Liquid-cooling cold plate and method for manufacturing same
10532401 ยท 2020-01-14
Assignee
Inventors
Cpc classification
F28F2240/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0258
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2255/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20254
ELECTRICITY
F28F1/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22D19/0072
PERFORMING OPERATIONS; TRANSPORTING
F28F1/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0475
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0383
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F9/0131
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B22D19/00
PERFORMING OPERATIONS; TRANSPORTING
F28F9/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In a method of manufacturing a liquid-cooling cold plate, cast molding is performed after embedding a metal pipe for supplying a cooling liquid inside a casting mold. Fixing brackets to be attached to the metal pipe is provided to maintain a positional relationship between a plurality of portions of the metal pipe embedded in the casting mold. The casting molding is performed by pouring molten metal into the casting mold while the fixing metal parts are attached to the metal pipe.
Claims
1. A method of manufacturing a liquid-cooling cold plate, in which cast molding is performed after embedding a curved metal pipe for supplying a cooling liquid in a casting mold, and a heat-generating component is disposed on the cast molded metal pipe, the method comprising: providing a plurality of pipe pressing portions in conformation with the shape of the curved metal pipe in positions which avoid portions directly below the heat-generating component for pressing and fixing the metal pipe at the casting mold, and performing casting molding by pouring molten metal into the casting mold while sandwiching, pressing and fixing the metal pipe by the pipe pressing portions.
2. A liquid-cooling cold plate, in which cast molding is performed after embedding a curved metal pipe, and a heat-generating component is mounted directly above the cast molded metal pipe, comprising: a pair of recesses configured to be provided in a plurality of positions which avoid portions directly below the heat-generating component, wherein the metal pipe is pressed, fixed and sandwiched by the pair of recesses when the metal pipe is embedded in the liquid-cooling cold plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
First Embodiment
(13) Hereinafter, a liquid-cooling cold plate according to a first embodiment will be described with reference to
(14) The liquid-cooling cold plate 1 according to the first embodiment is not limited to an electronic device such as a communication device, a video device, a broadcasting device or the like and may be applied to any electronic device having a circuit board on which electronic components that generate intense heat are mounted.
(15) (Configuration of Liquid-Cooling Cold Plate 1)
(16) As shown in
(17) Further, the high-heat generating components 201 shown in
(18) The metal pipe 3 is machined in a U shape by a bender and partially planarized by a presser. The metal pipe 3 includes a circular pipe straight portion 3c, a circular pipe straight portion 3a, a circular pipe curved portion 3e, a flat pipe straight portion 3b and a circular pipe straight portion 3d. The circular pipe straight portion 3a and the flat pipe straight portion 3b of the metal pipe 3 are embedded in the cold plate main body 2. The circular pipe straight portion 3c, the circular pipe straight portion 3d and the circular pipe curved portion 3e are provided outside the cold plate main body 2. Couplers 61 are attached to leading ends of the circular pipe straight portion 3c and 3d.
(19) Further, the metal pipe 3 is made of, e.g., copper, stainless steel copper or the like.
(20) The cold plate main body 2 is cast-molded by inserting the metal pipe 3 in a casting mold to be described later and pouring molten metal such as aluminum, aluminum alloy or the like into the casting mold.
(21) As shown in
(22) The couplers 61 are fluid couplers attached to leading end portions of the circular pipe straight portions 3c and 3d of the metal pipe 3. When the liquid-cooling cold plate 1 is installed in the electronic device, the couplers 61 are fitted and connected to couplers 301a of a shelf 301 side.
(23) (Method for Manufacturing the Liquid-Cooling Cold Plate 1)
(24) Next, a method for manufacturing the liquid-cooling cold plate 1 according to the first embodiment will be described with reference to
(25) Before the metal pipe 3 is embedded in a casting mold, first, as shown in
(26) As shown in
(27) In other words, by sandwiching and firmly pressing the metal pipe fixing bracket (1) 41 and the metal pipe fixing bracket (2) 42 by the recessed groove 101a of the casting mold (1) 101 and the recessed groove 102a of the casting mold (2) 102, the misalignment and the deformation of the metal pipe 3 by the stream pressure of the molten metal during the casting can be reduced. Accordingly, the misalignment and the deformation of the circular pipe straight portion 3a and the flat pipe straight portion 3b of the metal pipe 3 can be reduced.
