Armature and rotating electric machine

The armature and rotating electric machine design addresses durability against vibration by using an armature core with insulators and conductive terminals to distribute stress, improving reliability and stability.

JP7786293B2Active Publication Date: 2025-12-16DENSO CORP
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Patent Information

Application Number
JP2022068844
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-04-19
Publication Date
2025-12-16
Estimated Expiration
2042-04-19

AI Technical Summary

Technical Problem

Rotating electrical machines, particularly those mounted on vehicles, face challenges in ensuring durability against vibration.

Method used

The armature and rotating electric machine design includes an armature core with spaced teeth, insulators, and conductive terminals with crimping and connection portions that distribute stress concentration points to enhance durability against vibration.

Benefits of technology

The design ensures improved reliability and durability against vibration by preventing terminal shifting and stress concentration, thereby enhancing the motor's operational stability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To ensure durability against vibration.SOLUTION: A stator 14 comprises: a stator core 20 having a plurality of teeth 34; an insulator 22 attached to the stator core 20; a plurality of coils 26 formed by winding conductive winding 24 around the plurality of teeth 34; and a first terminal 28. The first terminal 28 is formed by using a conductive member, and includes a first insulator stationary part 52, a first connection part 54, and a second connection part 78. The first connection part 54 includes a caulking part 66 that extends from the first insulator stationary part 52 and to which a terminal part 50A of the coil is fixed. The second connection part 78 has a power supply-side connection part 92 that extends from the first insulator stationary part 52 and is connected to a side of a power supply, and includes a first bent part 82 and a second bent part 86 at which stress is concentrated with the power supply-side connection part 92 connected to the side of the power supply.SELECTED DRAWING: Figure 7
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Description

[Technical Field]

[0001] The present disclosure relates to an armature and a rotating electric machine. [Background technology]

[0002] Patent Document 1 below discloses a rotating electric machine that is an inner rotor type brushless motor. The rotating electric machine described in this document includes a plurality of stator poles to which coils are attached, and a plurality of conductive members. The plurality of conductive members and the coil ends of the plurality of coils are electrically connected at a plurality of connection parts. Furthermore, these connection parts are arranged in the inter-pole gaps between the stator poles. This allows for the rotating electric machine to be made smaller in the axial direction. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2020-99174 Summary of the Invention [Problem to be solved by the invention]

[0004] Incidentally, it is desirable for rotating electrical machines mounted on vehicles and the like to have durability against vibration.

[0005] In consideration of the above, an object of the present disclosure is to provide an armature and a rotating electric machine that can ensure durability against vibration. [Means for solving the problem]

[0006] The armature (14) that solves the above problem includes an armature core (20) having a plurality of teeth (34) spaced apart in the circumferential direction, an insulator (22) attached to the armature core, a plurality of coils (26) formed by winding conductive windings (24) around each of the teeth, an insulator fixing portion (52) formed using a conductive member and fixed to the insulator, a first connection portion (54) extending from the insulator fixing portion and having a crimping portion (66) to which an end portion (50A) of the coil is fixed, and a second connection portion (78) extending from the insulator fixing portion or the first connection portion and having a power supply side connection portion (92) connected to a power supply side, and having stress concentration portions (82, 86, 96) at which stress is concentrated when the power supply side connection portion is connected to the power supply. The rotating electric machine (10) also includes one of a stator (14) and a rotor (12) that includes the armature, and the other of a stator and a rotor that has a magnet (18) that is arranged radially opposite the armature.

[0007] By configuring it in this way, durability against vibration can be ensured. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a schematic view of a motor according to a first embodiment as viewed from the axial direction. [Figure 2] FIG. [Figure 3] FIG. [Figure 4] FIG. 3 is an enlarged plan view showing a portion of the stator where a first terminal is provided. [Figure 5] FIG. 2 is a perspective view of the first terminal as seen from one circumferential side. [Figure 6] FIG. 2 is a perspective view of the first terminal as seen from the radially inner side. [Figure 7]3 is a perspective view showing a cross section of the stator taken along the axial and radial directions at a portion corresponding to a first terminal. FIG. [Figure 8] FIG. 2 is a perspective view showing the second terminal. [Figure 9] FIG. 4 is a side view of the second terminal as seen from the radially inner side. [Figure 10] FIG. 10 is a perspective view of a first terminal of a motor according to a second embodiment, as viewed from the other circumferential side. [Figure 11] FIG. 11 is a perspective view of a first terminal of a motor according to a third embodiment, as viewed from the other circumferential side. [Figure 12] FIG. 11 is a perspective view of a first terminal of a motor according to a fourth embodiment, as viewed from the other circumferential side. [Figure 13] FIG. 11 is a perspective view of a first terminal of a motor according to a fifth embodiment, as viewed from the other circumferential side. DETAILED DESCRIPTION OF THE INVENTION

