JP2012257433A - Permanent magnet type rotary electrical machinery - Google Patents

Permanent magnet type rotary electrical machinery Download PDF

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JP2012257433A
JP2012257433A JP2011130105A JP2011130105A JP2012257433A JP 2012257433 A JP2012257433 A JP 2012257433A JP 2011130105 A JP2011130105 A JP 2011130105A JP 2011130105 A JP2011130105 A JP 2011130105A JP 2012257433 A JP2012257433 A JP 2012257433A
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permanent magnet
rotor
magnet type
rotor core
circumferential direction
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JP5665660B2 (en
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Eigo Totoki
詠吾 十時
Shinichi Yamaguchi
信一 山口
Toshinori Tanaka
敏則 田中
Misa Nakayama
美佐 中山
Norihei Yoshida
憲平 吉田
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Mitsubishi Electric Corp
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Mitsubishi Electric Corp
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Abstract

PROBLEM TO BE SOLVED: To improve demagnetization resistance of the end part of a permanent magnet.SOLUTION: A permanent magnet type rotary electrical machinery includes a rotor 1 and a stator provided in the circumference of the rotor 1 with a gap. The rotor 1 includes a rotor core 4 and permanent magnets 5 embedded into respective housing holes 3 provided in the periphery of the rotor core 4 in a circumferential direction at an equal interval. The rotor core 4 includes a surface skin parts 11 formed over the whole circumference at the outer diameter side of the housing holes 3 and interpolar parts 12 formed between adjacent permanent magnets 5. The interpolar part 12 is composed of an interpolar step part 13 projecting in the circumferential direction and a post part 14 whose size in the circumferential direction is smaller than the interpolar step part 13 and that extends toward radial outside from the interpolar step part 13 to be connected with the surface skin part 11.

Description

この発明は、回転子鉄心の内部に永久磁石が埋め込まれた永久磁石式回転電機に関する。   The present invention relates to a permanent magnet type rotating electrical machine in which a permanent magnet is embedded in a rotor core.

従来、回転子鉄心に永久磁石が埋め込まれた、インテリアル・パーマネントマグネット・モータ(以下、「IPM」と略記する)の一例として、特許文献1に記載されたIPMが知れている。
このIPMは、永久磁石のそれぞれの外周側磁極面に形成される回転子磁極部の外周形状が、周方向中央部で回転子鉄心の中心からの距離が最も長くなり、隣接した永久磁石間に形成される極間部で回転子鉄心の中心からの距離が最も短くなると共に、前記回転子磁極部の端面が円弧状に形成されている。
また、円弧状の永久磁石が収納される収納孔の外側の回転子鉄心の外周面は円弧状であり、回転子鉄心の外周面と永久磁石の外周面との間の表皮部の肉厚がほぼ周方向において同一である。
Conventionally, as an example of an interior permanent magnet motor (hereinafter abbreviated as “IPM”) in which a permanent magnet is embedded in a rotor iron core, an IPM described in Patent Document 1 is known.
In this IPM, the outer peripheral shape of the rotor magnetic pole portion formed on each outer peripheral side magnetic pole surface of the permanent magnet has the longest distance from the center of the rotor core at the central portion in the circumferential direction, and between the adjacent permanent magnets. The distance from the center of the rotor core is the shortest in the formed inter-polar part, and the end face of the rotor magnetic pole part is formed in an arc shape.
In addition, the outer peripheral surface of the rotor core outside the storage hole in which the arc-shaped permanent magnet is stored is arc-shaped, and the thickness of the skin portion between the outer peripheral surface of the rotor core and the outer peripheral surface of the permanent magnet is small. It is almost the same in the circumferential direction.

特許第4591085号明細書Japanese Patent No. 4591085

上記IPMは、コギングトルクを少なくし、トルクリニアリティーが向上する利点を有している。
しかしながら、上記IPMは、永久磁石が回転子鉄心の表面に露出しているサーフェス・パーマネントマグネット・モータ(以下、「SPM」と略記する)と比較して、回転子鉄心の内部に永久磁石が埋め込まれており、永久磁石が遠心力で飛散しにくいという利点があるものの、永久磁石内部で発生する渦電流の影響等により、磁石の温度が上がり易いことから、減磁耐力が小さい。
そして、特に、固定子巻線に大きな電流を通電した際に、永久磁石の両端部は、固定子巻線への通電により固定子から生じる、永久磁石への反作用磁界を受け、減磁が発生し易いという問題点があった。
The IPM has the advantage of reducing the cogging torque and improving the torque linearity.
However, the IPM has a permanent magnet embedded in the rotor core compared to a surface permanent magnet motor (hereinafter abbreviated as “SPM”) in which the permanent magnet is exposed on the surface of the rotor core. Although the permanent magnet is not easily scattered by centrifugal force, the demagnetization resistance is small because the temperature of the magnet is likely to rise due to the influence of eddy current generated inside the permanent magnet.
In particular, when a large current is applied to the stator winding, both ends of the permanent magnet receive a reaction magnetic field to the permanent magnet that is generated from the stator by energizing the stator winding, and demagnetization occurs. There was a problem that it was easy to do.

