Liquid Cooling Radiation System and Liquid Radiator Thereof
20170367217 · 2017-12-21
Inventors
Cpc classification
H05K7/20409
ELECTRICITY
H01L2924/0002
ELECTRICITY
F28D2021/0031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2250/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20272
ELECTRICITY
H01L23/40
ELECTRICITY
F28D2001/028
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/05375
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Disclosed is a liquid cooling radiation system. The technical solution used by the present invention to solve the technical problem is: the liquid cooling radiation system comprises: a radiation device, comprising cooling pipes and a radiation structure device arranged on the cooling pipes; a pumping device, integrally arranged between the cooling pipes and generating power so that a coolant circulates within the cooling pipes; a heat absorption device, attached to a heating device and having a heat conduction effect with the heating device; a pipeline, used for connecting the radiation device and the heat absorption device. On the basis of existing products, the present invention utilises a solution wherein a liquid pump main body and a radiator are integrally arranged together. Thus, the radiation of a fan is used to take away heat on the radiator and heat generated by a pump power main body (i.e. a motor) itself is also taken away, thereby extending the service life of the motor. In addition, the occupied space is significantly reduced, the heat transfer effect is significantly improved, and the production and assembly costs are reduced, so that product assembly is convenient and efficiency is high.
Claims
1. A liquid cooling system, characterized in that, said system comprises: a heat dissipating device, which comprises cooling tubes and a radiator structure arrangement on said cooling tubes, a pumping device, integrally mounted between said cooling tubes to generate power for circulation of coolant inside said cooling tubes; a heat absorbing device for attaching to a heat-generating component and is arranged for heat conduction with the heat-generating component; a tube unit which connects between said heat dissipating device and said heat absorbing device.
2. The liquid cooling system according to claim 1, characterized in that: said system further comprises a liquid chamber arranged for storing a predetermined amount of coolant, that the coolant is arranged for accumulating and transmitting the heat dissipated to the coolant from the heat-generating component, said liquid chamber is provided to at least one end of said cooling tube of said heat dissipating device; said pumping device comprises a pump chamber and a pump power body, at least one of said cooling tube inlet and said cooling tube outlet is connected to one of the two ends of said pump chamber, said pump power body pumps out the coolant from said cooling tube outlet to circulate through said cooling tube.
3. The liquid cooling system according to claim 2, characterized in that: said liquid chamber is positioned at one side of said cooling tube, a partition panel for liquid partition is mounted inside said liquid chamber to divide said liquid chamber into an inlet chamber and an outlet chamber, wherein said cooling tubes connect to said inlet chamber and said outlet chamber, wherein said inlet chamber has an inlet port and said outlet chamber has an outlet port, wherein said tubes connect to said inlet port and said outlet ports respectively and to said heat absorbing device.
4. The liquid cooling system according to claim 2, characterized in that: said liquid chamber is divided into a top liquid chamber and a bottom liquid chamber which are positioned at two opposite sides of said tube unit, wherein said top liquid chamber has a partition panel for liquid partition therein to divide said liquid chamber into an inlet chamber and an outlet chamber, wherein said cooling tubes are divided into an inlet cooling tube and an outlet cooling tube which connect to said bottom liquid chamber through said inlet chamber and said outlet chamber respectively.
5. The liquid cooling system according to claim 4, characterized in that: a number of said inlet cooling tubes is N and said N number of inlet cooling tubes are aligned in a side-by-side manner, wherein a section of said N number of inlet cooling tubes are disconnected to define a window in such a manner that N number of inlet cooling tube openings are formed side-by-side at a top side and a bottom side of said window, wherein said pump chamber has N number of inlet openings and outlet openings corresponding to said window such that said pump chamber is connected to said inlet cooling tube openings at said top side and said bottom side in a sealed manner through said N number of inlet openings and outlet openings, wherein a number of the outlet cooling tubes is M, where M>N>=1 (N is an integer), and said M number of outlet cooling tubes are arranged in a side-by-side manner and positioned at two sides of said inlet cooling tubes.
6. The liquid cooling system according to claim 3, characterized in that: said pump power body comprises a motor and a power fan blade, said power fan blade is fan blade with silicon steel sheet and has a shaft of stainless steel, said heat dissipating device has one lateral side at which a fan is arranged, said fan driving an airflow for lowering a temperature of said heat dissipating device and facilitating heat dissipation.
7. The liquid cooling system according to claim 6, characterized in that: wherein said heat dissipating device is a set of heat dissipating sheet or heat dissipating wavy band, wherein said heat dissipating sheet are arranged on the outer side of said cooling tubes and are mounted on said outer side of said cooling tubes directly through soldering or through coupling and fixing into position by soldering.
8. The liquid cooling system according to claim 7, characterized in that: wherein said heat absorbing device comprises a bottom plate for heat exchange and a coolant chamber, wherein said bottom plate for heat exchange and said coolant chamber are connected and sealed through a sealing ring.
