stata
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-22
- Publication Date
- 2026-04-16
AI Technical Summary
The existing stators with integrally molded split cores and insulators face issues with insulation reliability due to potential movement or separation of the insulator during coil winding, which compromises the stator's insulation performance.
A stator design featuring a divided core with convex engaging portions on the teeth portion that engage with the insulator, ensuring secure attachment and minimizing movement, combined with strategic placement of gate sections and groove-shaped portions to enhance resin flow and reduce resin usage.
The design improves insulation reliability by preventing insulator movement, allows for compact stator construction, reduces resin consumption, and maintains magnetic performance by minimizing deformation and interference with coil winding.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a stator provided with a split core disposed around a rotor having a rotating shaft.
Background Art
[0002] Conventionally, a stator provided with a resin insulator in which a split core is insert-molded so as to cover the inner surface and side surface of the yoke portion and the side surface of the tooth portion is known (see, for example, Patent Document 1).
[0003] In the stator described in Patent Document 1, two angular portions where the side edge surface orthogonal to the stator axial direction in the yoke portion and the surface on the tooth portion side intersect are chamfered. Thereby, it is described that the resin fluidity was ensured at the time of insert molding, and the occurrence of cracks or the like in the insulator could be confirmed.
Prior Art Documents
Patent Documents
[0004]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0005] Although the stator described in Patent Document 1 has an integrally molded split core and insulator, there is a risk that the insulator may move or separate with respect to the split core during coil winding or the like. If the insulator moves with respect to the split core, the insulation reliability of the stator is impaired.
[0006] In view of such circumstances, there is a demand for a stator capable of enhancing the insulation reliability by an insulator.
Means for Solving the Problems
[0007] (Characteristic Configuration) The characteristic configuration of the stator according to the present invention is a divided core that is arranged around a rotor having a rotating shaft, having a tooth portion around which coil windings are wound and a yoke portion formed as a bulge at the end of the tooth portion, The system includes an insulator molded to cover at least a portion of the surface of the teeth portion and at least a portion of the surface of the yoke portion, A pair of sides of the surface of the teeth portion facing the adjacent divided core In this, the side edge extends along the side edge furthest from the yoke portion. A convex engaging portion is provided that engages with the insulator. and The engagement portion has a curved surface that rises concavely from the side edge with a predetermined curvature, a straight surface that extends from the curved surface along the side edge, and a convex surface from the straight surface that gradually decreases in gradient toward the yoke portion. On one of the top or bottom surfaces of the insulator, located between the pair of sides of the teeth portion, there is a hole formed by a part of the insert molding die of the insulator being pressed, and on the other of the top or bottom surface, there is a gate mark from the insert molding process. The key feature is that it is provided.
[0008] (effect) In this stator configuration, an insulator is integrally molded around the segmented core to ensure insulation between the segmented core and the coil. In this configuration, a pair of convex engagement portions are provided on the surface of the teeth portion that face adjacent segmented cores, engaging with the insulator. This makes it difficult for the insulator to move or separate from the segmented core during coil winding installation, thereby improving the insulation reliability of the stator. The segmented core may be made of multiple core plates stacked together or a compacted powder core.
[0009]
[0010] (effect) As in this configuration, the engaging portion extends along the side edge furthest from the yoke, ensuring sufficient engagement length between the segmented core and the insulator, thereby enhancing the insulator's position-holding function. Furthermore, the convex engaging portion on the segmented core may potentially affect the magnetic field formation by the stator. Even in this case, if the engaging portion is located at a distance from the yoke, the impact on magnetic field formation can be minimized. When injection molding an insulator, a gate section is required for resin injection. In this configuration, the gate section is located opposite to the area where the holes for holding the segmented core are provided, so that when resin is injected, the pressure of the resin is reliably received by the mold's retaining section located in the holes. This prevents the segmented core from moving. Generally, when forming a resin layer around a segmented core by insert molding, the portion of the segmented core that is not covered by resin is often retained, and the portion that is covered by resin does not have any exposed parts of the segmented core. In this case, the segmented core is pressed by the injected resin, so even if the segmented core is composed of multiple core plates, the core plates are pressed against each other, eliminating any gaps between them. However, in this configuration, the surface of the core plate is deliberately pressed directly with an insert mold to reliably prevent any unexpected movement of the core plate during resin injection. As a result, holes remain in the completed stator insulator. While these holes themselves do not affect the magnetic properties of the stator, the molding process that leaves these holes results in a stator with the desired magnetic performance. In insert molding, the engaging portion 13 is provided with a curved surface 13a, a straight surface 13b, and a convex surface 13c in sequence from the side edge portion 11Aa1 toward the yoke portion 11B, thereby allowing the resin to flow smoothly toward the yoke portion 11B.
