Cooling structure and mounting structure
10794639 ยท 2020-10-06
Assignee
Inventors
Cpc classification
F28F3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K2201/066
ELECTRICITY
F28F3/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K1/0209
ELECTRICITY
F28F2215/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
H05K7/00
ELECTRICITY
F28F3/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01L23/433
ELECTRICITY
H01L23/36
ELECTRICITY
H05K7/02
ELECTRICITY
H01L23/34
ELECTRICITY
Abstract
A cooling structure includes a plurality of heat radiation parts configured to cool a heat generating component and a holding member configured to hold the plurality of heat radiation parts. Moreover, the heat radiation parts of the cooling structure each include a base portion located on the side of the heat generating component and a fin portion extending from the base portion and radiating heat. Furthermore, the base portions of the heat radiation parts abut on each other.
Claims
1. A cooling structure comprising: a plurality of heat radiation parts configured to cool a heat generating component; a holding member configured to hold the plurality of heat radiation parts, wherein: the heat radiation parts each include a base portion located on a side of the heat generating component and a fin portion extending from the base portion and radiating heat; and the plurality of base portions abut on each other; and a pressing member configured to press the base portion toward the heat generating component, wherein the pressing member includes a transforming member configured to transform in accordance with shapes of the plurality of heat radiation parts to be pressed and presses the base portions with the transforming member toward the heat generating component.
2. The cooling structure according to claim 1, wherein the holding member is configured to hold the heat radiation part so that a contact face of the base portion with the heat generating component can move in accordance with a shape of the heat generating component.
3. The cooling structure according to claim 1, wherein the transforming member is configured to press the fin portion toward the heat generating component and thereby press the base portion toward the heat generating component.
4. The cooling structure according to claim 1, wherein the transforming member is heat radiation grease filled inside the holding member.
5. The cooling structure according to claim 1, wherein the heat radiation part includes the fin portion formed like a plate having a substantially rectangular shape in plan view and the base portion having a broader width than the fin portion.
6. The cooling structure according to claim 1, wherein the heat radiation part includes the fin portion formed like a column having a rectangular shape or a circular shape in plan view and the base portion having a broader width than the fin portion.
7. The cooling structure according to claim 1, wherein the heat radiation part includes the fin portion formed like a plate having a substantially rectangular shape in plan view and the base portion having a comparable width with the fin portion.
8. The cooling structure according to claim 7, wherein the heat radiation part has a configuration in which the base portion and the fin portion are connected to each other.
9. The cooling structure according to claim 1, wherein a through hole is formed in a thickness direction of the fin portion.
Description
BRIEF DESCRIPTION OF DRAWINGS
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EXAMPLE EMBODIMENT
First Example Embodiment
(17) A first example embodiment of the present invention will be described with reference to
(18) In the first example embodiment, the mounting structure 1 including a substrate 3 on which a heat generating component 4 such as an electronic component is mounted and a cooling structure 2 which assists in cooling the heat generating component 4 will be described. As will be described later, the cooling structure 2 in this example embodiment includes multiple rows of heat radiation parts 21. The heat radiation parts 21 each include a base portion 211 located on the side of the heat generating component 4 and a fin portion 212 extending from the base portion 211 to radiate heat, and are arranged so that the base portions 211 abut on each other. In other words, the multiple rows of heat radiation parts 21 are held by the holding member 22 in a state of being arranged so that the fin portions 212 do not abut on each other while the base portions 211 abut on each other.
(19)
(20) The cooling structure 2 includes the plurality of heat radiation parts 21 and the holding member 22 for holding the heat radiation parts 21. The heat radiation parts 21 and the holding member 22 included by the cooling structure 2 are made of, for example, a material which has excellent thermal conductivity (for example, copper, aluminum, or the like). Moreover, at least part of the inside of a space formed by the holding member 22 is filled with heat radiation grease 5.
(21) The heat radiation part 21 contacts the heat generating component 4 to radiate heat generated by the heat generating component 4.
(22) The base portion 211 is a member located on the side of the heat generating component 4. The base portion 211 has, for example, a substantially prismatic shape. The base portion 211 contacts the heat generating component 4 via a contact surface, which is a lower surface of the base portion 211 (see
(23) The fin portion 212 is a plate-like member having a substantially rectangular shape in plan view and front view. The fin portion 212 extends upward from an upper surface of the base portion 211 (that is, a surface opposite to the contact surface). The fin portion 212 assists in cooling the heat generating component 4 by releasing (radiating) heat generated from the heat generating component 4 to the outside.
