JP5444770B2 - Insulated bobbin, rotating electric machine stator, and method of manufacturing rotating electric machine stator - Google Patents

Insulated bobbin, rotating electric machine stator, and method of manufacturing rotating electric machine stator Download PDF

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JP5444770B2
JP5444770B2 JP2009054380A JP2009054380A JP5444770B2 JP 5444770 B2 JP5444770 B2 JP 5444770B2 JP 2009054380 A JP2009054380 A JP 2009054380A JP 2009054380 A JP2009054380 A JP 2009054380A JP 5444770 B2 JP5444770 B2 JP 5444770B2
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winding
insulating bobbin
groove
temperature
detection element
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JP2010213392A (en
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達矢 今井
佳久 奥畑
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Nissan Motor Co Ltd
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Nissan Motor Co Ltd
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K3/00Details of windings
    • H02K3/46Fastening of windings on the stator or rotor structure
    • H02K3/52Fastening salient pole windings or connections thereto
    • H02K3/521Fastening salient pole windings or connections thereto applicable to stators only
    • H02K3/522Fastening salient pole windings or connections thereto applicable to stators only for generally annular cores with salient poles
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K2203/00Specific aspects not provided for in the other groups of this subclass relating to the windings
    • H02K2203/06Machines characterised by the wiring leads, i.e. conducting wires for connecting the winding terminations
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K2203/00Specific aspects not provided for in the other groups of this subclass relating to the windings
    • H02K2203/12Machines characterised by the bobbins for supporting the windings

Description

本発明は、絶縁ボビン、回転電機のステータ、および回転電機のステータの製造方法に関する。   The present invention relates to an insulating bobbin, a stator for a rotating electrical machine, and a method for manufacturing a stator for a rotating electrical machine.

この種の技術としては、下記の特許文献1に記載の技術が開示されている。この公報では、巻線とステータコアのティースとの間に介装される絶縁ボビンのコイルエンド部に、巻線の温度を検出する温度検出素子が、この温度素子を保持するガイドとともに挿入されているものが開示されている。ガイドは弾性変形可能な引っ掛かり部を有し、この引っ掛かり部の弾性により温度検出素子を巻線の内側に押圧している。   As this type of technology, the technology described in Patent Document 1 below is disclosed. In this publication, a temperature detecting element for detecting the temperature of the winding is inserted together with a guide for holding the temperature element in a coil end portion of an insulating bobbin interposed between the winding and the teeth of the stator core. Are disclosed. The guide has a hook part that can be elastically deformed, and the temperature detecting element is pressed inside the winding by the elasticity of the hook part.

特開2003−92858号公報JP 2003-92858 A

ステータの放熱性を向上させるために、ステータコアと絶縁ボビンとの間に含浸材を含浸させるが、含浸材を介してステータコアの熱が温度検出素子に伝達されるため、温度検出素子が検出する温度はステータコアの熱の影響を受け易くなり、巻線の温度検出精度が低下するおそれがあった。   In order to improve the heat dissipation of the stator, an impregnating material is impregnated between the stator core and the insulating bobbin. However, since the heat of the stator core is transmitted to the temperature detecting element through the impregnating material, the temperature detected by the temperature detecting element This is likely to be affected by the heat of the stator core, which may reduce the temperature detection accuracy of the winding.

本発明は、上記問題に着目してなされたもので、その目的とするところは、巻線の温度検出精度の低下を抑制することができる絶縁ボビン、回転電機のステータ、および回転電機のステータの製造方法を提供することである。   The present invention has been made paying attention to the above-mentioned problem, and its object is to provide an insulating bobbin capable of suppressing a decrease in the temperature detection accuracy of the winding, a stator of the rotating electrical machine, and a stator of the rotating electrical machine. It is to provide a manufacturing method.

上記目的を達成するため、本発明においては、絶縁ボビンの巻回面の背面側となる内周面であって、温度検出素子固定溝の背面側となる位置に形成した空隙溝と、絶縁ボビンの内周面であって、空隙溝と対向する位置に形成した含浸材滴下溝とを設け、含浸材滴下溝に含浸材を滴下するようにした。

In order to achieve the above object, according to the present invention, an air gap groove formed at a position on the back surface side of the temperature detecting element fixing groove on the inner peripheral surface that is the back surface side of the winding surface of the insulating bobbin, and the insulating bobbin a inner peripheral surface of the impregnated material dropping groove formed in a position you face the air gap groove is provided, and so dripping the impregnant to impregnate material dropping groove.