[0011] (Feature composition) In the stator according to the present invention, the segmented core has a plurality of stacked core plates, and the engaging portion can be provided at a position spaced by the thickness of one of the core plates from the furthest side edge.
[0012] (effect) When multiple core plates are stacked to form a segmented core, each core plate is formed by punching out a sheet material. In this case, if a convex engaging portion is provided at the end of the core plate, it becomes prone to excessive deformation during punching. Therefore, by providing the engaging portion at a position separated by the thickness of one core plate, the shape retention during molding is improved. Furthermore, by forming the engaging portion away from the side edge of the core plate, the insulator can be securely engaged with the engaging portion, and the insulator's tendency to shift along the surface of the teeth portion can be prevented from both sides of the engaging portion. Thus, the position-holding function of the insulator is further improved.
[0013] (Feature composition) In the stator according to the present invention, it is advantageous that the insulator provided on the surface of the yoke portion that is adjacent to and perpendicular to the side surface of the teeth portion is formed to be thinner as it approaches the edge of the yoke in the region away from the side surface.
[0014] (effect) When molding an insulator so as to surround the split core, it is reasonable to make the edge of the insulator thin. The yoke edge is not likely to be subjected to a large external force by the winding of the coil and does not require such a large thickness to maintain insulation. Also, to make the stator compact, it is preferable to minimize the volume occupied by the insulator. Further, when performing insert molding, it is necessary to reliably fill the resin up to the end portion. For that purpose, it is preferable to reduce the filling amount at the end portion. Therefore, in this configuration, for the insulator formed in the yoke portion, in the region away from the side surface, it is formed thinner as it approaches the yoke edge, improving insulation and moldability, and further realizing compactification.
[0015] (Characteristic configuration) In the stator according to the present invention, in the region provided on the side surface of the teeth portion of the insulator, a plurality of groove-shaped portions can be formed in a direction orthogonal to the extending direction of the winding along the extending direction of the winding.
[0016] (Effect) With this configuration, the thickness of the insulator covering the surface of the teeth portion can be made thin, and the resin material can be reliably filled. The thinner the insulator as long as it can exhibit the insulation function between the coil and the teeth portion is better. The number of winding turns of the coil can be ensured and the stator can be made compact, and the resin material used can also be reduced, achieving cost reduction.
[0017] However, when thinning the insulator, the flow area of the resin decreases during insert molding, and there is a possibility of filling failure. Therefore, in this configuration, by forming the groove-shaped portions along the extending direction of the winding, a portion with a large cross-sectional area and a portion with a small cross-sectional area are mixed. In this case, since the fluidity of the resin can be ensured at the portion with a large cross-sectional area, the flow of the resin is also ensured in the adjacent region with a small cross-sectional area due to the viscosity of the resin. Therefore, the region of a predetermined area of the split core can be covered with the insulator using a small amount of resin as a whole.
[0018]
[0019]
[0020]
[0021] (Characteristic configuration) The stator according to the present invention In this case, the gate remains is advantageously provided with an annular recess and a gate remnant protruding from the center of the recess.
[0022]
[0023] Gate site If the shape is provided with a convex portion at the center of the concave portion, the protruding length of the convex portion from the surface of the insulator, that is, the surface around the concave portion, can be shortened. Therefore, it is possible to suppress the protrusion of unnecessary portions from the surface of the insulator, and it is possible to eliminate the influence on the winding operation of the coil and the like.
