Rotating electric machines and electronic devices
The rotating electric machine and electronic device design addresses connector terminal stress issues by using an elastic member to absorb forces, ensuring reliable connections and preventing malfunctions.
Patent Information
- Application Number
- JP2022031298
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-01
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2042-03-01
AI Technical Summary
The connection between a connector terminal and a board in drive devices is prone to malfunction due to stress caused by external forces applied during connector connection.
A rotating electric machine and electronic device design featuring a connector with a terminal holding portion that contacts the housing via an elastic member at a position different from the seal, utilizing an elastic member to absorb forces and prevent stress at the connection point.
This design effectively suppresses problems in the connection between the connector terminal and the substrate by absorbing external forces, ensuring reliable electrical contact and preventing malfunctions.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a rotating electric machine and an electronic device. [Background technology]
[0002] A drive device including a connector and a board to which the terminals of the connector are connected is known. For example, Patent Document 1 describes a drive device that is applied to an electric power steering device of a vehicle. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2019-187079 Summary of the Invention [Problem to be solved by the invention]
[0004] In the drive device described above, when an external connector is connected to the connector, an external force may be applied to the connector, causing stress at the connection between the terminal of the connector and the board, which may cause a malfunction in the connection between the terminal of the connector and the board.
[0005] In view of the above circumstances, an object of the present invention is to provide a rotating electric machine and an electronic device having a structure that can prevent problems from occurring in the connection between a connector terminal and a board. [Means for solving the problem]
[0006] One aspect of the rotating electric machine of the present invention includes a rotating electric machine main body, a substrate, a housing having a through hole and accommodating the rotating electric machine main body and the substrate, a connector that passes through the through hole and protrudes in a predetermined direction from inside the housing to outside the housing, a first seal that surrounds the connector and seals the through hole, and an elastic member that contacts the connector. The connector has a connector terminal electrically connected to the substrate and a terminal holding portion that holds the connector terminal. The terminal holding portion contacts the housing via the elastic member. The elastic member is provided at a position different from the first seal.
[0007] One aspect of the present invention is an electronic device comprising: a substrate, a housing having a through hole and accommodating the substrate therein, a connector having a connector terminal electrically connected to the substrate and inserted into the through hole, and a sealing member sealing the through hole, wherein the connector contacts the housing via an elastic member at a position different from the position at which the sealing member is provided. [Effects of the Invention]
[0008] According to one aspect of the present invention, it is possible to suppress problems in the connection between a connector terminal and a substrate in a rotating electric machine or an electronic device. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a partial cross-sectional view showing a part of a rotating electric machine according to a first embodiment. [Figure 2] FIG. 2 is a perspective view showing a part of the rotating electric machine of the first embodiment. [Figure 3] FIG. 3 is a perspective view showing a part of the rotating electric machine of the first embodiment, showing a state in which a cover member is removed. [Figure 4] FIG. 4 is a diagram of the rotating electric machine of the first embodiment as seen from above, with the cover member removed. [Figure 5] FIG. 5 is a perspective view showing the cover member of the first embodiment. [Figure 6] FIG. 6 is a cross-sectional view showing a part of the rotating electric machine of the first embodiment. [Figure 7] FIG. 7 is a perspective view showing a part of the connector and the control board of the first embodiment. [Figure 8] FIG. 8 is a perspective view showing the first connector of the first embodiment. [Figure 9] FIG. 9 is a cross-sectional view showing a part of the rotating electric machine according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0010] Each figure shows a virtual central axis J of a rotating electric machine according to the embodiments described below. In the following description, the axial direction of the central axis J is simply referred to as the "axial direction." The radial direction about the central axis J is simply referred to as the "radial direction." The circumferential direction about the central axis J is simply referred to as the "circumferential direction." The Z axis shown in each figure indicates the direction in which the central axis J extends. In the following description, the side of the axial direction toward which the arrow of the Z axis points (the +Z side) is referred to as the "upper side," and the side of the axial direction opposite to the side toward which the arrow of the Z axis points (the -Z side) is referred to as the "lower side." Note that in the following embodiments, the axial direction corresponds to a "predetermined direction." Furthermore, the terms "upper side" and "lower side" are simply names used to describe the relative positional relationships of the various components, and the actual positional relationships may be other than those indicated by these names. The rotating electric machine described in the following embodiments is an example of an electronic device.
[0011] In addition, the X-axis shown in each figure indicates a direction perpendicular to the axial direction. In the following explanation, the direction parallel to the X-axis is referred to as the "first direction X." The side of the first direction X toward which the X-axis arrow points (+X side) is referred to as the "one side of the first direction X," and the side of the first direction X opposite to the side toward which the X-axis arrow points (-X side) is referred to as the "other side of the first direction X." The Y-axis shown in each figure indicates a direction perpendicular to both the axial direction and the first direction X. In the following explanation, the direction parallel to the Y-axis is referred to as the "second direction Y." The side of the second direction Y toward which the Y-axis arrow points (+Y side) is referred to as the "one side of the second direction Y," and the side of the second direction Y opposite to the side toward which the Y-axis arrow points (-Y side) is referred to as the "other side of the second direction Y."