この発明は、かかる問題点を解決することを課題とするものであって、簡単な構成で永久磁石の端部の減磁耐力が向上する等の永久磁石式回転電機を得ることを目的とする。   An object of the present invention is to provide a permanent magnet type rotating electrical machine that improves the demagnetization resistance at the end of the permanent magnet with a simple configuration. .

この発明に係る永久磁石式回転電機は、回転子と、この回転子の周囲に隙間を空けて設けられた固定子とを備え、
前記回転子は、回転子鉄心と、この回転子鉄心の外周部に周方向に等間隔で形成された各収納孔に埋め込まれた永久磁石とを有する永久磁石式回転電機であって、
前記回転子鉄心は、前記収納孔の外径側であって全周にわたって形成された表皮部と、
隣接した前記永久磁石間に形成された極間部とを有し、
前記極間部は、周方向に突出した極間段部と、この極間段部よりも周方向の寸法が小さく極間段部から径方向外側に延びて前記表皮部に接続された柱部とから構成されている。
A permanent magnet type rotating electrical machine according to the present invention includes a rotor and a stator provided with a gap around the rotor,
The rotor is a permanent magnet type rotating electrical machine having a rotor core and permanent magnets embedded in the respective housing holes formed at equal intervals in the circumferential direction on the outer periphery of the rotor core,
The rotor core is an outer diameter side of the housing hole and is formed over the entire circumference; and
Having an inter-electrode portion formed between adjacent permanent magnets,
The inter-electrode portion includes an inter-electrode step projecting in the circumferential direction and a column portion having a smaller circumferential dimension than the inter-electrode step portion and extending radially outward from the inter-electrode step portion and connected to the skin portion. It consists of and.

この発明に係る永久磁石式回転電機によれば、永久磁石間に形成された極間部は、周方向に突出した極間段部と、この極間段部よりも周方向の寸法が小さく極間段部から径方向外側に延びて表皮部に接続された柱部とから構成されているので、回転子内部の永久磁石による磁束の流れが永久磁石の端部付近においても固定子側に指向しており、固定子巻線への通電により固定子から生じる、永久磁石への反作用磁界と逆方向であり、永久磁石の端部の減磁耐力が向上する。   According to the permanent magnet type rotating electrical machine according to the present invention, the inter-electrode portion formed between the permanent magnets has an inter-electrode step portion projecting in the circumferential direction and a pole having a smaller circumferential dimension than the inter-electrode step portion. Since it is composed of a column part that extends radially outward from the interstage part and is connected to the skin part, the flow of magnetic flux by the permanent magnet inside the rotor is directed toward the stator side even near the end of the permanent magnet The direction opposite to the reaction magnetic field to the permanent magnet, which is generated from the stator by energizing the stator winding, improves the demagnetization resistance at the end of the permanent magnet.

この発明の実施の形態1に係る永久磁石式電動機を示す要部断面図である。It is principal part sectional drawing which shows the permanent magnet type electric motor which concerns on Embodiment 1 of this invention. 図1の回転子を示す要部拡大図である。It is a principal part enlarged view which shows the rotor of FIG. 図1の回転子での永久磁石による磁束の流れを示す図である。It is a figure which shows the flow of the magnetic flux by the permanent magnet in the rotor of FIG. この実施の形態1の回転子の変形例を示す要部断面図である。It is principal part sectional drawing which shows the modification of the rotor of this Embodiment 1. FIG. この発明の実施の形態1の永久磁石式電動機における、回転子鉄心の表皮部での固定子からの磁束の流れを示す説明図である。It is explanatory drawing which shows the flow of the magnetic flux from the stator in the skin part of the rotor core in the permanent magnet type electric motor of Embodiment 1 of this invention. 図2の回転子との比較例を示す、回転子鉄心の表皮部での固定子からの磁束の流れを示す説明図である。It is explanatory drawing which shows the flow of the magnetic flux from the stator in the skin part of the rotor core which shows the comparative example with the rotor of FIG. 図2の回転子の変形例を示す要部断面図である。It is principal part sectional drawing which shows the modification of the rotor of FIG. この発明の実施の形態2に係る永久磁石式電動機の回転子を示す要部断面図である。It is principal part sectional drawing which shows the rotor of the permanent magnet type electric motor which concerns on Embodiment 2 of this invention. 図8の永久磁石式電動機の回転子起磁力の高調波の和の基本波に対する比率を示す特性図である。It is a characteristic view which shows the ratio with respect to the fundamental wave of the harmonic of the rotor magnetomotive force of the permanent magnet type motor of FIG. この発明の実施の形態3に係る永久磁石式電動機の回転子を示す断面図である。It is sectional drawing which shows the rotor of the permanent-magnet-type electric motor which concerns on Embodiment 3 of this invention. 図10の回転子のq軸インダクタンスが小さくなることを示す説明図である。It is explanatory drawing which shows that the q-axis inductance of the rotor of FIG. 10 becomes small. この発明の実施の形態4に係る永久磁石式電動機の回転子を示す要部断面図である。It is principal part sectional drawing which shows the rotor of the permanent magnet type electric motor which concerns on Embodiment 4 of this invention. この発明の実施の形態4に係る永久磁石式電動機の回転子の変形例を示す要部断面図である。It is principal part sectional drawing which shows the modification of the rotor of the permanent magnet type electric motor which concerns on Embodiment 4 of this invention. この発明の実施の形態1に係る永久磁石式電動機の回転子の比較例である回転子を示す要部断面図である。It is principal part sectional drawing which shows the rotor which is a comparative example of the rotor of the permanent magnet type electric motor which concerns on Embodiment 1 of this invention.