[0024] Furthermore, the location where the gate portion trace is formed is the top surface or the bottom surface of the tooth portion, and at this portion, the winding of the coil has a predetermined curvature. Therefore, the winding often tends to float from the surface of the tooth portion, specifically, the surface of the insulator. Therefore, by providing the gate portion trace at this position, interference between the convex portion and the winding of the coil is less likely to occur.
Brief Description of the Drawings
[0025] [Figure 1] Cross-sectional view of a rotating electrical machine [Figure 2] Plan view of a core plate [Figure 3] Cross-sectional view of a split core and an insulator [Figure 4] Perspective view of a split core and an insulator [Figure 5] Bottom view of a split core and an insulator [Figure 6] Top view of a split core and an insulator
Embodiments for Carrying Out the Invention
[0026] Embodiments of the stator according to the present invention will be described below with reference to the drawings. In this embodiment, as an example of a rotating electric machine equipped with a stator, it will be described as an actuator used in an automobile brake system. However, the invention is not limited to the following embodiment, and various modifications are possible without departing from the gist of the invention.
[0027] (Basic configuration) As shown in Figure 1, the rotating electric machine 100 comprises an annular stator 1, a rotor 2 located radially inward of the stator 1, a rotating shaft 3 that rotates the rotor 2, and a magnet unit 4 fixed to a different part of the rotating shaft 3 from the rotor 2 and rotating integrally with the rotating shaft 3. The rotating electric machine 100 is housed in a housing 5, and a sensor unit 6 is fixed to the housing 5 at a position opposite the magnet unit 4.
[0028] The stator 1 is formed by stacking core plates 11 (see Figure 2), each made of multiple electromagnetic steel sheets, along the axial direction of the rotating shaft 3. The stator 1 also has multiple (12 in this embodiment) segmented cores 1A that are divided along the circumferential direction. The windings of the coil 7 are wound around the teeth portion 11A of each segmented core 1A, divided into three phases (U phase, V phase, and W phase). Details of the stator 1 will be described later.
[0029] The rotor 2 is formed by stacking multiple electromagnetic steel sheets along the axial direction of the rotating shaft 3. Multiple permanent magnets 21 are fixed to the rotor 2 in a position opposite the stator 1. The multiple permanent magnets 21 have either north poles or south poles arranged along the circumferential direction, and the magnetic flux generated by energizing the coil 7 flows between the stator 1 and the rotor 2, causing the rotor 2 to rotate together with the rotating shaft 3.
[0030] Furthermore, as the magnet unit 4 rotates together with the rotation shaft 3, the sensor unit 6 detects the rotation speed of the rotation shaft 3. In other words, the magnet 42 of the magnet unit 4 is provided to detect the rotation speed of the rotation shaft 3. Here, the rotation speed of the rotation shaft 3 is a concept that includes the rotational speed per unit time and the rotation angle of the rotation shaft 3. The sensor unit 6 includes a magnetic flux detection element 61 such as a Hall IC, and the rotation speed of the rotation shaft 3 can be detected by the pulse signal output from this magnetic flux detection element 61.
[0031] The magnet unit 4 includes an annular fixing member 41 attached to the rotating shaft 3 of the rotating electric machine 100, and at least one magnet 42 attached to the fixing member 41 for detecting the rotational speed of the rotating shaft 3. In this embodiment, the fixing member 41 is made of an iron plate, and the magnet 42 includes permanent magnets arranged in an annular shape. Note that the magnet 42 may be made of multiple permanent magnets divided in the circumferential direction, rather than being made of a single permanent magnet.
[0032] (Detailed stator configuration) As shown in Figures 1 to 4, the stator 1 comprises a divided core 1A arranged around a rotor 2 having a rotating shaft 3, having a teeth portion 11A around which the windings of the coil 7 are wound and a yoke portion 11B formed as a bulge at the end of the teeth portion 11A, and an insulator 12 molded to cover at least a portion of the surface of the teeth portion 11A and at least a portion of the surface of the yoke portion 11B. On the surface of the teeth portion 11A, a pair of side surfaces 11Aa facing adjacent divided cores 1A are provided with convex engaging portions 13 that engage with the insulator 12. The divided core 1A is constructed by stacking a plurality of core plates 11, and each core plate 11 is formed by punching out a sheet material. The insulator 12 is made of a material in which glass filler is mixed into resin at a filling rate of 10 to 30%.