[0012] First Embodiment A rotating electric machine 100 of this embodiment shown in FIG. 1 is, for example, a motor mounted in an electric power steering system of a vehicle. As shown in FIG. 1, the rotating electric machine 100 is an electromechanical integrated motor. As shown in FIG. 1, the rotating electric machine 100 includes a rotating electric machine main body 10, a housing 20, a control unit 30, and a connector 40. The rotating electric machine main body 10 has a rotor 11 and a stator 12. The rotor 11 is rotatable around a central axis J. The rotor 11 has a shaft 11a extending in the axial direction around the central axis J, and a rotor main body 11b fixed to the shaft 11a. A sensor magnet 11c is attached to the upper end of the shaft 11a. Although not shown, the rotor main body 11b has a rotor core and a rotor magnet. The stator 12 is located radially outward of the rotor 11. The stator 12 is annular and surrounds the rotor 11.
[0013] In this specification, the term "annular" refers to any shape that extends continuously around the circumference, and may be a circular ring, a rectangular ring, or a shape having a curved portion and a straight portion.
[0014] The housing 20 accommodates the rotating electric machine main body 10 and the control unit 30 therein. The housing 20 includes a case member 21, a lid member 22, and a cover member 23. The case member 21 accommodates the rotating electric machine main body 10. The case member 21 is cylindrical and has an opening 21g that opens upward. The case member 21 surrounds the central axis J. The rotating electric machine main body 10 is accommodated inside the case member 21. The stator 12 is fixed to the inner circumferential surface of the case member 21. As shown in FIG. 2 , in this embodiment, a portion of the case member 21 on one side in the first direction X (+X side) has a substantially semicircular shape that is convex toward one side in the first direction X when viewed from the axial direction. A portion of the case member 21 on the other side in the first direction X (-X side) has a substantially rectangular shape that is long in the second direction Y when viewed from the axial direction.
[0015] As shown in FIG. 3, the case member 21 has a cylindrical tube portion 21a surrounding the central axis J, a second convex portion 21b protruding upward from the upper end of the tube portion 21a, and a plurality of lid fixing portions 21c protruding radially inward from the radially inner surface of the tube portion 21a.
[0016] The second convex portion 21b has an annular shape surrounding the central axis J. In the present embodiment, the second convex portion 21b has an arc portion 21d, a pair of first linear portions 21e, and a second linear portion 21f. The arc portion 21d has a semicircular arc shape that convex toward one side (+X side) in the first direction X. The pair of first linear portions 21e extend linearly from each of both circumferential end portions of the arc portion 21d toward the other side (-X side) in the first direction X. As shown in FIG. 4 , the pair of first linear portions 21e are slightly inclined with respect to the first direction X so as to approach each other as they approach the other side in the first direction X. The second linear portion 21f extends linearly in the second direction Y. The second linear portion 21f connects an end portion of one first linear portion 21e on the other side in the first direction X to an end portion of the other first linear portion 21e on the other side in the first direction X. In this embodiment, the opening 21g of the case member 21 is formed by the second protrusion 21b.
[0017] The multiple lid fixing portions 21c are arranged at intervals in the circumferential direction. The lid fixing portions 21c extend in the axial direction. An internally threaded hole 21h is provided on the upper surface of each lid fixing portion 21c. For example, three lid fixing portions 21c are provided.
[0018] As shown in FIG. 1, the lid member 22 is fixed to the upper end of the case member 21. The lid member 22 is fixed to the case member 21 by fastening bolts 70, which pass through the lid member 22 in the axial direction, into the female threaded holes 21h of the plurality of lid fixing portions 21c. The lid member 22 closes the opening 21g. As shown in FIG. 5, the lid member 22 is a member that is flat in the axial direction and extends along a plane perpendicular to the axial direction. The shape of the lid member 22 as viewed from the axial direction is the same as the shape of the case member 21 as viewed from the axial direction. The lid member 22 has a lid plate portion 22a, an outer frame portion 22b, an inner frame portion 22c, and a protrusion 22d.
[0019] The cover plate portion 22a has a plate shape extending along a plane perpendicular to the axial direction. The cover plate portion 22a is provided with a through hole 24 that penetrates the cover plate portion 22a in the axial direction. The through hole 24 penetrates the cover member 22 in the axial direction. In this embodiment, two through holes 24 are provided: a first through hole 24a and a second through hole 24b. The first through hole 24a and the second through hole 24b extend in the second direction Y. The first through hole 24a and the second through hole 24b are arranged side by side in the first direction X. The first through hole 24a is located on one side (+X side) of the second through hole 24b in the first direction X. The dimension of the first through hole 24a in the second direction Y is larger than the dimension of the second through hole 24b in the second direction Y. The first through hole 24a protrudes on both sides in the second direction Y beyond the second through hole 24b.