以下、この発明の各実施の形態の永久磁石式電動機について図に基づいて説明するが、各図において同一、または相当部材、部位については同一符号を付して説明する。   Hereinafter, the permanent magnet electric motor according to each embodiment of the present invention will be described with reference to the drawings. In the drawings, the same or equivalent members and parts will be described with the same reference numerals.

実施の形態1.
図1はこの発明の実施の形態1に係る永久磁石式電動機を示す要部断面図、図2は図1の回転子1を示す要部拡大図である。
永久磁石式回転電機である永久磁石式電動機(以下、電動機と略称する)は、回転子1と、回転子1の周囲に隙間を空けて設けられた固定子2とを備えている。
回転子1は、磁極ごとに収納孔3を有する回転子鉄心4と、各収納孔3に収納された円弧形状の永久磁石5とを備えている。永久磁石5は、フェライト系磁石、ネオジ磁石、及びサマリウムコバルト系磁石等が用いられる。
外周形状が真円の回転子鉄心4は、複数枚の電磁鋼板を積層して構成され、シャフト10に対して、焼きばめ、または圧入等により嵌着されている。
Embodiment 1 FIG.
FIG. 1 is a cross-sectional view of a main part showing a permanent magnet type electric motor according to Embodiment 1 of the present invention, and FIG. 2 is an enlarged view of a main part showing a rotor 1 of FIG.
A permanent magnet type electric motor (hereinafter abbreviated as an electric motor), which is a permanent magnet type rotating electrical machine, includes a rotor 1 and a stator 2 provided around the rotor 1 with a gap therebetween.
The rotor 1 includes a rotor core 4 having a storage hole 3 for each magnetic pole, and an arc-shaped permanent magnet 5 stored in each storage hole 3. As the permanent magnet 5, a ferrite magnet, a neodymium magnet, a samarium cobalt magnet, or the like is used.
The rotor core 4 whose outer peripheral shape is a perfect circle is formed by laminating a plurality of electromagnetic steel plates, and is fitted to the shaft 10 by shrink fitting or press fitting.

固定子2は、周方向に等分間隔をおいて先端部が径方向の内側に突出して形成されたティース6によりスロット7が画成された固定子鉄心8と、各ティース6に導線が巻回されてスロット7内に装着された固定子巻線9とを備えている。
固定子鉄心8は、複数枚の電磁鋼板を積層して構成されている。
この例では、回転子1内の永久磁石5の個数(磁極数)を10であり、固定子鉄心8のティース6の数は12個である。
The stator 2 includes a stator core 8 in which slots 7 are defined by teeth 6 that are formed so that tip portions protrude radially inwardly at equal intervals in the circumferential direction, and a conductive wire is wound around each tooth 6. And a stator winding 9 which is rotated and mounted in the slot 7.
The stator core 8 is configured by laminating a plurality of electromagnetic steel plates.
In this example, the number of permanent magnets 5 (number of magnetic poles) in the rotor 1 is 10, and the number of teeth 6 of the stator core 8 is 12.

