Composite heat-dissipating module
A composite heat-dissipating module includes a heat-dissipating plate, an impeller, and a pump. The heat-dissipating plate includes at least one heat-dissipating section and a circulating pipe. The heat-dissipating section is thermally connected to an object to be dissipated. The circulating pipe contains a liquid coolant that circulates in the circulating pipe. The impeller is mounted adjacent to the heat-dissipating section for driving air to cool the heat-dissipating section. The pump drives the liquid coolant to circulate in the circulating pipe between the pump and the heat-dissipating section for cooling the heat-dissipating section.
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1. Field of the Invention
The present invention relates to heat-dissipating module. More particularly, the present invention relates to a composite heat-dissipating-module for cooling a heat-generating component.
2. Description of Related Art
U.S. Patent Application Publication No. 2004/0042173 A1 discloses an electronic apparatus having a circulating path through which liquid coolant cooling a heat generating component flows. Referring to
The electric fan 96 is mounted in the display unit 92 for guiding cool air to the heat radiating portion 93. The pump 97 is mounted in the main unit 91 and located between the heat receiving portion 93 and the heat radiating portion 94 in the circulating path 95. The pump 97 drives the liquid coolant to flow. When in use, the liquid coolant circulates in the circulating path 95 for dissipating the heat generated by the heat generating component 911. Meanwhile, the liquid coolant and the electric fan 96 together dissipate heat generated by other heat generating component 98 (such as a screen of a liquid crystal display), providing dual heat-dissipating effect (liquid cooling and air cooling).
However, the electric fan 96 and the pump 97 are respectively mounted in the main unit 91 and the display unit 92, occupying a larger space, requiring a longer circulating path 95, and further requiring two motors for separately operating the electric fan 96 and the pump 97. Further, the electric fan 96 can only provide air cooling for the heat radiating portion 94. Namely, the electric fan 96 could not provide air cooling for the heat receiving portion 93. As a result, the composite heat-dissipating module of this type could not be used in a small-size housing of a notebook type personal computer and thus has limited application.
OBJECTS OF THE INVENTIONAn object of the present invention is to provide a composite heat-dissipating module that saves the space for assembly and that has a simplified structure.
Another object of the present invention is to provide a composite heat-dissipating module that has a low-energy consuming rate.
A further object of the present invention is to provide a composite heat-dissipating module that has a low risk of leakage of coolant.
SUMMARY OF THE INVENTIONA composite heat-dissipating module in accordance with the present invention comprises a heat-dissipating plate, an impeller, and a pump. The heat-dissipating plate comprises at least one heat-dissipating section and a circulating pipe. The at least one heat-dissipating section is adapted to be thermally connected to an object to be dissipated. The circulating pipe is adapted to contain a liquid coolant that circulates in the circulating pipe. The impeller is mounted adjacent to the at least one heat-dissipating section for driving air to cool the at least one heat-dissipating section. The pump drives the liquid coolant to circulate in the circulating pipe between the pump and the at least one heat-dissipating section for cooling the at least one heat-dissipating section.
In an embodiment, the impeller and the pump are superimposed one on the other. The heat-dissipating plate includes two sides each having a receiving section. The receiving sections receive the impeller and the pump respectively. Alternatively, the composite heat-dissipating module comprises a base including two sides each having a receiving section, the receiving sections receiving the impeller and the pump respectively.
In another embodiment, impeller and the pump are mounted side by side. The heat-dissipating plate includes a side having two receiving sections that are in communication with each other. The receiving sections receive the impeller and the pump respectively. Alternatively, the composite heat-dissipating module comprises a base including a side having two receiving sections in communication with each other. The receiving sections receive the impeller and the pump respectively.
Preferably, a driving unit is provided for synchronously driving the impeller and the pump.
Preferably, the driving unit is an axial-flow motor, a radial-flow motor, or a single-phase motor.
Preferably, the driving unit comprises a stator and a rotational portion. The rotational portion is mounted to the impeller. The stator drives the rotational portion and the impeller to turn.