[0020] The outer frame portion 22b protrudes downward from the radial outer edge of the cover plate portion 22a. The outer frame portion 22b is annular and surrounds the central axis J. The inner frame portion 22c protrudes downward from a portion of the cover plate portion 22a that is radially inward of the outer frame portion 22b. The inner frame portion 22c is disposed facing the radially inner side of the outer frame portion 22b with a gap therebetween. The shapes of the outer frame portion 22b and the inner frame portion 22c as viewed in the axial direction are similar to the shapes of the second protrusion portion 21b as viewed in the axial direction.
[0021] The protrusion 22d protrudes downward from the cover plate portion 22a. The lower end of the protrusion 22d is located lower than the lower end of the outer frame portion 22b and the lower end of the inner frame portion 22c. The protrusion 22d is provided with a first recess 22f recessed upward from the lower surface of the protrusion 22d. The protrusion 22d has a cylindrical shape due to the provision of the first recess 22f. The inner edge of the first recess 22f is circular when viewed from the axial direction. As shown in FIG. 6, the inner diameter of the first recess 22f decreases toward the upper side. That is, the inner diameter of the first recess 22f decreases toward the direction in which the first recess 22f is recessed (the +Z direction). In this embodiment, the inner circumferential surface 22m of the first recess 22f has a shape similar to the outer circumferential surface of a truncated cone whose outer diameter decreases toward the upper side. In this embodiment, the upper surface of the inner surface of the first recess 22f is part of the lower surface of the cover plate portion 22a.
[0022] As shown in FIG. 5, a plurality of protrusions 22d are provided. That is, a plurality of first recesses 22f are provided. In this embodiment, six first recesses 22f are provided. Two of the six first recesses 22f are arranged side by side in the second direction Y on one side (+X side) of the first through-hole 24a in the first direction X. The other two of the six first recesses 22f are arranged to sandwich in the second direction Y a portion of the cover plate portion 22a that is located between the first through-hole 24a and the second through-hole 24b in the first direction X. The remaining two of the six first recesses 22f are arranged to sandwich the second through-hole 24b in the second direction Y. The remaining two first recesses 22f are arranged side by side on the other side (-X side) of the other two first recesses 22f in the first direction X. Similarly to the first recesses 22f described above, six protrusions 22d each having the first recesses 22f are arranged.
[0023] The cover member 22 has a second recess 22e. In this embodiment, the second recess 22e is provided between the outer frame portion 22b and the inner frame portion 22c. The second recess 22e is constituted by the cover plate portion 22a, the outer frame portion 22b, and the inner frame portion 22c. The second recess 22e is recessed upward from the lower surface of the cover member 22. The second recess 22e is provided on the radial outer edge of the lower surface of the cover member 22. The second recess 22e is an annular groove extending along the radial outer edge of the cover member 22. As shown in FIG. 1, the second protrusion 21b is inserted into the second recess 22e. An upper surface of the inner surface of the second recess 22e is positioned above and spaced apart from the upper end of the second protrusion 21b. Both radial surfaces of the second recess 22e are positioned spaced apart from both radial surfaces of the second protrusion 21b.
[0024] A second seal portion 52 is provided between the inner surface of the second recess 22e and the outer surface of the second protrusion 21b. That is, the second seal portion 52 is provided between the cover member 22 and the case member 21. The second seal portion 52 contacts the inner surface of the second recess 22e and the outer surface of the second protrusion 21b. This allows the second seal portion 52 to seal between the cover member 22 and the case member 21. The second seal portion 52 fills the area of the second recess 22e other than the area where the second protrusion 21b is located. For example, the second seal portion 52 contacts the entire inner surface of the second recess 22e and the entire outer surface of the second protrusion 21b. As shown in FIGS. 4 and 5, the second seal portion 52 is annular and surrounds the central axis J. The second seal portion 52 extends along the second recess 22e and the second protrusion 21b.
[0025] In this embodiment, the second seal portion 52 is made of an adhesive. As a result, the cover member 22 and the case member 21 are bonded to each other by the second seal portion 52. The adhesive that forms the second seal portion 52 is a third adhesive. That is, in this embodiment, the second seal portion 52 includes a third adhesive. In this embodiment, the third adhesive that forms the second seal portion 52 is an adhesive that is elastically deformable after hardening. That is, in this embodiment, the second seal portion 52 is an elastic body that is elastically deformable. Examples of the third adhesive that forms the second seal portion 52 include elastic adhesives such as silicone-based adhesives and modified silicone-based adhesives.
[0026] 1, the cover member 23 is attached to the outer peripheral surface of the case member 21. The cover member 23 extends along a plane perpendicular to the first direction X. The cover member 23 is located on the other side (-X side) of the case member 21 in the first direction X. The cover member 23 covers a power board 32 (described later) from the other side in the first direction X.
[0027] The control unit 30 controls the rotating electric machine main body 10. The control unit 30 has a control board 31, a power board 32, a plurality of electronic components 33, and a rotation sensor 34. The control board 31 and the power board 32 are boards electrically connected to the rotating electric machine main body 10. The control board 31 and the power board 32 are housed inside the housing 20.