(28) In the above embodiment, the recessed grooves are formed at the casting mold by using a metal casting mold. However, in the case of using a sand mold as the casting mold, for example, the recessed grooves can be formed at the casting mold while closing the mold by setting a dimension of the metal pipe fixing bracket to be greater than an inner dimension of the casting mold after the mold is closed.
(29) As shown in
(30) In the above embodiment, the positioning between the casting mold and the metal pipe fixing bracket is performed by fitting the protruded portions of the metal pipe fixing brackets to the recessed grooves of the casting mold. On the contrary, it is also possible to perform the positioning between the casting mold and the metal pipe fixing brackets by providing positioning pins on a surface, to be in contact with the metal pipe fixing brackets, of the casting mold and forming recessed holes to be fitted to the positioning pins at positions corresponding to the positions of the positioning pins of the metal pipe fixing brackets.
(31) Further, in the above embodiment, the recessed grooves are formed at the casting mold by using a metal casting mold. However, in the case of using a sand mold as the casting mold, for example, the recessed grooves can be formed at the casting mold while closing the mold by setting a dimension of the positioning pins to be greater than an inner dimension of the casting mold after the mold is closed, considering a deformation error of the casting mold.
(32) As described above, in accordance with the liquid-cooling cold plate 1 according to the first embodiment, the misalignment and the deformation of the metal pipe embedded in the cold plate main body can be reduced without being affected by the stream pressure and the flowing direction of the molten metal during the casting. Therefore, the metal pipe can be provided at a desired position, e.g., a position directly below the heat-generating component or the like, and stable cooling properties can be obtained.
Second Embodiment
(33) Hereinafter, a liquid-cooling cold plate according to a second embodiment will be described with reference to
(34) The liquid-cooling cold plate 11 according to the second embodiment may be applied to any electronic device having a circuit board on which electronic components that generate intense heat without being limited to an electronic device such as a communication device, a video device, a broadcasting device or the like.
(35) (Configuration of the Liquid-Cooling Cold Plate 11)
(36) As shown in
(37) Further, the high-heat generating components 201 shown in
(38) The metal pipe 4 is machined in a U shape by a bender. The metal pipe 4 includes circular pipe straight portions 4c and 4a, a circular pipe curved portion 4e, circular pipe straight portions 4b and 4d. The circular pipe straight portion 4a and the circular pipe straight portion 4b of the metal pipe 4 are embedded in the cold plate main body 12. The circular pipe straight portion 4c, the circular pipe straight portion 4d and the circular pipe curved portion 4e are provided outside the cold plate main body 12. Couplers 61 are attached to leading ends of the circular pipe straight portion 4c and 4d.
(39) Further, the metal pipe 4 is made of, e.g., copper, stainless steel copper or the like.
(40) The cold plate main body 12 is cast-molded by pouring molten metal such as aluminum, aluminum alloy or the like into a casting mold to be described later. As shown in
(41) The couplers 61 are fluid couplers attached to leading end portions of the circular pipe straight portions 4c and 4d of the metal pipe 4. When the liquid-cooling cold plate 1 is installed in the electronic device, the couplers 61 are fitted and connected to couplers 301a of the shelf 301 side which will be described later.
(42) (Method for Manufacturing the Liquid-Cooling Cold Plate 11)
(43) Hereinafter, a method for manufacturing the liquid-cooling cold plate 11 according to the second embodiment will be described with reference to
(44) As shown in
(45) In other words, by sandwiching and firmly pressing the circular pipe straight portions 4a and 4b of the metal pipe 4 from opposite sides by the protrusion 111a of the casting mold (1) 111 and the protrusion 112a of the casting mold (2) 112, the misalignment and the deformation of the metal pipe 4 by the stream pressure of the molten metal during the casting can be reduced. Accordingly, it is possible to reduce the misalignment and the deformation of the circular pipe straight portions 4a and 4b of the metal pipe 4.
