Water-cooled motor

The water-cooled motor design with a non-magnetic metal pipe and cast-in insert material stabilizes stator cooling by preventing blowhole communication, enhancing efficiency and reducing costs.

JP7740189B2Active Publication Date: 2025-09-17TOYOTA JIDOSHA KK
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Patent Information

Application Number
JP2022160950
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-10-05
Publication Date
2025-09-17
Estimated Expiration
2042-10-05

AI Technical Summary

Technical Problem

Cast metal housings in water-cooled motors can develop blowholes during manufacturing, leading to unstable cooling of the stator due to communication between cooling channels and the stator through these blowholes when fixed by shrink fitting.

Method used

An annular stator is housed within an annular housing with a non-magnetic metal pipe inside the cooling flow passage and a cast-in insert material, preventing communication through blowholes and enhancing cooling efficiency by direct contact with the stator.

Benefits of technology

Stable cooling of the stator is achieved by positioning the metal pipe inside the cooling flow passage, improving cooling efficiency and reducing manufacturing costs through optimized wall thickness and increased contact area.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a water-cooled motor capable of stably cooling a stator.SOLUTION: A water-cooled motor 100 includes an annular stator 20 having a central shaft C1, and an annular housing 30 that surrounds the stator 20 around the central shaft and in which a cooling flow passage R is provided. The housing 30 includes an annular non-magnetic metallic tube 32 and a cast-in material 31 for cast-in wrapping the metallic tube 32 around the central shaft C1. The metallic tube 32 is positioned inside the cooling flow passage R and outside of an outer surface of the stator 20 in a radial direction of the stator 20.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to a water-cooled motor. [Background technology]

[0002] As a conventional water-cooled motor, Patent Publication No. 2021-118590 discloses a technology for cooling the motor body by providing a cylindrical water jacket that covers the outer surface of the motor body and flowing cooling water through the water jacket. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Patent Publication No. 2021-118590 Summary of the Invention [Problem to be solved by the invention]

[0004] In a cooled motor that houses a stator in a housing with cooling channels, the housing may be made of cast metal. Castings can have blowholes during manufacturing. When a stator is fixed to a cast housing by shrink fitting, the inner surface of the housing can be worn away, causing a connection between part of the cooling channel and the outer surface of the stator through the blowhole. In such cases, it becomes difficult to stably cool the stator.

[0005] The present disclosure has been made in consideration of the above-mentioned problems, and an object of the present disclosure is to provide a water-cooled motor that can stably cool the stator. [Means for solving the problem]

[0006] A water-cooled motor according to the present disclosure includes an annular stator having a central axis, and an annular housing surrounding the stator around the central axis and having a cooling flow passage therein. The housing includes an annular non-magnetic metal pipe and a cast-in insert material cast-in around the central axis. The metal pipe is located radially inward of the cooling flow passage and outward of the outer surface of the stator.

[0007] According to the above configuration, even if the inner surface of the housing is scraped when the stator is fixed to a casting by shrink fitting or the like using a casting as the housing, the metal pipe is positioned inside the cooling flow passage and outside the outer surface of the stator, so that it is possible to prevent communication between the cooling flow passage and the outer surface of the stator through blowholes in the casting, thereby enabling stable cooling of the stator.

[0008] In the water-cooled motor according to the present disclosure, the inner surface of the metal tube may abut against the outer surface of the stator.

[0009] According to the above configuration, the stator can be directly cooled by the metal pipe arranged inside the cooling flow path, which improves the cooling efficiency compared to when other objects are interposed between the metal pipe and the outer surface of the stator.

[0010] In the water-cooled motor according to the present disclosure, the stator may include a stator core having an end face on one side in the axial direction of the central axis, and an end coil provided on the end face. The metal tube may have a protruding portion that protrudes beyond the end face toward the one side in the axial direction. In this case, it is preferable that the protruding portion be in thermal contact with the end coil via an insulating member.

[0011] According to the above configuration, the end coil can be cooled by the protrusion provided on the metal pipe.