[0033] As shown in Figures 2 and 3, the yoke portion 11B is formed to bulge outwards from the end of the tooth portion 11A along the circumferential direction. A positioning recess 11Ba is formed near the center of the yoke portion 11B, to which a part of an insert mold (not shown) abuts, and a pair of flow holes 11Bb are formed on either side of the positioning recess 11Ba to allow the resin to flow across the multiple core plates 11. In addition, a notch 11Bc1 is formed on one of the two sides of the yoke portion 11B, and a projection 11Bc2 is formed on the other side. As a result, the notches 11Bc1 and projections 11Bc2 of the core plates 11 of circumferentially adjacent segmented cores 1A fit together, connecting the multiple segmented cores 1A to form an annular stator 1.
[0034] In this embodiment, the stator 1 has an insulator 12 integrally molded around the divided core 1A to ensure insulation between the divided core 1A and the coil 7. At the same time, a pair of convex engaging portions 13 that engage with the insulator 12 are provided on the surface of the teeth portion 11A, on the side surfaces 11Aa facing adjacent divided cores 1A. This makes it difficult for the insulator 12 to move or separate from the divided core 1A when laying coil windings. The divided core 1A may be made by stacking multiple core plates 11 or by compressing powder into a compacted core.
[0035] As shown in Figure 2, the engagement portion 13 of the stator 1 extends in an elongated shape along the side edge 11Aa1, on the side of the edge 11Aa1 that is furthest from the yoke portion 11B. Specifically, the segmented core 1A has multiple stacked core plates 11, and the engagement portion 13 is provided at a position separated from the furthest side edge 11Aa1 by the thickness of one of the core plates 11.
[0036] In this embodiment, the side surface 11Aa of the core plate 11 does not have a flange facing the rotor 2 on the side edge 11Aa1, and is configured with a shape in which only the engaging portion 13 protrudes slightly. This engaging portion 13 has a curved surface 13a that rises concavely from the side of the side edge 11Aa1 of the side surface 11Aa with a predetermined curvature, a straight surface 13b that extends from the curved surface 13a along the side edge 11Aa1, and a convex surface 13c that has a smaller slope from the straight surface 13b toward the yoke portion 11B.
[0037] In this way, by having the engaging portion 13 extend along the side edge 11Aa1 furthest from the yoke portion 11B among the edges of the side surface 11Aa, the engagement length between the divided core 1A and the insulator 12 can be secured, and the position-holding function of the insulator 12 can be enhanced. Furthermore, the convex engaging portion 13 provided on the divided core 1A may affect the magnetic field formation state by the stator 1. Even in that case, since the engaging portion 13 is located spaced apart from the yoke portion 11B, the influence on magnetic field formation can be minimized.
[0038] In particular, because the convex engaging portion 13 is provided at the end of the core plate 11, the area around the engaging portion 13 is prone to deformation when punching out the sheet material. However, by providing the engaging portion 13 at a position separated by the thickness of one core plate 11, the shape retention during molding is improved. Furthermore, by forming the engaging portion 13 away from the side edge portion 11Aa1 of the core plate 11, the insulator 12 can reliably engage with the engaging portion 13, and both sides of the engaging portion 13 can prevent the insulator 12 from shifting along the surface of the teeth portion 11A. Moreover, by providing a curved surface 13a, a straight surface 13b, and a convex surface 13c in sequence from the side edge portion 11Aa1 toward the yoke portion 11B, the resin can be smoothly flowed toward the yoke portion 11B.
[0039] When molding the insulator 12 to surround the segmented core 1A, it is reasonable to make the edges of the insulator 12 thin. The edges are less likely to be subjected to large external forces due to the winding of the coil 7, and therefore do not require much thickness to maintain insulation. In addition, in order to make the stator 1 compact, it is preferable to minimize the volume occupied by the insulator 12. Furthermore, in insert molding, it is necessary to ensure that the resin is filled all the way to the ends. For this reason, it is preferable to reduce the amount of resin filled at the ends.
