Cooling device for a power module
The cooling device for power modules addresses the issue of dust and particle contamination by using a recessed closing plate to contain fixing member dust, ensuring a clean environment and efficient assembly.
Patent Information
- Application Number
- FR2024002542
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-14
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2044-03-14
AI Technical Summary
Existing cooling devices for power modules generate dust or particles during the fixing process, which contaminate the environment.
A cooling device design that incorporates a stack of metal plates with recesses for fluid channels and a cover with passage orifices, featuring a recessed closing plate to contain dust and particles generated by fixing members, without additional parts, ensuring rapid and economical assembly.
Prevents dust and particles from escaping, maintaining a clean environment while facilitating quick and cost-effective assembly without additional components.
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Abstract
Description
Title of the invention: Cooling device for a power module Technical field
[0001] The invention relates to a device for cooling a power module. Technological background
[0002] Electrical systems are known from the state of the art, and in particular inverters comprising power modules. These power modules are preferably associated with a cooling device intended to prevent each power module from heating up in order to guarantee optimal operation thereof. The cooling device typically comprises a portion for circulating a cooling fluid against which the power module is applied.
[0003] The cooling device comprises a cover which holds the power module against the circulation part of the cooling device, the cover itself being fixed for example by screwing onto the circulation part of the cooling device.
[0004] The cover and the circulation part of the cooling device have for this purpose an orifice for the passage of a fixing screw.
[0005] A disadvantage of this arrangement is that dust or particles are generated by the step of fixing the cover to the circulation part of the cooling device, for example by screwing. This dust or particles can escape from the cooling device and contaminate its environment. Summary of the invention
[0006] One idea behind the invention is to provide a cooling device that limits the amount of dust or particles escaping when the cover holding the power modules is attached to it, while being simple, quick and economical to produce.
[0007] According to one embodiment, the invention provides a cooling device for a power module comprising a circulation part in which a cooling fluid is intended to circulate and a fixing part for fixing the power module on the circulation part, in which: - the circulation part comprises a stack of metal plates comprising a first plate adapted to receive the power module and a plurality of intermediate plates comprising recesses providing channels intended for the circulation of the cooling fluid, - the fixing part comprises a cover for holding the power module, adapted to press the power module against the first plate of the stack, and at least one fixing member, the cover being provided with a passage orifice for said fixing member, this passage orifice being adapted to be positioned opposite a receiving opening of the circulation part, for fixing the fixing part on the circulation part by means of said fixing member, said receiving opening of the circulation part being pierced through a plurality of metal plates of said stack and closed by a closing plate of the stack, the closing plate comprising a recess arranged opposite said receiving opening, so as to create a housing into which said receiving opening opens.
[0008] Thanks to these features, the manufacturing of the cooling device is rapid and does not produce dust. Indeed, the dust produced by screwing the fixing screw into the receiving opening is collected in the recess of the closing plate and not rejected outside the cooling device. Furthermore, this is achieved without adding an additional part in addition to the metal plates of the stack.
[0009] According to one embodiment, said closing plate comprises a part which surrounds said recess and is pressed against one of the plates of the stack all around the receiving opening. The recess is thus located precisely around the receiving opening.
[0010] According to one embodiment, said recess is formed by stamping the closing plate.
[0011] According to one embodiment, said recess is formed by molding the closing plate.
[0012] According to one embodiment, each of the plates of the stack is made of aluminum. This metal has a high thermal conductivity, of the order of 110 W / m.K to 200 W / m.K
[0013] According to one embodiment, the fixing member is a threaded screw and the receiving opening comprises a thread intended to cooperate with the threaded screw.
[0014] According to one embodiment, the fixing member is a self-threading screw and the receiving opening is not threaded before insertion of the screw.
[0015] According to one embodiment, the cover of the fixing part is molded.
[0016] According to one embodiment, the cover of the fixing part comprises a support plate intended to press the power module against the first plate of the stack and at least one arm at the end of which is provided the orifice for the passage of the fixing member.
[0017] The invention further relates to a power assembly, comprising a module of power and a cooling device as described above, the power module being arranged between the circulation part and the fixing part of the cooling device, pressed against the first plate of the stack by the fixing part.
[0018] The invention finally relates to a method of manufacturing a part of a cooling device as described above, according to which: - a plurality of metal plates of said stack are assembled, - the receiving opening is pierced through the plurality of metal plates of said stack, - a closing plate is assembled to said plurality of plates of the stack, such that the recess of the closing plate is arranged opposite said receiving opening. Brief description of the figures
[0019] The invention will be better understood, and other aims, details, characteristics and advantages thereof will appear more clearly during the following description of several particular embodiments of the invention, given solely for illustrative and non-limiting purposes, with reference to the appended drawings.
