LIGHTWEIGHT LIQUID-COOLING-PLATE ASSEMBLY HAVING PLASTIC FRAME AND HEAT DISSIPATION SYSTEM USING SAME
The present invention relates to a lightweight liquid-cooling-plate assembly having a plastic frame and a heat dissipation system using the same. The liquid-cooling-plate assembly includes a plastic frame and at least one coolant chamber unit. The plastic frame includes a plurality of lateral walls, at least one accommodation opening, and a plurality of fastening elements. The lateral walls are connected with each other to form and define the at least one accommodation opening. The fastening elements are disposed on a part of the lateral walls. The coolant chamber unit is connected with the plastic frame and embedded in the at least one accommodation opening, and includes at least one surface exposed.
The present invention relates to a liquid-cooling-plate assembly and a heat dissipation system, and more particularly to a lightweight liquid-cooling-plate assembly having a plastic frame and a heat dissipation system using the same.
BACKGROUND OF THE INVENTIONIn recent years, the developments of electronic devices trend toward miniaturization and integration, and the power of the electronic device is increased continuously. As a result, the heat flux density of electronic device is becoming higher and higher, and the heat dissipation efficiency is hard to be enhanced. The electronic devices such as the insulated gate bipolar transistors (IGBT) of power semiconductor devices are widely used as a high-frequency switch element for various power supply systems. The high power semiconductor device generates a large amount of heat during operating. If the generated heat can't be removed effectively, the entire system may be damaged or the operation efficiency may be reduced. However, the passive heat dissipation devices fail to meet the heat dissipation requirements of high power semiconductor devices. Comparing to the passive heat dissipation devices, the liquid-cooled-plate assembly has better performance and can meet the heat dissipation requirements or package footprint requirements.
Currently, there are many implementations of liquid-cooling-plate assemblies applied in power semiconductor devices. The most common liquid-cooling-plate assembly includes a metal plate with a flow path, where the power semiconductor devices are mounted on the surface of the metal plate. Heat exchange is carried out between the liquid flowing in the internal flow path of the metal plate and the power semiconductor devices. Consequently, the heat is transferred from the system to the surrounding to achieve heat dissipation of the power semiconductor devices.
Therefore, there is a need of providing a liquid-cooling-plate assembly and a heat dissipation system to overcome the above drawbacks.
SUMMARY OF THE INVENTIONThe object of the present disclosure is to provide a lightweight liquid-cooling-plate assembly having a plastic frame and a heat dissipation system using the liquid-cooling-plate assembly. The plastic frame is combined with at least one coolant chamber unit to form the liquid-cooling-plate assembly, so as to provide sufficient mechanical strength for supporting the coolant chamber unit. In addition, the power semiconductor devices can be secured on the liquid-cooling-plate assembly, or the liquid-cooling-plate assembly can be assembled with a system board so as to achieve the purpose of cooling and lightweight.
Another object of the present disclosure is to provide a lightweight liquid-cooling-plate assembly having a plastic frame and a heat dissipation system using the liquid-cooling-plate assembly. The plastic frame is preformed and then assembled with the coolant chamber unit, or the plastic frame body can be formed and combined with the coolant chamber unit directly by means of injection molding or matrix transfer molding, so that the liquid-cooling-plate assembly is lightened, has lower material cost, and can be assembled easily. The production rate is increased, and the assembly cost is reduced.
In accordance with an aspect of the present disclosure, a liquid-cooling-plate assembly is provided and includes a plastic frame and at least one coolant chamber unit. The plastic frame includes a plurality of lateral walls, at least one accommodation opening, and a plurality of fastening elements. The lateral walls are connected with each other to form and define the at least one accommodation opening. The fastening elements are disposed on a part of the lateral walls. The coolant chamber unit is connected with the plastic frame and embedded in the at least one accommodation opening, and includes at least one surface exposed.