[0028] The plate surface of the control board 31 faces the axial direction. The control board 31 extends along a plane perpendicular to the axial direction. The control board 31 is located inside the case member 21. The control board 31 is located above the rotating electric machine main body 10. A plurality of electronic components 33 are attached to the upper surface and the lower surface of the control board 31.
[0029] The radially outer edge of the control board 31 is supported from below by board fixing portions 21i that protrude radially inward from the inner circumferential surface of the case member 21. A plurality of board fixing portions 21i are provided at intervals in the circumferential direction. In this embodiment, three board fixing portions 21i are provided. The control board 31 is fixed to each of the three board fixing portions 21i by three bolts 73. Each bolt 73 is passed from above through a corresponding bolt hole 31c provided in the control board 31 and fastened to a female threaded hole 21m provided in the board fixing portion 21i. In this embodiment, the control board 31 is fixed to the housing 20. In this embodiment, the peripheral portion of the bolt hole 31c of the control board 31 is a first fixing portion 31b that is fixed to the housing 20 by the bolt 73. As shown in FIG. 7, three first fixing portions 31b are provided in this embodiment.
[0030] As shown in FIG. 1 , the power board 32 is disposed between the case member 21 and the cover member 23. The plate surface of the power board 32 faces the first direction X. The power board 32 extends along a plane perpendicular to the first direction X. A plurality of electronic components 33 are attached to one surface of the power board 32 in the first direction X and the other surface of the power board 32 in the first direction X. The electronic components 33 attached to the power board 32 include a plurality of transistors constituting an inverter circuit. The inverter circuit provided on the power board 32 supplies power to the stator 12. The power board 32 is electrically connected to a coil (not shown) of the stator 12. This electrically connects the power board 32 to the rotating electric machine main body 10. The power board 32 is electrically connected to the control board 31 by a connection terminal (not shown) that passes through a hole 21k provided in a portion of the cylindrical portion 21a located on the other side (−X side) in the first direction X. This electrically connects the control board 31 to the rotating electric machine main body 10 via the power board 32. The power board 32 is fixed to the case member 21 by bolts (not shown).
[0031] The rotation sensor 34 is attached to the underside of the control board 31. The rotation sensor 34 is disposed above the sensor magnet 11c, facing it across a gap. The rotation sensor 34 is a magnetic sensor that can detect the rotation of the rotor 11 by detecting the magnetic field of the sensor magnet 11c.
[0032] The connector 40 is passed through the through hole 24 and protrudes in the axial direction from the inside of the housing 20 to the outside of the housing 20. In this embodiment, two connectors 40 are provided: a first connector 41 and a second connector 42. The first connector 41 and the second connector 42 are arranged side by side in the first direction X. The first connector 41 is passed through the first through hole 24a in the axial direction. The second connector 42 is passed through the second through hole 24b in the axial direction. The first connector 41 is located on one side (+X side) of the second connector 42 in the first direction X. The first connector 41 and the second connector 42 are located above the control board 31.
[0033] As shown in FIG. 8, the first connector 41 has a terminal holding portion 43 and a connector terminal 45. The terminal holding portion 43 has insulating properties. In this embodiment, the terminal holding portion 43 is made of resin. The terminal holding portion 43 holds the connector terminal 45. In this embodiment, the terminal holding portion 43 is made by insert molding using the connector terminal 45 as an insert member. The terminal holding portion 43 has a base portion 43a, an inserted portion 43i, a first connector cylindrical portion 43b, a second connector cylindrical portion 43c, a protruding wall portion 43g, a positioning portion 43e, an arm portion 43d, and a first convex portion 43h.
[0034] The base 43a has a generally rectangular box shape that is long in the second direction Y and opens downward. As shown in Fig. 1, the outer edge of the base 43a in a direction perpendicular to the axial direction is disposed opposite to the lower side of the peripheral edge of the first through-hole 24a in the lower surface of the cover plate 22a, with a gap therebetween.
[0035] The inserted portion 43i protrudes upward from the base 43a. As shown in FIG. 3, the inserted portion 43i extends in the second direction Y. The dimension of the inserted portion 43i in the first direction X is smaller than the dimension of the base 43a in the first direction X. The dimension of the inserted portion 43i in the second direction Y is smaller than the dimension of the base 43a in the second direction Y. The dimension of the inserted portion 43i in the axial direction is smaller than the dimension of the base 43a in the axial direction. As shown in FIG. 1, the inserted portion 43i is inserted into the first through hole 24a. The inserted portion 43i is positioned inward and spaced apart from the inner circumferential edge of the first through hole 24a. The upper end of the inserted portion 43i is located above the first through hole 24a.
