JPH0648350U - Motor laminated core - Google Patents
Motor laminated coreInfo
- Publication number
- JPH0648350U JPH0648350U JP8968592U JP8968592U JPH0648350U JP H0648350 U JPH0648350 U JP H0648350U JP 8968592 U JP8968592 U JP 8968592U JP 8968592 U JP8968592 U JP 8968592U JP H0648350 U JPH0648350 U JP H0648350U
- Authority
- JP
- Japan
- Prior art keywords
- core
- salient poles
- laminated core
- split
- magnetic
- 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
Links
Landscapes
- Iron Core Of Rotating Electric Machines (AREA)
Abstract
(57)【要約】
【目的】 積層コアの各突極間の磁気抵抗の差を小さく
すると共に、全体の磁気抵抗を低減してモータを高効率
にする。
【構成】 圧延によって形成された磁性板3から、放射
方向に突極11a 〜11c が形成された分割コア板19を形
成し、この分割コア板19を複数枚積層した分割コア11
〜14を複数個円環状に配列し、、かつ分割コア11〜14は
各々突極11a 〜11c の放射方向と磁性板の圧延方向5が
略一致するように構成してしている。
【効果】 円周上の全ての突極における磁気抵抗の差を
小さくすることができ、しかも、積層コア全体の磁気抵
抗も小さくなってモータを高効率にすることができる。
また、分割コアに形成することによって磁性板等の素材
使用量を大幅に節減できる。
(57) [Summary] [Purpose] To reduce the difference in magnetic resistance between the salient poles of the laminated core and reduce the overall magnetic resistance to make the motor highly efficient. [Structure] A split core plate 19 in which salient poles 11a to 11c are formed in a radial direction is formed from a magnetic plate 3 formed by rolling, and a split core 11 is formed by laminating a plurality of the split core plates 19.
-14 are arranged in an annular shape, and the split cores 11-14 are configured such that the radial directions of the salient poles 11a-11c and the rolling direction 5 of the magnetic plate are substantially the same. [Effect] The difference in magnetic resistance between all salient poles on the circumference can be reduced, and the magnetic resistance of the entire laminated core is also reduced, so that the motor can be made highly efficient.
Further, by forming the split core, it is possible to significantly reduce the amount of material used such as a magnetic plate.
Description
【0001】[0001]
本考案は、複数枚のコア板を積層することによって形成されたモータの積層コ アに関する。 The present invention relates to a laminated core of a motor formed by laminating a plurality of core plates.
【0002】[0002]
この種の一般的な積層コアとしては、複数枚のコア板を積層した積層コアに、 駆動コイルを巻回すための多数の突極を形成し、これら突極はすべて放射方向に 突出形成している。このモータの積層コアを図5によって説明する。図5におい て、積層コア1は外周側にモータの相数に応じた多数の突極2が各々放射方向に 突出形成されている。この積層コア1は、圧延によって形成された珪素鋼板等か らなる二点鎖線で示す磁性板3を、プレス加工によって積層コア1の形状のコア 板4を打ち抜き形成し、このコア板4を複数枚積層することによって構成されて いる。 As a general laminated core of this type, a large number of salient poles for winding the drive coil are formed on a laminated core in which multiple core plates are laminated, and all these salient poles are formed to project in the radial direction. There is. The laminated core of this motor will be described with reference to FIG. In FIG. 5, the laminated core 1 is formed with a large number of salient poles 2 protruding in the radial direction on the outer peripheral side according to the number of phases of the motor. In this laminated core 1, a magnetic plate 3 shown by a chain double-dashed line made of a silicon steel plate or the like formed by rolling is punched to form a core plate 4 in the shape of the laminated core 1, and a plurality of core plates 4 are formed. It is constructed by stacking one sheet.
