JP6374798B2 - Cooling structure of rotating electric machine - Google Patents

Cooling structure of rotating electric machine Download PDF

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JP6374798B2
JP6374798B2 JP2015017022A JP2015017022A JP6374798B2 JP 6374798 B2 JP6374798 B2 JP 6374798B2 JP 2015017022 A JP2015017022 A JP 2015017022A JP 2015017022 A JP2015017022 A JP 2015017022A JP 6374798 B2 JP6374798 B2 JP 6374798B2
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yoke
winding
passage
refrigerant
stator
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JP2016144271A (en
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一人 岡崎
一人 岡崎
壽美夫 柳生
壽美夫 柳生
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Kubota Corp
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Priority to PCT/JP2015/067612 priority patent/WO2015198961A1/en
Priority to EP15811168.2A priority patent/EP3163717B1/en
Priority to US15/321,001 priority patent/US10574117B2/en
Priority to EP19186761.3A priority patent/EP3579385B1/en
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Description

本発明は、自動車、産業機器に適用される回転電機の冷却構造に関する。   The present invention relates to a rotating electrical machine cooling structure applied to automobiles and industrial equipment.

自動車や、農機、建機、ユーティリティビークル等の産業機器に適用される電動機(各種PMモータ・ジェネレータを含む。)は、シリーズハイブリッド式又はパラレルハイブリッド式駆動源として機器に搭載されており、例えば、小型・高出力の永久磁石同期電動機が用いられている。
この種の電動機の固定子は、ヨークから突出したティースにコイルを集中巻き又は分布巻きしており、コイルの銅損で発生する熱、固定子の鉄損で発生する熱を放熱するために、オートマチックトランスミッションフルード (ATF)を用いた直接冷却、外部ケースにウォータジャケットを用いた液冷等が実施されている。
Electric motors (including various PM motors / generators) applied to industrial equipment such as automobiles, agricultural machinery, construction equipment, utility vehicles, etc. are mounted on equipment as series hybrid type or parallel hybrid type driving sources. Small and high output permanent magnet synchronous motors are used.
In this type of electric motor stator, the coil is concentrated or distributedly wound around the teeth protruding from the yoke, and in order to dissipate the heat generated by the copper loss of the coil and the heat generated by the iron loss of the stator, Direct cooling using automatic transmission fluid (ATF), liquid cooling using a water jacket for the outer case, etc. are implemented.

前記ATF冷却では、コイルと冷媒間の接触面積が小さく、伝熱量が小さかったり、コイル近傍の冷却が困難であったりしており、外部ケースのウォータジャケット冷却では、固定子と外部ケースとの間に空気層があり、熱抵抗が大きく、コイルまでの距離が長いので放熱効率が低いものになっている。
特許文献1においては、鉄芯コアに巻かれた電磁コイルをモールド樹脂でモールド成形して、モールド樹脂の高い熱伝導率化を利用したものがある。
In the ATF cooling, the contact area between the coil and the refrigerant is small, the amount of heat transfer is small, and it is difficult to cool the vicinity of the coil. In the water jacket cooling of the outer case, there is a gap between the stator and the outer case. Has an air layer, a large thermal resistance, and a long distance to the coil, so that the heat radiation efficiency is low.
In Patent Document 1, there is one in which an electromagnetic coil wound around an iron core is molded with a mold resin and the high thermal conductivity of the mold resin is used.

また、特許文献2においては、コイルに対して固定子の軸心方向に離間して冷媒供給口を配置して、この冷媒供給口からコイルの軸方向端面と円周方向端面とに冷媒を供給して接触させることにより、冷却効率を向上させるようにしたものがある。   Further, in Patent Document 2, a refrigerant supply port is disposed apart from the coil in the axial direction of the stator, and the refrigerant is supplied from the refrigerant supply port to the axial end surface and the circumferential end surface of the coil. In some cases, the cooling efficiency is improved by contacting them.