回転子鉄心4は、収納孔3の外径側であって全周にわたって形成された真円の表皮部11と、隣接した永久磁石5間に形成された極間部12とを有している。この表皮部11は、周方向において肉厚が等しい。この肉厚の厚さは、電磁鋼板のプレス打ち抜きが可能である範囲であり、電磁鋼板の板厚の3倍以内である。
極間部12は、周方向に突出した極間段部13と、この極間段部13よりも周方向の寸法が小さく極間段部13から径方向外側に延びて表皮部11に接続された柱部14とから構成されている。この極間段部13の両側壁面は、永久磁石5の周方向の両側面の内径部と面接触している。
The rotor core 4 has a perfect skin portion 11 formed on the outer diameter side of the housing hole 3 and over the entire circumference, and an interpolar portion 12 formed between adjacent permanent magnets 5. . The skin portion 11 has the same thickness in the circumferential direction. This thickness is a range in which the electromagnetic steel sheet can be stamped and is within 3 times the thickness of the electromagnetic steel sheet.
The inter-electrode portion 12 is connected to the skin portion 11 and has an inter-electrode step portion 13 projecting in the circumferential direction and has a smaller circumferential dimension than the inter-electrode step portion 13 and extends radially outward from the inter-electrode step portion 13. And a column portion 14. Both side wall surfaces of the inter-pole step portion 13 are in surface contact with inner diameter portions on both side surfaces in the circumferential direction of the permanent magnet 5.

この電動機は、固定子2内の固定子巻線9に交流電流を通電することによって形成される回転磁界と、回転子1内の永久磁石5の起磁力との相互作用により、回転子1が回転磁界に同期して回転して、回転トルクが発生する。   In this electric motor, the rotor 1 is driven by the interaction between the rotating magnetic field formed by passing an alternating current through the stator winding 9 in the stator 2 and the magnetomotive force of the permanent magnet 5 in the rotor 1. A rotational torque is generated in synchronization with the rotating magnetic field.

この実施の形態では、極間段部13の高さをhc、永久磁石5の端部の磁石厚みをhmとした場合に、極間段部13の高さhcは、磁石厚みhmに対して、hc<hm/2の関係が成立する。
以下、極間段部13の高さhcと磁石厚みhmとの関係について説明する。
In this embodiment, when the height of the inter-electrode step 13 is hc and the magnet thickness of the end of the permanent magnet 5 is hm, the height hc of the inter-electrode step 13 is relative to the magnet thickness hm. , Hc <hm / 2 is established.
Hereinafter, the relationship between the height hc of the inter-electrode step 13 and the magnet thickness hm will be described.

図14は、実施の形態1の回転子1との比較例を示す回転子1Aであり、隣接した永久磁石5間の極間部12には、極間段部13及び柱部14は形成されていない。
この例では、回転子1A内には矢印イに示す磁束の流れが生じ、永久磁石5の両端部には閉じた磁束が発生する。この磁束は固定子2に鎖交しないため、発生トルクに寄与せず、電動機のトルクが減少してしまう。なお、この図では、永久磁石5は外径側がN極である。
一方、図3はこの実施の形態1の回転子1における磁束の流れを示す。
この実施の形態では、回転子1内には矢印ロに示す磁束の流れが生じ、永久磁石5の両端部には閉じた磁束が発生しない。ここで、永久磁石5は外径側をN極としている。
従って、図14のものと比較して、永久磁石5による磁束は、固定子2に有効に鎖交する。
FIG. 14 shows a rotor 1A that is a comparative example of the rotor 1 according to the first embodiment. In the interpolar part 12 between the adjacent permanent magnets 5, the interpolar step part 13 and the column part 14 are formed. Not.
In this example, the flow of magnetic flux indicated by arrow A occurs in the rotor 1 </ b> A, and closed magnetic flux is generated at both ends of the permanent magnet 5. Since this magnetic flux does not interlink with the stator 2, it does not contribute to the generated torque and the torque of the electric motor is reduced. In this figure, the permanent magnet 5 has an N pole on the outer diameter side.
On the other hand, FIG. 3 shows the flow of magnetic flux in the rotor 1 of the first embodiment.
In this embodiment, the magnetic flux indicated by arrow B is generated in the rotor 1, and no closed magnetic flux is generated at both ends of the permanent magnet 5. Here, the permanent magnet 5 has an N pole on the outer diameter side.
Therefore, as compared with that of FIG. 14, the magnetic flux generated by the permanent magnet 5 is effectively linked to the stator 2.

図4は、この実施の形態1の変形例を示す回転子1Bを示す要部断面図であり、隣接した永久磁石5間の極間部12には、極間段部13A及び柱部14は形成されているものの、極間段部13Aの高さhcと磁石厚みhmとの関係は、hc≧hm/2の関係が成立している。
この例の場合も、回転子1B内には矢印ハに示す磁束の流れが生じ、図3に示した回転子1と比較して、永久磁石5の端部付近の磁束の流れが永久磁石5の周方向の中心から大きく離れる方向に指向している。
しかしながら、この例の場合にも、永久磁石5の両端部には図14に示したような閉じた磁束が発生せず、図14のものと比較して、永久磁石5による磁束は、固定子2に有効に鎖交する。
FIG. 4 is a cross-sectional view showing a main part of a rotor 1B according to a modification of the first embodiment. In the interpolar part 12 between the adjacent permanent magnets 5, an interpolar step part 13A and a column part 14 are provided. Although formed, the relationship between the height hc of the inter-pole step portion 13A and the magnet thickness hm satisfies the relationship hc ≧ hm / 2.
Also in this example, the flow of magnetic flux indicated by the arrow C is generated in the rotor 1B, and the flow of magnetic flux near the end of the permanent magnet 5 is compared with that of the rotor 1 shown in FIG. The direction is far away from the center in the circumferential direction.
However, also in this example, the closed magnetic flux as shown in FIG. 14 is not generated at both ends of the permanent magnet 5, and the magnetic flux generated by the permanent magnet 5 is smaller than that of the stator shown in FIG. Effectively interlink with 2.