以上のように、含浸材滴下溝に含浸材を滴下した場合、含浸材滴下溝に含浸材が溜まり、溜まった含浸材は、ステータコアと絶縁ボビンの僅かな隙間を毛細管現象によって充填する。一方、空隙溝のある場所では、空隙溝によって、ステータコアと絶縁ボビンの隙間が拡大され、毛細管現象が働きにくくなり、空隙溝には含浸材が充填されにくくなる。含浸材が充填されないとその部分の熱抵抗が大きくなり、空隙溝の背面に形成された温度検出素子固定溝に固定された温度検出素子は、ステータコアの熱の影響を受けにくくなる。よって、巻線の温度検出精度の低下を抑制することができる。   As described above, when the impregnating material is dropped into the impregnating material dropping groove, the impregnating material is accumulated in the impregnating material dropping groove, and the accumulated impregnating material fills a slight gap between the stator core and the insulating bobbin by a capillary phenomenon. On the other hand, in a place where there is a gap groove, the gap groove enlarges the gap between the stator core and the insulating bobbin, making it difficult for the capillary phenomenon to work and making it difficult for the gap groove to be filled with the impregnation material. When the impregnating material is not filled, the thermal resistance of the portion increases, and the temperature detection element fixed to the temperature detection element fixing groove formed on the back surface of the gap groove is less susceptible to the heat of the stator core. Therefore, it is possible to suppress a decrease in the temperature detection accuracy of the winding.

実施例1のステータスロットの斜視図である。It is a perspective view of the status lot of Example 1. FIG. 実施例1のステータスロットをスロットの内周側から見た図である。It is the figure which looked at the status lot of Example 1 from the inner peripheral side of the slot. 実施例1のステータスロットをスロットの外周側から見た図である。It is the figure which looked at the status lot of Example 1 from the outer peripheral side of the slot. 実施例1のステータスロットを側面側から見た図である。It is the figure which looked at the status lot of Example 1 from the side surface side. 実施例1のステータスロットを上面から見た図である。It is the figure which looked at the status lot of Example 1 from the upper surface. 実施例1の絶縁ボビンの斜視図である。3 is a perspective view of an insulating bobbin according to Embodiment 1. FIG. 実施例1のステータロットの断面図である。1 is a cross-sectional view of a stator lot of Example 1. FIG. 実施例1のステータロットの拡大図である。It is an enlarged view of the stator lot of Example 1. FIG. 実施例1の絶縁ボビンを第1短辺部側から見た図である。It is the figure which looked at the insulation bobbin of Example 1 from the 1st short side part side.

[実施例1]
〔構成〕
図1はステータスロット7の斜視図、図2はステータスロット7をスロットの内周側から見た図、図3はステータスロット7をスロットの外周側から見た図、図4はステータスロット7を側面側から見た図、図5はステータスロット7を上面から見た図である。
[Example 1]
〔Constitution〕
1 is a perspective view of the status lot 7, FIG. 2 is a view of the status lot 7 viewed from the inner periphery side of the slot, FIG. 3 is a view of the status lot 7 viewed from the outer periphery side of the slot, and FIG. FIG. 5 is a view of the status lot 7 as viewed from the top.

ステータスロット7は、複数のステータスロット7を円形に並べてステータを構成している。ステータスロット7は、鋼板を積層して形成したステータコア1と、ステータコア1の周囲を覆う絶縁部材としての絶縁ボビン2と、絶縁ボビン2に巻回したコイル3(巻線)とを有している。   The status lot 7 forms a stator by arranging a plurality of status lots 7 in a circle. The status lot 7 has a stator core 1 formed by laminating steel plates, an insulating bobbin 2 as an insulating member covering the periphery of the stator core 1, and a coil 3 (winding) wound around the insulating bobbin 2. .

図6は絶縁ボビン2の斜視図である。絶縁ボビン2の外形は図6に示すように略長方形であって、外周にコイル3が巻回される巻回面20を有している。巻回面20には図1ないし図5に示すように巻回面20にコイル3が積層されて巻回されたときに、コイル3の積層方向に沿って突出する内径側フランジ21(フランジ)と、外径側フランジ25とを有している。巻回面20は、絶縁ボビン2の外周に沿って形成されており、この周の形状は略長方形となっており、第1短辺部20a、第2短辺部20bを有している。コイル3は、巻回面20の一方の短辺部である第1短辺部20aから巻回が開始され、同じ第1短辺部20aにおいて巻回を終了している。以下、絶縁ボビン2の第1短辺部20a側をコイルエンド側と称する。第1短辺部20aに対応する位置には第2切欠部26が形成されており、この第2切欠部26に巻回面20に巻回されたコイル3の端部が挿入されている。   FIG. 6 is a perspective view of the insulating bobbin 2. The outer shape of the insulating bobbin 2 is substantially rectangular as shown in FIG. 6, and has a winding surface 20 around which the coil 3 is wound. As shown in FIGS. 1 to 5, when the coil 3 is laminated on the winding surface 20 and wound on the winding surface 20, an inner diameter side flange 21 (flange) that protrudes in the stacking direction of the coil 3. And an outer diameter side flange 25. The winding surface 20 is formed along the outer periphery of the insulating bobbin 2, the shape of this periphery is substantially rectangular, and has a first short side portion 20a and a second short side portion 20b. The coil 3 starts to be wound from the first short side portion 20a that is one short side portion of the winding surface 20, and the winding ends at the same first short side portion 20a. Hereinafter, the first short side 20a side of the insulating bobbin 2 is referred to as a coil end side. A second notch 26 is formed at a position corresponding to the first short side 20a, and the end of the coil 3 wound around the winding surface 20 is inserted into the second notch 26.

