COOLING MODULE
20220272878 · 2022-08-25
Inventors
Cpc classification
F28F9/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H05K7/20
ELECTRICITY
F28F9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cooling module includes a first casing, a second casing, and a cooling unit. The first casing includes a lower chamber filled with at least one working fluid. The first casing includes a heat source connecting face. The second casing includes an upper chamber. The cooling unit is located between the first and second casings. The cooling unit includes a plurality of tubes. Each of the plurality of tubes includes an end intercommunicating with the lower chamber and another end intercommunicating with the upper chamber, thereby the lower and upper chambers intercommunicate with each other. A plurality of cooling fin units is coupled to outer peripheries of the plurality of tubes. An angle between each of the plurality of tubes and the heat source connecting face is larger than 0° and smaller than 90°, or each of the plurality of tubes is parallel to the heat source connecting face.
Claims
1. A cooling module comprising: a first casing including a lower chamber filled with at least one working fluid, wherein the first casing includes a heat source connecting face; a second casing including an upper chamber; and a cooling unit located between the first casing and the second casing, wherein the cooling unit includes a plurality of tubes, wherein each of the plurality of tubes includes an end intercommunicating with the lower chamber and another end intercommunicating with the upper chamber, thereby the lower chamber and the upper chamber intercommunicate with each other, wherein a plurality of cooling fin units is coupled to outer peripheries of the plurality of tubes, and wherein an angle between each of the plurality of tubes and the heat source connecting face is larger than 0° and smaller than 90°, or each of the plurality of tubes is parallel to the heat source connecting face.
2. The cooling module as claimed in claim 1, wherein the first casing includes a casing seat and a first positioning board, wherein the first positioning board is coupled to the casing seat to form the lower chamber, wherein the second casing includes a lid and a second positioning board, and wherein the lid is coupled to the second positioning board to form the upper chamber.
3. The cooling module as claimed in claim 1, wherein the first casing includes a casing seat and a first positioning board, wherein the casing seat includes a bottom inner face therein, wherein the bottom inner face faces an opening of the casing seat, wherein the first positioning board covers the opening, wherein the heat source connecting face is located on an annular wall of the casing seat, and wherein an area of the opening is larger than an area of the bottom inner face.
4. The cooling module as claimed in claim 1, wherein the first casing includes a casing seat, wherein the casing seat includes a bottom portion and an annular wall connected to the bottom portion, and wherein the heat source connecting face is located on the bottom portion or the annular wall.
5. The cooling module as claimed in claim 4, wherein the heat source connecting face is located on the annular wall, wherein the casing seat bends from a portion of the bottom portion towards the lower chamber to form a first bending portion and bends from a portion of the annular wall towards the lower chamber to form a second bending portion, and wherein the first bending portion and the second bending portion together form a recessed portion.
6. The cooling module as claimed in claim 5, wherein the second bending portion is inclined.
7. The cooling module as claimed in claim 4, wherein the heat source connecting face is located on the bottom portion, wherein a height of the annular wall gradually increases from a side of the casing seat towards another side of the casing seat, and wherein the plurality of tubes is coupled with the first casing to form the angle.
8. The cooling module as claimed in claim 1, wherein the first casing includes a casing seat and at least one engaging portion, wherein the at least one engaging portion is connected to the casing seat, and wherein the at least one engaging portion is configured to be securely coupled to a pre-determined position.
9. The cooling module as claimed in claim 1, wherein the first casing includes a first positioning board, wherein the second casing includes a second positioning board, and wherein the plurality of tubes is coupled with the first positioning board and the second positioning board.
10. The cooling module as claimed in claim 1, wherein the at least one working fluid includes two or more working fluids.
11. The cooling module as claimed in claim 1, wherein the at least one working fluid is an electrically non-conductive liquid.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The present invention will become more fully understood from the detailed description given hereinafter and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present invention, and wherein:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031] In the various figures of the drawings, the same numerals designate the same or similar parts. Furthermore, when the terms “inner”, “outer”, “top”, “bottom”, “front”, “rear” and similar terms are used hereinafter, it should be understood that these terms have reference only to the structure shown in the drawings as it would appear to a person viewing the drawings, and are utilized only to facilitate describing the invention.
