Cooling system for power conversion device
11357139 · 2022-06-07
Assignee
Inventors
Cpc classification
H01L23/44
ELECTRICITY
International classification
F28D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20
ELECTRICITY
Abstract
A cooling system for a power conversion device may include a cooler upper-part having a plurality of cooling tubes through which cooling water flows and a connecting portion connecting the cooling tubes; one or more power conversion modules mounted between the cooling tubes; a cooling fin plate formed in a plate shape with cooling fins on a side and mounted on a side of the power conversion module such that the cooling fins are mounted in the opposite directions with respect to the power conversion module; and a cooler lower-part mounted between the cooling fin plate and the cooler upper-part, having one or more open holes formed at a portion, and combined with the cooling fin plate by inserting the cooling fins of the cooling fin plate in the open holes.
Claims
1. A cooling system for a power conversion device, the cooling system comprising: a first cooler part having a plurality of cooling tubes through which cooling water flows and a connecting portion connecting the plurality of cooling tubes; at least one power conversion module mounted between the plurality of cooling tubes; a cooling fin plate including cooling fins on a side of the cooling fin plate and mounted on a side of the at least one power conversion module wherein the cooling fins are mounted in an opposite direction with respect to the at least one power conversion module; and a second cooler part mounted between the cooling fin plate and the first cooler part, having at least one open hole formed at a portion, and combined with the cooling fin plate by inserting the cooling fins of the cooling fin plate in the at least one open hole, wherein the cooling fin plate is mounted between the at least one power conversion module and the second cooler part.
2. The cooling system of claim 1, wherein the first cooler part further has a cooling water inlet port through which the cooling water flows inside the first cooler part and a cooling water outlet port through which the cooling water is discharged from the first cooler part.
3. The cooling system of claim 1, wherein the plurality of cooling tubes is made of aluminum and the cooling fin plate is made of copper.
4. The cooling system of claim 1, wherein a material of the cooling fin plate has higher thermal conductivity than a material of the plurality of cooling tubes.
5. The cooling system of claim 1, wherein the cooling fin plate has a coupling portion having a predetermined area between the cooling fins and edge portions of the cooling fin plate, and wherein the second cooler part and the cooling fin plate are combined by inserting the cooling fins in the at least one open hole of the second cooler part and welding the coupling portion to contact the predetermined are on a bottom portion of the second cooler part.
6. The cooling system of claim 1, wherein a material or an object that has high thermal conductivity and is different from a material of the plurality of cooling tubes is inserted between the first cooler part and the cooling fins of the cooling fin plate.
7. The cooling system of claim 1, wherein protrusive guides are formed on a first end portion and a second end portion of a surface lacking of the cooling fins in the cooling fin plate to dispose the at least one power conversion module between the protrusive guides.
8. The cooling system of claim 1, wherein the at least one open hole is formed at a position of the second cooler part corresponding to the cooling fins when the cooling fin plate is combined.
9. The cooling system of claim 1, wherein a connection hole is formed at a position corresponding to the connecting portion of the first cooler part, at the second cooler part, and the cooling water in the plurality of cooling tubes flows through the connection hole.
10. The cooling system of claim 1, wherein a width of the second cooler part is greater than a width of the first cooler part, and edge portions of the second cooler part have a predetermined height.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(9) It may be understood that the appended drawings are not necessarily to scale, presenting a somewhat simplified representation of various features illustrative of the basic principles of the present invention. The specific design features of the present invention as included herein, including, for example, specific dimensions, orientations, locations, and shapes will be determined in part by the particularly intended application and use environment.
(10) In the figures, reference numbers refer to the same or equivalent portions of the present invention throughout the several figures of the drawing.
DETAILED DESCRIPTION
(11) Reference will now be made in detail to various embodiments of the present invention(s), examples of which are illustrated in the accompanying drawings and described below. While the present invention(s) will be described in conjunction with exemplary embodiments of the present invention, it will be understood that the present description is not intended to limit the present invention(s) to those exemplary embodiments. On the other hand, the present invention(s) is/are intended to cover not only the exemplary embodiments of the present invention, but also various alternatives, modifications, equivalents and other embodiments, which may be included within the spirit and scope of the present invention as defined by the appended claims.
(12) A cooling system for a power conversion device according to various embodiments of the present invention is described hereafter in detail with reference to the accompanying drawings.
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(14) As shown in
(15) The cooler upper-part 100 may have a plurality of cooling tubes 110 through which cooling water flows and a connecting portion 120 connecting the cooling tubes 110. The cooling tubes 110 may be made of aluminum.