【0003】 磁性板3は矢示の圧延方向5と異なる角度では、各々の磁気抵抗が変化するこ とが知られている。即ち、圧延方向5に比較的近い突極2aにおいては、突極2 aの放射方向6と圧延方向5との角度θ1は小さいことから、この突極2aの磁 気抵抗は小さい。ところが、突極2bにおいては、圧延方向5との角度θ2が大 きいために、この突極bの磁気抵抗は大きくなる。このため、コア板4の積層工 程においては、各コア板4の圧延方向が各々異ならせるように所定角度回転しな がら積層することによって、各突極2間の磁気抵抗の差を緩和するようにしてい る。It is known that the magnetic resistance of each of the magnetic plates 3 changes at an angle different from the rolling direction 5 shown by the arrow. That is, in the salient pole 2a relatively close to the rolling direction 5, since the angle θ1 between the radial direction 6 of the salient pole 2a and the rolling direction 5 is small, the magnetic resistance of this salient pole 2a is small. However, since the salient pole 2b has a large angle θ2 with the rolling direction 5, the magnetic resistance of the salient pole b becomes large. For this reason, in the lamination process of the core plates 4, the core plates 4 are laminated while being rotated by a predetermined angle so that the rolling directions of the core plates 4 are different from each other, thereby alleviating the difference in magnetic resistance between the salient poles 2. I am doing it.
【0004】[0004]
上記積層コア1においては、圧延方向5に対する角度に応じて突極2間の磁気 抵抗の差を緩和するために、積層工程においてコア板4を所定角度回転しながら 積層することが必要となる。このような回転積層の作業は煩雑であるために、多 くの工数が必要になると共に、自動積層化する場合には積層装置として複雑な機 構が必要になり、さらに、制御装置も複雑になることから、必然的にコストが崇 高になる問題点がある。 In the laminated core 1, in order to reduce the difference in magnetic resistance between the salient poles 2 depending on the angle with respect to the rolling direction 5, it is necessary to laminate the core plates 4 while rotating the core plates 4 by a predetermined angle in the laminating step. Since such rotary laminating work is complicated, a lot of man-hours are required, and in the case of automatic laminating, a complicated mechanism is required as a laminating device, and the control device is also complicated. Therefore, there is a problem that the cost is inevitably high.
【0005】 本考案は、このような問題点を解消するためになされたもので、積層コアの各 突極間の磁気抵抗の差を小さくすると共に、全体の磁気抵抗を低減してモータを 高効率にすることのできるモータの積層コアを提供することを目的とする。The present invention has been made to solve such a problem, and reduces the magnetic resistance difference between the salient poles of the laminated core and reduces the overall magnetic resistance to improve the motor performance. An object of the present invention is to provide a laminated core of a motor that can be made efficient.
【0006】[0006]
本考案は、圧延によって形成された磁性板からなる円環状のコア板には放射方 向に突極が突出形成され、このコア板を複数枚積層した積層コアにおいて、この 積層コアは複数に分割された分割コアを円環状に配列して形成され、かつ上記分 割コアは各々前記突極の放射方向と前記磁性板の圧延方向が略一致するように構 成したことを特徴としている。 In the present invention, salient poles are formed in a radial direction on an annular core plate made of a magnetic plate formed by rolling, and in a laminated core in which a plurality of core plates are laminated, the laminated core is divided into a plurality of layers. The split cores are arranged in an annular shape, and the split cores are configured such that the radial direction of the salient poles and the rolling direction of the magnetic plate are substantially the same.
【0007】[0007]
各分割コアに形成される各々の突極の放射方向と、磁性板の圧延方向とを略一 致させ、この分割コア板を円環状に配列して積層コアを構成すると、円周上の全 ての突極における磁気抵抗の差が小さくなると共に、積層コア全体の磁気抵抗も 小さくなってモータが高効率化される。また、円環状の積層コアは中央孔が廃棄 されて無駄になるが、上記分割コアにあっては中央孔等が存在しないために、磁 性板からなる素材を使用量が大幅に節減される。 When the radial direction of each salient pole formed on each split core and the rolling direction of the magnetic plate are made to substantially coincide with each other and the split core plates are arranged in an annular shape to form a laminated core, the entire circumference The difference in the magnetic resistance between all the salient poles is reduced, and the magnetic resistance of the entire laminated core is also reduced, thereby improving the efficiency of the motor. In addition, the circular laminated core is wasted because the central hole is discarded, but since there is no central hole in the split core, the amount of material made of magnetic plate is significantly reduced. .
