Cooler
10648748 ยท 2020-05-12
Assignee
Inventors
Cpc classification
F28F2275/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20254
ELECTRICITY
H01M10/6556
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F28F9/0251
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01M2220/20
ELECTRICITY
F28F9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01M10/6569
ELECTRICITY
International classification
F28F9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01M10/6556
ELECTRICITY
H05K7/20
ELECTRICITY
H01M10/6569
ELECTRICITY
F28F9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Provide is a cooler in which the number of components can be decreased and the space can be reduced. The cooler includes: a cooling plate (10) having a flat shape and including a plurality of refrigerant passages (14) partitioned by a plurality of partition walls (13, 13A) parallel to each other along a longitudinal direction; a first cutout portion (11), which is formed at one end of the cooling plate in the longitudinal direction, and is opened on an upper side and at an end portion in the longitudinal direction while leaving both side walls (10c, 10d) in a width direction and one (13A) of the plurality of partition walls; a second cutout portion (12), which is formed at another end of the cooling plate in the longitudinal direction, and is opened on the upper side and at an end portion in the longitudinal direction while leaving both the side walls in the width direction; a first upper lid member (20), which is joined to the first cutout portion, and has a refrigerant inlet port (25) and a refrigerant outlet port (27) respectively communicating to a refrigerant inlet side and a refrigerant outlet side partitioned by the one of the plurality of partition walls; and a second upper lid member (30), which is joined to the second cutout portion, and forms, between the second upper lid member and the second cutout portion, a flow passage space (35) causing the refrigerant inlet side and the refrigerant outlet side to communicate to each other.
Claims
1. A cooler, comprising: a cooling plate having a flat shape and including a plurality of refrigerant passages partitioned by a plurality of partition walls parallel to each other along a longitudinal direction; a first cutout portion, which is formed at one end of the cooling plate in the longitudinal direction, and is opened on an upper side and at an end portion in the longitudinal direction while leaving both side walls in a width direction and one of the plurality of partition walls; a second cutout portion, which is formed at another end of the cooling plate in the longitudinal direction, and is opened on the upper side and at an end portion in the longitudinal direction while leaving both the side walls in the width direction; a first upper lid member, which is joined to the first cutout portion, and has a refrigerant inlet port and a refrigerant outlet port respectively communicating to a refrigerant inlet side and a refrigerant outlet side partitioned by the one of the plurality of partition walls; and a second upper lid member, which is joined to the second cutout portion, and forms, between the second upper lid member and the second cutout portion, a flow passage space causing the refrigerant inlet side and the refrigerant outlet side to communicate to each other, wherein the first upper lid member includes a refrigerant inlet side lid half segment having the refrigerant inlet port and a refrigerant outlet side lid half segment having the refrigerant outlet port, the refrigerant inlet side lid half segment and the refrigerant outlet side lid half segment each being joined to a step portion formed at an opening end of an upper part of the cooling plate, side wall step portions formed at upper ends of both the side walls, partition wall step portions formed at upper ends of the partition wall, and end portions of both the side walls on the one end side, and wherein the second upper lid member is joined to a step portion formed at an opening end of the upper part of the cooling plate, side wall step portions formed at upper ends of both the side walls, and end portions of both the side walls on the another end side.
2. A cooler according to claim 1, wherein the cooling plate is formed of an aluminum profile, and the first upper lid member and the second upper lid member are each formed of an aluminum member, the first upper lid member and the second upper lid member each being joined to the cooling plate by brazing.
3. A cooler, comprising: a cooling plate having a flat shape and including a plurality of refrigerant passages partitioned by a plurality of partition walls parallel to each other along a longitudinal direction; a first cutout portion, which is formed at one end of the cooling plate in the longitudinal direction, and is opened on an upper side and at an end portion in the longitudinal direction while leaving both side walls in a width direction; a second cutout portion, which is formed at another end of the cooling plate in the longitudinal direction, and is opened on the upper side and at an end portion in the longitudinal direction while leaving both the side walls in the width direction; a first upper lid member, which is joined to the first cutout portion, and has a refrigerant inlet port communicating to a refrigerant inlet side space formed by both the side walls; and a second upper lid member, which is joined to the second cutout portion, and has a refrigerant outlet port communicating to a refrigerant outlet side space formed by both the side walls, wherein the first upper lid member and the second upper lid member are each joined to a step portion formed at an opening end of an upper part of the cooling plate, side wall step portions formed at upper ends of both the side walls, and end portions of both the side walls in the longitudinal direction.
4. A cooler according to claim 3, wherein the cooling plate is formed of an aluminum profile, and the first upper lid member and the second upper lid member are each formed of an aluminum member, the first upper lid member and the second upper lid member each being joined to the cooling plate by brazing.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(25) Now, embodiments of the present invention are described in detail with reference to the accompanying drawings.