(46) Next, a method for manufacturing the metal pipe 3 having the flat pipe straight portion 3b which constitutes the liquid-cooling cold plate 1 according to the first embodiment will be described.
(47) As shown in
(48) In other word, by sandwiching and firmly pressing the circular pipe straight portion 3a and the flat pipe straight portion 3b of the metal pipe 3 from opposite sides by the protrusions 121a and 121b of the casting mold (1) 121 and the protrusions 122a and 122b of the casting mold (2) 122, the deformation of the metal pipe 3 by the stream pressure of the molten metal during the casting can be reduced. Accordingly, it is possible to reduce the misalignment of the circular pipe straight portion 3a and the flat pipe straight portion 3b of the metal pipe 3.
(49) As described above, in accordance with the liquid-cooling cold plate 11 according to the second embodiment, the misalignment and the deformation of the metal pipe embedded into the cold plate main body can be reduced without being affected by the stream pressure and the flowing direction of the molten metal during the casting. Therefore, the metal pipe embedded in the cold plate main body can be provided at a desired position, e.g., a position directly below the heating component or the like. Accordingly, stable cooling properties can be obtained.
Third Embodiment
(50) Hereinafter, a liquid-cooling cold plate according to a third embodiment will be described with reference to
(51) A liquid-cooling cold plate 81 according to the third embodiment is characterized in that the techniques of the liquid-cooling cold plates according to the first and the second embodiment are combined.
(52) In the first embodiment, the metal pipe fixing brackets are used to reduce the misalignment and the deformation of the metal pipe embedded in the cold plate main body. In order to further reduce the misalignment and the deformation of the metal pipe, it is required to increase the number of the metal pipe fixing brackets and decrease the interval (pitch) of attachment of the metal pipe fixing brackets to the metal pipe. However, when the number of the metal pipe fixing brackets is increased, the flow of molten metal during the casting is disturbed or the cost is increased.
(53) In the second embodiment, the metal pipe is pressed from opposite sides by the protrusions formed at the casting mold in order to reduce the misalignment and the deformation of the metal pipe embedded in the cold plate main body. In order to further reduce the misalignment and the deformation of the metal pipe, it is required to increase portions for pressing the metal pipe by increasing the number of the protrusions formed at the casting mold. In other words, it is required to decrease the interval (pitch) of the protrusions formed at the casting mold. However, when the number of the portions for pressing the metal pipe is increased, the number of recesses formed at the cold plate main body is also increased. Accordingly, the cooling properties of the cold plate deteriorate.
(54) Therefore, in the third embodiment, the techniques of the first and the second embodiment are employed to decrease the number of the metal pipe fixing brackets and press portions of the metal pipe between the adjacent metal pipe fixing brackets by the protrusions formed at the casting mold. Accordingly, the misalignment and the deformation of the metal pipe can be further reduced without being affected by the stream pressure and the flowing direction of the molten metal during the casting. Further, the cooling properties can be further improved in a cost effective manner.
(55) The liquid-cooling cold plate 81 according to the third embodiment is not limited to an electronic device such as a communication device, a video device, a broadcasting device or the like and may be applied to any electronic device having a circuit board on which electronic components that generate intense heat are mounted.
(56) (Configuration of the Liquid-Cooling Cold Plate 81)
(57) As shown in
(58) Further, the high-heat generating components 201 shown in
(59) The cold plate main body 82 is cast-molded by pouring molten metal such as aluminum, aluminum alloy or the like into a casting mold to be described later. As shown in
(60) As in the case shown in
(61) (Method for Manufacturing the Liquid-Cooling Cold Plate 81)
(62) Next, a method for manufacturing the liquid-cooling cold plate 81 according to the third embodiment will be described with reference to
(63) Before the metal pipe 3 is embedded in a casting mold, first, as shown in
(64) As shown in
(65) In the above embodiment, the recessed grooves are formed at the casting mold by using the metal casting mold. However, in the case of using a sand mold as the casting mold, for example, the recessed grooves can be formed at the casting mold while closing the mold by setting a dimension of the metal pipe fixing bracket to be greater than an inner dimension of the casting mold after closing the mold.