以上の説明から分かるように、この実施の形態1による電動機によれば、隣接した永久磁石5間に周方向に突出した極間段部13が形成されているので、永久磁石5の端部では閉じた磁束が発生することなく、永久磁石5による磁束は、固定子2に有効に鎖交するため、電動機のトルクが向上する。
また、永久磁石5の両端部でも、閉じた磁束は発生せず磁束の流れが固定子側2に指向しており、固定子巻線9への通電により固定子2から生じる、永久磁石5への反作用磁界と逆方向になり、永久磁石5の両端部での減磁耐力が向上する。
As can be seen from the above description, according to the electric motor according to the first embodiment, the inter-stage step portion 13 protruding in the circumferential direction is formed between the adjacent permanent magnets 5. Since the closed magnetic flux is not generated and the magnetic flux generated by the permanent magnet 5 is effectively linked to the stator 2, the torque of the electric motor is improved.
Further, the closed magnetic flux is not generated at both ends of the permanent magnet 5, and the flow of the magnetic flux is directed to the stator side 2, and the permanent magnet 5 is generated from the stator 2 by energizing the stator winding 9. Thus, the demagnetization resistance at both ends of the permanent magnet 5 is improved.

また、表皮部11の肉厚は、電磁鋼板のプレス打ち抜きが可能である範囲であり、電磁鋼板の板厚の3倍以内で小さく設定されているので、永久磁石5の磁束が表皮部11を通過して有効に固定子2に鎖交し、大きなトルクを得ることができる。   In addition, the thickness of the skin portion 11 is within a range in which the electromagnetic steel sheet can be stamped out, and is set to be small within 3 times the plate thickness of the electromagnetic steel plate. Passing through and effectively interlinking with the stator 2, it is possible to obtain a large torque.

図5はこの実施の形態1の回転子1を示す要部拡大図であり、永久磁石5は、円弧状であり、表皮部11の肉厚は周方向において一定であって、固定子2からの磁束は矢印ニのように流れる。
一方、図6は、図2の回転子1との比較例を示す、回転子1Cの要部拡大図である。
この例では、永久磁石5Aは、直方体形状であり、永久磁石5Aの中間点から両側に向かうに従って表皮部11Aの肉厚は小さくなっており、磁束は矢印ホのように流れる。
図5及び図6において、固定子2の界磁により発生した磁束の流れを比較すると、この実施の形態の回転子1では、図6の回転子1Cと比較して磁束が表皮部11を通りにくく、q軸インダクタンスが小さくなる。
その結果、q軸インダクタンスとd軸インダクタンスとの差が小さいため、d軸電流を通電して弱め界磁制御を行った場合にもトルクリップルにつながるリラクタンストルクの発生を抑制することができる。
また、永久磁石5は、周方向の両端面が回転子鉄心4の極間段部13に面接触により固定されているため、回転子1の各磁極の磁束ばらつきを低減することができ、コギングトルク・トルクリップルを低減することができる。
FIG. 5 is an enlarged view of a main part showing the rotor 1 according to the first embodiment. The permanent magnet 5 has an arc shape, and the thickness of the skin portion 11 is constant in the circumferential direction. The magnetic flux flows as shown by the arrow D.
On the other hand, FIG. 6 is an enlarged view of a main part of the rotor 1C, showing a comparative example with the rotor 1 of FIG.
In this example, the permanent magnet 5A has a rectangular parallelepiped shape, and the thickness of the skin portion 11A becomes smaller toward the both sides from the intermediate point of the permanent magnet 5A, and the magnetic flux flows as shown by an arrow e.
5 and 6, when the flow of magnetic flux generated by the field of the stator 2 is compared, in the rotor 1 of this embodiment, the magnetic flux passes through the skin portion 11 as compared with the rotor 1C of FIG. It is difficult to reduce q-axis inductance.
As a result, since the difference between the q-axis inductance and the d-axis inductance is small, it is possible to suppress the generation of reluctance torque that leads to torque ripple even when the d-axis current is applied and field weakening control is performed.
In addition, since both end surfaces of the permanent magnet 5 are fixed to the inter-pole step portion 13 of the rotor core 4 by surface contact, the magnetic flux variation of each magnetic pole of the rotor 1 can be reduced, and cogging is performed. Torque / torque ripple can be reduced.