[0036] A first seal portion 51a is provided between the side surface of the insertion portion 43i and the inner surface of the first through hole 24a. As shown in FIG. 4, the first seal portion 51a is annular and surrounds the first connector 41. The first seal portion 51a is a generally rectangular ring elongated in the second direction Y. In this embodiment, the first seal portion 51a surrounds the insertion portion 43i. As shown in FIG. 6, the first seal portion 51a has a portion located between the side surface of the insertion portion 43i and the inner surface of the first through hole 24a and contacting each surface, and a portion located between the outer edge of the upper surface of the base 43a and the periphery of the first through hole 24a on the lower surface of the cover plate portion 22a and contacting each surface. The first seal portion 51a is a seal member that contacts the first connector 41 and the housing 20 to seal the first through hole 24a. The first seal portion 51a prevents foreign matter such as liquid from entering the inside of the housing 20 from the outside of the housing 20 through the first through-hole 24a.
[0037] In this specification, the phrase "the first seal portion seals the through hole" means that the first seal portion is sufficient to prevent the movement of foreign matter such as liquid between the inside and outside of the housing via the through hole, and the first seal portion does not necessarily have to have a portion disposed between the inner surface of the through hole and the connector. Specifically, for example, in this embodiment, the first seal portion 51a may be provided only between the outer edge of the upper surface of the base portion 43a and the periphery of the first through hole 24a on the lower surface of the cover plate portion 22a.
[0038] In this embodiment, the first seal portion 51a is made of an adhesive. This allows the first connector 41 and the cover member 22 to be bonded to each other by the first seal portion 51a. The adhesive that forms the first seal portion 51a is a second adhesive. That is, in this embodiment, the first seal portion 51a includes the second adhesive. In this embodiment, the second adhesive that forms the first seal portion 51a is an adhesive that is elastically deformable after hardening. That is, in this embodiment, the first seal portion 51a is an elastic body that is elastically deformable. Examples of the second adhesive that forms the first seal portion 51a include elastic adhesives such as silicone-based adhesives and modified silicone-based adhesives. In this embodiment, the second adhesive that forms the first seal portion 51a and the third adhesive that forms the second seal portion 52 are adhesives that contain the same components. The ratio of the components contained in the second adhesive and the ratio of the components contained in the third adhesive are, for example, the same. Note that the ratio of the components contained in the second adhesive and the ratio of the components contained in the third adhesive may be different from each other.
[0039] As shown in FIG. 2, the first connector tube portion 43b and the second connector tube portion 43c protrude upward from the inserted portion 43i. The first connector tube portion 43b and the second connector tube portion 43c are located outside the housing 20. The first connector tube portion 43b and the second connector tube portion 43c are portions of the first connector 41 that protrude outside the housing 20. The first connector tube portion 43b and the second connector tube portion 43c are open upward and have a generally rectangular tube shape that is elongated in the second direction Y. The first connector tube portion 43b and the second connector tube portion 43c are arranged side by side in the second direction Y. The first connector tube portion 43b is located on the other side (-Y side) of the second connector tube portion 43c in the second direction Y. An external connector of an external device (not shown) is connected to the first connector tube portion 43b and the second connector tube portion 43c, respectively.
[0040] As shown in FIG. 8, the protruding wall portion 43g protrudes downward from a portion of the base portion 43a on one side (+X side) in the first direction X. A female screw hole 43f is provided in the lower surface of the protruding wall portion 43g. Two female screw holes 43f are provided at an interval in the second direction Y. The two female screw holes 43f are provided at both ends of the lower surface of the protruding wall portion 43g in the second direction Y. As shown in FIG. 7, a bolt 71 is threaded from below into a bolt hole 31a provided in the control board 31 and fastened into each female screw hole 43f. In this way, the protruding wall portion 43g is fixed to the control board 31 with the bolt 71. The portion of the protruding wall portion 43g where the female screw hole 43f is provided is a second fixing portion 43k fixed to the control board 31. Two second fixing portions 43k are provided at an interval in the second direction Y. The two second fixing portions 43k are provided at both ends of the protruding wall portion 43g in the second direction Y. As shown in Fig. 4, the two second fixing portions 43k are arranged to sandwich the first connector cylindrical portion 43b and the second connector cylindrical portion 43c in the second direction Y when viewed in the axial direction. The lower surface of the protruding wall portion 43g is in contact with the upper surface of the control board 31.
[0041] As shown in Fig. 8, a positioning portion 43e that protrudes downward is provided on the lower surface of the protruding wall portion 43g. Two positioning portions 43e are provided at an interval in the second direction Y. The two positioning portions 43e are provided at both ends of the lower surface of the protruding wall portion 43g in the second direction Y. As shown in Fig. 7, each positioning portion 43e is passed from above through a hole provided in the control board 31. This positions the first connector 41 with respect to the control board 31.
