Japanese priority application Nos. 2004-34982 and 2004-280984, upon which the present application is based, are hereby incorporated in their entirety herein by reference.
1. Field of the Invention
The present invention relates to a motor stator wherein teeth radially project from a plurality of positions spaced in the peripheral direction of an annular stator core, and wherein a winding is wave-wound around the teeth.
2. Description of the Related Art
In a motor having a stator in which windings having a plurality of phases are wound around slots formed between teeth, short pitch winding and distributed winding are used to suppress the generation of torque ripple or abnormal torque harmonics due to the slots and to obtain smooth rotation. See Japanese Patent Application Laid-open No. 4-721461 and Japanese Patent No. 2765764.
However, when short pitch winding or distributed winding is used, as shown in
When wave winding, as shown in
That is, as shown in
I·B·L·sin ωt
where I·sin ωt denotes a current and B denotes a magnetic flux density.
On the other hand, a force dF that an infinitesimal portion dL of the conductor having a skew angle θ receives is represented by:
dF=I·B·sin{ωt+(cos θ/L)·x}·cos θ.
Consequently, a force Fsk received by the entire conductor is represented by:
and a skew factor ksk=Fsk/F is represented by:
Furthermore, a skew factor ksq for harmonics of order q is represented by:
As is clear from Equation 2 and Equation 3, the greater the skew angle θ (the greater the γ), the smaller the skew factors ksk and ksq. In other words, as in the case where the above-mentioned short pitch winding or distributed winding is used, torque fluctuation of the motor may be suppressed concurrently with the reduction of motor torque.
As shown in
The present invention has been accomplished with the above-mentioned circumstances in mind, and it is an aspect thereof to downsize a stator and prevent deterioration of torque by shortening bridging portions of a winding while suppressing torque fluctuation by skewing slots of the stator.
In order to attain this aspect, the present invention provides a motor stator in which teeth radially project from a plurality of positions spaced in the peripheral or circumferential direction of an annular stator core. A winding is wave-wound around the teeth, wherein a plurality of slots formed between adjacent teeth are skewed alternately in opposite directions. The winding alternately passes through slots having different skew directions so that the length of a bridging portion is short.
Accordingly, since the teeth radially project from the plurality of positions spaced in the peripheral or circumferential direction of the annular stator core, and the plurality of slots are formed between the teeth and skewed, the fluctuation of torque is suppressed, which permits the motor to rotate smoothly. Further, since the winding alternately passes through slots having different skew directions, the reduction in torque due to the skewing of the slots is compensated for by decreasing the length of the bridging portions of the winding, which makes no contribution to the generation of torque, and increasing the length of portions within the slots which contribute to the generation of torque. Furthermore, since the winding is bent at an obtuse angle at opposite ends of the bridging portions, not only does the winding operation for the winding become easy, but the height to which the bridging portions project from the stator core is decreased to reduce the axial dimensions of the stator.
Further, the stator core and the teeth can be formed from laminated steel plates. Accordingly, the skew direction of the slots can alternate by changing the shape of each steel plate.
Additionally, the stator core and the teeth can be formed from a compacted powder.
Since the stator core and the teeth are formed from a compacted powder, the number of components is reduced. Moreover, the number of components can be reduced while increasing the lamination factor of the winding and eliminating the need for insulating paper by rounding the edges at opposite ends of the slots which are in contact with the winding.
In a first step of the production process, an intermediate steel plate product is formed by pressing a steel plate material using a press die to obtain a first cutout group that is formed at equal intervals in the circumferential direction and from cutouts for half the number of the plurality of slots. In a second step of the process, a final steel plate product is formed by pressing the intermediate steel plate product using the same press die while changing the phase between the press die and the intermediate steel plate product according to the axial position of the final steel plate product in the stator to obtain a second cutout group formed at equal intervals in the circumferential direction and from cutouts for half the number of the plurality of slots in addition to the first cutout group. Therefore, it is possible to produce a large variety of steel plates having different phases between the first cutout group and the second cutout group using a single type of press die, thereby reducing the time and cost required for producing the steel plates.
In the second step of the above-described production process, the phase between the press die and the intermediate steel plate product is controlled according to a program determined on the basis of the shape of the stator.
Therefore, it is possible to efficiently form a large number of final steel plate products having different phases between the first cutout group and the second cutout group.
The above-mentioned aspect, other aspects, characteristics, and advantages of the present invention will become apparent from an explanation of the preferred embodiments that will be described in detail below by reference to the attached drawings.
As shown in
A torque converter 21, housed in the torque converter case 14, includes a turbine runner 22 and a pump impeller 23. A side cover 24, joined to the turbine runner 22 and covering the pump impeller 23, is connected to the rotor 17 of the motor M via a drive plate 25. The pump impeller 23 of the torque converter 21 is joined to the left-hand end of a main shaft 26 supported in the transmission case 15.