In accordance with another aspect of the present disclosure, there is provided a heat dissipation system. The heat dissipation system includes a liquid-cooling-plate assembly, at least one power semiconductor module and a system board. The liquid-cooling-plate assembly includes a plastic frame and at least one coolant chamber unit. The plastic frame includes a plurality of lateral walls, at least one accommodation opening, and a plurality of fastening elements. The lateral walls are connected with each other to form and define the at least one accommodation opening, and the fastening elements are disposed on a part of the lateral walls. The at least one coolant chamber unit is connected with the plastic frame and embedded in the at least one accommodation opening, and includes at least one surface exposed. The at least one power semiconductor module is secured on the plastic frame of the liquid-cooling-plate assembly by allowing a plurality of first securing elements to engage with a part of the fastening elements. The at least one power semiconductor module is attached on the at least one surface of the liquid-cooling-plate assembly. The system board is assembled with the liquid-cooling-plate assembly by allowing a plurality of second securing elements to engage with the other part of the fastening elements.
The above contents of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
In the embodiment, the plastic frame 41 is preformed, and connected with the coolant chamber unit 42 by an adhesive layer 43, as shown in
In the embodiment, the coolant chamber unit 42 is made of a metallic material. The coolant chamber unit 42 includes at least one fluid inlet 421, at least one fluid outlet 422 and at least one internal flow path (not shown). The internal flow path of the coolant chamber unit 42 is communicated with the fluid inlet 421 and the fluid outlet 422. The coolant chamber unit 42 further includes the cooling liquid imported from the fluid inlet 421, flowing through the internal flow path and then exported from the fluid outlet 422, so that the heat from the power semiconductor module 5 is transferred through the cooling liquid and the surface 42c of the coolant chamber unit 42 to achieve the heat dissipation. In the embodiment, the cooling liquid is for example but not limited to water or other refrigerant fluid.
In the embodiment, the fastening elements 413 are disposed and embedded in the first lateral wall 4111 and the second lateral wall 4112. The number and the positions of the fastening elements 413 disposed in the first lateral wall 4111 are corresponding to the number and the positions of the fastening elements 413 disposed in the second lateral wall 4112. The fastening element 413 is for example but not limited to a pillar with threaded hole, which pass through two opposite edges of first lateral wall 4111 or two opposite edges of second lateral wall 4112. The fastening elements 413 can be formed by inserting the pillars with threaded hole into the plastic frame 41 after the plastic frame 41 is formed, or embedding pillars with threaded holes in the plastic frame 41 during injection molding process, as shown in
Please refer to
In some embodiments, the first lateral wall 4111 of the plastic frame 41 includes a plurality of first position recesses 4115 disposed on the outer side thereof. The second lateral wall 4112 of the plastic frame 41 includes a plurality of second position recesses 4116 disposed on the outer side thereof. The first position recesses 4115 are aligned with the second position recesses 4116. The power semiconductor module 5 includes a carrier 51 and at least one power semiconductor device 52. The power semiconductor device 52 is disposed on the carrier 51. The carrier 51 includes a first position protrusion 53 and a second position protrusion 54. The first position recesses 4115 are configured to match with the first position protrusion 53, and the second position recesses 4116 are configured to match with the second position protrusion 54. Consequently, the alignments between through-holes of the power semiconductor module 5 and the corresponding first fastening elements 4131 are achieved by using the position recesses and the position protrusions so as to facilitate the fastening operation of the first securing elements 44. In some embodiments, the plastic frame 41 is provided with a plurality of grooves 416 without affecting the structural strength of the plastic frame 41. Consequently, the weight of the plastic frame 41 can be reduced to accomplish the purpose of lightweight.