(24)
(25) As shown in
(26) The holding member 22 holds the multiple rows of heat radiation parts 21. As shown in
(27) The plate-like portion 221 is a plate-like member having a substantially rectangular shape in plan view. As shown in
(28) The edge portion 223 is a portion that extends downward from the periphery of the plate-like portion 221. As described above, the holding member 22 holds the heat radiation part 21 so that part of the heat radiation part 21 is in the space formed by the edge portion 223 and the plate-like portion 221. Moreover, at the lower end of the edge portion 223, a locking portion 224 for preventing the heat radiation part 21 from falling is formed. As shown in
(29) Further, as described above, heat radiation grease 5 which is viscous and transforms in accordance with external force and so on is filled in the space formed by the plate-like portion 221 and the edge portion 223. For example, the heat radiation grease 5 transforms in accordance with movement of the heat radiation parts 21.
(30) For example, the heat radiation grease 5 filled in the abovementioned space fills a gap (a space) between the heat radiation parts 21 and the heat generating component 4. Consequently, the heat radiation grease 5 secures thermal conductivity between the heat radiation part 21 and the heat generating component 4. Moreover, the heat radiation grease 5 filled in the space between the heat radiation parts 21 and the heat generating component 4 prevents the heat radiation part 21 from falling by surface extension of the heat radiation grease 5.
(31) Further, the heat radiation grease 5 filled in the space fills a gap (a space) between the heat radiation parts 21 and the plate-like portion 221. Consequently, the heat radiation grease 5 secures thermal conductivity between the heat radiation parts 21 and the plate-like portion 221. Moreover, the heat radiation grease 5 filled in the space between the heat radiation part 21 and the plate-like portion 221 presses the base portion 211 of the heat radiation part 21 toward the heat generating component 4 when the cooling structure 2 is pressed downward (toward the heat generating component 4). Thus, the heat radiation grease 5 also functions as a pressing member which presses the base portion 211 toward the heat generating component 4 to fill the gap.
(32) The holding member 22 has, for example, the configuration as described above and holds the heat radiation part 21 in the above-described manner. As a result, the heat radiation part 21 held by the holding member 22 can move in the vertical direction in the space formed by the plate-like portion 221 and the edge portion 223. Herein, the heat generating component 4 may be warped when mounted on the substrate 3 due to a difference in thermal expansion coefficient of material between the heat generating component 4 and the substrate 3 or the like. According to the cooling structure 2 described in this example embodiment, each of the heat radiation parts 21 can move (press) in accordance with the warpage of the heat generating component 4. That is, it is possible to move each of the heat radiation parts 21 so as to contact the heat generating component 4. Consequently, even if the heat generating component 4 is warped, it is possible to make the heat radiation parts 21 directly contact the heat generating component 4 as much as possible.
(33) In other words, the holding member 22 in this example embodiment includes the plurality of heat radiation parts 21. Moreover, the holding member 22 holds the heat radiation part 21 so that the contact surface of the base portion 211 can move in accordance with the shape of the heat generating component 4. Such a configuration enables the heat radiation parts 21 to efficiently contact the heat generating component 4 even if the heat generating component 4 is warped. As a result, it is possible to efficiently assist in cooling the heat generating component 4.
(34) It should be noted that the cooling structure 2 may be fixed to the substrate 3. The cooling structure 2 and the substrate 3 can be fixed by, for example, connecting the substrate 3 and the edge portion 223 by using a screw or a spring. The cooling structure 2 and the substrate 3 may be fixed by using a solder, an adhesive, or the like.
(35) The substrate 3 is a plate-like substrate such as a glass epoxy substrate (may be a composition other than exemplified). The substrate 3 has, for example, a substantially rectangular shape in plan view. As described above, the heat generating component 4 is mounted on the substrate 3. Moreover, the cooling structure 2 can be fixed on the substrate 3.
(36) The heat generating component 4 is mounted on the substrate 3, for example, by using the solder ball 31. The heat generating component 4 is an electronic component or the like, such as a CPU (Central Processing Unit), a GPU (Graphics Processing Unit), a FPGA (field-programmable gate array) and a memory chip. The heat generating component 4 may be a component which generates heat, other than exemplified above.
(37) The above is an example of the configuration of the mounting structure 1.
