including a radiator with heat pipes and a second fan, and a piping system. Through the piping system, the heat of the cooling module is transported to the radiator through the liquid, and then the heat in the liquid is discharged, and the liquid is recirculated back to the cooling module. The liquid cooling pipe and the heat pipes are flat tubes extruded from aluminum alloy to increase the heat dissipation area, each defining therein a plurality of flow channels. The liquid cooling tube and the heat pipes are respectively combined with flow guide devices that connect the heat pipes in series to form a circulating heat dissipation flow channel.
Claims
1. A special-shaped tube cooling and heat dissipation system, comprising: a cooling module comprising at least one cooling chip, a liquid cooling tube, a cooling fin block and a first fan, said liquid cooling tube being attached to a hot side of said at least one cooling chip, said cooling fin block being attached to an opposing cold side of said at least one cooling chip, said first fan driving air through said cooling fin block to generate cold air; a heat dissipation module comprising a radiator and a second fan, said radiator comprising a plurality of heat pipes arranged in parallel, said second fan driving air through the surface of said radiator to dissipate heat from said radiator; and a piping system connected between said liquid cooling tube of said cooling module and said radiator of said heat dissipation module, so that a cold liquid in said radiator is pumped to said liquid cooling tube through a liquid pump in said piping system, and said cold liquid exchanges heat with said hot side of said at least one cooling chip in said liquid cooling tube to become a hot liquid, and said hot liquid then flows back into said radiator to dissipate heat and become said cold liquid, wherein: said liquid cooling tube and said heat pipes are each a straight pipe extruded from aluminum alloy, and are each a flat pipe having the width thereof in the cross-sectional direction greater than the height thereof, said liquid cooling tube and said heat pipes each comprising a plurality of flow channels leading directly to two opposite ends thereof and a partition plate integrally formed between each two adjacent said flow channels; said liquid cooling tube has two opposite ends thereof respectively combined with a first flow guide device, each said first flow guide device corresponding to an inner surface of said liquid cooling tube and being provided with a first return groove communicating between two said flow channels, so that said flow channels of said liquid cooling tube form a circuitous circulation structure through said first return groove, each said first flow guide device comprising a first liquid inlet pipe and a first liquid outlet pipe respectively connected to said piping system; said heat pipes are arranged in parallel at a distance from each other, each said heat pipe having two opposite ends thereof respectively combined with a second flow guide device, each said second flow guide device corresponding to an inner surface of the respective said heat pipe and being provided with a second return groove communicating between two said flow channels, so that said flow channels of said heat pipes form a circuitous circulation structure through said second return groove, one selected said second flow guide device comprising a second liquid inlet pipe and a second liquid outlet pipe respectively connected to said piping system.
2. The special-shaped tube cooling and heat dissipation system as claimed in claim 1, wherein said liquid cooling tube comprises three said flow channels and two said partition plates, and said first return groove of each said first flow guide device comprises the connection between two said flow channels among said three flow channels of said liquid cooling tube.
3. The special-shaped tube cooling and heat dissipation system as claimed in claim 1, wherein each said heat pipe comprises three said flow channels and two said partition plates, and said second return groove of each said second flow guide device comprises the connection between two said flow channels among said three flow channels of the respective said heat pipe.
4. The special-shaped tube cooling and heat dissipation system as claimed in claim 1, wherein each said second flow guide device has opposing upper and lower sides thereof respectively provided with a connection pipe connected to the associating return groove or flow channels, so that said second flow guide devices at both ends of said heat pipes arranged in parallel to said radiator are connected up and down through said connection pipes.
5. The special-shaped tube cooling and heat dissipation system as claimed in claim 3, wherein each said second flow guide device has opposing upper and lower sides thereof respectively provided with a connection pipe connected to the associating return groove or flow channels, so that said second flow guide devices at both ends of said heat pipes arranged in parallel to said radiator are connected up and down through said connection pipes.
6. The special-shaped tube cooling and heat dissipation system as claimed in claim 1, further comprising a liquid storage tank connected to said piping system, said liquid storage tank storing said cold liquid.