In some embodiments, as shown in
On the other hand, as shown in
In summary, the present disclosure provides a lightweight liquid-cooling-plate assembly having a plastic frame and a heat dissipation system using the same liquid-cooling-plate assembly. The plastic frame is combined with at least one coolant chamber unit to form the liquid-cooling-plate assembly, so as to provide sufficient mechanical strength for supporting the coolant chamber unit. In addition, the power semiconductor devices can be secured on the liquid-cooling-plate assembly, or the liquid-cooling-plate assembly can be assembled with a system board so as to achieve the purpose of cooling and lightweight. In addition, the plastic frame is preformed and then assembled with the coolant chamber unit, or the plastic frame body can be formed and combined with the coolant chamber unit directly by means of injection molding or matrix transfer molding, so that the liquid-cooling-plate assembly is lightened, has lower material cost, and can be assembled easily. The production rate is increased, and the assembly cost is reduced.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
Claims
1. A liquid-cooling-plate assembly comprising:
- a plastic frame including a plurality of lateral walls, at least one accommodation opening, and a plurality of fastening elements, wherein the lateral walls are connected with each other to form and define the at least one accommodation opening, and the fastening elements are disposed on a part of the lateral walls, wherein the lateral walls of the plastic frame comprises a first lateral wall and a second lateral wall, and the first lateral wall is opposite to the second lateral wall, wherein the first lateral wall of the plastic frame comprises an outer side including a plurality of first position recesses, and the second lateral wall of the plastic frame comprises an outer side including a plurality of second position recesses, wherein the first position recesses are aligned with the second position recesses; and
- at least one coolant chamber unit connected with the plastic frame, embedded in the at least one accommodation opening, and including at least one surface exposed.
2. The liquid-cooling-plate assembly according to claim 1, wherein the plastic frame is connected with the coolant chamber unit by an adhesive layer.
3. The liquid-cooling-plate assembly according to claim 1, wherein the plastic frame is directly connected with the coolant chamber unit.
4. The liquid-cooling plate assembly according to claim 1, wherein the lateral walls of the plastic frame comprises a third lateral wall and a fourth lateral wall, wherein the third lateral wall is opposite to the fourth lateral wall, the first lateral wall includes two ends connected with the third lateral wall and the fourth lateral wall respectively, and the second lateral wall includes two ends connected with the third lateral wall and the fourth lateral wall respectively, wherein the fastening elements are embedded in the first lateral wall and the second lateral wall of the plastic frame.
5. The liquid-cooling-plate assembly according to claim 4, wherein the number and the position distribution of the fastening elements disposed on the first lateral wall are corresponding to the number and the position distribution of the fastening elements disposed on the second lateral wall.
6. The liquid-cooling plate assembly according to claim 4, wherein each of the fastening elements includes a screw hole passing through two opposite edges of the first lateral wall or two opposite edges of the second lateral wall.
7. The liquid-cooling plate assembly according to claim 1, wherein the fastening elements comprises a plurality of first fastening elements and a plurality of second fastening elements, wherein the first fastening elements are configured to engage with a plurality of first securing elements for securing at least one power semiconductor module on the liquid-cooling-plate assembly and allowing the at least one power semiconductor module to be attached on the at least one surface of the at least one coolant chamber unit, wherein the second fastening elements are configured to engage with a plurality of second securing elements for securing the liquid-cooling plate assembly on a system board.
8. (canceled)
9. The liquid-cooling plate assembly according to claim 1, wherein the at least one coolant chamber unit comprises a plurality of coolant chamber units, and the liquid-cooling plate assembly further comprises a plastic fastening device, a plurality of fluid ducts, at least one fluid inlet and at least one fluid outlet, wherein the coolant chamber units are communicated with each other through the fluid ducts and communicated between the fluid inlet and the fluid outlet, wherein the plastic frame comprises a plurality of receiving recesses to receive the fluid ducts, the at least one fluid inlet and the at least one fluid outlet, wherein the plastic fastening device is configured to fix portions of the fluid inlet and the fluid outlet exposed out of the plastic frame.