[0020] [Fig.l] schematically represents a sectional view along plane AA of [Fig.3] of a power assembly comprising three power modules and a cooling device.
[0021] [Fig.2] schematically represents an enlarged view of a detail of [Fig.l].
[0022] [Fig. 3] is a schematic perspective representation from above of the assembly of [Fig.l].
[0023] [Fig.4] is a schematic perspective representation from above of the whole of [Fig.3], according to an observation direction opposite to that of [Fig.3].
[0024] [Fig.5] is a schematic perspective representation seen from below of the whole of [Fig.l]. Description of the embodiments
[0025] Figures 1, 3, 4 and 5 show a power assembly 1. This comprises a cooling device 10 and three power modules 20. The power modules 20 are typically components arranged for converting electrical energy from direct current to alternating current or vice versa. They are thus intended to form an inverter, in particular for an electric vehicle, that is to say a device arranged to convert the direct current delivered by an electric battery into alternating current to power an alternating current electric machine and vice versa.
[0026] Each power module 20 is in the form of a block of glo shape flattened parallelepiped structure. The three power modules 20 are here arranged side by side, aligned along a longitudinal direction XI of the cooling device 10 ([Fig.3]).
[0027] The cooling device here has an elongated shape in this longitudinal direction XL
[0028] The cooling device 10 comprises a circulation part 11 in which a cooling fluid is intended to circulate and a fixing part 12 for fixing the power module 20 on the circulation part 11.
[0029] The circulation part 11 comprises a stack 13 of metal plates 14 comprising a first plate 141 adapted to receive the power module 20 and a plurality of intermediate plates 142 comprising recesses 15 providing channels intended for the circulation of the cooling fluid ([Fig.l]).
[0030] The coolant is a liquid, for example water-based with additives for example glycol-based or any other coolant used in automobiles.
[0031] Each of the plates in the stack is made of aluminum. This material ensures efficient heat exchange with the cooling fluid.
[0032] The stack 13 of metal plates 14 of the circulation part 11 further comprises a last plate 143 arranged opposite the first plate 141 in the stack.
[0033] The first plate 141 and the intermediate plates 142 are flat and comprise two parallel main faces connected by a peripheral edge.
[0034] A front face 141A of the first plate 141 receives each power module 20. A rear face 141B of the first plate 141 opposite its front face 141A is applied against the intermediate metal plates 142.
[0035] The main faces of the intermediate metal plates 142 are placed against each other.
[0036] The recesses 15 of each pair of two adjacent intermediate plates 142 juxtaposed in the stack 13 are in at least partial communication. Channels 15A are thus formed in the stack of metal plates 14 by placing these recesses 15 in communication ([Fig.l]). These channels open to the outside of the circulation part 11, so as to be able to be connected to a cooling fluid circulation system ([Fig.5]). The cooling fluid circulation system injects into the channels thus formed a cooling fluid which circulates in the channels to dissipate part of the heat contained in the circulation part and thus cool it.
[0037] The last plate 143 also has a front face 143A of which at least one part is flat and against which the rear face of the inter-plate is positioned. median 142 of stack 13 adjacent to the last plate 143.
[0038] The last plate 143 at least partially closes the channels 15A. It may include openings 151 ([Fig.5]) making it possible to connect the channels 15A to the fluid circulation system (not shown).
[0039] The fixing part 12 comprises a cover 17 for holding each power module 20. The cover 17 is adapted to press each power module 20 against the first plate 141 of the stack 13.
[0040] The fixing part 12 further comprises at least one fixing member 18 ([Fig.3])•
[0041] The cover 17 is provided with at least one passage orifice 19 for said fixing member 18.
[0042] The cover 17 of the fixing part 12 is for example molded from metal, such as aluminum.
[0043] More precisely, eight fixing members and eight corresponding passage holes are provided here.
[0044] Each passage orifice 19 is adapted to be positioned opposite a receiving opening 30, 40 of the circulation part 11, for fixing the fixing part 12 on the circulation part 11 by means of said fixing member 18.
[0045] In practice, the cover 17 here has the shape of a rider with a central support plate 171 and a plurality of lateral arms 172 which extend from the central support plate 171.
[0046] The central support plate 171 extends along the longitudinal direction XI of the cooling device 10.
[0047] The central support plate 171 is intended to press the power module 20 against the circulation part 11 of the cooling device 10.