WO2012/101976A1明細書WO2012 / 101976A1 specification 特開2014ー096876号公報JP 2014-096876 A

前記特許文献1の技術は、電磁コイルからモールド樹脂への熱伝導は効率良く行うことができるが、モールド樹脂で外部ケースも形成しなくてはならなく、金属製の外部ケース内に配置すると、モールド樹脂から外部への放熱が困難になる。
前記特許文献2の技術は、コイルの周面を直接的に冷却できるが、冷媒はコイルと接触する時間が短いので、冷却効率を高めることは困難になる。
In the technique of Patent Document 1, heat conduction from the electromagnetic coil to the mold resin can be performed efficiently, but the outer case must also be formed of the mold resin, and when placed in a metal outer case, Heat dissipation from the mold resin to the outside becomes difficult.
Although the technique of the said patent document 2 can cool the surrounding surface of a coil directly, since the time for which a refrigerant | coolant contacts a coil is short, it becomes difficult to raise cooling efficiency.

本発明は、このような従来技術の問題点を解決できるようにした回転電機の冷却構造を提供することを目的とする。
本発明は、ティースの巻線を覆う高熱伝導率樹脂製の熱伝導体の内部に冷媒用通路を形成することにより、巻線を効率良く冷却できるようにした回転電機の冷却構造を提供することを目的とする。
An object of the present invention is to provide a cooling structure for a rotating electrical machine that can solve such problems of the conventional technology.
The present invention provides a cooling structure for a rotating electrical machine that can efficiently cool a winding by forming a passage for refrigerant inside a heat conductor made of a high thermal conductivity resin that covers the winding of a tooth. With the goal.

本発明における課題解決のための具体的手段は、次の通りである。
本発明の一態様に係る回転電機の冷却構造は、円環状のヨーク2と、このヨーク2の内周側から突出し且つ周方向に間隔をあけて配列したティース3と有する固定子1と、前記ティース3に巻回された巻線5であって前記周方向で隣接する巻線5間に間隔が設けられた巻線5と、前記巻線5間を充填しながら固定子の軸心方向両側面に高熱伝導率の樹脂でモールド成形された熱伝導体7と、前記熱伝導体7の内部に形成された冷媒流通用の通路8であって、前記ヨーク2に沿った環形状を呈していて、前記巻線5及び前記ティース3とオーバラップした位置と、前記ヨーク2とオーバラップした位置とに配置された通路8と、を備えていることを特徴とする。
Specific means for solving the problems in the present invention are as follows.
Cooling structure of a rotating electric machine according to an embodiment of the present invention, an annular yoke 2, a stator 1 having the teeth 3 are arranged at intervals in the protruding and circumferential direction from the inner peripheral side of the yoke 2 The winding 5 wound around the teeth 3 and spaced between the windings 5 adjacent in the circumferential direction, and the axis of the stator 1 while filling the space between the windings 5 a center direction sides thermal conductor 7 which is molded with resin of high thermal conductivity, a passage 8 for a refrigerant flow formed inside of the heat conductor 7, ring shape along the yoke 2 the have exhibited, characterized in that it comprises a position wherein the windings 5 and by the teeth 3 overlap, and the yoke 2 and the overlapped position and the disposed passageway 8.

また、前記巻線5及び前記ティース3とオーバラップした位置に配置された通路8と、前記ヨーク2とオーバラップした位置に配置された通路8とが、前記ヨーク2の径方向に同心円環状に形成されていることを特徴とする。
また、前記通路8は、冷媒を流通させる通路内面が前記熱伝導体7を形成する樹脂によって構成されていることを特徴とする。
A passage 8 disposed at a position overlapping the winding 5 and the teeth 3 and a passage 8 disposed at a position overlapping the yoke 2 are concentrically annular in the radial direction of the yoke 2. It is formed .
The passage 8 is characterized in that the inner surface of the passage through which the refrigerant flows is made of a resin forming the heat conductor 7 .

本発明によれば、巻線を効率良く冷却できる。
即ち、巻線5間を充填しながら固定子の軸心方向両側面に高熱伝導率の樹脂で熱伝導体7をモールド成形することにより、大きい体積の熱伝導体7で巻線5から抵抗少なく熱を奪うことができ、その熱を熱伝導体7内で冷媒用通路8を通る冷媒で効率良く冷却することができる。
According to the present invention, the winding can be efficiently cooled.
That is , by filling the space between the windings 5 and molding the heat conductor 7 with a resin having high thermal conductivity on both sides in the axial direction of the stator, the resistance from the winding 5 is reduced with the large volume heat conductor 7. Heat can be taken away, and the heat can be efficiently cooled by the refrigerant passing through the refrigerant passage 8 in the heat conductor 7.