(66) Similarly, as shown in
(67) By pouring molten metal into the casting mold (1) 131 and the casting mold (2) 132 which are closed, the liquid-cooling cold plate 81 shown in
(68) In other words, by sandwiching and firmly pressing the metal pipe fixing bracket (1) 41 and the metal pipe fixing bracket (2) 42 by the recessed groove 131a of the casting mold (1) 131 and the recessed groove 131a of the casting mold (2) 132 and by sandwiching and firmly pressing the circular pipe straight portion 3a and the flat pipe straight portion 3b of the metal pipe 3 by the protrusions 131b and 131c of the casting mold (1) 131 and the protrusions 132b and 132c of the casting mold (2) 132, the misalignment and the deformation of the metal pipe 3 by the stream pressure of the molten metal during the casting can be reduced. Accordingly, it is possible to reduce the misalignment and the deformation of the circular pipe straight portion 3a and the flat pipe straight portion 3b of the metal pipe 3.
(69) As shown in
(70) In the above embodiment, the positioning between the casting mold and the metal pipe fixing bracket is performed by fitting the protruded portions of the metal pipe fixing brackets into the recessed grooves of the casting mold. On the contrary, it is also possible to perform the positioning between the casting mold and the metal pipe fixing brackets by providing positioning pins on a surface, to be in contact with the metal pipe fixing brackets, of the casting mold and forming recessed holes, to be fitted to the positioning pins, at positions of the metal pipe fixing brackets corresponding to the positions of the positioning pins.
(71) Further, in the above embodiment, the recessed grooves are formed at the casting mold by using a metal casting mold. However, in the case of using a sand mold as the casting mold, for example, the recessed grooves can be formed at the casting mold while closing the mold by setting a dimension of the positioning pins to be greater than an inner dimension of the casting mold after closing the mold, considering a deformation error of the casting mold.
(72) As described above, in accordance with the liquid-cooling cold plate 81 according to the third embodiment, the misalignment and the deformation of the metal pipe embedded in the cold plate main body can be reduced without being affected by the stream pressure and the flowing direction of the molten metal during the molding. Therefore, the metal pipe embedded in the cold plate main body can be provided at a desired position, e.g., a position directly below the heating component or the like, and stable cooling properties can be obtained.
(73) The cooling properties can be further improved in a cost effective manner by decreasing the number of the metal pipe fixing brackets and pressing portions of the metal pipe between the adjacent metal pipe fixing brackets by the protrusions formed at the casting mold.
Fourth Embodiment
(74) Hereinafter, a liquid-cooling cold plate according to a fourth embodiment will be described with reference to
(75) The liquid-cooling cold plate 31 according to the fourth embodiment is not limited to an electronic device such as a communication device, a video device, a broadcasting device or the like and may be applied to any electronic device having a circuit board on which electronic components that generate intense heat are mounted.
(76) (Configuration of the Liquid-Cooling Cold Plate 31)
(77) The configuration of the liquid-cooling cold plate 31 according to the fourth embodiment is the same as that of the liquid-cooling cold plate 1 according to the first embodiment except for a method of positioning the metal pipe 3 in manufacturing the liquid-cooling cold plate 31. In other words, in the liquid-cooling cold plate 31 according to the fourth embodiment, the positioning accuracy of the two couplers 61 of the liquid-cooling cold plate 31 is further improved because when the liquid-cooling cold plate 31 is mounted in the electronic device, the two couplers 61 serving as an inlet and an outlet of cooling liquid supplied to the liquid-cooling cold plate 31 need to be slide-fitted to the two couplers 301a of the shelf 301 side at the same time, as can be seen from
(78) (Method for Manufacturing the Liquid-Cooling Cold Plate 31)
(79) Next, a method for manufacturing the liquid-cooling cold plate 31 according to the fourth embodiment will be described with reference to
(80) As in the case of the liquid-cooling cold plate 1 according to the first embodiment, before the metal pipe 3 is embedded in a casting mold, first, as shown in
(81) As shown in
(82) The coupler fixing unit 51 is made of, e.g., stainless steel or the like.