【0008】[0008]
以下、本考案にかかるモータの積層コアの実施例について図面を参照しながら 説明する。図1において、積層コア10は円環状に形成され、例えば3相の駆動 コイルを巻回可能に外周側に3の倍数である12個の突極が等角度間隔に形成さ れている。これら突極は各々中心から外方に向けた放射方向に突出している。さ らに、積層コア10はコア板を積層することによって形成されるが、本考案にあ っては、積層コア10は4分割されていて、各分割コア11,12,13,14 が互いに両端同志を接合した切断部15,16,17,18を介して円環状に配 列されている。そして、これら分割コア11乃至14には、各々3個の突極11 a,11b,11cが突出形成されている。さらに、これら分割コア14乃至1 4は、図示しない例えば樹脂や金属等の連結手段によって精度良く連結すること によって一体に構成されている。 Embodiments of a laminated core of a motor according to the present invention will be described below with reference to the drawings. In FIG. 1, the laminated core 10 is formed in an annular shape, and 12 salient poles that are multiples of 3 are formed at equal angular intervals on the outer peripheral side so that, for example, three-phase drive coils can be wound. Each of these salient poles protrudes in a radial direction from the center toward the outside. Furthermore, the laminated core 10 is formed by laminating core plates, but in the present invention, the laminated core 10 is divided into four, and the divided cores 11, 12, 13, 14 are mutually separated. They are arranged in an annular shape through the cut portions 15, 16, 17, and 18 in which both ends are joined. Each of the split cores 11 to 14 is formed with three salient poles 11a, 11b, 11c. Further, the split cores 14 to 14 are integrally formed by accurately connecting them by a connecting means such as resin or metal (not shown).
【0009】 上記分割コア11乃至14は、図2に示す形状の分割コア板19を複数枚積層 することによって構成されている。分割コア板19の素材としては、モータにお いて通常使用されている圧延によって形成された珪素鋼板からなる磁性板3が用 いられている。そして、分割コア板19は磁性板3から図2に示すようにプレス 加工によって順次打ち抜き形成される。The split cores 11 to 14 are formed by stacking a plurality of split core plates 19 having the shape shown in FIG. As the material of the split core plate 19, the magnetic plate 3 made of a silicon steel plate formed by rolling which is usually used in a motor is used. Then, the split core plate 19 is sequentially punched from the magnetic plate 3 by pressing as shown in FIG.
【0010】 これら分割コア板19は図2における矢示のように、中央の突極部19aの放 射方向と磁性板3の圧延方向5とが一致するように設定される。また、両側の突 極19b,19cの突出方向は、上記突極11の突出方向と若干の角度の相違は 有するが、磁性板3の圧延方向5に対して大きな相違はなく、略一致した状態と なっている。このように、突極19a放射方向と磁性板3の圧延方向5とが一致 もしくは略一致するように打ち抜き形成するのは、各々の分割コア板19の磁気 抵抗を最も小さくするためである。As shown by the arrow in FIG. 2, these split core plates 19 are set so that the radiation direction of the central salient pole portion 19 a and the rolling direction 5 of the magnetic plate 3 coincide with each other. In addition, the protruding directions of the salient poles 19b and 19c on both sides are slightly different from the protruding direction of the salient pole 11, but there is no great difference with respect to the rolling direction 5 of the magnetic plate 3, and they are substantially in the same state. It has become. The punching is performed so that the radial direction of the salient poles 19a and the rolling direction 5 of the magnetic plate 3 coincide or substantially coincide with each other in order to minimize the magnetic resistance of each split core plate 19.