[0009] A motor 10 according to a first embodiment of the present disclosure will be described using Figures 1 to 9. Note that the arrow Z direction, arrow R direction, and arrow C direction shown as appropriate in the figures respectively indicate one side in the rotational axis direction, the outer side in the rotational radial direction, and one side in the rotational circumferential direction of a rotor 12, which will be described later. Furthermore, hereinafter, when simply referring to an axial direction, a radial direction, or a circumferential direction, this refers to the rotational axis direction, rotational radial direction, or rotational circumferential direction of the rotor 12, unless otherwise specified. Furthermore, the motor 10 of this embodiment and the motors of each embodiment described later are examples of rotating electric machines.

[0010] 1, the motor 10 of this embodiment is an inner rotor brushless motor. The motor 10 includes a stator 14 as an armature and a fixed element, and a rotor 12 as a rotor disposed radially inside the stator 14.

[0011] The rotor 12 includes a rotor core 16 fixed to a rotating shaft (not shown) and magnets 18 fixed to the radially outer surface of the rotor core 16. One example of the magnets 18 is a ring magnet formed in an annular shape. In this magnet 18, portions whose radially outer side is the north pole and portions whose radially outer side is the south pole are alternately arranged along the circumferential direction. Note that a configuration in which a plurality of magnets 18 are fixed to the radially outer surface of the rotor core 16 may also be used. In this configuration, magnets 18 whose radially outer side is the north pole and magnets 18 whose radially outer side is the south pole are alternately arranged along the circumferential direction.

[0012] 2, the stator 14 includes a stator core 20 as an armature core, an insulator 22 attached to the stator core 20, and a plurality of coils 26 formed by winding conductive windings 24 around the stator core 20. Also, as shown in FIGS. 2 and 3, the stator 14 includes three first terminals 28 and one second terminal 30 as terminals to which end portions of the coils 26 are connected.

[0013] The stator core 20 is a laminated core formed by laminating core constituent plates in the axial direction, the core constituent plates being formed by punching steel plates, which are soft magnetic materials, into a predetermined shape. The stator core 20 includes an annular portion 32 formed in an annular shape and a plurality of teeth 34 protruding radially inward from the annular portion 32. As shown in FIG. 3 , in this embodiment, 15 teeth 34 are arranged at equal intervals along the circumferential direction.

[0014] 2 and 3, the insulator 22 is made of an insulating resin material. The insulator 22 includes an annular covering portion 36 disposed along the radially inner surface of the annular portion 32 of the stator core 20.

[0015] The insulator 22 also includes a plurality of tooth covering portions 38 extending radially inward from the annular covering portion 36. The number of tooth covering portions 38 matches the number of teeth 34 of the stator core 20. Each tooth covering portion 38 covers the portion of each tooth 34 where a coil 26, described below, is formed.

[0016] The insulator 22 also has a flange portion 40 that protrudes axially from the radially inner end of the tooth covering portion 38 in the opposite direction to the teeth 34. The coil 26, which will be described later, is arranged around the tooth covering portion 38 and between the flange portion 40 and the annular covering portion 36. The insulator 22 of this embodiment has a structure divided into two parts in the axial direction.

[0017] As shown in FIG. 3 , the insulator 22 includes three first terminal support portions 42 that support three first terminals 28 (described later). The three first terminal support portions 42 are arranged along one axial end face of the annular portion 32 of the stator core 20. The one circumferential end of each first terminal support portion 42 is arranged at the same circumferential position as the tooth 34 on one circumferential side of a pair of circumferentially adjacent teeth 34. The other circumferential end of each first terminal support portion 42 is arranged at the same circumferential position as the tooth 34 on the other circumferential side of a pair of circumferentially adjacent teeth 34. Furthermore, the circumferential center of each first terminal support portion 42 is arranged at a circumferential position corresponding to the space between the pair of circumferentially adjacent teeth 34. In this embodiment, the three first terminal support portions 42 are arranged side by side in the circumferential direction at positions corresponding to the four circumferentially adjacent teeth 34. Furthermore, a first terminal fitting portion 44 is formed as a terminal fitting portion on each of the three first terminal support portions 42. The first terminal fitting portion 44 is formed in a recessed shape that is open on one axial side.