[0042] As shown in FIG. 8, the arm 43d protrudes from the lower end of the base 43a in a direction perpendicular to the axial direction. A plurality of arms 43d are provided. As shown in FIG. 4, four arms 43d are provided in this embodiment. Two of the four arms 43d protrude from the base 43a to one side in the first direction X (the +X side). The two arms 43d are arranged side by side in the second direction Y. One of the two arms 43d protrudes to one side in the first direction X from a portion of the base 43a whose position in the second direction Y is between the first connector tube portion 43b and the second connector tube portion 43c. The remaining two of the four arms 43d protrude to the other side in the first direction X (the -X side) from each of both ends of the base 43a in the second direction Y. The remaining arm portions 43d protrude from the base portion 43a at an angle with respect to the first direction X, such that the arms 43d move away from each other in the second direction Y as they move toward the other side of the first direction X.
[0043] As shown in Fig. 7, the first protrusion 43h protrudes upward from each of the multiple arm portions 43d. The protruding direction of the first protrusion 43h (+Z direction) is the same as the protruding direction of the second protrusion 21b (+Z direction). The first protrusion 43h has a truncated cone shape extending in the axial direction. The outer diameter of the first protrusion 43h decreases upward. In other words, the outer diameter of the first protrusion 43h decreases in the direction in which the first protrusion 43h protrudes from the arm portion 43d (+Z direction).
[0044] As shown in Fig. 6, the first protrusion 43h is inserted into the first recess 22f. The outer peripheral surface 43m of the first protrusion 43h faces the inner peripheral surface 22m of the first recess 22f with a gap therebetween. The outer peripheral surface 43m of the first protrusion 43h is disposed along the inner peripheral surface 22m of the first recess 22f. The upper end of the first protrusion 43h is disposed downwardly and spaced apart from the uppermost surface of the inner surface of the first recess 22f. The entire outer surface of the first protrusion 43h is disposed spaced apart from the inner surface of the first recess 22f.
[0045] An elastic member 60a that comes into contact with the first connector 41 is provided between the inner surface of the first recess 22f and the outer surface of the first protrusion 43h. The elastic member 60a comes into contact with the inner surface of the first recess 22f and the outer surface of the first protrusion 43h. This allows the terminal holding portion 43 to come into contact with the housing 20 via the elastic member 60a.
[0046] The elastic member 60a has a cylindrical first portion 61 that contacts the inner circumferential surface 22m of the first recess 22f and the outer circumferential surface 43m of the first protrusion 43h and surrounds the first protrusion 43h, and a second portion 62 that is located between an upper surface of the inner surface of the first recess 22f and the first protrusion 43h. The second portion 62 is connected to the upper end of the first portion 61. The elastic member 60a fills the entire first recess 22f except for the area where the first protrusion 43h is located.
[0047] The elastic member 60a is provided at a position different from the first seal portion 51a. In this way, the terminal holding portion 43 contacts the housing 20 via the elastic member 60a provided at a position different from the first seal portion 51a, so that the force applied to the terminal holding portion 43 when, for example, an external connector is connected can be received by the elastic member 60a. This makes it possible to prevent stress from being generated in the connection portion between the connector terminals 45 and the control board 31 due to the force applied to the terminal holding portion 43. Therefore, it is possible to prevent problems from occurring in the connection between the connector terminals 45 and the control board 31.
[0048] Furthermore, for example, if the first seal portion 51a is elastic, it can also withstand the force applied to the terminal holder 43. However, because the first seal portion 51a is required to seal the first through-hole 24a, it is provided relatively close to the portion of the first connector 41 that protrudes outside the housing 20, i.e., the first connector tubular portion 43b and the second connector tubular portion 43c. This makes it difficult to increase the moment arm when the first seal portion 51a receives the force, and the first seal portion 51a alone is unlikely to adequately withstand the force applied to the terminal holder 43. In this embodiment, by separately providing the elastic member 60a at a position different from the first seal portion 51a, the elastic member 60a can be positioned to increase the moment arm. This allows the elastic member 60a to effectively withstand the force applied to the terminal holder 43. This effectively prevents problems from occurring in the connection between the connector terminal 45 and the control board 31.
[0049] Furthermore, for example, if the terminal holder 43 is firmly fixed to the housing 20 with bolts or the like, the force applied to the terminal holder 43 can be directly received by the housing 20, thereby suppressing stress at the connection between the connector terminals 45 and the control board 31. However, when an external connector is connected to the first connector 41, forces may be applied to the first connector 41 in multiple directions, such as the axial direction and a direction perpendicular to the axial direction. Therefore, in order for the housing 20 to appropriately receive these forces in multiple directions, it is necessary to provide a relatively large number of fixing points between the terminal holder 43 and the housing 20. In this case, since it is necessary to provide many parts for fixing the terminal holder 43 to the housing 20, the interior of the housing 20 becomes narrower by the number of fixing points. This makes it difficult to ensure a sufficient size for the control board 31 to be placed inside the housing 20. Specifically, for example, it is necessary to provide many fixing points with female threaded holes on the inner circumferential surface of the case member 21, making it difficult to enlarge the control board 31 in the direction perpendicular to the axial direction. Therefore, in this case, in order to increase the size of the control board 31, it is necessary to increase the size of the housing 20, which poses a problem of increasing the size of the entire rotating electric machine 100. In contrast, in this embodiment, the terminal holding portion 43 is configured to contact the housing 20 via the elastic member 60a, so there is no need to provide many portions that firmly fix the terminal holding portion 43 to the housing 20. This makes it possible to prevent the interior of the housing 20 from becoming narrower and ensure the size of the control board 31, while also suppressing stress from occurring in the connection portion between the connector terminal 45 and the control board 31.