[0012] In the water-cooled motor according to the present disclosure, the cast-in insert may include a first wall portion located radially outward and a second wall portion located radially inward of the first wall portion. The cooling flow path may be formed in a gap between the first wall portion and the second wall portion. The metal pipe may be disposed radially inward of the second wall portion. In this case, it is preferable that the thickness of the second wall portion in the radial direction is smaller than the thickness of the first wall portion in the radial direction.

[0013] According to the above configuration, by thinning the second wall portion, the distance between the cooling flow path and the outer peripheral surface of the stator can be shortened, thereby improving cooling efficiency and reducing manufacturing costs.

[0014] In the water-cooled motor according to the present disclosure, the thickness of the second wall portion is preferably 5 mm or less, which can improve cooling efficiency.

[0015] In the water-cooled motor according to the present disclosure, the metal tube may have an outer surface with an uneven shape.

[0016] According to the above-mentioned configuration, when the metal pipe is cast-in with the cast-in insert, the contact area between the outer surface of the metal pipe and the cast-in insert can be increased, thereby improving the thermal conductivity and the cooling efficiency, and also improving the anchoring effect between the metal pipe and the cast-in insert.

[0017] In the water-cooled motor according to the present disclosure, the protrusion of the metal tube may include an apex located radially outward, a base located radially inward, and a columnar portion connecting the apex and the base. In this case, the apex preferably has a wider shape than the columnar portion.

[0018] According to the above configuration, the contact area between the outer surface of the metal pipe and the cast-in insert can be further increased, thereby further improving the cooling efficiency and the anchoring effect. [Effects of the Invention]

[0019] According to the present disclosure, it is possible to provide a water-cooled motor capable of stably cooling the stator. [Brief explanation of the drawings]

[0020] [Figure 1] 1 is a perspective view of a water-cooled motor according to a first embodiment. [Figure 2] 2 is a diagram showing a cooling channel of the water-cooled motor according to the first embodiment. FIG. [Figure 3] FIG. 2 is a cross-sectional view taken along line III-III shown in FIG. [Figure 4] 2 is an enlarged view showing the outer peripheral surface of the metal pipe according to the first embodiment. FIG. [Figure 5] FIG. 10 is a perspective view of a water-cooled motor according to a second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0021] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. In the embodiments described below, identical or common parts are designated by the same reference numerals in the drawings, and their description will not be repeated. Furthermore, in the embodiments, a water-cooled motor will be described as a traction motor mounted on a vehicle such as a hybrid vehicle or an electric vehicle, but the water-cooled motor is not limited to traction motors, and can also be applied to power generation motors, motors for other purposes, and motors for non-vehicle use (including generators).

[0022] (Embodiment 1) Fig. 1 is a perspective view of a water-cooled motor according to embodiment 1. Fig. 2 is a diagram showing a cooling channel of the water-cooled motor according to embodiment 1. A water-cooled motor 100 according to embodiment 1 will be described with reference to Figs. 1 and 2.

[0023] As shown in FIGS. 1 and 2, the water-cooled motor 100 includes a rotor 10, a stator 20, and a housing 30.

[0024] The rotor 10 is connected to a shaft (not shown) and is rotatable around an axis C1. The rotor 10 includes a rotor core 11. The rotor core 11 is formed by stacking a plurality of electromagnetic steel plates in the direction of the axis C1. The rotor core 11 is provided with a plurality of holes (not shown) that penetrate in a direction parallel to the direction of the axis C1. A permanent magnet (not shown) is inserted into each of the plurality of holes.

[0025] The stator 20 includes a stator core 21, coils 22 including end coils, and an insulating cover 23 as an insulating member. The stator 20 has a central axis. The central axis coincides with the axis C1. The stator core 21 has a cylindrical shape. The stator core 21 is disposed on the outer circumferential side of the rotor core 11, coaxially with the axis C1.

[0026] The stator core 21 includes a plurality of plates stacked in the direction of the axis C1. Each of the plurality of plates is formed, for example, by punching an electromagnetic steel sheet.

[0027] The stator core 21 has a back yoke portion located on the radially outer side and a plurality of teeth located on the radially inner side. The plurality of teeth are spaced apart in the circumferential direction, and slots are formed between adjacent teeth in the circumferential direction. Coils 22 are fitted into the slots.