[0040] As shown in Figure 3, in this embodiment, the stator 1 has an insulator 12 provided on the surface of the yoke portion 11B that is adjacent to and perpendicular to the side surface 11Aa of the teeth portion 11A. The insulator 12 is formed to be thinner as it approaches the edge of the yoke in the region away from the side surface 11Aa. This thin portion 12a is made progressively thinner as it approaches the edge of the yoke, forming a stepped portion 12a1 on the thin portion 12a. As a result, the winding at the end of the winding process comes into contact with the stepped portion 12a1, making it less likely to shift position on the surface of the yoke portion 11B and ensuring reliable winding of the winding. This improves insulation and moldability, and also enables a more compact design.
[0041] Furthermore, in the stator 1, multiple groove-shaped portions 12b are formed in a region on the side surface 11Aa of the tooth portion 11A of the insulator 12, in a direction perpendicular to the direction of extension of the coil winding 7. This makes it possible to reduce the thickness of the insulator 12 covering the surface of the tooth portion 11A, as described below, and to reliably fill it with resin material.
[0042] The insulator 12 should be as thin as possible, as long as it provides insulation between the coil 7 and the teeth portion 11A. This allows for sufficient windings of the coil 7, makes the stator 1 more compact, and reduces the amount of resin material used, thus lowering costs. However, thinning the insulator 12 may reduce the surface area for resin flow during insert molding, potentially leading to poor filling.
[0043] Therefore, in this embodiment, the groove-shaped portion 12b is formed along the extension direction of the winding of the coil 7, creating a mixture of portions with large and small cross-sectional areas. In this case, since the fluidity of the resin can be ensured in the portions with large cross-sectional areas, the viscosity of the resin ensures that the resin flows even in the adjacent regions with small cross-sectional areas. Thus, a predetermined area of the divided core 1A can be covered with the insulator 12 using a relatively small amount of resin overall.
[0044] Generally, when forming a resin layer around a segmented core 1A by insert molding, the portion of the segmented core 1A that is not covered by resin is often retained, and the portion that is covered by resin does not have an exposed part of the segmented core 1A. In this case, since the segmented core 1A is pressed by the injected resin, even if the segmented core 1A is composed of multiple core plates 11, the core plates 11 are pressed against each other, eliminating the gaps between the core plates 11.
[0045] However, in this embodiment, as shown in Figure 5, the stator 1 is provided with an elongated hole 14 on a flat bottom surface 12A located between a pair of side surfaces 11Aa of the teeth portion 11A of the insulator 12, where a part of the insert molding die (not shown) of the insulator 12 presses against the divided core 1A. In addition, one of the core plates 11 on the bottom surface 12A side is provided with an alignment hole 11Ab for the insert molding die at a position that overlaps with the hole 14 in a plan view (see Figure 2).
[0046] In this way, by deliberately pressing the surface of the core plate 11 directly with the insert mold, unexpected movement of the core plate 11 during resin injection is reliably prevented. As a result, holes 14 remain in the insulator 12 of the completed stator 1. Although these holes 14 themselves do not affect the magnetic properties of the stator 1, the stator 1 with the desired magnetic performance can be obtained as a result of being molded in a process that leaves the holes 14.
[0047] As shown in Figure 6, a gate mark 15 is provided on the flat top surface 12B of the insulator 12, between a pair of side surfaces 11Aa of the teeth portion 11A, on the side where the hole portion 14 is not formed. This gate mark 15 comprises an annular recess 15a and a gate remaining portion 15b protruding from the center of the recess 15a. This gate remaining portion 15b is the gate portion through which resin flows from the insert mold, and the recess 15a is a part of the insert mold that abuts against the core plate 11.
[0048] In this way, a gate mark 15 (a gate portion that serves as a resin injection port) is provided at a position opposite to the area where the hole 14 for holding the divided core 1A is located, so that when resin is injected, the pressure of the resin is reliably received by the pressing portion (recess 15a) of the insert mold located in the hole 14. This prevents the divided core 1A from moving.