またコイルエンド側である第1短辺部20aには、外部に連なる凹状の溝である温度センサ固定溝27(温度検出素子固定溝)が形成されている。図7は図5におけるA-A断面図、図8は図7の温度センサ固定溝27付近の拡大図である。図8に示すように、温度センサ固定溝27の溝の深さをh、温度センサ6の径をrとするとh<rとなるように温度センサ固定溝27を形成している。   Further, a temperature sensor fixing groove 27 (temperature detection element fixing groove) which is a concave groove connected to the outside is formed in the first short side portion 20a on the coil end side. 7 is a cross-sectional view taken along line AA in FIG. 5, and FIG. 8 is an enlarged view of the vicinity of the temperature sensor fixing groove 27 in FIG. As shown in FIG. 8, the temperature sensor fixing groove 27 is formed so that h <r, where h is the depth of the temperature sensor fixing groove 27 and r is the diameter of the temperature sensor 6.

内径側フランジ21の絶縁ボビン2の巻回面20の他方の短辺部である第2短辺部20bと、前述の第1短辺部20aの双方に対応する位置に第1切欠部22(切欠部)が形成されている。この第1切欠部22は、図2に示すように巻回面20の第1短辺部20aおよび第2短辺部20bとコイル3との間が外部に露出するように切り欠かれている。   The first notch portion 22 (in the position corresponding to both the second short side portion 20b which is the other short side portion of the winding surface 20 of the insulating bobbin 2 of the inner diameter side flange 21 and the first short side portion 20a described above. A notch) is formed. As shown in FIG. 2, the first notch 22 is notched so that the space between the first short side 20a and the second short side 20b of the winding surface 20 and the coil 3 is exposed to the outside. .

また絶縁ボビン2には、図6に示すように巻回面20が形成された4面を除く2面間を貫通する貫通孔24が形成されている。この貫通孔24の内周面は略長方形に形成されており、コイルエンド側に形成された第1短辺部24aと、この第1短辺部24aに対向する位置に形成された第2短辺部24bとを有している。第1短辺部24aには凹状の溝である空隙溝28が形成されている。図9は絶縁ボビン2を第1短辺部20a側から見た図である。温度センサ固定溝27と空隙溝28は、図9に示すように絶縁ボビン2を巻回面20の第1短辺部20aから見たときに、空隙溝28が温度センサ固定溝27と重なるように形成している。また第2短辺部24bには凹状の溝であるワニス滴下溝23(含浸材滴下溝)が形成されている。このワニス滴下溝23は、貫通孔24の全軸長に渡って形成されており、絶縁ボビン2に後述するステータコアの内周部1aを挿入したときに開口部23aを有している。   Further, as shown in FIG. 6, the insulating bobbin 2 is formed with a through-hole 24 that penetrates between two surfaces excluding the four surfaces on which the winding surface 20 is formed. The inner peripheral surface of the through hole 24 is formed in a substantially rectangular shape, and a first short side portion 24a formed on the coil end side and a second short side formed at a position facing the first short side portion 24a. Side 24b. A gap groove 28 that is a concave groove is formed in the first short side portion 24a. FIG. 9 is a view of the insulating bobbin 2 as viewed from the first short side 20a side. As shown in FIG. 9, the temperature sensor fixing groove 27 and the gap groove 28 are arranged so that the gap groove 28 overlaps the temperature sensor fixing groove 27 when the insulating bobbin 2 is viewed from the first short side portion 20 a of the winding surface 20. Is formed. Further, a varnish dropping groove 23 (impregnating material dropping groove) which is a concave groove is formed in the second short side portion 24b. The varnish dripping groove 23 is formed over the entire axial length of the through hole 24, and has an opening 23 a when an inner peripheral portion 1 a of a stator core described later is inserted into the insulating bobbin 2.

ステータコア1は略T字状をした鋼板を積層して形成しており、この略T字状の足の部分が内周部1aとなり、略T字上の横棒の部分が外周部1bとなっている。ステータコア1の内周部1a側の足は、図1ないし図5に示すように絶縁ボビン2の貫通孔24に挿入されている。   The stator core 1 is formed by laminating substantially T-shaped steel plates. The substantially T-shaped foot portion is the inner peripheral portion 1a, and the substantially T-shaped horizontal bar portion is the outer peripheral portion 1b. ing. The legs on the inner peripheral part 1a side of the stator core 1 are inserted into the through holes 24 of the insulating bobbin 2 as shown in FIGS.