(38) As described above, the cooling structure 2 in this example embodiment has the multiple rows of heat radiation parts 21. The holding member 22 holds the heat radiation part 21 so that the contact surface of the base portion 211 can move in accordance with the shape of the heat generating component 4. Such a configuration enables the heat radiation parts 21 to efficiently contact the heat generating component 4 even if the heat generating component 4 is warped. As a result, it is possible to efficiently assist in cooling the heat radiating component 4. That is, it is possible to increase the cooling performance in the cooling structure 2.
(39) Further, the cooling structure 2 in this example embodiment holds the heat radiation parts 21 in a state of being arranged so that the base portions 211 abut on each other. Such a configuration enables the heat radiation parts 21 to conduct heat with each other. As a result, it is possible to efficiently assist in cooling the heat generating component 4. That is, it is possible to increase cooling performance in the cooling structure 2.
Second Example Embodiment
(40) Next, with reference to
(41) In the second example embodiment, the mounting structure 10 having a cooling structure 6, which is a modification example of the cooling structure 2 described in the first embodiment, will be described. As will be described later, the cooling structure 6 in this example embodiment includes a plurality of heat radiation parts 61 each having a fin portion 612 having a columnar shape (for example, a prismatic shape or a cylindrical shape). That is, in the cooling structure 6, the heat radiation part 61 is formed by further dividing the heat radiation part 21. The heat radiation part 61 includes a base portion 611 located on the side of the heat generating component 4 and a fin portion 612 extending from the base portion 611 to radiate heat. The heat radiation parts 61 are arranged so that the base portions 611 abut on each other. In other words, in the same manner as the heat radiation parts 21, the plurality of heat radiation parts 61 are held by the holding member 62 in a state of being arranged so that the fin portions 612 do not abut on each other while the base portions 611 abut on each other.
(42)
(43) The cooling structure 6 includes the plurality of heat radiation parts 61 and the holding member 62 that holds the heat radiation parts 61. The heat radiation parts 61 and the holding member 62 included by the cooling structure 6 are made of, for example, a material which has excellent thermal conductivity (for example, copper, aluminum, or the like), as well as the heat radiation parts 21 and the holding member 22 described in the first example embodiment. Moreover, at least part of the inside of a space formed by the holding member 62 is filled with the heat radiation grease 5.
(44) The heat radiation part 61 contacts the heat generating component 4 to radiate heat generated by the heat generating component 4.
(45) The base portion 611 is a member located on the side of the heat generating component 4. The base portion 611 has, for example, a substantially cuboid shape (for example, the shape of a cube). The base portion 611 contacts the heat generating component 4 via a contact surface, which is a lower surface located of the base portion 611 (see
(46) The fin portion 612 is a columnar (that is, prismatic or cylindrical) member having a substantially rectangular shape (for example, a substantially square shape) or a circular shape in plan view and a substantially rectangular shape in front view. The fin portion 612 extends upward from an upper surface of the base portion 611 (that is, a surface opposite to the contact surface). The fin portion 612 assists in cooling the heat generating component 4 by releasing (radiating) heat generated by the heat generating component 4 to the outside.
(47) As shown in
(48) The holding member 62 holds the plurality of heat radiation parts 61. The holding member 62 includes a plate-like portion 621 on which a plurality of through holes 622 are formed and an edge portion 623 formed at the periphery of the plate-like portion 621. In the same manner as the holding member 22, the holding member 62 holds the heat radiation part 61 so that part of the heat radiation part 61 (at least the base portion 611) is in a space formed by the plate-like portion 621 and the edge portion 623.
(49) The plate-like portion 621 is a member formed like a plate and having a substantially rectangular shape in plan view. As shown in
(50) The edge portion 623 has the same configuration as the edge portion 223. On the edge portion 623, a configuration like the locking portion at the edge portion 223 may be formed or may not be formed. The configuration of the heat radiation grease 5 is the same as in the first example embodiment. The heat radiation part 61 in this example embodiment is prevented from falling by surface tension of the heat radiation grease 5.
(51) The above is an example of the configuration of the cooling structure 6. Thus, the cooling structure 6 includes the heat radiation part 61 having the rod-like (prismatic) or cylindrical fin portion 612, and the respective heat radiation parts 61 are held so as to be movable in the vertical direction. The cooling structure 6 may be fixed to the substrate 3 in the same manner as the cooling structure 2.
