JPH1080079A - Reluctance motor - Google Patents

Reluctance motor

Info

Publication number
JPH1080079A
JPH1080079A JP8231574A JP23157496A JPH1080079A JP H1080079 A JPH1080079 A JP H1080079A JP 8231574 A JP8231574 A JP 8231574A JP 23157496 A JP23157496 A JP 23157496A JP H1080079 A JPH1080079 A JP H1080079A
Authority
JP
Japan
Prior art keywords
rotor
completed
rotor core
axial direction
core
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
JP8231574A
Other languages
Japanese (ja)
Inventor
Yukio Honda
幸夫 本田
Yoshinari Asano
能成 浅野
Masayuki Shindo
正行 神藤
Hiroshi Ito
浩 伊藤
Hiroshi Murakami
浩 村上
Naoyuki Sumiya
直之 角谷
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Panasonic Holdings Corp
Original Assignee
Matsushita Electric Industrial Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Matsushita Electric Industrial Co Ltd filed Critical Matsushita Electric Industrial Co Ltd
Priority to JP8231574A priority Critical patent/JPH1080079A/en
Publication of JPH1080079A publication Critical patent/JPH1080079A/en
Pending legal-status Critical Current

Links

Landscapes

  • Iron Core Of Rotating Electric Machines (AREA)
  • Permanent Magnet Type Synchronous Machine (AREA)
  • Permanent Field Magnets Of Synchronous Machinery (AREA)

Abstract

PROBLEM TO BE SOLVED: To reduce cogging torque and obtain good characteristics having little torque ripples by shifting a plurality of completed products of rotor cores to a rotating direction and integrally constituting ion an axial direction. SOLUTION: Permanent magnets 4a and 4b embedded inside a rotor 1 are divided into two in axial direction, and rotor core sheets are laminated in alignment with the length in the axial direction of the permanent magnets 4a and 4b and a rotor core 3 is obtained. Permanent magnets 4a and 4b divided into the laminated rotor core 3 are respectively embedded to integrally form a core and completed rotor cores 3a and 3b are obtained. These two completed products 3a and 3b are deviated in rotating direction, jointed together, and a rotor shaft 2 is inserted by press fitting or other means to obtain the rotor 1. In this way, the quantity of magnetic flux flowing from stator side to rotor side is smaller at the side of rotor core completed product 3a and becomes larger at the side of rotor core completed product 3b, and it is averaged in the whole of rotor 1 and the cogging torque becomes smaller.

Description

【発明の詳細な説明】DETAILED DESCRIPTION OF THE INVENTION

【0001】[0001]

【発明の属する技術分野】本発明は、ロータ軸方向に複
数個の永久磁石あるいは複数個のスリットを設けること
で、リラクタンストルクを利用するモータに関するもの
である。
BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to a motor utilizing reluctance torque by providing a plurality of permanent magnets or a plurality of slits in a rotor axial direction.

【0002】[0002]

【従来の技術】従来から鉄など高透磁率材からなるロー
タ本体に永久磁石を埋設したロータ本体が知られてい
る。
2. Description of the Related Art Conventionally, a rotor main body in which a permanent magnet is embedded in a rotor main body made of a material having high magnetic permeability such as iron has been known.

【0003】図6は、リラクタンストルクを有効に利用
するため、本発明者らが開発した2層構造の永久磁石付
ロータを示している(特願平7−134023号)。
FIG. 6 shows a rotor with a permanent magnet having a two-layer structure developed by the present inventors in order to effectively utilize reluctance torque (Japanese Patent Application No. 7-134023).

【0004】この先行発明に係わるロータ1は中心にロ
ータ軸2を有し、鉄製ロータコア3にロータ半径方向に
1極当たり2層に間隔を置いて配置された4組の永久磁
石4a,4bを埋設してなり、各組の永久磁石4a,4
bはS極,N極が交互となるように隣接して配置され、
いずれもロータの求心方向へ凸形をなす円弧形状に形成
されている。
The rotor 1 according to the prior invention has a rotor shaft 2 at the center, and four sets of permanent magnets 4a and 4b arranged at intervals in two layers per pole in the rotor radial direction on a rotor core 3 made of iron. The permanent magnets 4a, 4
b is adjacently arranged so that the S pole and the N pole are alternately arranged;
Each of them is formed in an arc shape that is convex in the centripetal direction of the rotor.