絶縁ボビン2へのコイル3と温度センサ6の装着は次の手順で行われる。まず第1に温度センサ6を温度センサ固定溝27に装着する。第2に温度センサ6の上からコイル3を巻回面20に巻回する。コイル3の巻きテンションにより温度センサ6をコイル3に押圧することが可能となる。
絶縁ボビン2へのコイル3と温度センサ6の装着は次の手順で行っても良い。第1にコイル3を巻回面20に巻回する。第2に温度センサ6を温度センサ固定溝27に圧入する。圧入することにより温度センサ6をコイル3に押圧することが可能となる。
The coil 3 and the temperature sensor 6 are attached to the insulating bobbin 2 in the following procedure. First, the temperature sensor 6 is mounted in the temperature sensor fixing groove 27. Second, the coil 3 is wound around the winding surface 20 from above the temperature sensor 6. The temperature sensor 6 can be pressed against the coil 3 by the winding tension of the coil 3.
The coil 3 and the temperature sensor 6 may be attached to the insulating bobbin 2 by the following procedure. First, the coil 3 is wound around the winding surface 20. Second, the temperature sensor 6 is press-fitted into the temperature sensor fixing groove 27. By press-fitting, the temperature sensor 6 can be pressed against the coil 3.

絶縁ボビン2にコイル3と温度センサ6を装着した後に、コイルエンド側の第1切欠部22において露出しているコイル3と温度センサ6との隙間にワニス5(含浸材)を滴下する。ワニス5が滴下されると、ワニス5はコイル3と温度センサ6との隙間およびコイル3とコイル3との隙間を含浸する、所謂毛細管現象が生じる。コイル3とコイル3との隙間を含浸することにより、コイル3と温度センサ6との隙間およびコイル3と巻回面20との隙間にワニス5を充填している。また、絶縁ボビン2の貫通孔24にステータコア1を挿入した後に、ワニス滴下溝23にワニス5を滴下する。滴下されたワニス5は絶縁ボビン2の貫通孔24表面とステータコア1の表面との隙間を毛含浸し、絶縁ボビン2とステータコア1との隙間にワニス5を充填している。   After mounting the coil 3 and the temperature sensor 6 on the insulating bobbin 2, the varnish 5 (impregnating material) is dropped into the gap between the coil 3 and the temperature sensor 6 exposed at the first notch 22 on the coil end side. When the varnish 5 is dropped, a so-called capillary phenomenon occurs in which the varnish 5 impregnates the gap between the coil 3 and the temperature sensor 6 and the gap between the coil 3 and the coil 3. By impregnating the gap between the coil 3 and the coil 3, the gap between the coil 3 and the temperature sensor 6 and the gap between the coil 3 and the winding surface 20 are filled with the varnish 5. Further, after inserting the stator core 1 into the through hole 24 of the insulating bobbin 2, the varnish 5 is dropped into the varnish dropping groove 23. The dropped varnish 5 impregnates the gap between the surface of the through-hole 24 of the insulating bobbin 2 and the surface of the stator core 1 and fills the gap between the insulating bobbin 2 and the stator core 1 with the varnish 5.

〔作用〕
コイル3が発した熱はステータコア1に伝達され、ステータコア1を介して放熱されている。そのため、コイル3からステータコア1への熱伝達効率を高めることが求められる。絶縁ボビン2にコイル3ステータコア1を装着しただけでは、絶縁ボビン2の巻回面20とコイル3との間、および絶縁ボビン2の貫通孔24の内周面とステータコア1との間に隙間が生じるためコイル3からステータコア1への熱伝導効率がさほど高くない。そこで絶縁ボビン2の巻回面20とコイル3との間、および絶縁ボビン2の貫通孔24の内周面とステータコア1との間に熱伝導性部材であるワニス5を充填するようにしている。
[Action]
The heat generated by the coil 3 is transmitted to the stator core 1 and radiated through the stator core 1. Therefore, it is required to improve the heat transfer efficiency from the coil 3 to the stator core 1. By simply mounting the coil 3 stator core 1 on the insulating bobbin 2, there are gaps between the winding surface 20 of the insulating bobbin 2 and the coil 3 and between the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and the stator core 1. Therefore, the heat conduction efficiency from the coil 3 to the stator core 1 is not so high. Therefore, the varnish 5 which is a heat conductive member is filled between the winding surface 20 of the insulating bobbin 2 and the coil 3 and between the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and the stator core 1. .

一方、絶縁ボビン2にはコイル3の温度を計測するために温度センサ6が装着される。この温度センサ6にはコイル3の温度のみを計測させたいが、絶縁ボビン2の巻回面20とコイル3との間、および絶縁ボビン2の貫通孔24の内周面とステータコア1との間にワニス5が充填されているため温度センサ6が検出する温度はステータコア1の熱の影響を受け易くなり、コイル3の温度検出精度が低下するおそれがあった。   On the other hand, a temperature sensor 6 is attached to the insulating bobbin 2 in order to measure the temperature of the coil 3. This temperature sensor 6 wants to measure only the temperature of the coil 3, but between the winding surface 20 of the insulating bobbin 2 and the coil 3 and between the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and the stator core 1. Since the varnish 5 is filled, the temperature detected by the temperature sensor 6 is easily affected by the heat of the stator core 1, and the temperature detection accuracy of the coil 3 may be lowered.

