ROTOR ASSEMBLY AND MOTOR HAVING SAME
20220337105 · 2022-10-20
Inventors
- Hongyu GONG (Guangdong, CN)
- Li Tian (Guangdong, CN)
- Xiangxiong CAO (Guangdong, CN)
- Mingjie ZHAO (Guangdong, CN)
Cpc classification
H02K23/38
ELECTRICITY
International classification
Abstract
A rotor assembly (100), comprising a rotor (101) and a rotor winding (102). The rotor (101) is provided with a plurality of teeth; tooth slots are provided between adjacent teeth; the rotor (101) can be connected to a rotor shaft to output power; the rotor winding (102) is composed of coils wound on the rotor (101); the rotor winding (102) comprises a portion extending in an axial direction parallel to the rotor assembly (100) and a portion extending in a plane perpendicular to the axial direction; the portion extending in the plane perpendicular to the axial direction comprises a plurality of sections; in the axial direction, the plurality of sections are in one-to-one correspondence to corresponding sides of two or more polygons, respectively. The winding method can solve the problems such as length difference of copper wires between windings due to sequential superposition of the coils in traditional windings, thus achieving the technical effects of improving the balance of the armature and minimizing the difference in resistance of windings.
Claims
1. A rotor assembly comprising: a rotor provided with a plurality of teeth and connected to a rotor shaft, wherein tooth slots are provided between adjacent teeth of the plurality of teeth; a rotor winding having coils wound on the rotor and including a portion extending in a direction parallel to the axial direction of the rotor assembly and a portion extending in a plane perpendicular to the axial direction, the portion extending in the plane perpendicular to the axial direction comprising a plurality of sections, wherein when viewed in the axial direction, the plurality of sections are in one-to-one correspondence to corresponding sides of two or more polygons, respectively.
2. The rotor assembly according to claim 1, wherein there is no overlap between the sections in one-to-one correspondence to the sides of the same polygon of the two or more polygons.
3. The rotor assembly according to claim 2, wherein the polygon is a regular polygon, wherein the number of tooth slots of the rotor is 10, and wherein the plurality of sections are in one-to-one correspondence to the sides of two regular pentagons of the two or more polygons.
4. The rotor assembly according to claim 2, wherein the polygon is a regular polygon, wherein the number of tooth slots of the rotor is 12, and wherein the plurality of sections are in one-to-one correspondence to the sides of four regular triangles of the two or more polygons.
5. The rotor assembly according to claim 1, wherein the plurality of sections are in one-to-one correspondence to the sides of the same polygon of the two or more polygons and are located in the same plane perpendicular to the axial direction.
6. The rotor assembly according to claim 1, wherein when viewed in an axial direction, there is an overlap between the sections in one-to-one correspondence to the sides of the same polygon of the two or more polygons.
7. The rotor assembly according to claim 6, wherein the number of tooth slots of the rotor is 14, and wherein the plurality of sections are in one-to-one correspondence to the sides of two heptagons of the two or more polygons.
8. A motor comprising a rotor assembly according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Exemplary embodiments of the present invention are described with reference to the accompanying drawings, wherein:
[0020]
[0021]
[0022]
[0023]
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[0026]
[0027]
[0028] All the drawings are only schematic and are not necessarily drawn to scale. Furthermore, they only show the parts which are necessary to elucidate the present invention, and other parts are omitted or only mentioned. That is, the present invention may include other components in addition to the components shown in the drawings.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0029] The technical solution of the present invention will be described in detail below with reference to the accompanying drawings.
[0030] Referring to
[0031] The rotor winding 102 is composed of coils wound on the rotor 101, and the coils are, for example, enameled wires. The rotor winding 102 is mainly wound in the tooth slots of the rotor 101. According to the actual winding situation, when the winding winds out of one tooth slot, it can enter another tooth slot across one or more tooth slots. When the winding is passed through the tooth slot, the winding direction is substantially parallel to the axial direction of the rotor 101. Therefore, according to the extending direction of the winding, the rotor winding 102 can be divided into a portion extending in a direction parallel to the axial direction of the rotor assembly 100 and a portion extending in a plane perpendicular to the axial direction, and viewed in the axial direction, the portion of the rotor winding 102 extending in a plane perpendicular to the axial direction includes a plurality of sections.
[0032] In order to solve the problems existing in the single-flying-fork winding or the twin-flying-fork winding in the prior art, the present invention proposes the following improvement: the rotor winding 102 is wound such that when viewed from the axial direction, the multiple sections of the rotor winding 102 or the extension lines thereof form two or more polygons. In other words, the multiple sections of the rotor winding 102 fall on the sides of two or more polygons, respectively, and correspond one-to-one with the sides of the polygons.
[0033] The rotor assembly obtained from this winding method has uniform winding mass distribution, which can significantly reduce the dynamic unbalance of the armature; the adjacent and diagonal resistances of the commutator on the armature are the same, which can improve the maximum slot full rate of the rotor winding. In addition, it is available to complete rotor winding with one winding flying fork, one enameled wire, and one tension system.
[0034] Specifically, as an embodiment of the present invention, referring to
[0035] Since multiple sections form a regular pentagon and are located in the same plane perpendicular to the axial direction, and the sections corresponding to the same regular pentagon are not overlapped, the windings for the sections have the same length. As a result, the overall structure of the rotor winding is uniform, the mass distribution is uniform, the dynamic unbalance relative to the rotor shaft is small, and the kinematic performance of the rotor and the performance of the motor are improved. The distribution of the multi-strand windings in the radial direction increases the slot fullness of the rotor winding.
[0036] In order to obtain the rotor assembly 100 shown in
[0037] As another embodiment of the present invention, referring to
[0038] In order to obtain the rotor assembly 100 shown in
[0039] In the rotor assembly of this winding form, the windings are divided into different layers, and there is no overlap between the sections in each layer that correspond one-to-one with the sides of the same regular polygon. Therefore, compared with the multi-layer stacked winding in the prior art, the stacking number is reduced and the difference in winding length caused by stacking is avoided, which significantly solves the problem of uneven mass distribution and inconsistent resistances.
[0040] As still another embodiment of the present invention, referring to
[0041] In order to obtain the rotor assembly 100 shown in
[0042] In the rotor assembly of this winding form illustrated in this embodiment, the windings are divided into two layers. Although there are overlaps between the sections in each layer that correspond one-to-one with the sides of the same regular polygon, compared with the multi-layer stacked winding in the prior art, the stacking number is reduced and the difference in winding length caused by stacking is reduced, which significantly solves the problem of uneven mass distribution and inconsistent resistances. In addition, the symmetry of the regular polygon makes the mass distribution of the rotor assembly more balanced. The multi-layer distribution in the radial direction increases the slot fullness of the rotor winding.
[0043] The above-mentioned winding methods of the present invention can solve the problems such as length difference of copper wires between windings due to sequential superposition of the coils in traditional windings, thus achieving the technical effects of improving the balance of the armature and minimizing the difference in resistance of windings.
[0044] The above exemplary embodiments have made a clear and complete description of the present invention, and those skilled in the art should understand that, various other embodiments may be envisaged by modifying the disclosed technical solutions without departing from the spirit and scope of the present invention. These embodiments should be construed as falling within the scope of the present invention as determined by the claims and any equivalent technical solution thereof.