【0005】この鉄製ロータコア3は多数の有穴のコア
シートを積層して構成されるが、穴の位置を合わせて積
層し、上述の円弧状の永久磁石を挿入埋め込むことにな
る。
[0005] The iron rotor core 3 is formed by laminating a large number of core sheets having holes. The iron rotor core 3 is laminated with the positions of the holes aligned, and the arc-shaped permanent magnet is inserted and embedded.

【0006】[0006]

【発明が解決しようとする課題】上記先行発明の構成に
おいては、ロータ組み付け工数としては最も少なく、低
コストで製作可能であるが、ロータに設けたスリット部
分がロータ軸と平行に真っ直ぐに構成されているため、
ステータとの位置関係でロータが回転中のコギングトル
ク変動が大きくなってしまう不具合点があった。
In the configuration of the above-mentioned prior invention, the number of man-hours for assembling the rotor is the smallest, and the rotor can be manufactured at low cost. However, the slit provided in the rotor is straight and parallel to the rotor shaft. Because
There was a problem that the cogging torque fluctuation during rotation of the rotor became large due to the positional relationship with the stator.

【0007】一例として、当先行発明の構成における磁
界解析によるトルクリップルの変動結果を図7に示す。
このデータより明らかなように約80%という大きいト
ルク変動を示している。
[0007] As an example, Fig. 7 shows the result of fluctuation of torque ripple by magnetic field analysis in the configuration of the present invention.
As is clear from this data, a large torque variation of about 80% is shown.

【0008】[0008]

【課題を解決するための手段】本願第1発明は上記先行
発明の問題点を解決するため、ロータコア内部に永久磁
石を軸方向に埋設してなる永久磁石埋め込み型リラクタ
ンスモータにおいて、軸方向に複数に分割した永久磁石
を、同様に軸方向に複数に分割したロータコアに埋設
し、これら複数個のロータコア完成品をロータ回転方向
にずらして軸方向に一体に構成したものである。
SUMMARY OF THE INVENTION In order to solve the above-mentioned problems, the first invention of the present application is directed to a permanent magnet embedded type reluctance motor having a permanent magnet embedded inside a rotor core in an axial direction. The permanent magnet divided into a plurality of pieces is embedded in a rotor core similarly divided into a plurality of pieces in the axial direction, and the plurality of finished rotor cores are shifted in the rotor rotation direction to be integrally formed in the axial direction.

【0009】この発明によれば、ロータに設けたスリッ
ト部分の位置とステータの歯の位置が同時に同一位置に
来ることがなくなるため、コギングが減少し、トルクリ
ップルの少ない良好な特性のリラクタンスモータが得ら
れる。
According to the present invention, since the position of the slit portion provided on the rotor and the position of the teeth of the stator are not simultaneously at the same position, cogging is reduced and a reluctance motor having good characteristics with little torque ripple is provided. can get.

【0010】本願第2発明は上記先行発明の問題点を解
決するため、複数個のスリットを設けてなるロータを有
するリラクタンス型同期モータにおいて、前記ロータは
複数個のロータコア完成品よりなり、各ロータコア完成
品は前記スリット位置を回転方向にずらして軸方向に一
体に構成したものである。
In order to solve the problems of the above-mentioned prior invention, a second invention of the present application relates to a reluctance type synchronous motor having a rotor provided with a plurality of slits, wherein the rotor comprises a plurality of completed rotor cores. The finished product has the slit position shifted in the rotation direction and is integrally formed in the axial direction.

【0011】この発明によれば、ロータに設けたスリッ
ト部分の位置とステータの歯の位置が同時に同一位置に
来ることがなくなるため、コギングが減少し、トルクリ
ップルの少ない良好な特性のリラクタンスモータが得ら
れる。
According to the present invention, since the position of the slit portion provided on the rotor and the position of the teeth of the stator are not simultaneously at the same position, cogging is reduced, and a reluctance motor having good characteristics with little torque ripple is provided. can get.