[0018] The insulator 22 also includes a second terminal support portion 46 that supports a second terminal 30 (described later). The second terminal support portion 46 is disposed along one axial end face of the annular portion 32 of the stator core 20. In this embodiment, the second terminal support portion 46 is provided over an area corresponding to four circumferentially adjacent teeth 34. The second terminal support portion 46 is disposed on one circumferential side of the first terminal support portion 42 that is disposed furthest circumferentially of the three first terminal support portions 42. The second terminal support portion 46 is disposed circumferentially adjacent to the first terminal support portion 42 that is disposed furthest circumferentially of the three first terminal support portions 42. The second terminal support portion 46 also includes a second terminal fitting portion 48. The second terminal fitting portion 48 is formed in a recessed shape that is open on one axial side. The detailed configuration of the second terminal fitting portion 48 will be described later.

[0019] The coils 26 are formed by winding wires 24, such as copper wire, around the teeth 34 of the stator core 20 via insulators 22. In this embodiment, five coils 26 constituting the U phase, five coils 26 constituting the V phase, and five coils 26 constituting the W phase are each formed around a predetermined tooth 34. The U-phase coils 26, V-phase coils 26, and W-phase coils 26 are arranged in this order along the circumferential direction. The five coils 26 constituting the U phase, the five coils 26 constituting the V phase, and the five coils 26 constituting the W phase are each connected in series.

[0020] Here, one end of the winding 24 forming the five U-phase coils 26 will be referred to as a U-phase first terminal portion 50A, which is a terminal portion of the coils 26. The other end of the winding 24 forming the five U-phase coils 26 will be referred to as a U-phase second terminal portion 50B, which is a terminal portion of the coils 26.

[0021] One end of the winding 24 forming the five V-phase coils 26 will be referred to as a V-phase first terminal portion 50A, which is a terminal portion of the coils 26. The other end of the winding 24 forming the five V-phase coils 26 will be referred to as a V-phase second terminal portion 50B, which is a terminal portion of the coils 26.

[0022] One end of the winding 24 forming the five W-phase coils 26 will be referred to as a W-phase first terminal portion 50A, which is a terminal portion of the coils 26. The other end of the winding 24 forming the five W-phase coils 26 will be referred to as a W-phase second terminal portion 50B, which is a terminal portion of the coils 26.

[0023] 2, 3, and 4, the U-phase first terminal portion 50A, the V-phase first terminal portion 50A, and the W-phase first terminal portion 50A are respectively connected to the three first terminals 28. Furthermore, the U-phase second terminal portion 50B, the V-phase second terminal portion 50B, and the W-phase second terminal portion 50B are connected to the second terminal 30.

[0024] 5 and 6, the first terminal 28 is formed by pressing a copper plate, which is a conductive member. The first terminal 28 includes a first insulator fixing portion 52, which serves as an insulator fixing portion and is formed in the shape of a rectangular plate with its thickness direction in the radial direction. The first terminal 28 also includes a first connecting portion 54 that extends radially inward from an end of the first insulator fixing portion 52 on the other axial side in the circumferential center thereof. The first terminal 28 also includes a second connecting portion 78 that extends radially inward from an end of the first insulator fixing portion 52 on the other axial side and is disposed adjacent to the first connecting portion 54.

[0025] The first insulator fixing portion 52 includes a base plate portion 56 formed in a rectangular shape with the circumferential direction as the longitudinal direction and the axial direction as the transverse direction when viewed from the radial direction. The first insulator fixing portion 52 also includes a plurality of (two in this embodiment) press-fitting portions 58 that protrude toward one circumferential side from a portion on the other axial side at one circumferential end of the base plate portion 56. The first insulator fixing portion 52 also includes a plurality of (two in this embodiment) press-fitting portions 58 that protrude toward the other circumferential side from a portion on the other axial side at the other circumferential end of the base plate portion 56. The press-fitting portions 58 have a sawtooth shape when viewed from the radial direction. The first insulator fixing portion 52 also includes backlash-reducing projections 60 that protrude radially inward from portions on the other axial side at both circumferential end portions of the base plate portion 56.

[0026] The first connecting portion 54 includes a base plate portion 62 formed in a rectangular shape with the radial direction as the longitudinal direction and the circumferential direction as the transverse direction when viewed from the axial direction. The first connecting portion 54 also includes an extension portion 64 that extends from one circumferential end of the radially inner end of the base plate portion 62 toward one circumferential side, and the end opposite the base plate portion 62 is folded back toward the other circumferential side. The extension portion 64, together with the tip of the base plate portion 62, forms a crimped portion 66 that is open on the other circumferential side. As shown in FIG. 4 , the first terminal portion 50A is clamped by the crimped portion 66, thereby connecting the first terminal portion 50A to the crimped portion 66. As shown in FIGS. 5 and 6 , a portion of the base plate portion 62 radially outward of the crimped portion 66 defines a first intermediate portion 67.