なお、回転子鉄心4の断面形状については、図7に示すように、収納孔3Aの径方向外側の角部、及び極間段部13Aの角部について面取り形状としてもよい。
面取り形状とすることで、電磁鋼板のプレス打ち抜きが容易となる。
In addition, about the cross-sectional shape of the rotor core 4, as shown in FIG. 7, it is good also as a chamfering shape about the corner | angular part of the radial direction outer side of 3 A of accommodation holes, and the corner | angular part of interpole step part 13A.
By adopting the chamfered shape, it is easy to press punch the electromagnetic steel sheet.

実施の形態2.
図8はこの発明の実施の形態2に係る電動機の回転子1Dを示す要部断面図である。
この実施の形態では、収納孔3の周方向の直線長さをlh、永久磁石5の周方向の直線長さをlmとしたときに、0.72lh≦lm≦0.93lhの関係が成立する。
他の構成は、実施の形態1の電動機と同じである。
Embodiment 2. FIG.
FIG. 8 is a cross-sectional view of a main part showing a rotor 1D of an electric motor according to Embodiment 2 of the present invention.
In this embodiment, when the linear length in the circumferential direction of the storage hole 3 is 1h and the linear length in the circumferential direction of the permanent magnet 5 is lm, the relationship of 0.72lh ≦ lm ≦ 0.93lh is established. .
Other configurations are the same as those of the electric motor of the first embodiment.

以下、収納孔3の周方向の直線長さlhと、永久磁石5の周方向の直線長さlmとの関係について説明する。
電動機のトルクリップルの主成分として、駆動電源周波数の6次高調波成分、12次高調波成分がある。トルクリップル6次高調波成分の要因の一つとして、回転子起磁力の基本波に対する5次高調波、7次高調波があり、トルクリップル12次高調波成分の要因の一つとして、回転子起磁力の基本波に対する11次高調波、13次高調波がある。
図9は、lm/lhと回転子起磁力の5次高調波、7次高調波、11次高調波、13次高調波について、これらの絶対値の和の基本波に対する比と、lm/lhの比の関係を示す図であり、本願発明者が電磁界解析により求めた図である。
磁間部12において、磁間段部13が無く、永久磁石5の両側壁面の全域が収納孔3の側壁面と密接して、永久磁石5が収納孔3に挿入されている場合(lm/lh=100%)には、回転子起磁力の高調波が大きくなり、トルクリップルが最大である。
一方、磁間段部13の周方向の寸法が大きくなり、lm/lhの値が小さい領域でも高調波の和が大きくなる。
この図から、0.72lh≦lm≦0.93lhの時、高調波の和が基本波に対して4割以下となり、十分にトルクリップルが小さくなることが分かる。
Hereinafter, the relationship between the linear length lh in the circumferential direction of the storage hole 3 and the linear length lm in the circumferential direction of the permanent magnet 5 will be described.
As a main component of the torque ripple of the electric motor, there are a 6th harmonic component and a 12th harmonic component of the drive power supply frequency. One of the factors of the torque ripple 6th harmonic component is the fifth harmonic and the seventh harmonic of the fundamental wave of the rotor magnetomotive force, and the rotor is one of the factors of the torque ripple 12th harmonic component. There are eleventh and thirteenth harmonics with respect to the fundamental wave of the magnetomotive force.
FIG. 9 shows the ratio of the sum of these absolute values to the fundamental wave for lm / lh and the fifth harmonic, seventh harmonic, eleventh harmonic, and thirteenth harmonic of the magnetomotive force of the rotor, and lm / lh. It is a figure which shows the relationship of ratio, and is a figure which this inventor calculated | required by the electromagnetic field analysis.
In the inter-magnetic portion 12, there is no inter-magnetic step portion 13, the entire area of both side walls of the permanent magnet 5 is in close contact with the side wall surface of the storage hole 3, and the permanent magnet 5 is inserted into the storage hole 3 (lm / lh = 100%), the harmonics of the rotor magnetomotive force become large, and the torque ripple is maximum.
On the other hand, the dimension in the circumferential direction of the intermagnetic step 13 is increased, and the sum of harmonics is increased even in a region where the value of lm / lh is small.
From this figure, it can be seen that when 0.72lh ≦ lm ≦ 0.93lh, the sum of harmonics is 40% or less of the fundamental wave, and the torque ripple is sufficiently small.