そこで実施例1では、絶縁ボビン2の貫通孔24の内周面であって、絶縁ボビン2のコイルエンド側から見たときに温度センサ固定溝27と重なる位置に空隙溝28を形成し、空隙溝28と異なる位置にワニス5を滴下するワニス滴下溝23を形成するようにした。すなわち、ワニス滴下溝23に滴下したワニス5は、絶縁ボビン2の貫通孔24の内周面とステータコア1との隙間を含浸することができるが、絶縁ボビン2の貫通孔24の内周面とステータコア1との隙間よりも空隙溝28の隙間が大きく、空隙溝28には含浸することができない。そのため、温度センサ固定溝27の下部は空隙とすることが可能となる。   Therefore, in the first embodiment, the air gap groove 28 is formed on the inner peripheral surface of the through hole 24 of the insulating bobbin 2 at a position overlapping the temperature sensor fixing groove 27 when viewed from the coil end side of the insulating bobbin 2. A varnish dropping groove 23 for dropping the varnish 5 at a position different from the groove 28 was formed. That is, the varnish 5 dropped into the varnish dropping groove 23 can impregnate the gap between the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and the stator core 1, but the inner peripheral surface of the through hole 24 of the insulating bobbin 2 The gap groove 28 is larger than the gap between the stator core 1 and the gap groove 28 cannot be impregnated. Therefore, the lower portion of the temperature sensor fixing groove 27 can be a gap.

また実施例1では、温度センサ固定溝27の溝の深さhを、温度センサ6の径rよりも浅く形成するようにした。すなわち、温度センサ固定溝27に装着される温度センサ6をコイル3に当接させることが可能となる。   In the first embodiment, the depth h of the temperature sensor fixing groove 27 is shallower than the diameter r of the temperature sensor 6. That is, the temperature sensor 6 mounted in the temperature sensor fixing groove 27 can be brought into contact with the coil 3.

また実施例1では、第1切欠部22において露出した巻線と温度センサ6との間にワニスを滴下することとした。すなわち、コイル3と温度センサ6との隙間にワニス5を充填することができ、コイル3から温度センサ6への温度伝達効率が向上する。   In the first embodiment, the varnish is dropped between the winding exposed in the first cutout 22 and the temperature sensor 6. That is, the gap between the coil 3 and the temperature sensor 6 can be filled with the varnish 5, and the temperature transmission efficiency from the coil 3 to the temperature sensor 6 is improved.

〔効果〕
実施例1の効果を以下に列記する。
(1)内周にステータコア1を収容し、外周にコイル3を積層するように巻回した絶縁ボビン2であって、コイル3を積層するように巻回する巻回面20と、巻回面20に形成し、コイル3の温度を検出する温度センサ6を固定する温度センサ固定溝27と、ステータコア1を収容する内周に形成した内周面と、内周面に形成し、内周面の背面側となる巻回面20に形成した温度センサ固定溝27と巻回面20側からみて重なる位置に形成した空隙溝28と、内周面であって空隙溝28と異なる位置に形成した、ワニス5を滴下するワニス滴下溝23とを設けた。
よって、ワニス滴下溝23にワニス5を滴下した場合、ワニス滴下溝23に含浸材が溜まり、溜まったワニス5は、ステータコア1と絶縁ボビン2の僅かな隙間を毛細管現象によって充填する。一方、空隙溝28のある場所では、空隙溝28によって、ステータコア1と絶縁ボビン2の隙間が拡大され、毛細管現象が働きにくくなり、空隙溝28にはワニス5が充填されにくくなる。ワニス5が充填されないとその部分の熱抵抗が大きくなり、空隙溝28の背面に形成された温度センサ固定溝27に固定された温度センサ6は、ステータコア1の熱の影響を受けにくくなる。よって、コイル3の温度検出精度の低下を抑制することができる。
〔effect〕
The effects of Example 1 are listed below.
(1) An insulating bobbin 2 that is wound so that the stator core 1 is accommodated on the inner periphery and the coil 3 is laminated on the outer periphery, and the winding surface 20 that is wound so as to laminate the coil 3; 20, a temperature sensor fixing groove 27 for fixing the temperature sensor 6 for detecting the temperature of the coil 3, an inner peripheral surface formed on the inner periphery that accommodates the stator core 1, an inner peripheral surface, and an inner peripheral surface The temperature sensor fixing groove 27 formed on the winding surface 20 on the back surface side of the groove and the gap groove 28 formed at a position overlapping with the winding surface 20 side, and the inner circumferential surface formed at a position different from the gap groove 28. A varnish dropping groove 23 for dropping the varnish 5 was provided.
Therefore, when the varnish 5 is dropped into the varnish dropping groove 23, the impregnating material is accumulated in the varnish dropping groove 23, and the accumulated varnish 5 fills a slight gap between the stator core 1 and the insulating bobbin 2 by capillary action. On the other hand, in the place where the gap groove 28 is present, the gap groove 28 enlarges the gap between the stator core 1 and the insulating bobbin 2, and it becomes difficult for the capillary phenomenon to work, and the gap groove 28 is hardly filled with the varnish 5. If the varnish 5 is not filled, the thermal resistance of that portion increases, and the temperature sensor 6 fixed to the temperature sensor fixing groove 27 formed on the back surface of the gap groove 28 is less susceptible to the heat of the stator core 1. Therefore, it is possible to suppress a decrease in the temperature detection accuracy of the coil 3.