[0027] The second connection portion 78 is disposed on the other circumferential side of the first connection portion 54 and is provided independently of the first connection portion 54. That is, the second connection portion 78 is provided at a circumferential distance from the first connection portion 54. The second connection portion 78 includes a first leg portion 80 that bends and extends radially inward from an end portion on the other axial side of the first insulator fixing portion 52. In this embodiment, the radial length of the first leg portion 80 is longer than the radial length of the base plate portion 62 of the first connection portion 54. The end portion of the first leg portion 80 on the first insulator fixing portion 52 side forms a first bent portion 82 that is bent in an L-shape and serves as a stress concentration portion. The second connection portion 78 also includes a second leg portion 84 that extends radially inward from the radially inner end of the first leg portion 80. The boundary between the second leg portion 84 and the first leg portion 80 is a second bent portion 86 that is bent in an L-shape and serves as a stress concentration portion. The second leg portion 84, together with the first leg portion 80, constitutes a second intermediate portion 88. In this embodiment, the second intermediate portion 88 is thinner than the first intermediate portion 67 of the first connection portion 54. The second connection portion 78 also includes a widened portion 80 that extends from the other axial end of the second leg portion 84 toward one circumferential side. The second connection portion 78 also includes a power supply side connection portion 92 that extends radially inward from the other axial end of the second leg portion 84 and the other axial end of the widened portion 80. Here, in this embodiment, as shown in FIG. 6 , most of the widened portion 80 and most of the power supply side connection portion 92 are located at the same circumferential position as the crimped portion 66 of the first connection portion 54.

[0028] As shown in Fig. 4, the first insulator fixing portion 52 of the first terminal 28 is inserted into the first terminal fitting portion 44 of the insulator 22. As a result, the first insulator fixing portion 52 is fixed to the insulator 22, and the first terminal 28 is supported by the insulator 22. Furthermore, with the first insulator fixing portion 52 inserted into the first terminal fitting portion 44, the multiple press-fit fitting portions 58 (see Fig. 5) of the first insulator fixing portion 52 are press-fitted into the inner wall of the first terminal fitting portion 44. This keeps the first insulator fixing portion 52 fixed to the insulator 22. 2, 3, 4, and 5, when the first insulator fixing portion 52 is fixed to the insulator 22, the multiple press-fit portions 58 on one circumferential side of the first insulator fixing portion 52 are arranged at the same circumferential positions as the teeth 34 on one circumferential side of a pair of circumferentially adjacent teeth 34. Similarly, the multiple press-fit portions 58 on the other circumferential side of the first insulator fixing portion 52 are arranged at the same circumferential positions as the teeth 34 on the other circumferential side of a pair of circumferentially adjacent teeth 34.

[0029] Also, as shown in Figures 3, 4 and 7, when the first insulator fixing portion 52 is fixed to the insulator 22, the first connecting portion 54 is positioned in the center of a pair of circumferentially adjacent coils 26.

[0030] Furthermore, in a state in which the first insulator fixing portion 52 is fixed to the insulator 22, the second connecting portion 54 is disposed between a pair of circumferentially adjacent coils 26. Furthermore, the other axial end of the second leg portion 84 constituting the other axial end of the second connecting portion 54, the widened portion 80, and the power supply side connecting portion 92 protrude from between the pair of circumferentially adjacent coils 26 toward the other axial side.

[0031] 7, a power supply terminal 94 connected to the power supply side is provided on the other axial side of the stator 14. In this embodiment, three power supply terminals 94 are provided corresponding to the three first terminals 28, and the power supply terminals 94 are formed in a rectangular plate shape with their thickness direction in the axial direction. The power supply connection portions 92 of the second connection portions 78 of the three first terminals 28 are in contact with the three power supply terminals 94, respectively, and are joined by welding.

[0032] Furthermore, when the power supply side connection portion 92 of the second connection portion 78 is in contact with the power supply side terminal 94, a load toward one axial direction is input to the power supply side connection portion 92 of the second connection portion 78. As a result, the second connection portion 78 is flexibly deformed toward one axial side. Furthermore, in the present embodiment, when the second connection portion 78 is flexibly deformed toward one axial side, stress is concentrated in the first bent portion 82 and the second bent portion 86, and the first bent portion 82 and the second bent portion 86 are plastically deformed. Note that in the present embodiment, because a load toward one axial side is input to the power supply side connection portion 92 of the second connection portion 78, the stress generated in the first bent portion 82 is higher than the stress generated in the second bent portion 86.