(52) As described above, the cooling structure 6 includes the plurality of heat radiation parts 61, formed by further dividing the heat radiation parts 21 of the cooling structure 2. Moreover, according to the cooling structure 6 in this example embodiment, the respective heat radiation parts 61 can move in the horizontal direction. With such a configuration, in the cooling structure 6, it is possible to make the heat radiation parts 61 contact the heat generating component 4 so as to more cope with the warpage of the heat generating component 4. As a result, the cooling structure 6 can efficiently assist in cooling the heat generating component 4. In other words, the cooling structure 6 includes the heat radiation parts 61 in a grid pattern and can cope with the warpage of the heat generating component 4 in biaxial directions. Consequently, even if the heat generating component 4 is warped, it is possible to more efficiently make the heat radiation parts 61 contact the heat generating component 4. As a result, it is possible to efficiently assist in cooling the heat generating component 4. That is, it is possible to increase cooling performance in the cooling structure 6.
(53) Further, the cooling structure 6 in this example embodiment holds the heat radiation parts 61 in a state of being arranged so that the base portions 611 abut on each other. Such a configuration enables the heat radiation parts 61 to conduct heat with each other. As a result, it is possible to efficiently assist in cooling the heat generating component 4. That is, it is possible to increase cooling performance in the cooling structure 6.
Third Example Embodiment
(54) Next, with reference to
(55) In the third example embodiment, the mounting structure 100 including a cooling structure 7, which is a modification example of the cooling structure 2 described in the first example embodiment and the cooling structure 6 described in the second example embodiment, will be described. As will be described later, the cooling structure 7 in this example embodiment has a plurality of heat radiation parts 71 each including a base portion 711 and a fin portion 712 having comparable widths. In the cooling structure 7 described in this example embodiment, the heat radiation parts 71 are held by the holding member 72 in a state that the base portions 711 abut on each other and the fin portions 712 also abut on each other.
(56)
(57) The cooling structure 7 includes the plurality of heat radiation parts 71 and the holding member 72 that holds the heat radiation parts 71. As well as the configurations described in the first and second example embodiments, the heat radiation parts 71 and the holding member 72 included by the cooling structure 7 are made of, for example, a material having excellent thermal conductivity (for example, copper, aluminum, or the like). Moreover, at least part of the inside of a space formed by the holding member 72 is filled with the heat radiation grease 5.
(58) The heat radiation part 71 contacts the heat generating component 4 to radiate heat generated by the heat generating component 4.
(59) The base portion 711 is a member located on the side of the heat generating component 4. The base portion 711 has, for example, a plate-like shape. The base portion 711 contacts the heat generating component 4 via a contact surface, which is a lower surface of the base portion 711 (see
(60) The fin portion 712 is a plate-like member having a substantially rectangular shape in plan view and in front view. The fin portion 712 extends upward from an upper surface (that is, a surface opposite to the contact surface) of the base portion 711. The fin portion 712 assists in cooling the heat generating component 4 by letting out (radiating) heat generated by the heat generating component 4 to the outside.
(61) Further, on the fin portion 712, a plurality of through holes 713 which pierce the fin portion 712 in the thickness direction are formed. By forming the through holes 713 on the fin portion 712, it is possible to secure a wind tunnel when the fin portions 712 are made to abut on each other. Consequently, it is possible to secure cooling performance while making the fin portions 712 abut on each other.
(62) As shown in
(63) The holding member 72 holds the plurality of heat radiation parts 71. The holding member 72 has a plate-like portion 721 on which a through hole 722 is formed and an edge portion 723 formed on the periphery of the plate-like portion 721. The holding member 72 holds the heat radiation part 71 so that part of the heat radiation part 71 (at least the base portion 711) is in a space formed by the plate-like portion 721 and the edge portion 723.
(64) The plate-like portion 721 is a plate-like member having a substantially rectangular shape in plan view. As shown in
(65) The edge portion 723 has a configuration like the edge portion 223 and the edge portion 623. The edge portion 723 may be provided with a configuration like the locking portion at the edge portion 223, or may not be provided. Moreover, the configuration of the heat radiation grease 5 is the same as in the first example embodiment. The heat radiation part 71 in this example embodiment is prevented from falling by surface tension of the heat radiation grease 5.
(66) The above is an example of the configuration of the cooling structure 7. Thus, the cooling structure 7 has the heat radiation part 71 having the plate-like fin portion 712, and holds the respective heat radiation parts 71 so as to be movable in the vertical direction.