【0012】[0012]

【発明の実施の形態】上記の課題を解決するために本発
明は、複数個のロータコア完成品を回転方向にずらして
構成するロータを有するリラクタンスモータとしたもの
である。
DESCRIPTION OF THE PREFERRED EMBODIMENTS In order to solve the above-mentioned problems, the present invention is directed to a reluctance motor having a rotor configured by shifting a plurality of completed rotor cores in the rotation direction.

【0013】永久磁石を有するリラクタンスモータにお
いては、永久磁石をロータ軸方向に複数個に分割して、
各永久磁石の軸方向長さに合わせてロータコアシートを
積層したものに永久磁石を埋設して得られた複数個のロ
ータコア完成品を回転方向にずらして一体に構成してロ
ータを得る。また、永久磁石を有しないリラクタンスモ
ータにおいても、永久磁石を有しないだけで上述と全く
同様の構成となる。
In a reluctance motor having a permanent magnet, the permanent magnet is divided into a plurality in the axial direction of the rotor.
A plurality of rotor core finished products obtained by embedding permanent magnets in a laminate of rotor core sheets in accordance with the axial length of each permanent magnet are integrally formed by shifting in the rotation direction to obtain a rotor. Also, a reluctance motor having no permanent magnet has the same configuration as described above except for having no permanent magnet.

【0014】[0014]

【実施例】以下本発明の実施例について、図面を参照し
て説明する。
Embodiments of the present invention will be described below with reference to the drawings.

【0015】(実施例1)図1に示すように、ロータ1
の内部に埋め込まれた永久磁石4a,4bは軸方向に2
分割されており、分割された永久磁石4a,4bの軸方
向の長さに合わせて、ロータコアシートを積層しロータ
コア3を得る。その積層されたロータコア3に分割され
た永久磁石4a,4bをそれぞれ埋め込み一体として構
成したロータコア完成品3a,3bを得る。
(Embodiment 1) As shown in FIG.
The permanent magnets 4a, 4b embedded in the
The rotor core sheet is laminated and the rotor core sheet is laminated according to the axial length of the divided permanent magnets 4a and 4b. The completed rotor cores 3a and 3b are obtained by embedding the permanent magnets 4a and 4b divided into the laminated rotor core 3 and integrally forming them.

【0016】この2個のロータコア完成品3a,3bを
回転方向にずらして接合しロータ軸2を圧入等の手段で
挿入してロータ1を得る。
The two rotor core finished products 3a and 3b are joined while being shifted in the rotation direction, and the rotor shaft 2 is inserted by means such as press fitting to obtain the rotor 1.

【0017】図3にロータコア完成品3a部でのロー
タ,ステータの回転方向位置関係の説明図を示す。また
図4にロータコア完成品3b部でのロータ,ステータの
回転方向位置関係の説明図を示す。この図3と図4は、
ロータコア完成品3a及び3bが一体に構成されたロー
タ1がある回転位置において、ステータ側の歯やスロッ
トとの位置関係を示している。
FIG. 3 is an explanatory diagram showing the positional relationship between the rotor and the stator in the completed rotor core product 3a in the rotational direction. FIG. 4 is an explanatory view of the positional relationship between the rotor and the stator in the completed rotor core product 3b in the rotational direction. This FIG. 3 and FIG.
At a certain rotational position, the rotor 1 in which the rotor core finished products 3a and 3b are integrally formed has a positional relationship with teeth and slots on the stator side.

【0018】ロータコア完成品3a側が図3に示すよう
に、ステータの歯6の位置に永久磁石4a及び/または
4bが合致した場合、磁気抵抗は大きくなり磁束8は小
さくなる。この時一方、ロータコア完成品3b側は図4
に示すようにステータの歯6の位置と永久磁石4a及び
/または4bとがずれているので、磁気抵抗は小さくな
り磁束8は大きくなる。
As shown in FIG. 3, when the permanent magnets 4a and / or 4b match the positions of the teeth 6 of the stator, the magnetic resistance increases and the magnetic flux 8 decreases. At this time, on the other hand, the rotor core finished product 3b side is shown in FIG.
Since the positions of the teeth 6 of the stator and the permanent magnets 4a and / or 4b are shifted from each other, the magnetic resistance decreases and the magnetic flux 8 increases.