また、巻線5間にも高熱伝導率の樹脂を充填して熱伝導体7をモールド成形でき、巻線5の全周から熱伝導体7へ熱伝導ができ、その熱を巻線5とオーバラップ配置した冷媒用通路8の冷媒で効率よく冷却することができる。
また、固定子1の軸心方向の側面は広い面積を有し、その広い面積部分で熱伝導体7の冷却ができ、冷却効率を高くすることができる。
Further, the heat conductor 7 can be molded by filling a resin having a high thermal conductivity between the windings 5, and heat can be conducted from the entire circumference of the winding 5 to the heat conductor 7. It is possible to efficiently cool with the refrigerant in the refrigerant passage 8 arranged in an overlapping manner.
Further, the side surface in the axial direction of the stator 1 has a wide area, and the heat conductor 7 can be cooled in the wide area portion, and the cooling efficiency can be increased.

本発明の第1実施形態を示す斜視図である。1 is a perspective view showing a first embodiment of the present invention. 図1のX−X線断面図である。It is the XX sectional view taken on the line of FIG. 図1のY−Y線断面図である。It is the YY sectional view taken on the line of FIG. 図1のZ矢視図である。It is a Z arrow line view of FIG. 本発明の第2実施形態を示す正面図である。It is a front view which shows 2nd Embodiment of this invention.

以下、本発明の実施の形態を図面に基づいて説明する。
図1〜4に示す第1実施形態において、例えば、永久磁石埋込型ロータを有する同期電動機(回転電機)に適用される固定子1を示しており、固定子1は環状の外部ケース10の内周面に圧入嵌入されている。
固定子1は、環状のヨーク2の内周側にティース3が突出して周方向複数配列され、ティース3には絶縁部材4を介在して巻線5が巻かれており、ティース3及び巻線5の径内端を残して固定子1の全体に高熱伝導率の樹脂で熱伝導体7をモールド成形し、この熱伝導体7の内部に冷媒用通路8を形成している。
Hereinafter, embodiments of the present invention will be described with reference to the drawings.
In the first embodiment shown in FIGS. 1 to 4, for example, a stator 1 applied to a synchronous motor (rotary electric machine) having a permanent magnet embedded rotor is shown. It is press-fitted into the inner peripheral surface.
In the stator 1, a plurality of teeth 3 are arranged in the circumferential direction so as to protrude from the inner peripheral side of the annular yoke 2, and a winding 5 is wound around the teeth 3 with an insulating member 4 interposed therebetween. The heat conductor 7 is molded with a resin having a high thermal conductivity over the entire stator 1 while leaving the inner diameter end of 5, and a refrigerant passage 8 is formed inside the heat conductor 7.

前記固定子1は、1つの環状のヨーク2の内周に多数のティース3を突設したヨーク一体型のものであるが、分割ヨークとそれに一体となった1つのティース3(極歯部)とで固定子片を形成し、その固定子片を周方向に多数個配列して1個の環状の固定子を構成する固定子片環状結合型であってもよい。
固定子1は多数枚の珪素鋼板を積層して形成しており、ティース3は周方向の2面(スロット側の面)と軸方向(固定子の軸心方向)の2面とを有し、断面矩形状になっている。
The stator 1 is of a yoke-integrated type in which a large number of teeth 3 project from the inner periphery of one annular yoke 2, but a divided yoke and a single tooth 3 (pole tooth portion) integrated therewith. And a stator piece annular coupling type in which a plurality of stator pieces are arranged in the circumferential direction to form one annular stator.
The stator 1 is formed by laminating a large number of silicon steel plates, and the teeth 3 have two surfaces in the circumferential direction (surface on the slot side) and two surfaces in the axial direction (axial direction of the stator). The cross section is rectangular.

絶縁部材4は、アラミド絶縁紙あるいはPPS樹脂等の樹脂で形成されており、断面矩形状のティース3の全周を包囲する四角筒形状、または、ティース3の全周を2個一対で
包囲する二つ割り形状になっている。
なお、ティース3の周方向面及び/又は軸方向面に凸条を形成し、絶縁部材4の内周面にそれら凸条と嵌入する凹条溝を形成して、両者の接触面積をより大きくし、空気層を形成し難くし、またティース3に対して絶縁部材4の嵌合位置を不動になるように構成してもよい。
The insulating member 4 is formed of resin such as aramid insulating paper or PPS resin, and surrounds the entire circumference of the teeth 3 having a rectangular cross section, or surrounds the entire circumference of the teeth 3 as a pair. It has a split shape.
Note that protrusions are formed on the circumferential surface and / or the axial surface of the tooth 3, and concave grooves that fit into the protrusions are formed on the inner peripheral surface of the insulating member 4, thereby increasing the contact area between the two. In addition, the air layer may be difficult to form, and the fitting position of the insulating member 4 with respect to the tooth 3 may be fixed.