[0050] Furthermore, according to this embodiment, the elastic member 60a is in contact with the inner surface of the first recess 22f and the outer surface of the first protrusion 43h. Therefore, the elastic member 60a is easily retained within the first recess 22f. This allows the terminal holder 43 and the housing 20 to be in favorable contact with each other via the elastic member 60a. Therefore, the force applied to the terminal holder 43 can be more favorably received by the elastic member 60a. Furthermore, since the elastic member 60a can be disposed between the inner surface of the first recess 22f and the outer surface of the first protrusion 43h in a direction perpendicular to the axial direction, the force applied to the terminal holder 43 in a direction perpendicular to the axial direction can be favorably received by the elastic member 60a. Therefore, even if a force that scoops the first connector 41 in a direction tilting the first connector 41 with respect to the axial direction is applied to the first connector 41, the stress generated in the first connector 41 can be favorably received by the elastic member 60a. Furthermore, inserting the first protrusion 43h into the first recess 22f makes it easy to position the terminal holder 43 relative to the housing 20.
[0051] In this embodiment, the elastic member 60a is disposed at a position farther away from the first connector tubular portion 43b and the second connector tubular portion 43c than the first seal portion 51a in a direction perpendicular to the axial direction. That is, the elastic member 60a is disposed at a position farther away from the portion of the first connector 41 that protrudes outside the housing 20 than the first seal portion 51a in a direction perpendicular to the axial direction. This allows the distance from the portion of the first connector 41 that protrudes outside the housing 20, i.e., the first connector tubular portion 43b and the second connector tubular portion 43c, to the elastic member 60a to be relatively large. This increases the moment arm when the elastic member 60a receives a force, allowing the elastic member 60a to more appropriately receive a force applied to the terminal holder 43.
[0052] In this embodiment, the elastic member 60a has a portion that is located in the same axial direction as the first seal portion 51a and a portion that is located in the same axial direction as the second seal portion 52. The axial position of the second portion 62 is the same as the axial position of a portion of the first seal portion 51a and the axial position of a portion of the second seal portion 52.
[0053] In this embodiment, the elastic member 60a is made of an adhesive. The adhesive constituting the elastic member 60a is a first adhesive. That is, the elastic member 60a includes the first adhesive. Therefore, when assembling the rotating electric machine 100, the elastic member 60a can be easily produced by applying the uncured first adhesive to the terminal holder 43 or the housing 20. Furthermore, if the elastic member 60a is made of a rubber sheet, for example, the rubber sheet may be elastically deformed due to assembly tolerances between the terminal holder 43 and the housing 20 during assembly of the rotating electric machine 100. The elastic force of the rubber sheet may make it difficult to assemble the terminal holder 43 and the housing 20. Furthermore, if the terminal holder 43 and the housing 20 are assembled while the rubber sheet remains elastically deformed, the elastic force of the rubber sheet may be constantly applied to the connection between the connector terminal 45 and the control board 31. In contrast, when the elastic member 60a is made of adhesive, the terminal holding portion 43 and the housing 20 are assembled together while the adhesive is still uncured, thereby absorbing assembly tolerances between the terminal holding portion 43 and the housing 20 without generating elastic force. This makes it easier to assemble the terminal holding portion 43 and the housing 20. Furthermore, since the uncured adhesive is cured to form the elastic member 60a, the terminal holding portion 43 and the housing 20 are not assembled together while the elastic member 60a is elastically deformed. This prevents the elastic force of the elastic member 60a from being applied to the connection between the connector terminals 45 and the control board 31. This further reduces the likelihood of problems occurring in the connection between the connector terminals 45 and the control board 31.
[0054] Because the elastic member 60a is made of an adhesive, the first protrusion 43h and the cover member 22 are bonded to each other by the elastic member 60a. In this embodiment, examples of the first adhesive constituting the elastic member 60a include elastic adhesives such as silicone-based adhesives and modified silicone-based adhesives. In this embodiment, the first adhesive contained in the elastic member 60a and the second adhesive contained in the first seal portion 51a are adhesives containing the same components. Therefore, the elastic member 60a and the first seal portion 51a can be made using the same adhesive. This reduces the manufacturing time and cost of the rotating electric machine 100 compared to when the elastic member 60a and the first seal portion 51a are made using different adhesives. Furthermore, the first seal portion 51a can also be made of an elastic material, and can also withstand the force applied to the terminal holder 43. This further reduces the occurrence of problems in the connection between the connector terminal 45 and the control board 31.
[0055] In this embodiment, the first adhesive contained in the elastic member 60a and the third adhesive contained in the second seal portion 52 are adhesives containing the same components. Therefore, the elastic member 60a and the second seal portion 52 can be made using the same adhesive. This reduces the number of steps and the manufacturing cost of the rotating electric machine 100 compared to when the elastic member 60a and the second seal portion 52 are made using different adhesives.