[0033] 4, the first terminal portion 50A includes a first portion 68 extending from the radially outer end of the coil end 26A on one axial side toward the other circumferential side. The first terminal portion 50A also includes a second portion 70 extending from the other circumferential side of the first portion 68 toward the radially inner side (the side opposite the annular portion 32 of the stator core 20). A slack portion 72 bent in an L-shape from the first portion 68 to the second portion 70 is formed at the boundary between the first portion 68 and the second portion 70 in the first terminal portion 50A. The second portion 70 of the first terminal portion 50A described above is connected to the crimped portion 66 of the first terminal 28. In a configuration in which the first portion 68 is pulled out from the radially inner end of the coil end 26A on one axial side toward the other circumferential side, the second portion 70 may be formed to extend from the other circumferential side of the first portion 68 toward the radially outer side (toward the annular portion 32 of the stator core 20). The slack portion 72 may also have a gently curved shape.

[0034] 4 and 7, when the second portion 70 of the first terminal portion 50A is connected to the crimped portion 66 of the first terminal 28, the second portion 70 of the first terminal portion 50A is disposed along one axially facing surface of the base plate portion 62 of the first connecting portion 54. The first portion 68, the second portion 70, and the slack portion 72 of the first terminal portion 50A are disposed between the coil ends 26A on one axially facing side of a pair of circumferentially adjacent coils 26.

[0035] 8 and 9, the second terminal 30 is formed by pressing a copper plate, which is a conductive material, similarly to the first terminal 28. The second terminal 30 includes a second insulator fixing portion 74, which serves as an insulator fixing portion and is formed in a plate shape extending in the circumferential direction with the radial direction as its thickness direction.

[0036] Here, the central portion of the second insulator fixing portion 74 in the circumferential direction will be referred to as a central fixing portion 74A, and the portions on one and the other sides in the circumferential direction of the second insulator fixing portion 74 will be referred to as end-side fixing portions 74B.

[0037] The central fixing portion 74A is configured similarly to the first insulator fixing portion 52 of the first terminal 28 (see Figure 5), except that it does not have multiple press-fitting portions 58 and that connecting piece portions 76 extend from both circumferential sides on one axial side.

[0038] The end fixing portion 74B on one circumferential side has a configuration similar to the first insulator fixing portion 52 of the first terminal 28 (see FIG. 5 ), except that a connecting piece 76 extends from the end portion on one axial side and the other circumferential side. The connecting piece 76 of the end fixing portion 74B on one circumferential side is connected to the connecting piece 76 on one circumferential side of the central fixing portion 74A.

[0039] The end fixing portion 74B on the other circumferential side has the same configuration as the first insulator fixing portion 52 of the first terminal 28 (see FIG. 5), except that a connecting piece 76 extends from an end portion on one axial side and one circumferential side. The connecting piece 76 of the end fixing portion 74B on the other circumferential side is connected to the connecting piece 76 on the other circumferential side of the central fixing portion 74A.

[0040] The same reference numerals as those of the first insulator fixing portion 52 are used to designate the portions of the central fixing portion 74A and the end fixing portion 74B that correspond to the first insulator fixing portion 52 of the first terminal 28.

[0041] The second terminal 30 also includes a central fixing portion 74A, a circumferentially one end fixing portion 74B, and three first connecting portions 54 extending radially inward from the ends of the other axial ends of the other circumferentially one end fixing portion 74B. The three first connecting portions 54 are arranged at equal intervals along the circumferential direction. Here, the three first connecting portions 54 of the second terminal 30 each have the same configuration as the first connecting portions 54 of the first terminal 28. The first connecting portions 54 of the second terminal 30 are denoted by the same reference numerals as the first connecting portions 54 of the first terminal 28. As shown in FIGS. 2 and 3 , the second terminal portion 50B is clamped by the crimped portions 66 of the first connecting portions 54, thereby connecting the second terminal portion 50B to the crimped portions 66 of the first connecting portions 54.

[0042] 3 and 9, the second insulator fixing portion 74 of the second terminal 30 described above is inserted into the second terminal fitting portion 48 of the insulator 22. Here, as shown in FIG. 9, a central fitting recess 48A is formed in the circumferential center of the bottom of the second terminal fitting portion 48, into which the other axial end of the central fixing portion 74A is inserted. Also, an end-side fitting recess 48B is formed on one circumferential side of the bottom of the second terminal fitting portion 48, into which the other axial end of the end-side fixing portion 74B on one circumferential side is inserted. Furthermore, an end-side fitting recess 48B is formed on the other circumferential side of the bottom of the second terminal fitting portion 48, into which the other axial end of the end-side fixing portion 74B on the other circumferential side is inserted. When the second insulator fixing portion 74 of the second terminal 30 is inserted into the second terminal fitting portion 48 of the insulator 22, the other axial end of the central fixing portion 74A is disposed within the central fitting recess 48A. Furthermore, the other axial end of the end fixing portions 74B on one and the other circumferential sides is disposed within the respective end fitting recesses 48B. This secures the second insulator fixing portion 74 to the insulator 22, thereby supporting the second terminal 30 on the insulator 22. Furthermore, when the other axial end of the end fixing portions 74B on one and the other circumferential sides is disposed within the respective end fitting recesses 48B, the multiple press-fit fitting portions 58 are press-fitted into the inner walls of the end fitting recesses 48B. This maintains the second insulator fixing portion 74 fixed to the insulator 22. Similar to the press-fitting portions 58 of the first terminal 28, the press-fitting portions 58 are arranged at the same circumferential positions as predetermined teeth 34. As shown in Fig. 3, the three first connection portions 54 of the second terminal 30 are each arranged at the center of a pair of teeth 34 adjacent to each other in the circumferential direction.