(83) As shown in
(84) In other words, by sandwiching and firmly pressing the metal pipe fixing bracket (1) 41 and the metal pipe fixing bracket (2) 42 from opposite sides by the recessed groove 101a of the casting mold (1) 101 and the recessed groove 102a of the casting mold (2) 102, the deformation of the metal pipe 3 by the stream pressure of the molten metal during the casting can be reduced. Accordingly, it is possible to reduce the misalignment of the circular pipe straight portion 3a and the flat pipe straight portion 3b of the metal pipe 3.
(85) Since the cast molding is performed in a state where the coupler fixing bracket 51 is fitted to the predetermined position in the casting mold (1) 101 and the casting mold (2) 102, the misalignment of the two couplers 61 can be reduced.
(86) Therefore, when the liquid-cooling cold plate 31 is slide-connected to the shelf 301, the coupler 61 of the liquid-cooling cold plate 31 and the coupler 301a of the shelf 301 side can be easily connected.
(87) The coupler fixing bracket 51 may be separated from the coupler 61 after the molding to be used again.
(88) As shown in
(89) As described above, in accordance with the liquid-cooling cold plate 31 according to the fourth embodiment, the misalignment and the deformation of the metal pipe embedded in to cold plate main body can be reduced without being affected by the stream pressure and the flowing direction of the molten metal during the casting. Therefore, the metal pipe can be provided at a desired position, e.g., a position directly below the heating component or the like, and stable cooling properties can be obtained.
(90) Further, the working efficiency in connecting the couplers of the liquid-cooling cold plate and the couplers of the shelf side can be improved.
(91) The present invention is not limited to the above embodiments and may be variously modified without departing from the scope of the invention. Further, various modifications may be made by appropriately combining a plurality of constituent elements that are not disclosed in the above embodiments.
INDUSTRIAL APPLICABILITY
(92) The present invention is not limited to an electronic device such as a communication device, a video device and a broadcasting device and may be used in an industry of manufacturing an electronic device having a circuit board on which electronic components that generate intense heat are mounted.
(93) TABLE-US-00001 Description of Reference Numerals 1: liquid-cooling cold plate 2: cold plate main body 3: metal pipe 3a: circular pipe straight portion 3b: flat pipe straight portion 3c: circular pipe straight portion 3d: circular pipe straight portion 3e: circular pipe curved portion 4: metal pipe 4a: circular pipe straight portion 4b: circular pipe straight portion 4c: circular pipe straight portion 4d: circular pipe straight portion 4e: circular pipe curved portion 11: liquid-cooling cold plate 12: cold plate main body 12a: recess (1) 12b: recess (2) 22: cold plate main body 22a: recess (1) 22b: recess (2) 22c: recess (3) 22d: recess (4) 31: liquid-cooling cold plate 41: metal pipe fixing bracket (1) 41a: arc-shaped recess 41b: elliptical recess 41c: through-hole 42: metal pipe fixing bracket (2) 42a: arc-shaped recess 42b: elliptical recess 42c: through-hole 43: fixing pin 51: coupler fixing bracket 51a: circular hole 61: coupler 81: liquid-cooling cold plate 82: cold plate main body 82a: recess (1) 82b: recess (2) 82c: recess (3) 82d: recess (4) 101: casting mold (1) 101a: recessed groove 102: casting mold (2) 102a: recessed groove 111: casting mold (1) 111a: protrusion 112: casting mold (2) 112a: protrusion 121: casting mold (1) 121a: protrusion 121b: protrusion 122: casting mold (2) 122a: protrusion 122b: protrusion 131: casting mold (1) 131a: recessed groove 131b: protrusion 131c: protrusion 132: casting mold (2) 132a: recessed groove 132b: protrusion 132c: protrusion 201: high-heat generating component 301: shelf 301a: coupler