【0019】このように図3及び図4の位置関係にある
時点では、ステータ側からロータ側に流れる磁束量はロ
ータコア完成品3a側は小さく、ロータコア完成品3b
側は大きくなり、ロータ1全体としては平均化されるこ
とになる。また、図示していないが、次の時点において
はステータ側からロータ側に流れる磁束量は、ロータコ
ア完成品3a側は大きくロータコア完成品3b側は小さ
くなり、ロータ1全体としては、やはり平均化される。
At this time, the amount of magnetic flux flowing from the stator side to the rotor side at the time of the positional relationship of FIGS.
The side becomes larger, and the entire rotor 1 is averaged. Although not shown, the amount of magnetic flux flowing from the stator side to the rotor side at the next point in time is large on the rotor core completed product 3a side and small on the rotor core completed product 3b side, and the rotor 1 as a whole is also averaged. You.

【0020】この磁束量の変化がコギングトルクとなる
ので、本発明の構成によりコギングトルクが小さいリラ
クタンスモータが得られることになる。
Since the change in the amount of magnetic flux becomes the cogging torque, the configuration of the present invention can provide a reluctance motor having a small cogging torque.

【0021】図5に本発明の構成における磁界解析によ
るトルクリップルの変動結果を示す。このデータにより
明らかなように、トルク変動は約35%となっており、
図7に示す従来例より大幅に改善されている。
FIG. 5 shows the result of fluctuation of torque ripple by magnetic field analysis in the configuration of the present invention. As is clear from this data, the torque fluctuation is about 35%,
This is greatly improved over the conventional example shown in FIG.

【0022】なお上記実施形態では、2個のロータコア
完成品を一体に構成したロータとして説明したが、3個
以上のロータコア完成品を一体に構成したロータとして
もよい。3個以上のロータコア完成品を同一回転方向に
ずらした構成やロータ中心に向かう半数を同一回転方向
にずらし、残り半数は逆方向にずらした構成にすれば、
さらにコギングトルクは減少し、トルク変動も小さくな
る。
Although the above embodiment has been described as a rotor in which two completed rotor cores are integrally formed, a rotor in which three or more completed rotor cores may be integrally formed may be used. If three or more rotor core finished products are shifted in the same rotation direction, or half of the rotor cores are shifted in the same rotation direction, and the other half are shifted in the opposite direction,
Further, the cogging torque is reduced, and the torque fluctuation is also reduced.

【0023】(実施例2)図2に示すように、複数個の
円弧状のスリットを設けたコアシートを積層して得られ
たロータコア完成品3aと、同様にして得られたロータ
コア完成品3bとを回転方向にずらして接合し、ロータ
軸2を圧入等の手段で挿入してロータ1を得る。
(Embodiment 2) As shown in FIG. 2, a completed rotor core product 3a obtained by laminating core sheets provided with a plurality of arc-shaped slits, and a completed rotor core product 3b obtained in the same manner Are shifted in the rotational direction, and the rotor shaft 2 is inserted by means such as press fitting to obtain the rotor 1.

【0024】この構成により実施例1における永久磁石
4a,4bがスリツト5に代わっただけなので実施例1
と同様にコギングトルクが小さいリラクタンスモータが
得られる。
According to this configuration, the permanent magnets 4a and 4b in the first embodiment are merely replaced with the slits 5, so the first embodiment
As in the above, a reluctance motor having a small cogging torque can be obtained.