[0028] The stator core 21 has a first end face 21c on one side in the axial C1 direction. The end coils of the coils 22 are provided on the first end face 21c. Specifically, the portions of the coils 22 that protrude from the first end face 21c to one side in the axial C1 direction become the end coils. The end coils are covered with insulating covers 23. Note that the end coils may be provided on both end faces of the stator core 21 in the axial C1 direction.

[0029] The housing 30 surrounds the stator 20 around the axis C1. The housing 30 accommodates the stator 20 radially inside. The housing 30 is provided with a cooling flow path R. Water flows through the cooling flow path R as a refrigerant, thereby cooling the stator 20.

[0030] The housing 30 includes a cast-in insert material 31, a metal pipe 32, and a flow path forming member 33. The cast-in insert material 31 casts in the metal pipe 32 around an axis C1. As a result, the cast-in insert material 31 and the metal pipe 32 are integrated together. The cast-in insert material 31 is made of a non-magnetic metal material such as aluminum. The metal pipe 32 is annular and non-magnetic. The metal pipe 32 has a cylindrical shape. The metal pipe 32 is made of a steel pipe, for example.

[0031] The flow path forming member 33 forms a flow path through which water, which serves as a refrigerant, flows. The flow path forming member 33 may be made of a resin member. As will be described later, the flow path forming member 33 is disposed in the gap between the first wall portion 311 (see FIG. 3) and the second wall portion 312 of the cast-in insert 31. The flow path forming member 33 includes a first portion 331 and a second portion 334.

[0032] The first portion 331 is located on one side in the direction of the axis C1. The first portion 331 has a first base portion 332 and a plurality of first extension portions 333. The first base portion 332 has an annular shape. The plurality of first extension portions 333 are provided so as to protrude from the first base portion 332 to the other side in the direction of the axis C1. The plurality of first extension portions 333 are arranged side by side in the circumferential direction at a predetermined pitch.

[0033] The second portion 334 is located on the other side in the direction of the axis C1. The second portion 334 has a second base portion 335 and a plurality of second extension portions 336. The second base portion 335 is disposed to face the first base portion 332 at a distance in the direction of the axis C1.

[0034] The multiple second extension portions 336 are provided so as to protrude from the second base portion 335 to one side in the direction of the axis C1. The multiple second extension portions 336 are arranged side by side in the circumferential direction at a predetermined pitch. The multiple second extension portions 336 are arranged so as to be shifted from the multiple first extension portions 333 in the circumferential direction. The second extension portions 336 are arranged between first extension portions 333 that are adjacent to each other in the circumferential direction.

[0035] By providing the flow path forming member 33 in this manner, the cooling flow path R is provided so as to extend in a circumferential direction while meandering. The shape of the cooling flow path R is not limited to the above. For example, the shapes of the first portion 331 and the second portion 334 may be changed so that the cooling flow path R extends in an axial direction while meandering.

[0036] Fig. 3 is a cross-sectional view taken along line III-III shown in Fig. 1. The water-cooled motor 100 will be described in detail with reference to Fig. 3.

[0037] The cast-in insert material 31 includes a first wall portion 311, a second wall portion 312, and a connecting portion 313. The first wall portion 311 is located radially outward and constitutes the outer peripheral wall portion of the cast-in insert material 31. The second wall portion 312 is located radially inward of the first wall portion 311. The second wall portion 312 is located away from the first wall portion 311, and a gap is formed between the first wall portion 311 and the second wall portion 312. The above-mentioned flow path forming member 33 is disposed in the gap, thereby forming a cooling flow path R in the gap. Note that on the other side in the direction of axis C1, the first wall portion 311 and the second wall portion 312 are connected by the connecting portion 313.

[0038] A thickness d2 of the second wall portion 312 in the radial direction is thinner than the thickness d1 of the first wall portion 311. The thickness d2 of the second wall portion 312 is preferably, for example, 5 mm or less.

[0039] By thinning the second wall portion 312, the distance between the cooling flow path R and the outer surface of the stator 20 (more specifically, the outer peripheral surface 21a of the stator core 21) can be shortened, thereby improving the cooling efficiency. Furthermore, by thinning the second wall portion 312, the manufacturing cost can be reduced.

