Liquid-cooling type double-sided cooler
11665868 · 2023-05-30
Assignee
Inventors
Cpc classification
F28F1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0333
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2230/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B31/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/264
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H05K7/20
ELECTRICITY
F25B31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure provides a liquid-cooling type double-sided cooler, including a first cooling portion and a second cooling portion. In the liquid-cooling type double-sided cooler, another end of the first cooling portion is formed with a first communication hole that is configured to penetrate the first cooling liquid path and an outside of the first cooling portion, another end of the second cooling portion is formed with a second communication hole that is configured to penetrate the second cooling liquid path and an outside of the second cooling portion; and the first cooling portion and the second cooling portion are positioned such that the first communication hole and the second communication hole face each other, and the first cooling liquid path and the second cooling liquid path are connected with each other.
Claims
1. A liquid-cooling type double-sided cooler including: a first cooling portion configured to: form a first cooling liquid path within which cooling liquid flows such that the cooling liquid is flowed into and discharged in one end of the first cooling portion; and a second cooling portion configured to: form a second cooling liquid path within which the cooling liquid flows such that the cooling liquid is flowed out of and discharged from one end of the second cooling portion; and wherein the second cooling portion is located at a predetermined distance from the first cooling portion below a lower cover of the first cooling portion, wherein another end of the first cooling portion is formed with a first communication hole that is configured to penetrate the first cooling liquid path and an outside of the first cooling portion, and another end of the second cooling portion is formed with a second communication hole that is configured to penetrate the second cooling liquid path and an outside of the second cooling portion, wherein the first cooling portion and the second cooling portion are positioned such that; the first communication hole and the second communication hole face each other; and the first cooling liquid path and the second cooling liquid path are connected with each other, wherein the first cooling portion comprises a first edge portion that protrudes toward the outside of the first cooling portion along a circumference of the first communication hole, wherein the second cooling portion comprises a second edge portion that protrudes toward the outside of the second cooling portion along a circumference of the second communication hole, wherein the first edge portion and the second edge portion are coupled to each other and the first cooling liquid path and the second cooling liquid path are connected with each other, a first protrusion portion protruding toward an outside of the second communication hole along the circumference of the second communication hole; and a second protrusion portion protruding toward an outside of the first protrusion portion along a circumference of the first protrusion portion, wherein the second protrusion portion is provided in an opposite direction of the second communication hole from the first protrusion portion, and wherein the first edge portion is inserted into a space between the first protrusion portion and the second protrusion portion such that the first edge portion and the second edge portion are coupled to each other.
2. The liquid-cooling type double-sided cooler of claim 1, wherein the liquid-cooling type double-sided cooler further comprises a sealing portion configured to seal a space between the first protrusion portion and the second protrusion portion, wherein the sealing portion is formed in the space between the first protrusion portion and the second protrusion portion.
3. The liquid-cooling type double-sided cooler of claim 1, wherein the first cooling portion includes an upper cover and the lower cover within which the first cooling liquid path flows.
4. The liquid-cooling type double-sided cooler of claim 1, wherein the second cooling portion includes an upper cover and a lower cover within which the second cooling liquid path flows.
Description
DRAWINGS
(1) In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
(2)
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(9) The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
(10) The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
(11) Hereinafter, a liquid-cooling type double-sided cooler in various forms of the present disclosure will be described in more detail with reference to the accompanying drawings.
(12)
(13) Referring to
(14) The first cooling portion 11, 12 has a structure that a cooling liquid path within which cooling liquid flows may be formed and that cooling liquid may be introduced and discharged into one end thereof. Likewise, the second cooling portion 21, 22 also has a structure that a cooling liquid path within which cooling liquid flows may be formed and that cooling liquid may be introduced and discharged into one end thereof.
(15) The first cooling portion 11, 12 and the second cooling portion 21, 22 may be positioned to be spaced at a predetermined interval with an upper-lower relationship and a cooling object 100 may be interposed in a space therebetween. For example, the cooling object 100 may become a power module for power conversion that packages an element such as an Insulated Gate Bipolar Transistor (IGBT) or a diode and the like. An upper surface of the cooling object 100 may directly contact with a lower surface of the first cooling portion 11, 12 or contact with the first cooling portion 11, 12 while interposing a thermal grease therebetween; and a lower surface of the cooling object 100 may directly contact with an upper surface of the second cooling portion 21, 22 or contact with the second cooling portion 21, 22 while interposing a thermal grease therebetween.
(16) According to the arrangements, it is possible to perform a thermal exchange on contacting surfaces of the cooling object 100 and the cooling portions 11, 12, 21, 22, thereby preventing over-temperature of the cooling object 100 and implementing the cooling.
(17)
(18) Referring to
(19) For cooling of the cooling object 100 as described above, an outer surface of the lower cover 112 of the first cooling portion 11 may directly contact with an upper surface of the cooling object 100 or contact therewith while interposing a thermal grease; and an outer surface of the upper cover 211 of the second cooling portion 21 may directly contact with a lower surface of the cooling object 100 or contact therewith while interposing a thermal grease.
(20) Further, a cooling liquid path of the first cooling portion 11 and a cooling liquid path of the second cooling portion 21 may be installed with a cooling pin 113, 213. The cooling pin 113, 213 may be positioned to contact with the upper covers 111, 211 and the lower covers 112, 212 of the cooling portions 11, 21 each installed; and heat that is delivered from the lower cover 112 and the upper cover 211 contacting with the cooling object 100 increases the area contacting with cooling liquid, thereby further enhancing cooling efficiency.