(2)巻回面20にコイル3を積層するように巻回した絶縁ボビン2と、絶縁ボビン2の内周に収容したステータコア1と、コイル3の温度を検出する温度センサ6と、巻回面20に形成し、温度センサ6を固定する温度センサ固定溝27と、絶縁ボビン2の貫通孔24の内周面であって、絶縁ボビン2の径方向から見たときに温度センサ固定溝27と重なる位置に形成した空隙溝28と、絶縁ボビン2の貫通孔24の内周面であって、空隙溝28と異なる位置に形成し、ワニス5を滴下するワニス滴下溝23とを備えた。
ワニス滴下溝23に滴下したワニス5は、絶縁ボビン2の貫通孔24の内周面とステータコア1との隙間を含浸することができるが、絶縁ボビン2の貫通孔24の内周面とステータコア1との隙間よりも空隙溝28の隙間が大きく、空隙溝28には含浸することができない。そのため、温度センサ固定溝27の下部は空隙とすることが可能となる。よって、空隙溝28が断熱層となり、温度センサ6はコイル3の温度のみを計測することが可能となり、温度センサ6の温度測定精度を向上させることができる。また、空隙溝28がクッションとなり、コイル3から温度センサ6を押しつける方向に作用する力を緩和することができる。
(2) Insulating bobbin 2 wound so that coil 3 is laminated on winding surface 20, stator core 1 housed on the inner periphery of insulating bobbin 2, temperature sensor 6 for detecting the temperature of coil 3, and winding A temperature sensor fixing groove 27 that is formed on the surface 20 and fixes the temperature sensor 6, and an inner peripheral surface of the through hole 24 of the insulating bobbin 2, and when viewed from the radial direction of the insulating bobbin 2, the temperature sensor fixing groove 27 And a varnish dropping groove 23 for dropping the varnish 5 on the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and at a position different from the gap groove 28.
The varnish 5 dropped into the varnish dripping groove 23 can impregnate the gap between the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and the stator core 1, but the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and the stator core 1. The gap groove 28 is larger than the gap between the gap groove 28 and the gap groove 28 cannot be impregnated. Therefore, the lower portion of the temperature sensor fixing groove 27 can be a gap. Therefore, the gap groove 28 becomes a heat insulating layer, and the temperature sensor 6 can measure only the temperature of the coil 3, and the temperature measurement accuracy of the temperature sensor 6 can be improved. Further, the gap groove 28 serves as a cushion, and the force acting in the direction of pressing the temperature sensor 6 from the coil 3 can be reduced.

(3)温度センサ固定溝27の深さを、温度センサの径よりも浅くした。
よって、温度センサ6をコイル3に当接させることができ、温度センサ6の温度測定精度を向上させることができる。
(3) The depth of the temperature sensor fixing groove 27 is shallower than the diameter of the temperature sensor.
Therefore, the temperature sensor 6 can be brought into contact with the coil 3, and the temperature measurement accuracy of the temperature sensor 6 can be improved.

(4)巻回面20に形成し、コイル3の積層方向に沿って突出する内径側フランジ21と、内径側フランジ21に形成し、コイル3と温度センサ6との間が露出するように切り欠いた第1切欠部22とを設け、第1切欠部22において露出したコイル3と温度センサ6との隙間にワニス5を滴下するようにした。
よって、コイル3と温度センサ6との隙間にワニス5を充填することができ、コイル3から温度センサ6への温度伝達効率が向上し、温度センサ6の温度測定精度を向上させることができる。
(4) Formed on the inner surface side flange 21 formed on the winding surface 20 and projecting along the stacking direction of the coil 3, and cut on the inner surface side flange 21 so that the space between the coil 3 and the temperature sensor 6 is exposed. The cutout first cutout 22 is provided, and the varnish 5 is dropped into the gap between the coil 3 and the temperature sensor 6 exposed at the cutout 22.
Therefore, the gap between the coil 3 and the temperature sensor 6 can be filled with the varnish 5, the temperature transmission efficiency from the coil 3 to the temperature sensor 6 can be improved, and the temperature measurement accuracy of the temperature sensor 6 can be improved.