[0040] The metal pipe 32 is located radially inside the cooling passage R and outside the outer circumferential surface 21a of the stator 20 (see FIG. 3).

[0041] The metal pipe 32 has an inner peripheral surface 32a as the inner surface and an outer peripheral surface 32b as the outer surface. The metal pipe 32 has a biting portion 32d at the end located on the other side in the direction of the axis C1. The biting portion 32d is bitten into the cast-in insert material 31. The periphery of the biting portion 32d is covered with the cast-in insert material 31.

[0042] In a portion of the metal pipe 32 located on one side of the biting portion 32d in the axial direction C1, the inner circumferential surface 32a is not covered by the cast-in material 31 and is exposed from the cast-in material 31. As a result, the inner circumferential surface 32a of the metal pipe 32 abuts against the outer surface of the stator 20 (more specifically, the outer circumferential surface 21a of the stator core 21). As a result, the cooling efficiency can be improved compared to when another object is interposed between the metal pipe 32 and the outer circumferential surface of the stator 20. Note that a gap may be formed between the inner circumferential surface 32a of the metal pipe 32 and the outer circumferential surface of the stator 20.

[0043] In the above description, the inner circumferential surface 32a of the metal pipe 32 located on one side of the biting portion 32d in the axial direction C1 is exposed from the cast-in material 31. However, the present invention is not limited to this, and the inner circumferential surface 32a of the metal pipe 32 may be covered by the cast-in material 31. That is, the cast-in material 31 may be interposed between the metal pipe 32 and the outer surface of the stator 20. In this case, by bringing the inner surface of the cast-in material 31 into contact with the outer surface of the stator 20, good cooling efficiency can be maintained.

[0044] Fig. 4 is an enlarged view of the outer circumferential surface of the metal pipe according to embodiment 1. With reference to Fig. 4, the outer circumferential surface 32b of the metal pipe 32 will be described.

[0045] 4, the outer peripheral surface 32b of the metal tube 32 has an uneven shape. The uneven shape is formed by a plurality of protrusions 51 provided on the outer peripheral surface 32b. Each of the plurality of protrusions 51 is provided so as to protrude radially outward from the outer peripheral surface 32b.

[0046] Each of the multiple protrusions 51 includes a base portion 52, a top portion 53, and a columnar portion 54. The base portion 52 is located on the inside in the radial direction. The top portion 53 is located on the outside in the radial direction and forms the tip portion. The columnar portion 54 connects the top portion 53 and the base portion 52. The top portion 53 has a shape that is wider than the columnar portion 54.

[0047] The uneven outer surface 32b increases the contact area between the outer surface 32b and the cast-in insert material 31 when the metal pipe 32 is cast-in with the cast-in insert material 31. This increases the thermal conductivity and improves the cooling efficiency. Furthermore, the convex portions bite into the cast-in insert material 31, and the cast-in insert material 31 bites into the concave portions, thereby improving the anchoring effect between the metal pipe 32 and the cast-in insert material. Furthermore, the uneven shape is formed by the above-mentioned multiple protrusions 51, which further increases the contact area and significantly improves the cooling efficiency and anchoring effect.

[0048] The metal pipe 32 provided with the above-described multiple protrusions 51 can be formed by centrifugal casting. Specifically, a mold release material is provided on the inner peripheral surface of a mold, and the mold release material is heated to foam. In this state, molten metal is poured into the mold, thereby forming multiple protrusions 51 according to the foaming state of the mold release material.

[0049] In the water-cooled motor 100 according to this embodiment, the stator 20 is fixed to the housing 30 by shrink fitting. As described above, the cast-in insert material 31 of the housing 30 is made of a casting. Therefore, when the stator 20 (more specifically, the stator core 21) is shrink-fitted into the cast-in insert material 31, the inner surface of the cast-in insert material 31 may be scraped off, and blowholes may be exposed on the stator 20 side.

[0050] Even in such a case, since the metal pipe 32 is positioned inside the cooling flow passage R and outside the outer surface of the stator 20, it is possible to prevent the cooling flow passage from communicating with the outer surface of the stator through a blowhole, thereby enabling stable cooling of the stator.