9. The liquid cooling system according to claim 8, characterized in that: wherein said bottom plate for heat exchange is made of metal materials, which include alloyed copper, aluminum, aluminum alloy or alloy steel; said bottom plate for heat exchange has an inner bottom surface which has a groove structure construction such that the coolant in said coolant chamber is endlessly close to the heat-generating components.
10. A radiator unit for a liquid cooling system, characterized in that: said radiator unit comprises: cooling tubes and a radiator structure arrangement on said cooling tubes, a pumping device which comprises a pump chamber and a pump power body arranged inside said pump chamber, said pump chamber is integrally mounted between said cooling tubes, said pump power body generates power for circulation of coolant inside said cooling tubes; a liquid chamber connected therethrough and arranged for storing a predetermined amount of coolant, that the coolant is arranged for accumulating and transmitting the heat dissipated to the coolant from the heat-generating component, said liquid chamber is provided to at least one end of said cooling tube of said heat dissipating device, or said pump chamber is also utilized as a liquid chamber.
11. The liquid cooling system according to claim 4, characterized in that: said pump power body comprises a motor and a power fan blade, said power fan blade is fan blade with silicon steel sheet and has a shaft of stainless steel, said heat dissipating device has one lateral side at which a fan is arranged, said fan driving an airflow for lowering a temperature of said heat dissipating device and facilitating heat dissipation.
12. The liquid cooling system according to claim 11, characterized in that: wherein said heat dissipating device is a set of heat dissipating sheet or heat dissipating wavy band, wherein said heat dissipating sheet are arranged on the outer side of said cooling tubes and are mounted on said outer side of said cooling tubes directly through soldering or through coupling and fixing into position by soldering.
13. The liquid cooling system according to claim 12, characterized in that: wherein said heat absorbing device comprises a bottom plate for heat exchange and a coolant chamber, wherein said bottom plate for heat exchange and said coolant chamber are connected and sealed through a sealing ring.
14. The liquid cooling system according to claim 13, characterized in that: wherein said bottom plate for heat exchange is made of metal materials, which include alloyed copper, aluminum, aluminum alloy or alloy steel; said bottom plate for heat exchange has an inner bottom surface which has a groove structure construction such that the coolant in said coolant chamber is endlessly close to the heat-generating components.
15. The liquid cooling system according to claim 5, characterized in that: said pump power body comprises a motor and a power fan blade, said power fan blade is fan blade with silicon steel sheet and has a shaft of stainless steel, said heat dissipating device has one lateral side at which a fan is arranged, said fan driving an airflow for lowering a temperature of said heat dissipating device and facilitating heat dissipation.
16. The liquid cooling system according to claim 15, characterized in that: wherein said heat dissipating device is a set of heat dissipating sheet or heat dissipating wavy band, wherein said heat dissipating sheet are arranged on the outer side of said cooling tubes and are mounted on said outer side of said cooling tubes directly through soldering or through coupling and fixing into position by soldering.
17. The liquid cooling system according to claim 16, characterized in that: wherein said heat absorbing device comprises a bottom plate for heat exchange and a coolant chamber, wherein said bottom plate for heat exchange and said coolant chamber are connected and sealed through a sealing ring.
18. The liquid cooling system according to claim 17, characterized in that: wherein said bottom plate for heat exchange is made of metal materials, which include alloyed copper, aluminum, aluminum alloy or alloy steel; said bottom plate for heat exchange has an inner bottom surface which has a groove structure construction such that the coolant in said coolant chamber is endlessly close to the heat-generating components.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the technical solution of the embodiments of the present invention, the followings briefly described the drawings accompanying the description of embodiments. It will be apparent that the following drawings are merely exemplary embodiments of the present invention. For person of ordinary skill in the art, under the premise of non-creative work, other drawings can also be obtained based on these drawings. In the drawings:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025] In conjunction with the accompanying drawings: 1-water-pump cover locking screw, 2-water-pump cover, 3-water-pump holder locking screw, 4-water-pump stator, 5-water-pump holder, 6-water-pump sealing ring, 7-water-pump rotor, 8-water-pump body, 9-main panel unit of water-pump chamber, 10-water-pump chamber, 11-window, 12-radiator unit, 13-radiator fill hole, 14-fan, 15-fan locking screw, 16-silicon casing tube, 17-tube, 18-tube connector, 19-water-cooled head chamber, 20-water-cooled head LED decoration unit, 21-sealing ring for tube connector, 22-connector locking screw, 23-sealing ring for water-cooled head chamber, 24-copper plate for heat absorption, 25-copper plate screw, 26-pump chamber, 30-top water chamber, 31-water inlet port, 32-water outlet port, 33-fill port, 34-harmonica-shaped tube, 35-main side panel for fan mounting, 36-bottom water chamber, 37-soldered fin, 38-water-pump chamber, 39-brazed fin, 40-partition panel.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0026] In order to make the objects, technical solutions and advantages of the present invention more clearly understood, the various embodiments are further described with the accompanying drawings in the followings. These drawings figures form a part of the embodiment, wherein the embodiment in which the present invention may be realized is described. It is to be understood that other embodiments may be used, or structural and functional modifications may be made to the embodiments described herein without departing from the scope and spirit of the present invention.