【0011】 以上のようにして形成された分割コア板19は、所定枚数が積層されて上記分 割コア11乃至14が形成される。その後、この分割コア11乃至14を図1の ように互いに両端を接合して4個配列することによって円環状の積層コア10が 構成される。各分割コア11乃至14の接合部分には、各々切断部15乃至18 が形成される。このように構成したとき、各分割コア11乃至14は磁気抵抗を 最も小さくした分割コア板19を積層しているので、各分割コア11乃至14に おいても矢示のように上記磁性板3の圧延方向と略一致しており、磁気抵抗も最 も小さい状態となっている。従って、積層コア10としての磁気抵抗も従来のコ アと比較して数段小さいものとなっている。The split core plates 19 formed as described above are laminated in a predetermined number to form the split cores 11 to 14. After that, as shown in FIG. 1, the split cores 11 to 14 are joined to each other at their both ends and arranged in four to form an annular laminated core 10. Cut portions 15 to 18 are formed at the joints of the split cores 11 to 14, respectively. In this structure, since the divided cores 11 to 14 are laminated with the divided core plates 19 having the smallest magnetic resistance, the magnetic plates 3 are also shown in the divided cores 11 to 14 as shown by arrows. The rolling resistance is almost the same as the rolling direction, and the magnetic resistance is also the smallest. Therefore, the magnetic resistance of the laminated core 10 is several steps smaller than that of the conventional core.
【0012】 図3は本考案の他の実施例を示し、前述の例よりも磁性板3の使用量をさらに 節減したものである。つまり、積層コア20を構成している各分割コア21乃至 24は、両側の互いに対向する部分を削除して切断部25乃至28としているこ とから、各く切断部の幅が大きくなって、実質的には突極21a..同志が等角 度間隔となるように円環状に配列されている。この結果、この例においては図1 に示した例と比較して、磁性板3の使用量が減少することはもとより、使用量が 少ない分の重量も減少して一段と軽量化が図れる利点がある。FIG. 3 shows another embodiment of the present invention in which the amount of the magnetic plate 3 used is further reduced as compared with the above-mentioned example. In other words, since the split cores 21 to 24 constituting the laminated core 20 are formed by cutting the portions facing each other on both sides to form the cut portions 25 to 28, the width of each cut portion becomes large. Substantially salient poles 21a. . The comrades are arranged in an annular shape with equiangular intervals. As a result, in this example, compared with the example shown in FIG. 1, not only the usage amount of the magnetic plate 3 is reduced, but also the weight corresponding to the small usage amount is reduced, which is an advantage that the weight can be further reduced. .
【0013】 図4は本考案のさらに他の実施例を示し、インナーロータ方式のモータに適用 される積層コア30の構成例である。つまり、複数個の突極31a..の突出方 向が各々中心方向に向かう放射方向に突出形成された4個の分割コア31乃至3 4を円環状に配列して積層コア30を構成している。この例においても、突極3 1a..の放射方向と上記磁性板3の圧延方向とを一致させており、従って、磁 気抵抗は小さいものとなっている。FIG. 4 shows still another embodiment of the present invention, which is a structural example of a laminated core 30 applied to an inner rotor type motor. That is, the plurality of salient poles 31a. . The four divided cores 31 to 34, which are formed so as to project in the radial direction in which the respective projecting directions are toward the center, are arranged in an annular shape to form the laminated core 30. Also in this example, the salient pole 3 1a. . And the rolling direction of the magnetic plate 3 are made to coincide with each other, so that the magnetic resistance is small.
【0014】 尚、上述の実施例は、分割コアを3相に適用されるように突極数を3個とした が、2相または4相の場合には、突極数を2個または4個にする等、分割コアに 形成する突極の個数は、モータの相数と同じか、または、その整数倍に設定して も良く、本考案を逸脱しない範囲で種々変更可能である。In the above embodiment, the number of salient poles is three so that the split core is applied to three phases. However, in the case of two or four phases, the number of salient poles is two or four. The number of salient poles formed in the split core may be set to be the same as the number of phases of the motor or an integral multiple of the number of phases, such as individual pieces, and can be variously changed without departing from the present invention.