[0048] When the cover 17 is in place on the circulation part 11, the central support plate 171 extends at a distance from the first metal plate 141, generally parallel to its front face 141A. A housing for receiving each power module 20 is thus provided between the front face 141A of the first plate 141 and the central support plate 171 of the cover 17.
[0049] The gap between the central support plate 171 and the front face 141A of the first plate 141 of the stack 13 when the fixing part 12 is fixed on the circulation part 11 is determined so that each power module 20 is pressed against the front face 141A of the first plate 141 when the fixing part 12 is fixed on the circulation part 11.
[0050] Each lateral arm 172 of the fixing part 170 extends from the central plate 171 to the front face 141A of the first metal plate 141. The shape of the lateral arms 172 imposes the gap described previously between the central plate support 171 and the front face 141A of the first plate 141 of the stack 13 when the fixing part 12 is fixed on the circulation part 11.
[0051] The lateral arms 172 of the cover 17 extend on either side of the central support plate 171. A portion of them extends between the power modules 20 and on either side thereof. The lateral arms which extend between the power modules 20 extend perpendicular to the longitudinal axis XL. The cover 17 may also comprise other lateral arms 172 which extend with a non-zero angle other than 90° relative to the central plate 171. These are in particular the lateral arms 172 which extend at each end of the central plate 171 and block the power modules 20 at the longitudinal ends of the device.
[0052] The lateral arms 172 separate the power modules two by two along the longitudinal direction XI and block any movement of the power modules along this longitudinal direction XL.
[0053] The cover here comprises for this purpose eight lateral arms 172 which frame and separate the three power modules 20.
[0054] A passage orifice 19 for the fixing member 18 is provided at the end of each lateral arm 172.
[0055] The receiving opening 30, 40 of the circulation part 11 corresponding to each passage orifice 19 of the fixing part 12 is pierced through a plurality of metal plates 141, 142 of said stack 13 and closed by a closing plate 143, 144 of the stack 13.
[0056] The closing plate 143, 144 may be the last plate 143 of the stack 13 or one 144 of the intermediate plates 142.
[0057] The closing plate 143, 144 comprises a recess 31 arranged opposite said receiving opening 30, so as to create a housing 31A into which said receiving opening 30, 40 opens ([Fig. 1]). This recess 31 corresponds to a hollow in the front face 143A of the closing plate 143, 144 ([Fig. 2]).
[0058] The housing 31A delimits an interior space which extends in the extension of the reception opening 30, 40.
[0059] The closure plate 143, 144 further comprises a portion which surrounds said recess 31 and is pressed against one of the plates of the stack all around the receiving opening (30). The portion which extends around the recess forms, for example, a flat collar which is pressed against the rear face of the intermediate plate 142 adjacent to the closure plate. Preferably, the remainder of the front face 143A of the closure plate, excluding the recess, is flat and applied against the rear face of the intermediate plate adjacent to the closure plate.
[0060] The recess 31 is formed for example by stamping the closing plate 143, 144.
[0061] Alternatively, the recess is formed by molding the closure plate.
[0062] The fixing member 18 is for example a threaded screw and the receiving opening 30, 40 has an 18A thread ([Fig.2]) intended to cooperate with the threaded screw.
[0063] Alternatively, the fixing member is a self-threading screw and the receiving opening is unthreaded before insertion of the self-threading screw.
[0064] As a further variant, the fixing member may comprise a snap-fastening part cooperating with an opening or a crimping or riveting system.
[0065] The cooling device 10 thus comprises, in an integrated manner with the stack of metal plates 14 forming the circulation part 11 of the cooling fluid, the housing 31A which closes the receiving opening 30, 40 of the circulation part 11 in which the fixing member is fixed.
[0066] The dust or particles generated by the introduction of the fixing member 18 into the receiving opening 30, 40 cannot escape from the circulation part 11 of the cooling device. This dust or particles is retained inside the housing 31 A. Thus, the environment of the cooling device remains clean, free of dust or particles.
[0067] Furthermore, this is achieved in a particularly simple, rapid and economical manner. Indeed, no additional element is used to retain dust and particles. The housing is formed by one of the metal plates of the stack of metal plates 14 of the circulation part 11.
[0068] In particular, according to one embodiment, a part of a cooling device is manufactured according to the following steps:
[0069] - a plurality of metal plates 14 of said stack 13 are assembled, for example by soldering,
[0070] - the receiving opening 30, 40 is pierced through the plurality of metal plates 14 said stack 13,
[0071] - a closing plate 143, 144 is assembled, comprising a recess 31 at said plurality of plates of the stack 13, such that the recess 31 of the closing plate 143, 144 is arranged opposite said receiving opening 30, 40.