前記巻線5は集中巻きで巻かれており、ティース3に絶縁部材4を嵌合して、その絶縁部材4の外周に巻線5を締めながら集中巻きしている。
前記熱伝導体7は、熱伝導率の高い樹脂であり、金型内に固定子1を配置しておいて樹脂を充填することにより、巻線5間にも樹脂が充填され、外形も断面矩形状又はそれ以外の形状に形成される。このモールド成形は固定子1を外部ケース10内に嵌入する前でも後でも行える。
The winding 5 is wound by concentrated winding, and the insulating member 4 is fitted to the tooth 3, and the winding 5 is concentrated and wound around the outer periphery of the insulating member 4.
The heat conductor 7 is a resin having a high heat conductivity. By placing the stator 1 in a mold and filling the resin, the resin is filled between the windings 5 and the outer shape is also a cross section. It is formed in a rectangular shape or other shapes. This molding can be performed before or after the stator 1 is fitted into the outer case 10.

前記モールド成形を行う際に、樹脂製の管、金属製の管または熱溶解可能な材料で形成された棒状中子等を、環状に形成して金型内に挿入しておくことにより、冷媒用通路8が形成される。
図1〜4に示した冷媒用通路8は4本であり、巻線5及びティース3とオーバラップした位置に3本、ヨーク2とオーバラップした位置に1本配置されている。この4本の冷媒用通路8は、同心円環形状の4本円に巻いており、4本の通路8の一端部に共通の冷媒供給口部材13を設け、4本の他端部に共通の冷媒吐出口部材14を設けている。
When performing the molding, a resin tube, a metal tube, or a rod-like core formed of a heat-meltable material is formed into an annular shape and inserted into the mold, thereby cooling the coolant. A service passage 8 is formed.
The refrigerant passages 8 shown in FIGS. 1 to 4 are four, and three are disposed at positions overlapping the windings 5 and the teeth 3, and one is disposed at a position overlapping the yoke 2. The four refrigerant passages 8 are wound around four concentric ring-shaped circles, a common refrigerant supply port member 13 is provided at one end of the four passages 8, and common to the other four ends. A refrigerant discharge port member 14 is provided.

前記冷媒供給口部材13及び冷媒吐出口部材14は、固定子1の外部の冷媒循環装置に接続されており、冷却した水、油等の冷媒を冷媒供給口部材13に供給して冷媒用通路8に流動させ、冷媒吐出口部材14から吐出させるようになっている。
前記4本の冷媒用通路8は、1本の通路を4重螺旋に巻いて形成することもでき、その場合は、一端部に冷媒吐出口部材13を接続し、他端部に冷媒吐出口部材14を接続する。
The refrigerant supply port member 13 and the refrigerant discharge port member 14 are connected to a refrigerant circulation device outside the stator 1, and supply a refrigerant such as cooled water or oil to the refrigerant supply port member 13 to supply a refrigerant passage. 8 and is discharged from the refrigerant discharge port member 14.
The four refrigerant passages 8 can also be formed by winding one passage into a quadruple spiral. In this case, the refrigerant discharge port member 13 is connected to one end and the refrigerant discharge port is connected to the other end. The member 14 is connected.

図5には第2実施形態を示しており、熱伝導体7内の冷媒用通路8は固定子1の軸心方向の両側面に配置されており、ヨーク2の両側面には断面小判形の補助通路16が形成されている。この補助通路16はヨーク2の軸方向側面とオーバラップし、かつ巻線5の径外側端部とオーバラップしており、巻線5とヨーク2とを冷却可能になっている。外部ケース10内にもヨーク2の近傍の内周側に冷媒を通す冷却路17が形成されている。   FIG. 5 shows a second embodiment, in which the refrigerant passages 8 in the heat conductor 7 are arranged on both side surfaces of the stator 1 in the axial direction, and the yoke 2 has oval cross-sections on both side surfaces. The auxiliary passage 16 is formed. The auxiliary passage 16 overlaps the side surface of the yoke 2 in the axial direction and overlaps the outer end portion of the winding 5 so that the winding 5 and the yoke 2 can be cooled. Also in the outer case 10, a cooling path 17 is formed through which the refrigerant passes on the inner peripheral side in the vicinity of the yoke 2.