7. The special-shaped tube cooling and heat dissipation system as claimed in claim 6, further comprising a pressure relief valve connected to said piping system, said pressure relief valve comprising an expandable and contractible ball, so that said cold liquid under high pressure flows to said expandable and contractible ball of said pressure relief valve.
8. The special-shaped tube cooling and heat dissipation system as claimed in claim 1, wherein said liquid cooling tube has one side thereof attached to the said hot side of each said cooling chip through a graphite heat conducting sheet or a plurality of clamps selectively.
9. The special-shaped tube cooling and heat dissipation system as claimed in claim 2, wherein said liquid cooling tube has one side thereof attached to the said hot side of each said cooling chip through a graphite heat conducting sheet or a plurality of clamps selectively.
10. The special-shaped tube cooling and heat dissipation system as claimed in claim 1, wherein multiple said cooling chips are placed side by side at the same time on one side of said cooling fin block, and the said hot side of each said cooling chip is attached to one side of said liquid cooling tube.
11. The special-shaped tube cooling and heat dissipation system as claimed in claim 2, wherein multiple said cooling chips are placed side by side at the same time on one side of said cooling fin block, and the said hot side of each said cooling chip is attached to one side of said liquid cooling tube.
12. The special-shaped tube cooling and heat dissipation system as claimed in claim 10, wherein said cooling fin block has one side thereof attached to the said cold side of each said cooling chip through a graphite heat conducting sheet.
13. The special-shaped tube cooling and heat dissipation system as claimed in claim 11, wherein said cooling fin block has one side thereof attached to the said cold side of each said cooling chip through a graphite heat conducting sheet.
14. The special-shaped tube cooling and heat dissipation system as claimed in claim 1, further comprising a water receiving tray provided under said cooling module to receive water droplets condensed by said cooling module, said water receiving tray being connected to said piping system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0021] Referring to
[0022] Referring to
[0023] The heat dissipation module B2 mainly implements a radiator 50 and a second fan 60. The radiator 50 is used to circulate the hot liquid flowing out of the liquid cooling tube 20 in a detour, and to discharge the heat in the hot liquid. The second fan 60 is preferably an axial flow fan, which is arranged on one side of the radiator 50 to drive air through the surface of the radiator 50, so that the cold air can exchange heat with the radiator 50 to discharge the heat of the radiator 50 and the hot liquid.
[0024] The piping system C3 is a pipeline for circulating the above-mentioned cold liquid and hot liquid in the cooling module A1 and the heat dissipation module B2. It is connected between the liquid cooling tube 20 of the cooling module A1 and the radiator 50 of the heat dissipation module B2, so that the cold liquid in the radiator 50 is pumped to the liquid cooling tube 20 through a liquid pump 70 in the pipeline. The cold liquid exchanges heat with the hot side 12 of the cooling chip 10 in the liquid cooling tube 20 to become hot liquid, and the hot liquid flows back into the radiator 50 to dissipate heat and become cold liquid. Specifically, the piping system C3 comprises a first pipeline 71 that makes cold liquid flow from the radiator 50 to the liquid cooling tube 20, and a second pipeline 72 that makes hot liquid flow back from the liquid cooling tube 20 to the radiator 50. The first pipeline 71 can be provided with the liquid pump 70, and the second pipeline 72 can be provided with a liquid storage tank 80, which stores the liquid required by the system. A pressure relief valve 90 may be implemented in the second pipeline 72 to reduce excessive pressure in the piping system.
[0025] Referring to
[0026] Referring to
[0027] Referring again to
[0028] Referring to
[0029] In addition, a water receiving tray 100 may be provided under the cooling module A1, and the water receiving tray 100 is used to receive water droplets condensed by the cooling module A1. The water receiving tray 100 can also be connected to the piping system C3 to apply the recovered water to the cooling and heat dissipation system.
[0030] Although a particular embodiment of the invention has been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. Accordingly, the invention is not to be limited except as by the appended claims.