実施の形態3.
図10はこの発明の実施の形態3に係る電動機の回転子1Eを示す断面図である。
この実施の形態では、回転子鉄心4Aの各磁極部20での円弧半径をRpとし、回転子鉄心4Aの直径をDrとした場合に、Rp<0.5Drの関係が成立している。磁極部20は、永久磁石5のそれぞれに対応した表皮部11Bの表面の磁極面である。
回転子鉄心4Aの各磁極部20における表皮部11Bは、周方向において肉厚が等しい。
他の構成は、実施の形態1の電動機と同じである。
Embodiment 3 FIG.
FIG. 10 is a sectional view showing a rotor 1E of an electric motor according to Embodiment 3 of the present invention.
In this embodiment, when the arc radius at each magnetic pole portion 20 of the rotor core 4A is Rp and the diameter of the rotor core 4A is Dr, the relationship of Rp <0.5Dr is established. The magnetic pole portion 20 is a magnetic pole surface on the surface of the skin portion 11 </ b> B corresponding to each of the permanent magnets 5.
The skin portion 11B of each magnetic pole portion 20 of the rotor core 4A has the same thickness in the circumferential direction.
Other configurations are the same as those of the electric motor of the first embodiment.

この実施の形態では、Rp≦0.5Drとすることで、図11に示すように、極間部12において固定子2との隙間が大きくなり、その隙間での磁気抵抗Rが大きくなる。
従って、q軸のインダクタンスを低減させることができ、トルクリップルの要因となるリラクタンストルクの発生が抑制される。
In this embodiment, by setting Rp ≦ 0.5Dr, as shown in FIG. 11, the gap with the stator 2 is increased in the inter-pole portion 12, and the magnetic resistance R in the gap is increased.
Therefore, the q-axis inductance can be reduced, and the generation of reluctance torque that causes torque ripple is suppressed.

実施の形態4.
図12はこの発明の実施の形態4に係る電動機の回転子1Fを示す要部断面図である。
この永久磁石5Bは、内径側の面が平面である。
他の構成は、実施の形態1と同じである。
この実施の形態では、永久磁石5Bの内径側の面を平面にすることで、永久磁石5Bの曲率を有する面が外径側のみとなり、永久磁石5Bの加工費を低減することができる。
なお、図13に示す回転子1Gのように、図12と同様の永久磁石5Bを実施の形態3の回転子鉄心4Aに組み入れる、即ち永久磁石5Bを直径をDr、永久磁石5Bの外径側の磁極部の円弧半径をRpとしたときに、Rp≦0.5Drの関係が成立する回転子鉄心4Aに組み入れることもできる。
Embodiment 4 FIG.
FIG. 12 is a cross-sectional view of a main part showing a rotor 1F of an electric motor according to Embodiment 4 of the present invention.
The permanent magnet 5B has a flat inner surface.
Other configurations are the same as those of the first embodiment.
In this embodiment, by making the surface on the inner diameter side of the permanent magnet 5B flat, the surface having the curvature of the permanent magnet 5B becomes only the outer diameter side, and the processing cost of the permanent magnet 5B can be reduced.
As in the rotor 1G shown in FIG. 13, a permanent magnet 5B similar to that in FIG. 12 is incorporated in the rotor core 4A of the third embodiment. That is, the permanent magnet 5B has a diameter Dr and an outer diameter side of the permanent magnet 5B. When the arc radius of the magnetic pole portion is Rp, it can be incorporated into the rotor core 4A in which the relationship of Rp ≦ 0.5Dr is established.

なお、上記各実施の形態では、永久磁石式回転電機として永久磁石式電動機について説明したが、永久磁石式発電機についてもこの発明は適用できる。   In each of the above embodiments, the permanent magnet type electric motor has been described as the permanent magnet type electric rotating machine. However, the present invention can also be applied to a permanent magnet type electric generator.

1,1A,1B,1C,1D,1E,1F,1G 回転子、2 固定子、3,3A 収納孔、4,4A 回転子鉄心、5,5A,5B 永久磁石、6 ティース、7 スロット、8 固定子鉄心、9 固定子巻線、10 シャフト、11,11A,11B 表皮部、12 極間部、13,13A 極間段部、14 柱部、20 磁極部。   1, 1A, 1B, 1C, 1D, 1E, 1F, 1G Rotor, 2 Stator, 3, 3A Housing hole, 4, 4A Rotor core, 5, 5A, 5B Permanent magnet, 6 teeth, 7 slots, 8 Stator core, 9 stator winding, 10 shaft, 11, 11A, 11B skin part, 12 pole part, 13, 13A pole part, 14 pillar part, 20 magnetic pole part.