【0015】[0015]
以上の説明から明らかなように、本考案のモータの積層コアは、各分割コアに 形成される各々の突極の放射方向と、磁性板の圧延方向とを略一致させ、この分 割コア板を円環状に配列して積層コアを構成しているので、円周上の全ての突極 における磁気抵抗の差を小さくすることができ、しかも、積層コア全体の磁気抵 抗も小さくなってモータを高効率にすることができる。また、分割コアに形成す ることによって磁性板等の素材使用量を大幅に節減できる利点がある。 As is clear from the above description, in the laminated core of the motor of the present invention, the radial direction of each salient pole formed in each split core and the rolling direction of the magnetic plate are made to substantially coincide with each other. Since they are arranged in an annular shape to form a laminated core, it is possible to reduce the difference in magnetic resistance between all salient poles on the circumference, and the magnetic resistance of the entire laminated core is also reduced. Can be highly efficient. In addition, the use of split cores has the advantage of significantly reducing the amount of materials used such as magnetic plates.
【0016】[0016]
【図1】本考案にかかるモータの積層コアの実施例を示
す平面図である。FIG. 1 is a plan view showing an embodiment of a laminated core of a motor according to the present invention.
【図2】同積層コアにおける分割コア板を示す平面図で
ある。FIG. 2 is a plan view showing a split core plate in the laminated core.
【図3】本考案の他の実施例を示す平面図である。FIG. 3 is a plan view showing another embodiment of the present invention.
【図4】本考案のさらに他の実施例を示す平面図であ
る。FIG. 4 is a plan view showing another embodiment of the present invention.
【図5】従来のモータの積層コアを示す平面図である。FIG. 5 is a plan view showing a laminated core of a conventional motor.
3 磁性板 5 圧延方向 10 積層コア 11〜14 分割コア 11a 〜11c 突極 15〜18 切断部 19 分割コア板 3 Magnetic plate 5 Rolling direction 10 Laminated core 11 to 14 Split core 11a to 11c Salient pole 15 to 18 Cutting part 19 Split core plate
Claims (1)
円環状のコア板には放射方向に突極が突出形成され、こ
のコア板を複数枚積層した積層コアにおいて、この積層
コアは複数に分割された分割コアを円環状に配列して形
成され、かつ上記分割コアは各々前記突極の突出方向と
前記磁性板の圧延方向が略一致するように構成してなる
モータの積層コア。1. A ring-shaped core plate made of a magnetic plate formed by rolling is formed with salient poles protruding in a radial direction. In a laminated core in which a plurality of the core plates are laminated, the laminated core is divided into a plurality of layers. The split cores are formed by arranging the split cores in an annular shape, and the split cores are configured such that the protruding direction of the salient poles and the rolling direction of the magnetic plate are substantially the same.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP8968592U JPH0648350U (en) | 1992-12-04 | 1992-12-04 | Motor laminated core |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP8968592U JPH0648350U (en) | 1992-12-04 | 1992-12-04 | Motor laminated core |
Publications (1)
Publication Number | Publication Date |
---|---|
JPH0648350U true JPH0648350U (en) | 1994-06-28 |
Family
ID=13977630
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
JP8968592U Pending JPH0648350U (en) | 1992-12-04 | 1992-12-04 | Motor laminated core |
Country Status (1)
Country | Link |
---|---|
JP (1) | JPH0648350U (en) |
Cited By (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0847185A (en) * | 1994-08-03 | 1996-02-16 | Matsushita Electric Ind Co Ltd | Motor core |
JPH08317619A (en) * | 1995-05-12 | 1996-11-29 | Nippon Densan Corp | Permanent-magnet motor |
JP2002199629A (en) * | 2001-12-13 | 2002-07-12 | Matsushita Electric Ind Co Ltd | Motor |
JP2010068548A (en) * | 2008-09-08 | 2010-03-25 | Hitachi Industrial Equipment Systems Co Ltd | Motor |
-
1992
- 1992-12-04 JP JP8968592U patent/JPH0648350U/en active Pending
Cited By (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0847185A (en) * | 1994-08-03 | 1996-02-16 | Matsushita Electric Ind Co Ltd | Motor core |
JPH08317619A (en) * | 1995-05-12 | 1996-11-29 | Nippon Densan Corp | Permanent-magnet motor |
JP2002199629A (en) * | 2001-12-13 | 2002-07-12 | Matsushita Electric Ind Co Ltd | Motor |
JP2010068548A (en) * | 2008-09-08 | 2010-03-25 | Hitachi Industrial Equipment Systems Co Ltd | Motor |
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