DETAILED DESCRIPTION OF THE INVENTION
[0032] With reference to
[0033] With reference to
[0034] Specifically, the first casing 1 includes a heat source connecting face Q for thermal connection with a heat source H. The heat source H can be a server, a computer, or a central processor of other electric appliance, or electronic elements or a circuit board, which generate heat during operation. More specifically, in an option of the lower chamber S1, the casing seat 1a has a receiving space 10, and the first positioning board 1b is coupled to the casing seat 1a to form the lower chamber S1. As an example, the casing seat 1a of this embodiment may include a bottom portion 11 and an annular wall 12 connected to the bottom portion 11. The heat source connecting face Q can be located on the bottom portion 11. The bottom portion 11 and the annular wall 12 together define the receiving space 10.
[0035] In other embodiments, a receiving space 10 can be provided on the first positioning board 1b rather than the casing seat 1a. Alternatively, each of the casing seat 1a and the first positioning board 1b can include a receiving space 10, which together define a larger space for receiving when coupled. The present invention is not limited in this regard. After bonding the heat source connecting face Q with a thermally conductive gel, the casing seat 1a can then be in thermal connection with the heat source H. Alternatively, the whole casing seat 1a can be selected to be directly made of a metal material with a high thermal conductivity, such as copper or aluminum.
[0036] It should be noted that the lower chamber S1 may be filled with at least one working fluid L. For example, the lower chamber S1 may be filled with one, two, three or more kinds of working fluids L. As shown in
[0037] Furthermore, the casing seat 1a may include a bottom inner face 13 therein. The bottom inner face 13 faces an opening 14 of the casing seat 1a. The first positioning board 1b may be coupled with atop edge of the annular wall 12 to cover the opening 14. Furthermore, the height of the annular wall 12 gradually increases from a side of the casing seat 1a towards another side of the casing seat 1a, such that the first positioning board 1b and the bottom portion 11 are not parallel to each other.
[0038] Furthermore, the first positioning board 1b may have a plurality of first coupling portions 15. Each of the plurality of first coupling portions 15 has a first through-hole 16. The first through-holes 16 intercommunicate with the lower chamber S1. Furthermore, the first casing 1 may include at least one engaging portion 1c which can be connected to the casing seat 1a. The at least one engaging portion 1c may include an engaging hole 17 by which the at least one engaging portion 1c is adapted to be securely coupled to a pre-determined position, such that the heat source connecting face Q can easily be in thermal contact with the heat source H.
[0039] The second casing 2 includes an upper chamber S2. The present invention is not limited to the formation method of the upper chamber S2. In this embodiment, the second casing 2 may include a lid 2a and a second positioning board 2b. The lid 2a is coupled to the second positioning board 2b to form the upper chamber S2. Furthermore, the second positioning board 2b may include a plurality of second coupling portions 21. Each of the plurality of second coupling portions 21 may include a second through-hole 22. The second through-holes 22 intercommunicate with the upper chamber S2.
[0040] With reference to
[0041] With reference to
[0042] With reference to
[0043] With reference to
[0044] Furthermore, in this embodiment, a side of the annular wall 12 may be inclinedly connected to the bottom portion 11, as shown in
[0045] With reference to
[0046] In view of the foregoing, in operation of the cooling module according to the present invention, the liquid working fluid in the lower chamber can absorb heat to evaporate into the gaseous state. Next, the gaseous working fluid enters the upper chamber via the plurality of tubes. Since the angle between each of the plurality of tubes and the heat source connecting face is larger than 0° and smaller than 90° or each of the plurality of tubes is parallel to the heat source connecting face, the working fluid in the upper chamber condensing from the gaseous state into the liquid state can flow downwards back into the lower chamber under the gravitational force. This increases the recycling and recirculating functions of the condensed liquid. Furthermore, the provision of the plurality of cooling fin units provides a larger contact area for the heat in the plurality of tubes and the plurality of cooling fin units, increasing the cooling effect.
[0047] Although the invention has been described in detail with reference to its presently preferable embodiments, it will be understood by one of ordinary skill in the art that various modifications can be made without departing from the spirit and the scope of the invention, as set forth in the appended claims.