[0043] 3, the second terminal portion 50B has the same configuration as the first terminal portion 50A. Note that the portions of the second terminal portion 50B corresponding to those of the first terminal portion 50A are denoted by the same reference numerals as those of the first terminal portion 50A. The second portions 70 of the second terminal portions 50B of each phase are connected to the three crimped portions 66 of the second terminal 30, respectively.

[0044] (Actions and Effects of This Embodiment) Next, the operation and effects of this embodiment will be described.

[0045] 1, 2, 3, 4, and 7, in the motor 10 of this embodiment, the current flowing through the coils 26 of each phase is switched by switching the voltage applied to the power supply side connectors 92 of the second connectors 78 of the three first terminals 28. This generates a rotating magnetic field around the stator 14, causing the rotor 12 to rotate.

[0046] In this embodiment, the first connection portion 54 and the second connection portion 78 of the first terminal 28 are arranged between a pair of circumferentially adjacent coils 26. This allows the stator 14 to be made smaller in the axial direction.

[0047] In addition, in this embodiment, as shown in Figures 3, 4, 5, 6, 7, 8, and 9, when the first insulator fastening portion 52 of the first terminal 28 is inserted into the first terminal fitting portion 44 of the insulator 22, the multiple press-fit fitting portions 58 of the first insulator fastening portion 52 are press-fitted into the inner wall of the first terminal fitting portion 44. This makes it possible to prevent the first terminal 28 from shifting relative to the insulator 22 due to vibration of the motor 10. As a result, it is possible to ensure or improve reliability against vibration of the motor 10. In particular, by providing the multiple press-fit fitting portions 58 on both circumferential sides of the first connecting portion 54 and the second connecting portion 78, it is possible to suppress vibration of the first connecting portion 54.

[0048] Furthermore, in this embodiment, when the second insulator fixing portion 74 of the second terminal 30 is inserted into the second terminal fitting portion 48 of the insulator 22, the multiple press-fit fitting portions 58 are press-fitted into the inner wall of the end-side fitting recess 48B. This makes it possible to prevent the second terminal 30 from shifting relative to the insulator 22 due to vibration of the motor 10. As a result, reliability against vibration of the motor 10 can be ensured or improved.

[0049] 3 and 4, in this embodiment, the first terminal portion 50A and the second terminal portion 50B of the coil 26 are configured to include a first portion 68, a second portion 70, and a slack portion 72. This allows the slack portion 72 to relieve tension generated in the first terminal portion 50A and the second terminal portion 50B. This allows stress generated in the connection portion between the coil 26 and the terminals (the first terminal 28 and the second terminal 30) to be relieved. As a result, breakage of the first terminal portion 50A and the second terminal portion 50B of the coil 26 can be suppressed.

[0050] 7 , when the power supply side connection portion 92 of the second connection portion 78 of the first terminal 28 is in contact with the power supply side terminal 94, the second connection portion 78 is flexibly deformed to one axial side. Furthermore, when the second connection portion 78 is flexibly deformed to one axial side, stress is concentrated on the first bent portion 82 and the second bent portion 86. By concentrating stress on the first bent portion 82 and the second bent portion 86 of the second connection portion 78 in this manner, it is possible to prevent stress generated on the second connection portion 78 side when joining the power supply side connection portion 92 of the second connection portion 78 to the power supply side terminal 94 from affecting the first connection portion 54 side. This prevents stress from increasing on the first connection portion 54 when the motor 10 vibrates, thereby ensuring the durability of the motor 10 against vibration.

[0051] Furthermore, in this embodiment, the second connection portion 78 is provided independently of the first connection portion 54. This further prevents stress generated on the second connection portion 78 side from affecting the first connection portion 54 side. As a result, it is possible to further prevent stress on the first connection portion 54 from increasing when the motor 10 vibrates.