(21) Particularly, in one form of the present disclosure, since the cooling pin 113, 213 is interposed as a structure between the upper covers 111, 211 and the lower covers 112, 212, it may be adjusted to be selectively positioned only at a location that the cooling object 100 interposed between the first cooling portion 11 and the second cooling portion 21 face each of the cooling portions 11, 21, that is, at a location contacting therewith.
(22) Accordingly, in a tube structure of cooler with the cooling pin wholly installed in the related art, it is possible to remove occurrence of a pressure loss by a cooling pin and to resolve a temperature deviation of cooling liquid between the flow paths divided by the cooling pin. Accordingly, the liquid-cooling type double-sided cooler in one form of the present disclosure may remarkably enhance cooling efficiency compared to the cooler in the related art.
(23) Meanwhile, one ends of the first cooling portion 11, 12 and the second cooling portion 21, 22 may be formed with a cooling nipple 31, 32 and a header tank 41, 42 so that cooling liquid may be introduced or discharged. For example, cooling liquid may be introduced into the first cooling portion 11, 12 via the cooling nipple 31 and the header tank 41 connected to the one end of the first cooling portion 11, 12 and discharged via the header tank 42 and the cooling nipple 32 connected to the one end of the second cooling portion 21, 22. Of course, flow of cooling liquid may be conversely formed.
(24) Accordingly, so that flow of cooling liquid between the first cooling portion 11, 12 and the second cooling portion 21, 22 may be formed, other ends of the first cooling portion 11, 12 and the second cooling portion 21, 22 may be formed with a coupling structure (A) that the cooling liquid path of the two cooling portions may be communicated with each other.
(25)
(26) Referring to
(27) In the case that flow of cooling liquid between the first cooling portion 11, 12 and the second cooling portion 21, 22 through the first communication hole H1 and the second communication hole H2 is formed, a liquid-tight structure according to coupling of the first cooling portion 11, 12 and the second cooling portion 21, 22 has to be formed.
(28) For this purpose, one form of the present disclosure may formed with a first edge portion 114 protruded toward the outside along a circumference of the first communication hole H1 on the first cooling portion 11, 12; and a second edge portion 214, 215 protruded toward the outside along a circumference of the second communication hole H2 on the second cooling portion 21, 22. One of the first edge portion 114 and the second edge portion 214, 215 may be coupled as a structure inserted into the other; and a sealing portion 300 for sealing may be formed around an insertion structure of the first edge portion 114 and the second edge portion 214, 215 to form a stronger liquid-tight structure. Herein, the sealing portion 300 may be formed by depositing a liquid-state sealing member or implemented by a method of assembling an elastic member such as a pre-manufactured rubber and the like.
(29) More preferably, as illustrated in
(30) Herein, the first edge portion 114 may be inserted into a space (C) between the first protrusion portion 214 and the second protrusion portion 215, and thereby the first edge portion 114 and the second edge portion 214, 215 may be coupled.
(31) In this case, the space (C) between the first protrusion portion 214 and the second protrusion portion 215 may be formed with the sealing portion 300 for sealing; the sealing portion 300 may seal the spaces between the first edge portion 114 and the first protrusion portion 214 and between the first edge portion 114 and the second protrusion portion 215, thereby forming a stronger liquid-tight structure.
(32) Accordingly, one form of the present disclosure may form the separate coupling structure (A) so that the first cooling portion 11, 12 and the second cooling portion 21, 22 of the upper and lower portions are communicated with each other through the communication hole H1, H2 formed with the lower surface and the upper surface thereof, respectively, when comparing with the liquid-cooling type double-sided cooler in the related art that forms the cooling structure of the upper and lower portions through the bending process with respect to the tube-shaped cooling portion, thereby solving the problems such as narrowing of flow path and thereby a pressure loss, blockage of flow path due to impurities and the like that occur in the bending process and also the problem that the cooler is easily broken in the bending process or after the bending process.
(33) In some forms of the present disclosure, the coupling structure of the cooler may be implemented as various other forms other than the form illustrated in
(34)
(35) Firstly,
(36) According to the coupling structure of
(37) Particularly, in
(38) The form illustrated in
(39) The form illustrated in
(40) The form illustrated in
(41) The form illustrated in
(42) The form illustrated in
(43) Like the form illustrated in
(44) The first cooling portion 11 may include a protection plate 114″ being a plate-shaped structure; and the second cooling portion 21 may also include a protection plate 214″ being a plate-shaped structure. The protection plate 114″ included in the first cooling portion 11 is positioned around the first communication hole H1 as formation including a penetration hole corresponding to the second communication hole H2 so that the first communication hole H1 is communicated with the outside without other process. The protection plate 214″ included in the second cooling portion 21 may include a protrusion portion (p′) protruded along the circumference of the second communication hole H2 by a press process and the like.
(45) In the form, at the status that the first cooling portion 11 and the second cooling portion 21 are coupled, the lower end of the guide portion 112e and the upper end of the guide portion 211e contact with each other; and the protrusion portion (p′) does not contact with the first cooling portion 11. The form may further include the gasket 300′ between the first protection plate 114″ and an upper surface of the second protection plate 124″ between the protrusion portion (P) and the second guide portion 211e to implement the liquid-tight structure.
(46)
(47) The form illustrated in
(48) The description of the disclosure is merely exemplary in nature and, thus, variations that do not depart from the substance of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.