(26) As illustrated in
(27) The cooling plate 10 is formed of a flat extruded profile made of aluminum or aluminum alloy (hereinafter referred to as aluminum) having a substantially rectangular shape in plan view and including a plurality of refrigerant passages 14 partitioned by a plurality of partition walls 13 parallel to each other along the longitudinal direction. In this case, a partition wall 13A at the center is formed so as to be thicker than other partition walls 13, and the refrigerant passages 14 are divided into a refrigerant inlet side and a refrigerant outlet side with respect to the partition wall 13A at the center.
(28) Further, the first cutout portion 11 is formed at one end of the cooling plate 10 in the longitudinal direction. The first cutout portion 11 is opened on an upper side and at an end portion in the longitudinal direction while leaving both side walls 10c and 10d in a width direction and one partition wall, that is, the partition wall 13A at the center.
(29) In this case, as illustrated in
(30) The first upper lid member 20 joined to the first cutout portion 11 includes a refrigerant inlet side lid half segment 21 and a refrigerant outlet side lid half segment 22. The refrigerant inlet side lid half segment 21 is joined to the first cutout portion 11 so as to fill the refrigerant inlet side space 15 of the first cutout portion 11. The refrigerant outlet side lid half segment 22 is joined to the first cutout portion 11 so as to fill the refrigerant outlet side space 16 of the first cutout portion 11.
(31) The refrigerant inlet side lid half segment 21 and the refrigerant outlet side lid half segment 22 are each formed of an aluminum plate material including a horizontal part 23 that fills an upper portion of the refrigerant inlet side space 15 or the refrigerant outlet side space 16 and a vertical part 24 that fills an end portion in the longitudinal direction. In this case, the refrigerant inlet side lid half segment 21 and the refrigerant outlet side lid half segment 22 are each formed of a brazing sheet having a brazing filler metal bonded thereto as a surface material.
(32) The horizontal part 23 of the refrigerant inlet side lid half segment 21 has a refrigerant inlet port 25, and a refrigerant inlet connection pipe 26 is joined to the refrigerant inlet port 25. Further, the horizontal part 23 of the refrigerant outlet side lid half segment 22 has a refrigerant outlet port 27, and a refrigerant outlet connection pipe 28 is joined to the refrigerant outlet port 27.
(33) As illustrated in
(34) Meanwhile, the second cutout portion 12 is formed at another end of the cooling plate 10 in the longitudinal direction. The second cutout portion 12 is opened on an upper side and at an end portion in the longitudinal direction while leaving both the side walls 10c and 10d in the width direction.
(35) The second upper lid member 30 joined to the second cutout potion 12 is formed of an aluminum plate material including a horizontal part 31 that fills an upper portion of both the side walls 10c and 10d and a vertical part 32 that fills an end portion in the longitudinal direction. In this case, the second upper lid member 30 is formed of a brazing sheet having a brazing filler metal bonded thereto as a surface material.
(36) As illustrated in
(37) Flange portions 40 extend along the longitudinal direction at both ends of the cooling plate 10 in the width direction, and a mounting hole 41 in which a fixing screw 50 can be inserted is formed at an appropriate position of each of the flange portions 40. The fixing screw 50 to be inserted in the mounting hole 41 is inserted in a mounting hole (not shown) formed in a bracket 3 supporting the battery 2 through intermediation of a spacer 52, and a nut 51 is threadedly engaged with the fixing screw 50. Thus, it is possible to arrange the cooler 1 in the bottom portion of the battery 2.
(38) In the above-mentioned embodiment, description is given of the case in which the first upper lid member 20 (refrigerant inlet side lid half segment 21 and refrigerant outlet side lid half segment 22) and the second upper lid member 30 are each formed of a brazing sheet having a brazing filler metal bonded thereto as a surface material. However, it is not always required to have such configuration. Instead of forming the first upper lid member 20 (refrigerant inlet side lid half segment 21 and refrigerant outlet side lid half segment 22) and the second upper lid member 30 through use of a brazing sheet, for example, it may be possible to apply a brazing filler metal to a surface of the cooling plate 10 and join the cooling plate 10 by brazing to the first upper lid member 20 (refrigerant inlet side lid half segment 21 and refrigerant outlet side lid half segment 22) and the second upper lid member 30.
(39) Further, as another brazing method, it may also be possible to use high-frequency brazing using a fluoride-based flux containing a powder brazing filler metal, specifically, a powdery aluminum alloy brazing filler metal, which contains 27 mass % to 37 mass % of Cu, 5 mass % to 10 mass % of Si, and the balance of Al and inevitable impurities, and 11 mass % or more of CsF as a solid content.
(40) With the cooler according to the first embodiment having the above-mentioned configuration, the first upper lid member 20, which has the refrigerant inlet port 25 and the refrigerant outlet port 27 respectively communicating to the refrigerant inlet side and the refrigerant outlet side, is joined to the first cutout portion 11 formed at one end of the cooling plate 10 having a flat shape, and the second upper lid member 30, which forms the flow passage space 35 causing the refrigerant inlet side and the refrigerant outlet side to communicate to each other, is joined by brazing to the second cutout portion 12 formed at another end of the cooling plate 10. Therefore, as compared to the case in which the refrigerant inlet connection pipe and the refrigerant outlet connection pipe are joined through use of a joint member, the number of components can be decreased, and the space can be reduced.