(5)巻回面20にコイル3を積層するように巻回した絶縁ボビン2と、絶縁ボビン2の内周に収容したステータコア1と、コイル3の温度を検出する温度センサ6と、巻回面20に形成し、温度センサ6を固定する温度センサ固定溝27と、絶縁ボビン2の内周面であって、絶縁ボビン2の径方向から見たときに温度センサ固定溝27と重なる位置に形成した空隙溝28と、絶縁ボビン2の内周面であって、空隙溝28と異なる位置に形成したワニス滴下溝23とを設け、ワニス滴下溝23にワニス5を滴下するようにした
ワニス滴下溝23に滴下したワニス5は、絶縁ボビン2の貫通孔24の内周面とステータコア1との隙間を含浸することができるが、絶縁ボビン2の貫通孔24の内周面とステータコア1との隙間よりも空隙溝28の隙間が大きく、空隙溝28には含浸することができない。そのため、温度センサ固定溝27の下部は空隙とすることが可能となる。よって、空隙溝28が断熱層となり、温度センサ6はコイル3の温度のみを計測することが可能となり、温度センサ6の温度測定精度を向上させることができる。また、空隙溝28がクッションとなり、コイル3から温度センサ6を押しつける方向に作用する力を緩和することができる。
(5) Insulating bobbin 2 wound so that coil 3 is laminated on winding surface 20, stator core 1 housed on the inner periphery of insulating bobbin 2, temperature sensor 6 for detecting the temperature of coil 3, and winding A temperature sensor fixing groove 27 formed on the surface 20 for fixing the temperature sensor 6 and an inner peripheral surface of the insulating bobbin 2 at a position overlapping the temperature sensor fixing groove 27 when viewed from the radial direction of the insulating bobbin 2. The formed gap groove 28 and the inner peripheral surface of the insulating bobbin 2 and a varnish dropping groove 23 formed at a position different from the gap groove 28 are provided, and the varnish 5 is dropped into the varnish dropping groove 23. Varnish dropping The varnish 5 dripped into the groove 23 can impregnate the gap between the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and the stator core 1, but the inner peripheral surface of the through hole 24 of the insulating bobbin 2 and the stator core 1 can be impregnated. The gap groove 28 is more than the gap. The gap is large and the gap groove 28 cannot be impregnated. Therefore, the lower portion of the temperature sensor fixing groove 27 can be a gap. Therefore, the gap groove 28 becomes a heat insulating layer, and the temperature sensor 6 can measure only the temperature of the coil 3, and the temperature measurement accuracy of the temperature sensor 6 can be improved. Further, the gap groove 28 serves as a cushion, and the force acting in the direction of pressing the temperature sensor 6 from the coil 3 can be reduced.

[他の実施例]
以上、本発明を実施するための最良の形態を、実施例1に基づいて説明したが、本発明の具体的な構成は、実施例1に限定されるものではなく、発明の要旨を逸脱しない範囲の設計変更等があっても本発明に含まれる。
例えば実施例1では、外径側フランジ25の第2切欠部26にコイル3の端部が挿入されるようになっているが、内径側フランジ21の第1切欠部22において、巻回面20の第2短辺部20bとコイル3との隙間が外部に露出していればコイル3の端部を内径側フランジ21に挿入するようにしても良い。
[Other embodiments]
The best mode for carrying out the present invention has been described based on the first embodiment. However, the specific configuration of the present invention is not limited to the first embodiment and does not depart from the gist of the present invention. Any change in the design of the range is included in the present invention.
For example, in the first embodiment, the end portion of the coil 3 is inserted into the second cutout portion 26 of the outer diameter side flange 25, but the winding surface 20 is formed at the first cutout portion 22 of the inner diameter side flange 21. If the gap between the second short side 20b and the coil 3 is exposed to the outside, the end of the coil 3 may be inserted into the inner diameter side flange 21.

1 ステータコア
2 絶縁ボビン
3 コイル(巻線)
5 ワニス(含浸材)
6 温度センサ(温度検出素子)
7 ステータスロット
20 巻回面
21 内径側フランジ(フランジ)
22 第1切欠部(切欠部)
23 ワニス滴下溝(含浸材滴下溝)
23a 開口部
24 貫通孔
27 温度センサ固定溝(温度検出素子固定溝)
28 空隙溝
1 Stator core 2 Insulated bobbin 3 Coil (winding)
5 Varnish (impregnating material)
6 Temperature sensor (temperature detection element)
7 Status lot 20 Winding surface 21 Inner diameter side flange (flange)
22 First notch (notch)
23 Varnish dripping groove (impregnating material dropping groove)
23a Opening 24 Through-hole 27 Temperature sensor fixing groove (Temperature detecting element fixing groove)
28 gap groove

Claims (5)