Alternatively, the driving unit comprises a stator and a rotational portion. The rotational portion is mounted on the pump. The stator drives the rotational portion and the pump to turn.
Preferably, a transmission device is provided for the driving unit and includes at least one gear or at least one belt.
In an example, the impeller includes a first transmission plate and the pump including a second transmission plate. The first transmission plate and the second transmission plate constitute the transmission device. Each of the first transmission plate and the second transmission plate includes a periphery with a plurality of teeth for meshing, allowing synchronous rotation of the first transmission plate and the second transmission plate.
In another example, each of the first transmission plate and the second transmission plate includes a periphery having an annular groove. At least one belt is mounted in the annular grooves to allow synchronous rotation of the first transmission plate and the second transmission plate.
In an embodiment, the impeller includes a hub, a plurality of vanes, and a shaft.
Preferably, the vanes are of blower type or axial flow type.
Preferably, the pump includes a rotational board, a plurality of driving board, and a shaft.
Preferably, the pump is a vane pump, gear pump, or swirl pump.
In another embodiment, the impeller includes a hub and a plurality of vanes. The pump includes a rotational board and a plurality of driving boards. The impeller and the pump have a common shaft.
Preferably, the heat-dissipating plate includes a plurality of fins and a plurality of channels alternately disposed on the at least one heat-dissipating section.
In an embodiment, the circulating pipe is mounted inside the heat-dissipating plate.
Alternatively, the circulating pipe is in contact with a side of the heat-dissipating plate.
Preferably, the circulating pipe is winding in the at least one heat-dissipating section.
Preferably, the heat-dissipating plate includes a receiving section, and a lid is mounted to cover the receiving section. The impeller is received in the receiving section, and the lid includes an air inlet facing the impeller.
Other objects, advantages and novel features of this invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
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By this arrangement, when alternating field is created by supplying electric current to the driving unit (single phase motor) 5, the rotational portion 52 of the impeller 3 senses the alternating field and drives the impeller 3 in the first receiving section 10 to turn for driving air for air cooling purposes. Meanwhile, the rotational portion 53 of the pump 4 indirectly senses the alternating field and drives the pump 4 to turn in the second receiving section 14 for driving the liquid coolant for liquid cooling purposes. The second embodiment as a whole not only provides the advantages of dual heat-dissipating effect, saving the space for assembly, simplifying the structure, and reducing energy loss but also prevents leakage of the liquid coolant in the second receiving section 14 via the pivotal joint of the shaft 43. The liquid cooling effect is further enhanced and the life of liquid cooling arrangement is prolonged.
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More specifically, the base 7 and the heat-dissipating plate 1 are separate from each other. The base 7 includes a first receiving section 70 and a second receiving section 71. Preferably, the first receiving section 70 and the second receiving section 71 are respectively located on two sides of the base 7. Alternatively, the first receiving section 70 and the second receiving section 71 are located on the same side of the base 7 and in communication with each other (see
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While the principles of this invention have been disclosed in connection with specific embodiments, it should be understood by those skilled in the art that these descriptions are not intended to limit the scope of the invention, and that any modification and variation without departing the spirit of the invention is intended to be covered by the scope of this invention defined only by the appended claims.
Claims
1. A composite heat-dissipating module comprising:
- a heat-dissipating plate comprising at least one heat-dissipating section and a circulating pipe, said at least one heat-dissipating section being adapted to be thermally connected to an object to be dissipated, the circulating pipe being adapted to contain a liquid coolant that circulates in the circulating pipe;
- an impeller mounted adjacent to said at least one heat-dissipating section for driving air to cool said at least one heat-dissipating section; and
- a pump mounted adjacent to the impeller, the pump driving the liquid coolant to circulate in the circulating pipe between the pump and said at least one heat-dissipating section for cooling said at least one heat-dissipating section.
2. The composite heat-dissipating module as claimed in claim 1 wherein the impeller and the pump are superimposed one on the other.
3. The composite heat-dissipating module as claimed in claim 2 wherein the heat-dissipating plate includes two sides each having a receiving section, the receiving sections receiving the impeller and the pump respectively.