(67) As shown in
(68) Further, the cooling structure 7 may be fixed to the substrate 3 in the same manner as the cooling structure 2 and the cooling structure 6.
(69) As described above, the cooling structure 7 includes the heat radiation part 71 including the base portion 711 and the fin portion 712 having comparable widths. Moreover, on the fin portion 712, the plurality of through holes 713 are formed. Such a configuration enables the heat radiation part 71 to efficiently contact the heat generating component 4 even if the heat generating component 4 is warped. As a result, it is possible to efficiently assist in cooling the heat generating component 4. That is, it is possible to increase cooling performance in the cooling structure 7.
(70) Further, the cooling structure 7 in this example embodiment holds the heat radiation parts 71 in a state of being arranged so that the base portions 711 abut on each other and the fin portions 712 also abut on each other. Moreover, the though holes 713 are formed on the fin part 712. Such a configuration enables the heat radiation parts 71 to conduct heat with each other, and it is possible to secure a wind tunnel for wind flowing between the fin portions 712. As a result, it is possible to efficiently assist in cooling the heat generating component 4. That is, it is possible to increase cooling performance in the cooling structure 7.
(71) The cooling structure 7 may be provided with a plate spring 73, which is a pressing member that presses the base portion 711 of the heat radiation part 71 toward the heat generating component 4. The plate spring 73 is a transforming member which transforms in accordance with the heat radiation part 71 that is a target to be pressed, and presses the base portion 711 of the heat radiation part 71 toward the heat generating component 4. The plate spring 73 presses the heat radiation part 71 toward the heat generating component 4, thereby pressing the base portion 711 toward the heat generating component 4.
(72) The plate spring 73 can be attached to the cooling structure 7 by using, for example, a screw 74 or the like. The plate spring 73 may be attached to the cooling structure 7 by a method other than the screw 74. Moreover, a structure for pressing the base portion 711 of the heat radiation part 71 of the cooling structure 7 toward the heat generating component 4 is not limited to the plate spring 73. For example, the cooling structure 7 may have a pressing plate having rubber, which is a transforming member, on the lower side, as the structure for pressing. In the cooling structure 7, a structure for pressing the base portion 711 of the heat radiation part 71 toward the heat generating component 4 may be realized by a structure other than illustrated above.
(73) Further, the cooling structure 7 may have a member which presses the holding member 72 toward the heat generating component 4.
(74) The cooling structure 2 described in the first example embodiment and the cooling structure 6 described in the second example embodiment may have a structure which is pressed toward the heat generating component 4 by the above-described plate spring 73 or the like.
Fourth Example Embodiment
(75) Next, with reference to
(76) In the fourth example embodiment, the cooling structure 8 that cools a heat generating component will be described. In this example embodiment, the configuration of the cooling structure 8 will be described schematically.
(77)
(78) The heat radiation part 81 cools the heat generating component. Moreover, the holding member 82 holds the plurality of heat radiation parts 81.
(79) The heat radiation part 81 includes a base portion 811 located on the side of the heat generating component, and a fin portion 812 extending from the base portion 811 to radiate heat. Moreover, as shown in
(80) Thus, the cooling structure 8 has the plurality of heat radiation parts 81. With such a configuration, the respective heat radiation parts 81 are movable, so that it is possible to make the respective heat radiation parts 81 contact the heat generating component 4 even if the heat generating component is warped. As a result, it is possible to efficiently assist in cooling the heat generating component. That is, it is possible to increase cooling performance in the cooling structure 8.
(81) Further, the cooling structure 8 in this example embodiment holds the heat radiation parts 81 in a state of being arranged so that the base portions 811 abut on each other. With such a configuration, it is possible to make the heat radiation parts 81 conduct heat via the adjacent base portions 811. As a result, it is possible to efficiently assist in cooling the heat generating component. That is, it is possible to increase cooling performance in the cooling structure 8.
(82) It should be noted that the object of the present invention described above can also be realized by a mounting structure including the cooling structure 8. For example, the mounting structure has a substrate equipped with a hear generating component and the cooling structure 8 mounted on the heat generating component. The cooling structure 8 includes a plurality of heat radiation parts 81 cooling the heat generating component and a holding member holding the plurality of heat radiation parts 81. The heat radiation parts 81 each include the base portion 811 located on the side of the heat generating component and the fin portion 812 extending from the base portion and radiating heat. The plurality of base portions 811 abut on each other.