[0027] According to
[0028] Again, referring to
[0029] Referring to
[0030]
[0031]
[0032] According to the cross-sectional view taken along the line A-A′ in
[0033] The copper plate for heat absorption 24 in the water-cooled head body employs the latest groove-cutting style copper base and is capable of using other metal materials such as alloyed copper, aluminum, aluminum alloy, alloy steel and etc. The inner bottom surface of the bottom plate for heat exchange adopts a groove structure so that the coolant in the coolant chamber is endlessly close to the heat-generating devices, thus bringing away the heat from the heat-generating devices effectively.
[0034] In order to realize the above liquid-cooled radiator unit used in the liquid cooling system, this embodiment utilizes water as the coolant. Of course, other liquid which has the effect of coolant can also be used. For examples, sealed liquid nitrogen and etc. can also be used. According to this embodiment, the water inlet chamber is positioned at the middle portion in the top water chamber while the fill port 33 and the water outlet 32 are channel through, and this is not a fixed arrangement and other arrangements can also be workable. For example, their position can be arranged in one side of the radiator unit. The harmonica-shaped tube connected to the water inlet chamber can also have another shape, or the number of harmonica-shaped tube can be one or more than one provided that the number of tubes connecting to liquid-cooled outlet tubes is not smaller than that of liquid-cooled inlet tubes. Of course, it is also possible to have a smaller number of tubes as long as the entire loop of coolant is realized because the thickness of the tubes can be varied and the flow rate of the coolant can be varied. In the present preferred embodiment, the number of liquid-cooled outlet tubes is two times of the number of liquid-cooled inlet tubes while the liquid-cooled outlet tubes are positioned at the two sides of the liquid-cooled inlet tubes.
[0035] The above is a specific embodiment of the present invention. In the embodiment, amongst the fan 14, the radiator unit 12, the water-pump body, the tubes and the water-cooled head body in the entire liquid cooling system, the fan provides a faster cooling effect to the radiator unit 12. However, in the absence of fan, the present system is still workable. In the structure of the radiator unit 12, only one of the top water chamber and the bottom water chamber is required and can be defined as a water chamber, which can be located at one side of the cooling tube. As long as a water outlet port and a water inlet port is provided on the water chamber, and the water chamber is connected to the water-cooled head body such that the heat dissipating to the water from the heat generating component is accumulated and conveyed, that at this point the water pump body can be positioned at any section of the cooling tube to provide power for the cooling water to circulate inside the cooling tubes. However, if water chamber is arranged on a top and a bottom of the radiator and the pump chamber is connected to one-way flowing cooling tubes, it is necessary to disconnect all the cooling tubes with one-way flowing and connect to two sides of the pump chamber so as to ensure that the system circulates under the power provided by the pump.
[0036] It is obvious that in the above embodiment, the tube body is the tube unit. The length of the tube unit can be determined according to the actual product installation space, or can be as short as direct connection between the water-cooled head body and the radiator unit. Under certain space requirement, the water chamber can be substituted by the pump chamber directly and the tubes are directly connected to the two ends of the cooling tubes to form a water loop for circulation. The product based on the present invention can be very small in size in accordance with the space requirements of the electronic product. For examples, in its application on all-in-one computer, it requires only a very small space.
[0037] The liquid cooling system of the present invention provides superior heat dissipation to the heat-generating devices and is capable of preventing leakage at the tube connector, which can greatly enhance the lifespan of the pump body, lower the cost and reduce the existing problem of electromagnetic noise from the motor.
[0038] The present invention is based on the existing product and employs an integral arrangement of the pump device and the radiator unit. The present invention includes the fan for heat dissipation to bring away the heat from the radiator, at the same time, the heat generated from the pump power device is also blown away by the fan. Accordingly, the motor life is prolonged and the space requirement is greatly reduced. The pump device is connected to four inlet and eight outlet cooling tubes, which greatly increases the heat exchange effect. The cost of manufacture and assembly is reduced. Therefore, the product assembly is convenience and efficient, and the cost can be controlled.
[0039] One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting. It will thus be seen that the objects of the present invention have been fully and effectively accomplished. It embodiments have been shown and described for the purposes of illustrating the functional and structural principles of the present invention and is subject to change without departure from such principles. Therefore, this invention includes all modifications encompassed within the spirit and scope of the following claims.