(16) The cooler upper-part 100 may further have a cooling water inlet port 130 through which cooling water flows inside and a cooling water outlet port 140 through which cooling water is discharged. Though not shown in detail in the drawings, the cooling water inlet port 130 and the cooling water outlet port 140 of the cooler upper-part 100 are connected to a channel formed in a housing with which the cooling system for a power conversion device according to an exemplary embodiment of the present invention is combined, whereby cooling water can flow inside and outside. The housing may have an inlet and outlet through which cooling water flows inside and outside.
(17) Meanwhile, as shown in
(18) The power conversion module 200 includes a plurality of switching devices and one or more power conversion modules 200 may be mounted between the cooling tubes 110. Furthermore, the power conversion module 200 may be supplied with a DC current from a capacitor that receives a DC current from a high-voltage battery mounted in a vehicle. Furthermore, the power conversion module 200 can convert the DC current supplied from the capacitor into an AC current by switching the switching devices. Depending on embodiments, the power conversion module 200 may be an Insulated Gate Bipolar Transistor (IGBT) etc. However, this is only an exemplary embodiment and various semiconductor devices may be used as the power conversion module of the present invention.
(19) The cooling fin plate 300 may formed in a plate shape with cooling fins 310 on a side thereof. Furthermore, the cooling fin plate 300, as shown in
(20) In more detail, according to an exemplary embodiment of the present invention, the cooling fins 310 of the cooling fin plate 300 are inserted into open holes 410 of the cooler lower-part 400, which is described below, in contact with the cooling tubes 110 through which cooling water flows, and the opposite side without the cooling fins 310 of the cooling plate 300 is in contact with both sides of the power conversion module 200. Accordingly, cooling water can cool the power conversion module 200 by absorbing heat generated from the power conversion module 200 while flowing through the cooling tubes 110 and the connection hole 420.
(21) Furthermore, as shown in
(22) Furthermore, depending on embodiments, as shown in
(23) Furthermore, protrusive guides 330 may be formed on both end portions of the surface having no cooling fans 310 in the cooling fin plate 300, as shown in
(24) Meanwhile, the cooling fin plate 300 may be made of copper having high thermal conductivity in an exemplary embodiment of the present invention. Furthermore, the material of the cooling fin plate 300 may be a material having higher thermal conductivity than the material of the cooling tubes 110.
(25) The cooler lower-part 400 may be mounted between the cooling fin plate 300 and the cooler upper-part 100. Furthermore, as shown in
(26) Furthermore, a vertical through-connection hole 420 may be formed at the position, which corresponds to the connecting portion 120 of the cooler upper-part 100, at the cooler lower-part 400. Accordingly, as shown in
(27) The width of the cooler lower-part 400 may be greater than the width of the cooler upper-part 100. Furthermore, the edge portions of the cooler lower-part 400 may have a predetermined height. As describe above, since the width of the cooler lower-part 400 is greater than the width of the cooler upper-part 100 and the edge portions of the cooler lower-part 400 have a predetermined height, the cooler upper-part 100 may be stably accommodated inside the cooler lower-part 400.
(28) In the cooling system having the above-mentioned configuration characteristics for a power conversion device according to an exemplary embodiment of the present invention, the cooling fin plates are mounted on both sides of the power conversion module, the cooling fins of the cooling fin plates are inserted into the open holes formed at the cooler lower-part, and the cooler lower-part and the cooling fin plate are combined by welding only portions on the bottom portion of the cooler lower-part that are contact with the coupling portion of the cooling fin plate, minimizing thermal conductive layers between the cooler upper-part and the power conversion module. Accordingly, it is possible to minimize heat resistance between the cooler upper-part and the power conversion module, and accordingly, it is possible to improve cooling performance.
(29) For convenience in explanation and accurate definition in the appended claims, the terms “upper”, “lower”, “inner”, “outer”, “up”, “down”, “upwards”, “downwards”, “front”, “rear”, “back”, “inside”, “outside”, “inwardly”, “outwardly”, “internal”, “external”, “inner”, “outer”, “forwards”, and “backwards” are used to describe features of the exemplary embodiments with reference to the positions of such features as displayed in the figures. It will be further understood that the term “connect” or its derivatives refer both to direct and indirect connection.
(30) The foregoing descriptions of specific exemplary embodiments of the present invention have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the present invention to the precise forms disclosed, and obviously many modifications and variations are possible in light of the above teachings. The exemplary embodiments were chosen and described to explain certain principles of the present invention and their practical application, to enable others skilled in the art to make and utilize various exemplary embodiments of the present invention, as well as various alternatives and modifications thereof. It is intended that the scope of the present invention be defined by the Claims appended hereto and their equivalents.