[0051] (Embodiment 2) Fig. 5 is a perspective view of a water-cooled motor according to embodiment 2. As shown in Fig. 5, the water-cooled motor 100A according to embodiment 2 differs from the water-cooled motor 100 according to embodiment 1 in the configuration of the metal tube 32A. The other configurations are substantially the same.

[0052] The metal tube 32A is provided with a protruding portion 35. The protruding portion 35 protrudes to one side in the axial direction C1 beyond the first end face 21c of the stator core 21. The protruding portion 35 is in thermal contact with the end coil via the insulating cover 23.

[0053] The protruding portion 35 has a first arm 351, a second arm 352, and a third arm 353. The first arm 351 protrudes along one side in the axial direction C1 from a portion of the end of the metal tube 32A located on one side in the axial direction C1. The second arm 352 abuts against a portion of the circumferential surface of the insulating cover 23 along the circumferential direction. The third arm 353 connects the first arm 351 and the second arm 352.

[0054] The shape of the protruding portion 35 is not limited to the above, and the first arm 351 may be inclined so as to approach the axis C1 as it moves toward one side in the axial C1 direction, and may directly contact the insulating cover 23. The protruding portion 35 may have any appropriate shape as long as the portion that protrudes along one side in the axial C1 direction from a part of the end of the metal tube 32A located on one side in the axial C1 direction comes into contact with the insulating cover 23.

[0055] By providing the protrusions 35 as described above, the end coils can be cooled by the protrusions 35.

[0056] The embodiments disclosed herein are illustrative in all respects and are not restrictive. The scope of the present invention is defined by the claims, and includes all modifications within the meaning and scope of the claims. [Explanation of symbols]

[0057] 10 rotor, 11 rotor core, 20 stator, 21 stator core, 21a outer peripheral surface, 21c first end surface, 22 coil, 23 insulating cover, 30 housing, 31 cast-in material, 32, 32A metal pipe, 32a inner peripheral surface, 32b outer peripheral surface, 32d biting portion, 33 flow path forming member, 35 protrusion, 51 protrusion, 52 root portion, 53 top portion, 54 columnar portion, 100, 100A water-cooled motor, 311 first wall portion, 312 second wall portion, 313 connection portion, 331 first portion, 332 first base portion, 333 first extension portion, 334 second portion, 335 second base portion, 336 second extension portion, 351 first arm portion, 352 second arm portion, 353 third arm portion, C1 Axial, R Cooling Channels.

Claims

1. an annular stator having a central axis; an annular housing that surrounds the stator around the central axis and has a cooling flow path provided therein; the housing includes an annular non-magnetic metal tube and a cast-in insert material that casts in the metal tube around the central axis, A water-cooled motor, wherein the metal pipe is located radially inward of the cooling flow path and outward of the outer surface of the stator.

2. The water-cooled motor according to claim 1 , wherein an inner surface of the metal tube abuts against the outer surface of the stator.

3. the stator includes a stator core having an end face on one side in the axial direction of the central axis, and an end coil provided on the end face, the metal tube has a protruding portion that protrudes beyond the end face to the one side in the axial direction, the protrusion is in thermal contact with the end coil via an insulating member, 3. The water-cooled motor according to claim 1, wherein the end coils are cooled by the protrusions.

4. The cast-in insert material includes a first wall portion located radially outward and a second wall portion located radially inward relative to the first wall portion, the cooling flow path is formed in a gap between the first wall portion and the second wall portion, the metal tube is disposed inside the second wall portion in the radial direction, The water-cooled motor according to claim 1 , wherein a thickness of the second wall portion in the radial direction is smaller than a thickness of the first wall portion in the radial direction.

5. The water-cooled motor according to claim 4 , wherein the thickness of the second wall portion is 5 mm or less.

6. 3. The water-cooled motor according to claim 1, wherein the metal pipe has an outer surface with an uneven shape.

7. the uneven shape is formed by a plurality of protrusions provided on the outer surface of the metal pipe, the protrusion includes a top portion located on the outside in the radial direction, a base portion located on the inside in the radial direction, and a columnar portion connecting the top portion and the base portion, The water-cooled motor according to claim 6 , wherein the top portion has a shape wider than that of the columnar portion.

Citation Information

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