[0052] 5 and 6, in this embodiment, the second intermediate portion 88 of the second connection portion 78 is thinner than the first intermediate portion 67 of the first connection portion 54. This increases the stress generated on the second connection portion 78 side when the power supply side connection portion 92 of the second connection portion 78 is joined to the power supply side terminal 94. This further reduces the influence of the stress generated on the second connection portion 78 side on the first connection portion 54 side. As a result, it is possible to further reduce the increase in stress on the first connection portion 54 when the motor 10 vibrates.

[0053] 7, in this embodiment, when the power supply side connecting portion 92 of the second connecting portion 78 of the first terminal 28 is in contact with the power supply side terminal 94, the second connecting portion 78 is flexed and deformed to one side in the axial direction, and the first bent portion 82 is plastically deformed. By causing the first bent portion 82 to plastically deform in this manner, the power supply side connecting portion 92 of the second connecting portion 78 of the first terminal 28 and the power supply side terminal 94 can be joined by welding with a stable contact pressure between them.

[0054] 4 and 6, in this embodiment, most of the widened portion 80 of the second connection portion 78 and most of the power supply side connection portion 92 are disposed at the same circumferential position as the crimped portion 66 of the first connection portion 54. This makes it possible to prevent the dimension of the first terminal 28 from the first connection portion 54 to the second connection portion 78 from increasing.

[0055] (Configuration of the first terminal 28 of other types of motor) Next, the configuration of the first terminal 28 of the motor in another embodiment will be described with reference to Figures 10 to 13. Note that the parts of the first terminal 28 of the motor in another embodiment that correspond to the first terminal 28 already described will be given the same reference numerals as the first terminal 28 already described, and the description thereof may be omitted.

[0056] (First terminal 28 of the motor in the second embodiment) As shown in Figure 10, the first terminal 28 of the motor of the second embodiment is configured in the same manner as the first terminal 28 of the motor 10 of the first embodiment described above (see Figure 5, etc.), except that the power supply side connection portion 92 is not bent relative to the second leg portion 84 and the widening portion 80.

[0057] In the first terminal 28 of the motor of the second embodiment, when the power supply side connection portion 92 of the second connection portion 78 is in contact with a power supply side terminal (not shown), a radial load is input to the power supply side connection portion 92 of the second connection portion 78. This causes the second connection portion 78 to bend and deform in the radial direction. Furthermore, in this embodiment, when the second connection portion 78 is bent and deformed in the radial direction, stress is concentrated in the first bent portion 82 and the second bent portion 86. Note that in this embodiment, because the radial load is input to the power supply side connection portion 92 of the second connection portion 78, the stress generated in the second bent portion 86 is higher than the stress generated in the first bent portion 82.

[0058] The first terminal 28 of the motor of the second embodiment described above can also suppress an increase in stress in the first connection portion 54 when the motor 10 vibrates, thereby ensuring durability of the motor 10 against vibration.

[0059] (First terminal 28 of the motor of the third embodiment and the motor of the fourth embodiment) As shown in FIG. 11, in the first terminal 28 of the motor of the third embodiment, the second connection portion 78 extends from the first connection portion 54 and is formed integrally with the first connection portion 54.

[0060] More specifically, the second connection portion 78 includes a first leg portion 80 extending radially inward from the radially inner end of the base plate portion 62 of the first connection portion 54. The second connection portion 78 also includes a second leg portion 84 extending radially inward from the radially inner end of the first leg portion 80 toward the other axial side. A folded portion 96 is formed in an axially intermediate portion of the second leg portion 84 as a stress concentration portion. The folded portion 96 is formed in a U-shape with an open radially inner side. The folded portion 96 includes a first folded portion 96A, a second folded portion 96B, a third folded portion 96C, and a fourth folded portion 96D that are bent into an L-shape.

[0061] 12, the first terminal 28 of the motor of the fourth embodiment is configured similarly to the first terminal 28 of the motor of the third embodiment (see FIG. 11), except that the orientations of the second leg portion 84, the folded portion 96, and the power supply side connection portion 92 are different. In the first terminal 28 of the motor of the fourth embodiment, the opening direction of the folded portion 96 is on one side in the circumferential direction.

[0062] 11 and 12 , in the first terminal 28 of the motor of the third embodiment and the first terminal 28 of the motor of the fourth embodiment described above, when the power supply side connection portion 92 of the second connection portion 78 is in contact with the power supply side terminal (not shown), the second connection portion 78 is flexed and deformed in the axial direction. Furthermore, when the second connection portion 78 is flexed and deformed in the axial direction, stress is concentrated on the folded portion 96. By concentrating stress on the folded portion 96 in this manner, it is possible to prevent stress generated on the second connection portion 78 side when the power supply side connection portion 92 of the second connection portion 78 is joined to the power supply side terminal (not shown) from affecting the first connection portion 54 side. This prevents stress from increasing on the first connection portion 54 when the motor 10 vibrates, thereby ensuring the durability of the motor 10 against vibration.