前記第1、第2実施形態において、冷媒用通路8は軸心方向視において、網目形状又は周方向ジグザグ形状に形成して熱伝導体7内に配置したり、巻線5の側方から周方向に隣り合う巻線5間に侵入させたり、周方向に隣り合う巻線5を縫うように配置したりしてもよい。
前記冷媒用通路8は、断面形状が円形、小判形、角形、その他の形状でもよく、1本又は複数本にして固定子1の軸心方向の少なくとも一方の側面に配置しておればよく、ヨーク2とオーバラップする位置に配置可能であるが、少なくとも巻線5とオーバラップする位置、コイルエンドを冷却できる位置に配置される。
In the first and second embodiments, the refrigerant passage 8 is formed in a mesh shape or a circumferential zigzag shape when viewed in the axial direction, and is disposed in the heat conductor 7 or from the side of the winding 5. The windings 5 adjacent to each other in the direction may be inserted, or the windings 5 adjacent to each other in the circumferential direction may be sewn.
The refrigerant passage 8 may be circular, oval, rectangular, or other shape in cross section, and may be one or a plurality of refrigerant passages disposed on at least one side surface in the axial direction of the stator 1. Although it can be arranged at a position overlapping with the yoke 2, it is arranged at least at a position overlapping with the winding 5 and a position where the coil end can be cooled.

前記固定子1を内蔵する回転電機は、高熱伝導率樹脂製の熱伝導体7が巻線5間に充填され、巻線5、ティース3及びヨーク2の軸心方向両側面を覆うことにより、巻線5及びティース3で発生する抵抗熱を効率よく伝導して吸収し、冷媒用通路8を流れる冷媒によって除去できる。
発熱体である巻線5と冷媒用通路8との間には高熱伝導率樹脂のみであり、熱抵抗が低下するとともに、冷媒用通路8を通る冷媒で熱伝導体7自体を冷却して抵抗熱を奪うことができるので、効率よく冷却できる。しかも、熱伝導体7内に冷媒用通路8を一体成形す
るため、部品点数を削減でき、モールド成形が容易である。
In the rotating electrical machine incorporating the stator 1, the heat conductor 7 made of high thermal conductivity resin is filled between the windings 5 and covers both side surfaces in the axial direction of the winding 5, the teeth 3 and the yoke 2, The resistance heat generated in the winding 5 and the teeth 3 is efficiently conducted and absorbed, and can be removed by the refrigerant flowing through the refrigerant passage 8.
Only the high thermal conductivity resin is provided between the winding 5 serving as a heating element and the refrigerant passage 8, and the thermal resistance is lowered, and the heat conductor 7 itself is cooled by the refrigerant passing through the refrigerant passage 8 to be resistant. Since heat can be taken away, it can cool efficiently. In addition, since the refrigerant passage 8 is integrally formed in the heat conductor 7, the number of parts can be reduced, and molding is easy.

冷媒用通路8は熱伝導体7内部の巻線5のコイルエンド近傍に配置でき、巻線5の両側方、ヨーク2の両側方等に配置することにより、固定子1を全体的にかつ均一的に冷却でき、巻線5の温度を低く保てることにより、回転電機の寿命を長くすることも可能になる。
冷媒による冷却効率が向上することは、回転電機におけるフィン等の構造物を削減したり、強制冷却システムを低出力にしたりすることも可能になり、低振動化、低騒音化等も可能になる。
The refrigerant passage 8 can be disposed in the vicinity of the coil end of the winding 5 inside the heat conductor 7, and is disposed on both sides of the winding 5, both sides of the yoke 2, etc., so that the stator 1 is entirely and uniformly arranged. It is possible to cool the rotating electric machine and keep the temperature of the winding 5 low, thereby extending the life of the rotating electrical machine.
Improving the cooling efficiency with the refrigerant makes it possible to reduce the structure of fins and the like in the rotating electrical machine, and to reduce the forced cooling system to a low output, thereby reducing vibration and noise. .