4. The composite heat-dissipating module as claimed in claim 2 further comprising a base including two sides each having a receiving section, the receiving sections receiving the impeller and the pump respectively.
5. The composite heat-dissipating module as claimed in claim 1 wherein the impeller and the pump are mounted side by side.
6. The composite heat-dissipating module as claimed in claim 5 wherein the heat-dissipating plate includes a side having two receiving sections that are in communication with each other, the receiving sections receiving the impeller and the pump respectively.
7. The composite heat-dissipating module as claimed in claim 5 further comprising a base including a side having two receiving sections in communication with each other, the receiving sections receiving the impeller and the pump respectively.
8. The composite heat-dissipating module as claimed in claim 1 further comprising a driving unit for synchronously driving the impeller and the pump.
9. The composite heat-dissipating module as claimed in claim 8 wherein the driving unit is an axial-flow motor, a radial-flow motor, or a single-phase motor.
10. The composite heat-dissipating module as claimed in claim 9 wherein the driving unit comprises a stator and a rotational portion, the rotational portion being mounted to the impeller, the stator driving the rotational portion and the impeller to turn.
11. The composite heat-dissipating module as claimed in claim 9 wherein the driving unit comprises a stator and a rotational portion, the rotational portion being mounted on the pump, the stator driving the rotational portion and the pump to turn.
12. The composite heat-dissipating module as claimed in claim 8 further comprising a transmission device for the driving unit, the transmission device including at least one gear or at least one belt.
13. The composite heat-dissipating module as claimed in claim 12, wherein the impeller includes a first transmission plate, the pump including a second transmission plate, the first transmission plate and the second transmission plate constituting the transmission device, each of the first transmission plate and the second transmission plate including a periphery with a plurality of teeth for meshing, allowing synchronous rotation of the first transmission plate and the second transmission plate.
14. The composite heat-dissipating module as claimed in claim 12, wherein the impeller includes a first transmission plate, the pump including a second transmission plate, the first transmission plate and the second transmission plate constituting the transmission device, each of the first transmission plate and the second transmission plate including a periphery having an annular groove, at least one belt being mounted in the annular grooves to allow synchronous rotation of the first transmission plate and the second transmission plate.
15. The composite heat-dissipating module as claimed in claim 1 wherein the impeller includes a hub, a plurality of vanes, and a shaft.
16. The composite heat-dissipating module as claimed in claim 15 wherein the vanes are of blower type or axial flow type.
17. The composite heat-dissipating module as claimed in claim 1 wherein the pump includes a rotational board, a plurality of driving board, and a shaft.
18. The composite heat-dissipating module as claimed in claim 17 wherein the pump is a vane pump, gear pump, or swirl pump.
19. The composite heat-dissipating module as claimed in claim 1 wherein the impeller includes a hub and a plurality of vanes, the pump including a rotational board and a plurality of driving boards, the impeller and the pump having a common shaft.
20. The composite heat-dissipating module as claimed in claim 1 wherein the heat-dissipating plate includes a plurality of fins and a plurality of channels alternately disposed on said at least one heat-dissipating section.
21. The composite heat-dissipating module as claimed in claim 1 wherein the circulating pipe is mounted inside the heat-dissipating plate.
22. The composite heat-dissipating module as claimed in claim 1 wherein the circulating pipe is in contact with a side of the heat-dissipating plate.
23. The composite heat-dissipating module as claimed in claim 1 wherein the circulating pipe is winding in said at least one heat-dissipating section.
24. The composite heat-dissipating module as claimed in claim 1 further comprising a lid, the heat-dissipating plate including a receiving section, the lid being mounted to cover the receiving section, the impeller being received in the receiving section, the lid including an air inlet facing the impeller.
Type: Application
Filed: May 12, 2006
Publication Date: Aug 23, 2007
Applicant:
Inventors: Alex Horng (Kaohsiung), Masaharu Miyahara (Kaohsiung)
Application Number: 11/432,368
International Classification: F28D 15/00 (20060101); F28F 13/12 (20060101);