[0049] Furthermore, if the shape of the gate portion trace 15 is such that a protrusion (gate remaining portion 15b) is provided in the center of the recess 15a, the length of the protrusion from the surface of the insulator 12, that is, the surface around the recess 15a, can be shortened. Therefore, it is possible to suppress the protrusion of unnecessary parts from the surface of the insulator 12, and eliminate any impact on the winding work of the coil 7.
[0050] Furthermore, the gate mark 15 is formed on the top surface 12B or bottom surface 12A of the teeth portion 11A, and the winding of the coil 7 has a predetermined curvature at this point. As a result, the winding often tends to float slightly above the surface of the teeth portion 11A, specifically the surface of the insulator 12. Therefore, by providing the gate mark 15 at this position, interference between the protrusion (remaining gate portion 15b) and the winding of the coil 7 becomes even less likely.
[0051] [Other embodiments] (1) In the above-described embodiment, one engaging portion 13 is provided on each of the pair of side surfaces 11Aa of the teeth portion 11A, but there may be two or more. Furthermore, the shape and arrangement of the engaging portion 13 may be in any form, but it is preferable that a portion of the pair of side surfaces 11Aa of the teeth portion 11A has a predetermined length along the side edge portion 11Aa1. (2) In the embodiment described above, a stepped portion 12a1 is provided on the thin-walled portion 12a of the insulator 12, but the stepped portion 12a1 may be omitted, or it may be inclined instead of stepped portion 12a1. (3) In the above-described embodiment, a groove-shaped portion 12b is provided in the region on the side surface 11Aa of the teeth portion 11A of the insulator 12, along the direction in which the winding of the coil 7 extends. This groove-shaped portion 12b may be omitted and replaced with a flat surface, or the groove-shaped portion 12b may be used as a guide for the winding of the coil 7 to engage with. (4) In the embodiments described above, gate marks 15 or holes 14 are provided on the top surface 12B or bottom surface 12A of the insulator 12, but at least one of them may be omitted. Furthermore, the number, arrangement, and shape of the gate marks 15 or holes 14 are not particularly limited. [Industrial applicability]
[0052] The present invention can be used for a stator having a segmented core arranged around a rotor having a rotating shaft. [Explanation of symbols]
[0053] 1 stater 1A Split Core 2 rotors 3 rotation axes 7 coils 11 Core Plates 11A Teeth section 11Aa Side view 11Aa1 Side edge 11B Yoke section 12 Insulators 12A bottom 12B Top surface 12b Groove 13 Engaging part 14 Hole 15 Gate site 15a recess 15b Remaining part of the gate
Claims
1. A divided core is arranged around a rotor having a rotating shaft, and has a toothed portion around which the coil windings are wound, and a yoke portion formed as a bulge at the end of the toothed portion. The system includes an insulator molded to cover at least a portion of the surface of the teeth portion and at least a portion of the surface of the yoke portion, On the surface of the teeth portion, a pair of adjacent side surfaces facing the divided core are provided with a convex engaging portion that extends along the side edge furthest from the yoke portion and engages with the insulator. The engagement portion has a curved surface that rises concavely from the side edge with a predetermined curvature, a straight surface that extends from the curved surface along the side edge, and a convex surface from the straight surface that gradually decreases in gradient toward the yoke portion. A stator in which a hole is provided on one of the top or bottom surfaces of the insulator, which is located between a pair of the side surfaces of the teeth portion, and a gate mark from the insert molding process is provided on the other of the top or bottom surfaces.
2. The stator according to claim 1, wherein the divided core has a plurality of stacked core plates, and the engaging portion is provided at a position spaced by the thickness of one of the core plates from the furthest side edge.
3. The stator according to claim 1 or 2, wherein the insulator provided on the surface of the yoke portion that is adjacent to and perpendicular to the side surface of the teeth portion is formed to be thinner as it approaches the edge of the yoke in a region away from the side surface.
4. The stator according to claim 1 or 2, wherein in the region provided on the side surface of the teeth portion of the insulator, a plurality of groove-shaped portions are formed in a direction perpendicular to the extension direction of the winding along the extension direction.
5. The stator according to claim 1 or 2, wherein the gate portion remains include an annular recess and a gate portion protruding from the center of the recess.
Citation Information
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