(41) Further, the refrigerant inlet side lid half segment 21 and the refrigerant outlet side lid half segment 22, which form the first upper lid member 20, are each joined to the step portion 17a formed at the opening end of the upper part of the cooling plate 10, the side wall step portions 17b formed at the upper ends of both the side walls 10c and 10d, the partition wall step portions 17c formed at the upper ends of the partition wall 13A, and the end portions of both the side walls 10c and 10d on the one end side, and the second upper lid member 30 is joined to the step portion 17a formed at the opening end of the upper part 10a of the cooling plate 10, the side wall step portions 17b formed at the upper ends of both the side walls 10c and 10d, and end portions of both the side walls on the another end side. Therefore, joining between the cooling plate 10 and the first upper lid member 20 (refrigerant inlet side lid half segment 21 and refrigerant outlet side lid half segment 22), and joining between the cooling plate 10 and the second upper lid member 30 can be set easier and stronger.
(42) In the first embodiment, the cooler of two-path (U-turn) type refrigerant flow is described. However, the present invention is also applicable to a cooler of one-path (zero-turn) type refrigerant flow according to a second embodiment of the present invention described below.
(43) As illustrated in
(44) The first upper lid member 20A is formed of an aluminum plate material including the horizontal part 23 that fills an upper portion of the refrigerant inlet side space 15A and a vertical part 24 that fills the end portion in the longitudinal direction. A projecting piece 23a having a protruding arc shape, which extends outward, is formed in a center portion on a distal end side of the horizontal part 23 of the first upper lid member 20A. Further, the refrigerant inlet port 25A is formed in the horizontal part 23, and the refrigerant inlet connection pipe 26 is joined to the refrigerant inlet port 25A.
(45) As illustrated in
(46) As described above, when brazing is performed under a state in which the projecting piece 23a having a protruding arc shape is engaged with the arc-shaped partition wall step portion 17d, the first upper lid member 20A is positioned with respect to the first cutout portion 11A to perform brazing easily and securely.
(47) Meanwhile, the second upper lid member 30A joined to the second cutout portion 12A is formed of an aluminum plate material including the horizontal part 31 that fills an upper portion of both the side walls 10c and 10d and the vertical part 32 that fills the end portion in the longitudinal direction. A projecting piece 31a having a protruding arc shape, which extends outward, is formed in a center portion on a distal end side of the horizontal part 31 of the second upper lid member 30A. Further, a refrigerant outlet port 27A is formed in the horizontal part 31, and the refrigerant outlet connection pipe 28 is joined to the refrigerant outlet port 27A.
(48) As illustrated in
(49) The first upper lid member 20A and the second upper lid member 30A formed as described above are formed of an aluminum plate material having the same shape.
(50) In the second embodiment, other portions are the same as those of the first embodiment. Therefore, the same portions are denoted by the same reference symbols, and description thereof is omitted.
(51) With the cooler according to the second embodiment having the above-mentioned configuration, the first upper lid member 20A having the refrigerant inlet port 25A and the second upper lid member 30A having the refrigerant outlet port 27A are joined to the first cutout portion 11A and the second cutout portion 12A formed at both the ends of the cooling plate 10 having a flat shape in the longitudinal direction, and the first upper lid member 20A and the second upper lid member 30A are formed of the common aluminum plate material. Therefore, the number of components can be decreased, and the space can be reduced.
(52) When the first upper lid member 20A and the second upper lid member 30A are joined to the step portion 17a and the arc-shaped partition wall step portion 17d formed at the opening end of the upper part 10a of the cooling plate 10, the side wall step portions 17b formed at upper ends of both the side walls 10c and 10d, and the longitudinal ends of both the side walls 10c and 10d, joining between the cooling plate 10 and the first upper lid member 20A and joining between the cooling plate 10 and the second upper lid member 30A can further be set easier and stronger.
(53) In the above-mentioned embodiments, description is given of the case in which the cooler according to the present invention is used for cooling heat generated from the battery 2 to be used as a power supply for a motor configured to drive a vehicle. However, the cooler according to the present invention is not limited thereto, and the present invention is also applicable to a cooler configured to cool heat generated from a power device such as an inverter or a semiconductor element.
REFERENCE SIGNS LIST
(54) 10 cooling plate 10a upper part 10b lower part 10c, 10d side wall 13, 13A partition wall 14 refrigerant passage 15, 15A refrigerant inlet side space 16, 16A refrigerant outlet side space 17a step portion 17b side wall step portion 17c partition wall step portion 17d arc-shaped partition wall step portion 20, 20A first upper lid member 21 refrigerant inlet side lid half segment 22 refrigerant outlet side lid half segment 25, 25A refrigerant inlet port 27, 27A refrigerant outlet port 30, 30A second upper lid member 35 flow passage space