(83) The invention relating to the mounting structure having the above-described configuration also has the same action as the cooling structure 8 and therefore can achieve the abovementioned object of the present invention.
(84) <Supplementary Notes>
(85) The whole or part of the example embodiments disclosed above can be described as the following supplementary notes. Below, a cooling structure and so on according to the present invention will be schematically described. However, the present invention is not limited to the following configurations.
(86) (Supplementary Note 1)
(87) A cooling structure comprising:
(88) a plurality of heat radiation parts configured to cool a heat generating component; and
(89) a holding member configured to hold the plurality of heat radiation parts, wherein:
(90) the heat radiation parts each include a base portion located on a side of the heat generating component and a fin portion extending from the base portion and radiating heat; and
(91) the plurality of base portions abut on each other.
(92) (Supplementary Note 2)
(93) The cooling structure according to Supplementary Note 1, wherein the holding member is configured to hold the heat radiation part so that a contact face of the base portion with the heat generating component can move in accordance with a shape of the heat generating component.
(94) (Supplementary Note 3)
(95) The cooling structure according to Supplementary Note 1 or 2, further comprising a pressing member configured to press the base portion toward the heat generating component.
(96) (Supplementary Note 4)
(97) The cooling structure according to Supplementary Note 3, wherein the pressing member includes a transforming member configured to transform in accordance with shapes of the plurality of heat radiation parts to be pressed and presses the base portions with the transforming member toward the heat generating component.
(98) (Supplementary Note 5)
(99) The cooling structure according to Supplementary Note 4, wherein the transforming member is configured to press the fin portion toward the heat generating component and thereby press the base portion toward the heat generating component.
(100) (Supplementary Note 6)
(101) The cooling structure according to Supplementary Note 4, wherein the transforming member is heat radiation grease filled inside the holding member.
(102) (Supplementary Note 7)
(103) The cooling structure according to any of Supplementary Notes 1 to 6, wherein the heat radiation part includes the fin portion formed like a plate having a substantially rectangular shape in plan view and the base portion having a broader width than the fin portion.
(104) (Supplementary Note 8)
(105) The cooling structure according to any of Supplementary Notes 1 to 6, wherein the heat radiation part includes the fin portion formed like a column having a rectangular shape or a circular shape in plan view and the base portion having a broader width than the fin portion.
(106) (Supplementary Note 9)
(107) The cooling structure according to any of Supplementary Notes 1 to 6, wherein the heat radiation part includes the fin portion formed like a plate having a substantially rectangular shape in plan view and the base portion having a comparable width with the fin portion.
(108) (Supplementary Note 10)
(109) The cooling structure according to Supplementary Note 9, wherein the plurality of fin portions abut on each other.
(110) (Supplementary Note 11)
(111) 11. The cooling structure according to any of Supplementary Notes 1 to 10, wherein a through hole is formed in a thickness direction of the fin portion.
(112) (Supplementary Note 12)
(113) A mounting structure comprising:
(114) a substrate equipped with a heat generating component; and
(115) a cooling structure mounted on the heat generating component, wherein:
(116) the cooling structure includes a plurality of heat radiation parts configured to cool the heat generating component and a holding member configured to hold the plurality of heat radiation parts;
(117) the heat radiation parts each include a base portion located on a side of the heat generating component and a fin portion extending from the base portion and radiating heat; and
(118) the plurality of base portions abut on each other.
(119) Although the present invention has been described above with reference to the example embodiments, the present invention is not limited to the example embodiments described above. The configurations and details of the present invention can be changed in various manners that can be understood by one skilled in the art within the scope of the present invention.
DESCRIPTION OF REFERENCE NUMERALS
(120) 1 mounting structure 2 cooling structure 21 heat radiation part 211 base portion 212 fin portion 22 holding member 221 plate-like portion 222 through hole 223 edge portion 224 locking portion 3 substrate 31 solder ball 4 heat generating component 5 heat radiation grease 6 cooling structure 61 heat radiation part 611 base portion 612 fin portion 62 holding member 621 plate-like portion 622 through hole 623 edge portion 7 cooling structure 71 heat radiation part 711 base portion 712 fin portion 713 through hole 72 holding member 721 plate-like portion 722 through hole 723 edge portion 73 plate spring 74 screw 8 cooling structure 81 heat radiation part 811 base portion 812 fin portion 82 holding member