Claims (7)

回転子と、この回転子の周囲に隙間を空けて設けられた固定子とを備え、
前記回転子は、回転子鉄心と、この回転子鉄心の外周部に周方向に間隔をおいて形成された各収納孔に埋め込まれた永久磁石とを有する永久磁石式回転電機であって、
前記回転子鉄心は、前記収納孔の外径側であって全周にわたって形成された表皮部と、隣接した前記永久磁石間に形成された極間部とを有し、
前記極間部は、周方向に突出した極間段部と、この極間段部よりも周方向の寸法が小さく極間段部から径方向外側に延びて前記表皮部に接続された柱部とから構成されていることを特徴とする永久磁石式回転電機。
A rotor and a stator provided with a gap around the rotor;
The rotor is a permanent magnet type rotating electrical machine having a rotor core and permanent magnets embedded in respective housing holes formed at intervals in the circumferential direction on the outer periphery of the rotor core,
The rotor core has a skin part formed on the outer diameter side of the housing hole and over the entire circumference, and an inter-electrode part formed between the adjacent permanent magnets,
The inter-electrode portion includes an inter-electrode step projecting in the circumferential direction and a column portion having a smaller circumferential dimension than the inter-electrode step portion and extending radially outward from the inter-electrode step portion and connected to the skin portion. A permanent magnet type rotating electrical machine characterized by comprising:
前記永久磁石は、前記回転子の軸線に対して垂直断面形状のうち、外径側周面が円弧状であり、
前記回転子鉄心は、前記表皮部の肉厚寸法が周方向において均一であることを特徴とする請求項1に記載の永久磁石式回転電機。
The permanent magnet has an arcuate outer peripheral surface out of a cross-sectional shape perpendicular to the axis of the rotor,
The permanent magnet type rotating electrical machine according to claim 1, wherein the rotor core has a uniform thickness in the circumferential direction of the skin portion.
前記回転子鉄心は、前記極間段部の径方向の厚みをhc、前記永久磁石の端部の径方向の厚みをhmとしたときに、hc<hm/2であることを特徴とする請求項1または2に記載の永久磁石式回転電機。   The rotor iron core is characterized in that hc <hm / 2, where hc is a radial thickness of the inter-pole step and hm is a radial thickness of an end of the permanent magnet. Item 3. The permanent magnet type rotating electric machine according to Item 1 or 2. 前記回転子鉄心は、前記収納孔の周方向の直線長さをlh、前記永久磁石の周方向の直線長さをlmとしたときに、0.72lh≦lm≦0.93lhであることを特徴とする請求項1〜3の何れか1項に記載の永久磁石式回転電機。   The rotor core has a relation of 0.72lh ≦ lm ≦ 0.93lh, where lh is a linear length in the circumferential direction of the housing hole and lm is a linear length in the circumferential direction of the permanent magnet. The permanent magnet type rotating electrical machine according to any one of claims 1 to 3. 前記回転子鉄心は、直径をDr、前記永久磁石の外径側の磁極部の円弧半径をRpとしたときに、Rp≦0.5Drであることを特徴とする請求項1〜4の何れか1項に記載の永久磁石式回転電機。   5. The rotor core according to claim 1, wherein the rotor core has a diameter Dr and Rp ≦ 0.5 Dr, where Rp is the arc radius of the magnetic pole portion on the outer diameter side of the permanent magnet. The permanent magnet type rotating electrical machine according to item 1. 前記永久磁石は、前記回転子の軸線に対して垂直断面形状の内径側では平面であることを特徴とする請求項1〜5の何れか1項に記載の永久磁石式回転電機。   The permanent magnet type rotating electrical machine according to any one of claims 1 to 5, wherein the permanent magnet is a flat surface on an inner diameter side of a cross section perpendicular to the axis of the rotor. 永久磁石式回転電機は、永久磁石式電動機であることを特徴とする請求項1〜6の何れか1項に記載の永久磁石式回転電機。   The permanent magnet type rotating electrical machine according to any one of claims 1 to 6, wherein the permanent magnet type rotating electrical machine is a permanent magnet type electric motor.
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Publication number Priority date Publication date Assignee Title
EP2843805A1 (en) 2013-09-03 2015-03-04 Aisin Seiki Kabushiki Kaisha Electric motor
US9570949B2 (en) 2013-09-03 2017-02-14 Aisin Seiki Kabushiki Kaisha Electric motor with permanent magnet having curved outer wall and flat rear wall
KR20160131063A (en) * 2014-04-08 2016-11-15 미쓰비시덴키 가부시키가이샤 Interior permanent magnet rotating electric machine
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US20180062460A1 (en) * 2015-03-18 2018-03-01 Mitsubishi Electric Corporation Permanent-magnet-embedded electric motor, blower, and refrigerating air conditioner
US10862357B2 (en) 2015-03-18 2020-12-08 Mitsubishi Electric Corporation Permanent-magnet-embedded electric motor, blower, and refrigerating air conditioner
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US10468922B2 (en) 2016-08-09 2019-11-05 Aisin Seiki Kabushiki Kaisha Electric motor
US10615671B2 (en) 2016-09-20 2020-04-07 Aisin Seiki Kabushiki Kaisha Stator and method for manufacturing stator
CN109347289A (en) * 2018-09-26 2019-02-15 苏州德迈科电机技术有限公司 High-performance permanent magnet synchronous servo motor rotor embeds magnetic structure

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