[0072] Thus, each reception opening is drilled in one go, through the already assembled metal plates.
[0073] The housing 31A is formed by assembling the metal plates together.
[0074] In addition, other openings passing through a plurality of metal plates of the stack may also be closed by a closing plate comprising a recess so as to form a housing extending these other openings.
[0075] Although the invention has been described in connection with several particular embodiments, it is obvious that it is in no way limited thereto and that it includes all the technical equivalents of the means described as well as their combinations if these fall within the scope of the invention.
[0076] A power assembly comprising a cooling device and three power modules has been described here. The power assembly may also comprise a cooling device and at least one power module. It preferably comprises a cooling device and between one and a number N of power modules, N being an integer. For example, N is equal to 3 or 5 or 6 or 10. Each power module may be formed from a module comprising a set of electronic components including transistors, for example MOS transistors, forming switches. Alternatively, a power module may be composed of a discrete component such as an IGBT transistor. Alternatively, a power module may be replaced by an excitation module, in particular a module for excitation of a coil of the rotor of a rotating electrical machine.
[0077] The use of the verb “comprise”, “comprise” or “include” and its conjugated forms does not exclude the presence of other elements or other steps than those stated in a claim.
[0078] In the claims, any reference sign in parentheses cannot be interpreted as a limitation of the claim.
Claims
Claims
1. Cooling device (10) for a power module (20) comprising a circulation portion (11) in which a cooling fluid is intended to circulate and a fixing portion (12) for fixing the power module (20) on the circulation portion (11), in which: - the circulation portion (11) comprises a stack (13) of metal plates (14) comprising a first plate (141) adapted to receive the power module (20) and a plurality of intermediate plates (142) comprising recesses (15) forming channels (15A) intended for the circulation of the cooling fluid, - the fixing portion (12) comprises a cover (17) for holding the power module (20), adapted to press the power module (20) against the first plate (141) of the stack (13), and at least one fixing member (18), the cover (17) being provided with a passage orifice (19) of said fixing member (18),this passage orifice (19) being adapted to be positioned opposite a receiving opening (30, 40) of the circulation part (11), for fixing the fixing part (12) on the circulation part (11) by means of said fixing member (18), said receiving opening (30, 40) of the circulation part (11) being pierced through a plurality of metal plates (141, 142) of said stack and closed by a closing plate (143, 144) of the stack (13), the closing plate (143, 144) comprising a recess (31) arranged opposite said receiving opening (30), so as to create a housing (31 A) into which said receiving opening (30, 40) opens.,
2. Cooling device (10) according to claim 1, wherein said closing plate (143, 144) comprises a portion which surrounds said recess and is pressed against one of the plates of the stack (142) all around the receiving opening (30, 40).
3. Cooling device (10) according to one of claims 1 and 2, wherein said recess (31) is formed by stamping the closure plate (143, 144).
4. Cooling device (10) according to one of claims 1 to 3, wherein said recess (31) is formed by molding the closure plate (143, 144).
5. Cooling device (10) according to one of claims 1 to 4, wherein each of the metal plates (14) of the stack (13) is made of aluminum.
6. Cooling device (10) according to one of claims 1 to 5, in which the fixing member (18) is a threaded screw and the receiving opening (30, 40) comprises a thread intended to cooperate with the threaded screw.
7. Cooling device (10) according to one of claims 1 to 5, in which the fixing member (18) is a self-threading screw and the receiving opening (30, 40) is unthreaded before insertion of the screw.
8. Cooling device (10) according to one of claims 1 to 7, wherein the cover (17) of the fixing part (12) is molded.
9. Cooling device (10) according to one of claims 1 to 8, wherein the cover (17) of the fixing part (12) comprises a support plate (171) intended to press the power module (20) against the first plate (141) of the stack (13) and at least one arm (172) at the end of which is provided the passage orifice (19) of the fixing member (18).
10. Power assembly (1), comprising a power module (20) and a cooling device (10) according to one of the preceding claims, the power module (20) being arranged between the circulation part (11) and the fixing part (12) of the cooling device (10), pressed against the first plate (141) of the stack (13) by the fixing part (12).
11. A method of manufacturing a part of a cooling device (10) according to claim 1, wherein: - a plurality of metal plates (14) of said stack (13) are assembled, - the receiving opening (30, 40) is pierced through the plurality of metal plates (14) of said stack (13), - a closing plate (143, 144) is assembled to said plurality of plates (14) of the stack (13), such that the recess (31) of the closing plate (143, 144) is arranged opposite said receiving opening (30, 40).
Citation Information
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