[0063] (First terminal 28 of the motor in the fifth embodiment) As shown in Figure 13, the first terminal 28 of the motor of the fifth embodiment is configured similarly to the first terminal 28 of the motor of the third embodiment (see Figure 11), except that a folded portion 96 is formed in the radially intermediate portion of the first leg 80 and the power supply side connection portion 92 is not bent relative to the second leg 84. In the first terminal 28 of the motor of the fifth embodiment, the opening direction of the folded portion 96 is on the other axial side. In the first terminal 28 of the motor of the fifth embodiment, it is possible to suppress an increase in stress in the first connection portion 54 when the motor 10 vibrates, and it is possible to ensure the durability of the motor 10 against vibration.

[0064] While one embodiment of the present disclosure has been described above, the present disclosure is not limited to the above and can be implemented in various other modifications without departing from the spirit and scope of the present disclosure. For example, the configuration of the motor 10 may be applied to a generator. The configuration of the motor 10 may also be applied to an outer rotor brushless motor in which the rotor 12 is disposed radially outside the stator 14. The configuration of the present disclosure may also be applied to a rotor configured to include an armature having a similar configuration to the stator 14 of this embodiment. [Explanation of symbols]

[0065] 10 motor (rotating electric machine), 12 rotor (rotor), 14 stator (armature, stator), 20 stator core (armature core), 22 insulator, 24 winding, 26 coil, 28 first terminal (terminal), 34 teeth portion, 44 first terminal fitting portion (terminal fitting portion), 50A first terminal portion (coil terminal portion), 52 first insulator fixing portion (insulator fixing portion), 54 first connection portion, 58 press-fit fitting portion, 66 crimping portion, 67 first intermediate portion, 78 second connection portion, 82 first bent portion (stress concentration portion), 86 second bent portion (stress concentration portion), 88 second intermediate portion, 92 power supply side connection portion, 96 power return portion

Claims

1. an armature core (20) having a plurality of teeth (34) arranged at intervals in the circumferential direction; an insulator (22) attached to the armature core; a plurality of coils (26) formed by winding conductive windings (24) around the plurality of teeth, respectively; a terminal (28) including: an insulator fixing portion (52) formed using a conductive member and fixed to the insulator; a first connection portion (54) extending from the insulator fixing portion and having a crimping portion (66) to which an end portion (50A) of the coil is fixed; and a second connection portion (78) extending from the insulator fixing portion or the first connection portion and having a power supply side connection portion (92) connected to a power supply side, the second connection portion having stress concentration portions (82, 86, 96) at which stress is concentrated when the power supply side connection portion is connected to the power supply side; an armature (14) comprising:

2. The armature according to claim 1 , wherein the second connection portion extends from the insulator fixing portion and is provided independently of the first connection portion.

3. The armature according to claim 1 , wherein the second connection portion extends from the first connection portion and is integral with the first connection portion.

4. the first connection portion includes a first intermediate portion (67) that constitutes a portion between the crimping portion and the insulator fixing portion, the second connection portion includes a second intermediate portion (88) that constitutes a portion between the power supply side connection portion and the insulator fixing portion or a portion between the power supply side connection portion and the first connection portion, 3. The armature according to claim 2, wherein the second intermediate portion is narrower than the first intermediate portion.

5. 3. The armature according to claim 2, wherein at least a portion of the crimped portion and at least a portion of the power supply side connecting portion are disposed at the same position in the circumferential direction.

6. The armature according to claim 1 , wherein the first connection portion and the second connection portion are disposed between a pair of the coils adjacent in the circumferential direction.

7. 2. The armature according to claim 1, wherein the stress concentration portion is plastically deformed when the power supply side connection portion is connected to the power supply side.

8. The insulator is formed with a terminal fitting portion (44) into which the insulator fixing portion is fitted, 2. The armature according to claim 1, wherein a part of the insulator fixing portion is a press-fit portion (58) that is press-fitted into the terminal fitting portion.

9. The armature according to claim 8 , wherein the press-fit portions are provided on both sides of the first connecting portion and the second connecting portion in the circumferential direction.

10. One of a stator (14) and a rotor (12) configured to include the armature according to any one of claims 1 to 9; the other of the stator and the rotor having a magnet (18) arranged radially opposite the armature; A rotating electric machine (10) comprising:

Citation Information

Patent Citations

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