10. The liquid-cooling plate assembly according to claim 1, wherein the at least one coolant chamber unit comprises a first coolant chamber unit and a second coolant chamber unit, and the liquid-cooling plate assembly further comprises an additional plastic frame, a plurality of fluid ducts, at least one fluid inlet, at least one fluid outlet, and a fluid reservoir, wherein the first coolant chamber unit and the second coolant chamber unit are assembled with the plastic frame and the additional plastic frame respectively, and embedded in the plastic frame and the additional plastic frame respectively, wherein the first coolant chamber unit, the second coolant chamber unit and the fluid reservoir are communicated with each other through the fluid ducts, and the fluid inlet and the fluid outlet are communicated with the fluid reservoir respectively, wherein the first coolant chamber unit and the second coolant chamber unit include surfaces exposed on the plastic frame and the additional plastic frame respectively.
11. The liquid-cooling-plate assembly according to claim 1, wherein the at least one coolant chamber unit comprises:
- a case including at least one through-hole disposed on a lateral side thereof;
- a bottom cover opposite to the case, connected with the case and including at least one surface; and
- a plurality of fins disposed between the case and the bottom cover and connected to the at least one surface.
12. The liquid-cooling-plate assembly according to claim 11, wherein the fins are round pin fins, plate fins or wavy fins.
13. A heat dissipation system comprising:
- a liquid-cooling-plate assembly comprising: a plastic frame including a plurality of lateral walls, at least one accommodation opening, and a plurality of fastening elements, wherein the lateral walls are connected with each other to form and define the at least one accommodation opening, and the fastening elements are disposed on a part of the lateral walls, wherein the lateral walls of the plastic frame comprises a first lateral wall and a second lateral wall, and the first lateral wall is opposite to the second lateral wall, wherein the first lateral wall of the plastic frame comprises an outer side including a plurality of first position recesses, and the second lateral wall of the plastic frame comprises an outer side including a plurality of second position recesses, wherein the first position recesses are aligned with the second position recesses; and at least one coolant chamber unit connected with the plastic frame, embedded in the at least one accommodation opening, and including at least one surface exposed;
- at least one power semiconductor module secured to the plastic frame by engaging a plurality of first securing elements with portions of the fastening elements, wherein the at least one power semiconductor module is attached on the at least one surface of the coolant chamber unit; and
- a system board assembled with the liquid-cooling-plate assembly by engaging a plurality of second securing elements with the other portions of the fastening elements.
14. The heat dissipation system according to claim 13, wherein the plastic frame is connected with the coolant chamber unit by an adhesive layer.
15. The heat dissipation system according to claim 13, wherein the plastic frame is directly connected with the coolant chamber unit.
16. The heat dissipation system according to claim 13, wherein the lateral walls of the plastic frame comprises a third lateral wall and a fourth lateral wall, wherein the third lateral wall is opposite to the fourth lateral wall, the first lateral wall includes two ends connected with the third lateral wall and the fourth lateral wall respectively, and the second lateral wall includes two ends connected with the third lateral wall and the fourth lateral wall respectively, wherein the fastening elements are embedded in the first lateral wall and the second lateral wall of the plastic frame.
17. The heat dissipation system according to claim 16, wherein the number and the position distribution of the fastening elements disposed on the first lateral wall are corresponding to the number and the position distribution of the fastening elements disposed on the second lateral wall.
18. The heat dissipation system according to claim 13, wherein the fastening elements comprises a plurality of first fastening elements and a plurality of second fastening elements, wherein the first fastening elements are configured to engage with the first securing elements for securing the at least one power semiconductor module on the liquid-cooling plate and allowing the at least one power semiconductor module to be attached on the at least one surface of the coolant chamber unit of the liquid-cooling plate assembly, wherein the second fastening elements are configured to engage with the second securing elements for securing the liquid-cooling plate assembly to the system board.
19. The heat dissipation system according to claim 16, wherein the power semiconductor module comprises a carrier and at least one power semiconductor device, the at least one power semiconductor device is disposed on the carrier, and the carrier includes a first position protrusion and a second position protrusion, wherein the first position recesses are configured to match with the first position protrusion, and the second position recesses are configured to match with the second position protrusion.
Type: Application
Filed: Dec 27, 2016
Publication Date: May 31, 2018
Inventor: Kuo-An Liang (Taoyuan City)
Application Number: 15/391,651