【0025】なお上記実施例では、2個のロータコア完
成品を一体に構成したロータとして説明したが、3個以
上のロータコア完成品を一体に構成したロータとしても
よい。3個以上のロータコア完成品を同一回転方向にず
らした構成やロータ中心に向かう半数を同一回転方向に
ずらし、残り半数は逆方向にずらした構成にすれば、さ
らにコギングトルクは減少し、トルク変動も小さくな
る。
Although the above embodiment has been described as a rotor in which two completed rotor core products are integrally formed, a rotor in which three or more finished rotor core products are integrally formed may be used. If three or more finished rotor cores are shifted in the same rotation direction, or half of the rotor cores are shifted in the same rotation direction and the other half are shifted in the opposite direction, the cogging torque is further reduced and the torque fluctuation is reduced. Is also smaller.

【0026】[0026]

【発明の効果】上記実施例の記載から明らかなように、
複数個のロータコア完成品をそれぞれ回転方向にずらし
て一体に構成したロータを有するリラクタンスモータと
することにより、コギングトルクが小さく、また回転中
のトルクリップルが小さいリラクタンスモータとなり、
モータ回転中の騒音や振動を抑えた良好な特性が得られ
る。
As is clear from the description of the above embodiment,
By using a reluctance motor having a rotor integrally formed by shifting a plurality of completed rotor cores in the rotation direction, a cogging torque is small, and a reluctance motor having small torque ripple during rotation is provided.
Good characteristics with reduced noise and vibration during motor rotation can be obtained.

【図面の簡単な説明】[Brief description of the drawings]

【図1】本発明の実施例を示すロータの斜視図FIG. 1 is a perspective view of a rotor showing an embodiment of the present invention.

【図2】本発明の他の実施例を示すロータの斜視図FIG. 2 is a perspective view of a rotor showing another embodiment of the present invention.

【図3】本発明の実施例の作用を説明する図FIG. 3 is a diagram for explaining the operation of the embodiment of the present invention.

【図4】本発明の実施例の作用を説明する図FIG. 4 is a diagram for explaining the operation of the embodiment of the present invention.

【図5】本発明の実施例の磁界解析による特性図FIG. 5 is a characteristic diagram based on a magnetic field analysis of the embodiment of the present invention.

【図6】従来のロータの斜視図FIG. 6 is a perspective view of a conventional rotor.

【図7】従来例の磁界解析による特性図FIG. 7 is a characteristic diagram based on a magnetic field analysis of a conventional example.

【符号の説明】[Explanation of symbols]

1 ロータ 2 ロータ軸 3 ロータコア 3a,3b ロータコア完成品 4 永久磁石 5 スリット 6 ステータの歯 7 スロット 8 磁束 β ロータコアの回転方向のずれ Reference Signs List 1 rotor 2 rotor shaft 3 rotor core 3a, 3b completed rotor core 4 permanent magnet 5 slit 6 stator tooth 7 slot 8 magnetic flux β

───────────────────────────────────────────────────── フロントページの続き (72)発明者 伊藤 浩 大阪府門真市大字門真1006番地 松下電器 産業株式会社内 (72)発明者 村上 浩 大阪府門真市大字門真1006番地 松下電器 産業株式会社内 (72)発明者 角谷 直之 大阪府門真市大字門真1006番地 松下電器 産業株式会社内 ──────────────────────────────────────────────────続 き Continued on the front page (72) Inventor Hiroshi Ito 1006 Kadoma Kadoma, Osaka Prefecture Matsushita Electric Industrial Co., Ltd. 72) Inventor Naoyuki Kadoya 1006 Kadoma, Kadoma City, Osaka Prefecture Matsushita Electric Industrial Co., Ltd.

Claims (2)