The structure of the stator 19 of the motor M is now explained with reference to
The stator 19 of the motor M includes an annular stator core 31, a plurality (12 in the illustrated embodiment) of teeth 32 radially projecting inward from an inner peripheral or circumferential face of the stator core 31, a U phase winding 34, a V phase winding 35, and a W phase winding 36. The U, V and W phase windings 34, 35 and 36 are wave-wound to pass through slots 33 formed between the teeth 32. The stator core 31 and the teeth 32 are integrally molded from a compacted powder.
When viewed in the radial direction, the teeth 32 have an isosceles triangle shape and taper in an axial direction L. The tapering directions of circumferentially adjacent teeth 32 oppose each other. Consequently, twelve slots 33, formed between adjacent teeth 32, are alternately skewed in opposite directions in the axial direction L. The skew angle of the slots 33 is, for example, 60°, as an electrical angle.
The U phase winding 34 is wave-wound to pass through every third slot 33 in the circumferential direction. In this process, there are two ways of winding the U phase winding 34, that is, winding in the direction shown by the solid line and in the direction shown by the broken line in
The V phase winding 35 is wave-wound to pass through the slots 33 displaced by one pitch in the circumferential direction relative to the U phase winding 34. The W phase winding 36 is wave-wound to pass through the slots 33 that are displaced by one pitch in the circumferential direction relative to the V phase winding 35. The V phase winding 35 and the W phase winding 36 are also wave-wound in directions so that the bridging portions 35a and 36a thereof are relatively short. In
Since the slots 33 of the stator 19 are skewed in this way, it is possible to smoothly rotate the motor M by suppressing the generation of torque ripple or abnormal torque harmonics originating from, or due to, the slots 33. If all of the slots 33 are skewed in the same direction (see
In contrast, in the present invention, as shown by the solid line in
Although the skew factor becomes relatively small and the torque of the motor M is decreased by skewing the slots 33 of the stator 19 to suppress the occurrence of torque ripple or abnormal torque harmonics originating at, or due to, the slots 33, the decrease in torque is compensated for by a decrease in the resistance of the windings 34, 35, and 36 due to the decrease in length of the bridging portions 34a, 35a, and 36a or by an increase in the number of turns of the windings 34, 35, and 36.
Moreover, the use of a compacted powder not only enables the stator core 31, which has a complicated shape, to be easily molded, but also enables the number of components to be reduced compared with a case in which the stator core 31 is formed from laminated steel plates. Furthermore, by rounding corners of the slots 33, which are in contact with the windings 34, 35, and 36, it is possible to eliminate a protecting member, such as insulating paper, thereby further reducing the number of components and increasing the lamination factor of the windings 34, 35, and 36.
A second embodiment of the present invention is now explained with reference to
As is clear from
That is, as is clear from
For example, in the steel plate 32a, positioned in the middle in the axial direction L of the stator 19, the eight cutouts b of the second cutout group are arranged in positions in the middle of the eight cutouts a of the first cutout group, and the sixteen cutouts a and b are arranged at equal intervals of 22.5° in the circumferential direction. In contrast, in the steel plates 32a, positioned at opposite ends in the axial direction L of the stator 19, the eight cutouts b of the second cutout group are positioned counterclockwise in the vicinity of the eight cutouts a of the first cutout group, or the eight cutouts b of the second cutout group are positioned clockwise in the vicinity of the eight cutouts a of the first cutout group, that is, the sixteen cutouts a and b are arranged unevenly in the circumferential direction.
If a large variety of steel plates 32a, having different shapes, are press-formed in this way with press dies used exclusively therefor, it is necessary to employ a large variety of press dies, leading to a problem of high cost. However, in the present invention, it is possible to mold a large variety of steel plates 32a having different shapes using one type of press die. A process for producing the steel plates 32a is explained below.
As shown in
When the number and width of the slots 33 of the stator 19 and the number of the steel plates 32a contained in the stator 19 are determined, the difference in phase between the eight cutouts a of the first cutout group and the eight cutouts b of the second cutout group of each steel plate 32a is accordingly determined. Therefore, by program-controlling the press die so the phase difference can be obtained, it is possible to efficiently produce a large variety of steel plates 32a having different shapes. Most importantly, since a large variety of steel plates 32a having different shapes can be produced by one (or one type of) press die, the cost is greatly reduced.
Although embodiments of the present invention have been explained above, the present invention can be modified in a variety of ways without departing from the scope and spirit of the present invention.
For example, in the embodiments, the motor M is used as a motor for travel of a hybrid vehicle, but it can be used in any application.
Further, the motor M of the embodiments is of an inner rotor type having the rotor 17 disposed within the stator 19, but the present invention is also applicable to an outer rotor type of motor having a rotor disposed on the exterior of a stator.
Furthermore, the teeth 32 of the embodiments are in the shape of an isosceles triangle when viewed radially, but they may be in the shape of an isosceles trapezoid.
Moreover, in the embodiments, a three-phase motor M is illustrated, but the present invention is also applicable to a four-or-more phase motor M.
Moreover, in the second embodiment, the first step of punching out intermediate steel plate products 32a′ and the second step of punching out final steel plate products 32a″ may be carried out continuously or separately.
Number | Date | Country | Kind |
---|---|---|---|
2004-034982 | Feb 2004 | JP | national |
2004-280984 | Sep 2004 | JP | national |