また、固定子1は外面を覆う熱伝導体7を有するので、固定子1の外周面と外部ケース10の内周面とはラフな精度でも固定することができ、コスト削減も可能になり、扁平形状の回転電機の場合には、熱伝導体7のないものよりも大きい冷却面積、冷却体積を確保できる。
なお、本発明は前記実施形態における各部材の形状及びそれぞれの前後・左右・上下の位置関係は、図1〜5に示すように構成することが最良である。しかし、前記実施形態に限定されるものではなく、部材、構成を種々変形したり、組み合わせを変更したりすることもできる。
Moreover, since the stator 1 has the heat conductor 7 that covers the outer surface, the outer peripheral surface of the stator 1 and the inner peripheral surface of the outer case 10 can be fixed with rough accuracy, and the cost can be reduced. In the case of a flat rotating electric machine, a larger cooling area and cooling volume than those without the heat conductor 7 can be secured.
In the present invention, the shape of each member and the positional relationship between the front, back, left, and right in the above embodiment are best configured as shown in FIGS. However, it is not limited to the said embodiment, A member, a structure can be variously deformed, and a combination can also be changed.

例えば、巻線5は集中巻きで巻かれているが、複数本のティース3に渡って巻線を巻く分布巻きにしてもよい。   For example, the winding 5 is wound by concentrated winding, but may be distributed winding that winds the winding over a plurality of teeth 3.

1 固定子
2 ヨーク
3 ティース
4 絶縁部材
5 巻線
7 熱伝導体
8 冷媒用通路
1 Stator 2 Yoke 3 Teeth 4 Insulating Member 5 Winding 7 Heat Conductor 8 Refrigerant Passage

Claims (3)

円環状のヨーク(2)と、このヨーク(2)の内周側から突出し且つ周方向に間隔をあけて配列したティース(3)と有する固定子(1)と、
前記ティース(3)に巻回された巻線(5)であって前記周方向で隣接する巻線(5)間に間隔が設けられた巻線(5)と、
前記巻線(5)間を充填しながら固定子(1)の軸心方向両側面に高熱伝導率の樹脂でモールド成形された熱伝導体(7)と、
前記熱伝導体(7)の内部に形成された冷媒流通用の通路(8)であって、前記ヨーク(2)に沿った環形状を呈していて、前記巻線(5)及び前記ティース(3)とオーバラップした位置と、前記ヨーク(2)とオーバラップした位置とに配置された通路(8)と、
を備えていることを特徴とする回転電機の冷却構造。
A stator (1) having an annular yoke (2) and teeth (3) projecting from the inner peripheral side of the yoke (2) and arranged at intervals in the circumferential direction ;
A winding (5) wound around the teeth (3) and spaced between adjacent windings (5) in the circumferential direction;
The winding (5) axial direction sides to be molded with resin of high thermal conductivity heat conductor of the stator (1) while filling between the (7),
A the heat conductor (7) formed inside the passage for the refrigerant flow (8), they exhibit a ring shape along the yoke (2), the winding (5) and the teeth ( 3) and a passage (8) arranged at a position overlapping with the yoke (2) ,
Cooling structure of a rotating electric machine, characterized in that it comprises a.
前記巻線(5)及び前記ティース(3)とオーバラップした位置に配置された通路(8)と、前記ヨーク(2)とオーバラップした位置に配置された通路(8)とが、前記ヨーク(2)の径方向に同心円環状に形成されていることを特徴とする請求項1に記載の回転電機の冷却構造。 The passage (8) disposed at a position overlapping with the winding (5) and the tooth (3), and the passage (8) disposed at a position overlapping with the yoke (2) are provided in the yoke. 2. The cooling structure for a rotating electric machine according to claim 1, wherein the cooling structure is formed concentrically in the radial direction of (2) . 前記通路(8)は、冷媒を流通させる通路内面が前記熱伝導体(7)を形成する樹脂によって構成されていることを特徴とする請求項1又は2に記載の回転電機の冷却構造。 3. The cooling structure for a rotating electrical machine according to claim 1, wherein the passage (8) is formed of a resin that forms the heat conductor (7) on an inner surface of the passage through which a refrigerant flows .
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