【特許請求の範囲】[Claims] 【請求項1】ロータコア内部に永久磁石を軸方向に埋設
してなる永久磁石埋め込み型リラクタンスモータにおい
て、軸方向に複数に分割した永久磁石を、同様に軸方向
に複数に分割したロータコアに埋設し、これら複数個の
ロータコア完成品をロータ回転方向にずらして軸方向に
一体に構成してなるロータを有することを特徴とするリ
ラクタンスモータ。
In a permanent magnet embedded type reluctance motor having a permanent magnet embedded in a rotor core in an axial direction, a permanent magnet divided into a plurality in the axial direction is embedded in a rotor core divided into a plurality in the axial direction. A reluctance motor having a rotor in which the plurality of completed rotor cores are integrally formed in the axial direction by being shifted in the rotor rotation direction.
【請求項2】複数個のスリットを設けてなるロータを有
するリラクタンス型同期モータにおいて、前記ロータは
複数個のロータコア完成品よりなり、各ロータコア完成
品は前記スリット位置を回転方向にずらして軸方向に一
体に構成してなることを特徴とするリラクタンスモー
タ。
2. A reluctance type synchronous motor having a rotor provided with a plurality of slits, wherein the rotor is composed of a plurality of completed rotor cores, and each completed rotor core is formed by shifting the slit position in a rotational direction to an axial direction. A reluctance motor characterized by being integrally formed with the motor.
JP8231574A 1996-09-02 1996-09-02 Reluctance motor Pending JPH1080079A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP8231574A JPH1080079A (en) 1996-09-02 1996-09-02 Reluctance motor

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP8231574A JPH1080079A (en) 1996-09-02 1996-09-02 Reluctance motor

Related Child Applications (1)

Application Number Title Priority Date Filing Date
JP2003023787A Division JP3722126B2 (en) 2003-01-31 2003-01-31 Reluctance motor

Publications (1)

Publication Number Publication Date
JPH1080079A true JPH1080079A (en) 1998-03-24

Family

ID=16925658

Family Applications (1)

Application Number Title Priority Date Filing Date
JP8231574A Pending JPH1080079A (en) 1996-09-02 1996-09-02 Reluctance motor

Country Status (1)

Country Link
JP (1) JPH1080079A (en)

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2003070218A (en) * 2001-06-13 2003-03-07 Asmo Co Ltd Reluctance motor
WO2005088806A1 (en) * 2004-03-12 2005-09-22 Daikin Industries, Ltd. Permanent magnet electric motor, driving method and producing method of the motor, refrigerant compressor, and blower
CN1305202C (en) * 2001-04-25 2007-03-14 松下电器产业株式会社 Motor
US7541710B2 (en) * 2005-01-21 2009-06-02 Hitachi, Ltd. Rotating electric machine
JP2010263725A (en) * 2009-05-08 2010-11-18 Minebea Co Ltd Motor
JP2011130607A (en) * 2009-12-18 2011-06-30 Hitachi Ltd Permanent magnet motor
DE19941107B4 (en) * 1998-10-23 2014-09-04 Mitsubishi Denki K.K. Permanent magnet embedded motor and method of manufacturing a motor
WO2023124152A1 (en) * 2021-12-27 2023-07-06 华为数字能源技术有限公司 Rotor core, rotor, motor, motor driving system and electric vehicle

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE19941107B4 (en) * 1998-10-23 2014-09-04 Mitsubishi Denki K.K. Permanent magnet embedded motor and method of manufacturing a motor
CN1305202C (en) * 2001-04-25 2007-03-14 松下电器产业株式会社 Motor
JP2003070218A (en) * 2001-06-13 2003-03-07 Asmo Co Ltd Reluctance motor
WO2005088806A1 (en) * 2004-03-12 2005-09-22 Daikin Industries, Ltd. Permanent magnet electric motor, driving method and producing method of the motor, refrigerant compressor, and blower
JPWO2005088806A1 (en) * 2004-03-12 2008-01-31 ダイキン工業株式会社 Permanent magnet motor, driving method and manufacturing method thereof, refrigerant compressor and blower
JP4748058B2 (en) * 2004-03-12 2011-08-17 ダイキン工業株式会社 Permanent magnet motor, refrigerant compressor and blower
US7541710B2 (en) * 2005-01-21 2009-06-02 Hitachi, Ltd. Rotating electric machine
JP2010263725A (en) * 2009-05-08 2010-11-18 Minebea Co Ltd Motor
JP2011130607A (en) * 2009-12-18 2011-06-30 Hitachi Ltd Permanent magnet motor
WO2023124152A1 (en) * 2021-12-27 2023-07-06 华为数字能源技术有限公司 Rotor core, rotor, motor, motor driving system and electric vehicle

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