内周にステータコアを収容し、外周に巻線を積層するように巻回した絶縁ボビンであって、
前記巻線を積層するように巻回する巻回面と、
前記巻回面に形成し、前記巻線の温度を検出する温度検出素子を固定する温度検出素子固定溝と、
前記巻回面の背面側であって、前記ステータコアを収容する内周に形成した内周面と、
前記内周面であって、前記温度検出素子固定溝の背面側となる位置に形成した空隙溝と、
前記内周面であって前記空隙溝と対向する位置に形成した、含浸材を滴下する含浸材滴下溝と、
を設けたことを特徴とする絶縁ボビン。
An insulating bobbin which is wound so as to accommodate a stator core on the inner periphery and to stack windings on the outer periphery,
A winding surface for winding the windings to be laminated;
A temperature detecting element fixing groove formed on the winding surface and fixing a temperature detecting element for detecting the temperature of the winding;
An inner peripheral surface formed on an inner periphery accommodating the stator core , on the back side of the winding surface;
A said inner peripheral surface, with a gap groove formed in the rear side of the front Stories temperature detection element fixing groove position,
A said inner peripheral surface and formed at a position you face the gap grooves, the impregnant dropping groove of dropping impregnant,
An insulating bobbin characterized by comprising
巻回面に巻線を積層するように巻回した絶縁ボビンと、
前記絶縁ボビンの内周に収容したステータコアと、
前記巻線の温度を検出する温度検出素子と、
前記巻回面に形成し、前記温度検出素子を固定する温度検出素子固定溝と、
前記絶縁ボビンの前記巻回面の背面側となる内周面であって、前記温度検出素子固定溝の背面側となる位置に形成した空隙溝と、
前記絶縁ボビンの内周面であって前記空隙溝と対向する位置に形成した、含浸材を滴下する含浸材滴下溝と、
を設けたことを特徴とする回転電機のステータ。
An insulating bobbin wound so that the winding is laminated on the winding surface;
A stator core accommodated in the inner periphery of the insulating bobbin;
A temperature detecting element for detecting the temperature of the winding;
A temperature detection element fixing groove formed on the winding surface and fixing the temperature detection element;
Wherein a inner circumferential surface of the rear side of the winding surface of the insulating bobbin, and the gap grooves formed on the rear side of the front Stories temperature detection element fixing groove position,
A inner peripheral surface of the insulating bobbin, and formed at a position you face the gap grooves, the impregnant dropping groove of dropping impregnant,
A stator for a rotating electrical machine, characterized by comprising:
請求項に記載の回転電機のステータにおいて、
前記温度検出素子固定溝の深さは、前記温度検出素子の径よりも浅いことを特徴とする回転電機のステータ。
The stator of the rotating electrical machine according to claim 2 ,
A stator of a rotating electrical machine, wherein a depth of the temperature detection element fixing groove is shallower than a diameter of the temperature detection element.
請求項またはに記載の回転電機のステータにおいて、
前記巻回面に形成し、前記巻線の積層方向に沿って突出するフランジと、
前記フランジに形成し、前記巻線と前記温度検出素子との間が露出するように切り欠いた切欠部と、
を設け、
前記切欠部において露出した前記巻線と前記温度検出素子との間に含浸材を滴下することを特徴とする回転電機のステータ。
In the stator of the rotating electrical machine according to claim 2 or 3 ,
A flange that is formed on the winding surface and protrudes along the stacking direction of the windings;
A notch formed in the flange and notched so as to expose a space between the winding and the temperature detection element;
Provided,
A stator for a rotating electrical machine, wherein an impregnating material is dropped between the winding exposed at the notch and the temperature detection element.
巻回面に巻線を積層するように巻回した絶縁ボビンと、
前記絶縁ボビンの内周に収容したステータコアと、
前記巻線の温度を検出する温度検出素子と、
前記巻回面に形成し、前記温度検出素子を固定する温度検出素子固定溝と、
前記絶縁ボビンの前記巻回面の背面側となる内周面であって、前記温度検出素子固定溝の背面側となる位置に形成した空隙溝と、
前記絶縁ボビンの内周面であって、前記空隙溝と対向する位置に形成した含浸材滴下溝と、
を設け、
前記含浸材滴下溝に含浸材を滴下することを特徴とする回転電機のステータの製造方法。
An insulating bobbin wound so that the winding is laminated on the winding surface;
A stator core accommodated in the inner periphery of the insulating bobbin;
A temperature detecting element for detecting the temperature of the winding;
A temperature detection element fixing groove formed on the winding surface and fixing the temperature detection element;
A inner peripheral surface of the rear side of the winding surface of the insulating bobbin, and the gap grooves which are formed on the back side and the ing position before Symbol temperature detection element fixing groove,
A inner peripheral surface of the insulating bobbin, and the impregnated material dropping groove formed in a position you face the gap grooves,
Provided,
A method of manufacturing a stator for a rotating electrical machine, wherein an impregnating material is dropped into the impregnating material dropping groove.
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JP4339027B2 (en) * 2003-06-16 2009-10-07 本田技研工業株式会社 Stator

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