[0056] In this embodiment, the ratio of components contained in the first adhesive that constitutes the elastic member 60a is, for example, the same as the ratio of components contained in the second adhesive that constitutes the first seal portion 51a and the ratio of components contained in the third adhesive that constitutes the second seal portion 52. Note that the ratio of components contained in the first adhesive may be different from the ratio of components contained in the second adhesive and the ratio of components contained in the third adhesive.
[0057] As described above, according to this embodiment, the inner diameter of the first recess 22f decreases as the first recess 22f sinks (in the +Z direction). The outer diameter of the first protrusion 43h decreases as the first protrusion 43h protrudes (in the +Z direction). Therefore, for example, after the first adhesive constituting the elastic member 60a is applied to the inside of the first recess 22f in an uncured state, when the first protrusion 43h is inserted into the first recess 22f, the first protrusion 43h easily spreads the uncured first adhesive. This allows the uncured first adhesive to be suitably disposed between the inner surface of the first recess 22f and the outer surface of the first protrusion 43h, and the elastic member 60a can be easily and suitably produced by curing the uncured first adhesive.
[0058] In this embodiment, an elastic member 60a is provided between each inner surface of the first recess 22f and the outer surface of the first protrusion 43h. That is, a plurality of elastic members 60a are provided. As shown in FIG. 4, in this embodiment, four elastic members 60a are provided. Two of the four elastic members 60a are located on one side (+X side) in the first direction X of the first connector tube portion 43b and the second connector tube portion 43c. The remaining two of the four elastic members 60a are located on the other side (-X side) in the first direction X of the first connector tube portion 43b and the second connector tube portion 43c. One of the remaining two elastic members 60a is located on the other side (-Y side) in the second direction Y of the first connector tube portion 43b. The other of the remaining two elastic members 60a is located on one side (+Y side) in the second direction Y of the second connector tube portion 43c.
[0059] The four elastic members 60a include a pair of elastic members 60a arranged to sandwich the first connector tubular portion 43b as viewed in the axial direction and a pair of elastic members 60a arranged to sandwich the second connector tubular portion 43c as viewed in the axial direction. That is, in this embodiment, at least one pair of elastic members 60a is provided, arranged to sandwich the portion of the first connector 41 that protrudes outside the housing 20 as viewed in the axial direction. Therefore, a force applied in a direction perpendicular to the axial direction to the portion of the first connector 41 that protrudes outside the housing 20 can be more easily received by the pair of elastic members 60a. In this embodiment, forces applied in a direction perpendicular to the axial direction to the first connector tubular portion 43b and the second connector tubular portion 43c can be more effectively received by each of the two pairs of elastic members 60a. The two pairs of elastic members 60a are arranged to sandwich the insertion portion 43i as viewed in the axial direction. In this embodiment, each pair of elastic members 60a is arranged to sandwich each connector tubular portion in a direction inclined with respect to both the first direction X and the second direction Y when viewed in the axial direction.
[0060] The elastic member 60a is disposed at a position different from the first fixed portion 31b of the control board 31 fixed to the housing 20 when viewed from the axial direction. In other words, the elastic member 60a is disposed at a position different from the first fixed portion 31b when viewed from a predetermined direction. Therefore, it is easier to fix the first fixed portion 31b of the control board 31 to the housing 20 compared to when the elastic member 60a is disposed at a position overlapping the first fixed portion 31b when viewed from the axial direction. This improves the ease of assembly of the rotating electric machine 100.
[0061] The elastic member 60a is disposed in a position of the first connector 41 different from the second fixing portion 43k fixed to the control board 31 when viewed from the axial direction. In other words, the elastic member 60a is disposed in a position different from the second fixing portion 43k when viewed from a predetermined direction. Therefore, it is easier to provide the second fixing portion 43k in the first connector 41 than when the elastic member 60a is disposed in a position overlapping with the second fixing portion 43k when viewed from the axial direction. Furthermore, because the elastic member 60a and the second fixing portion 43k can each receive forces applied to the first connector 41 at different positions when viewed from the axial direction, it is possible to favorably and easily receive forces applied to the first connector 41 in multiple directions perpendicular to the axial direction.
[0062] As shown in FIG. 1 , the connector terminals 45 are elongated metal members. In the present embodiment, the connector terminals 45 are partially embedded and held in the terminal holder 43. The connector terminals 45 axially penetrate the base 43 a and the inserted portion 43 i of the terminal holder 43. The portions of the connector terminals 45 that penetrate the base 43 a and the inserted portion 43 i in the axial direction and protrude above the inserted portion 43 i are outer end portions 45 a that are exposed to the outside of the housing 20. The outer end portions 45 a are exposed to the outside of the housing 20 by being exposed to the inside of the first connector tubular portion 43 b or the second connector tubular portion 43 c. In the present embodiment, the outer end portions 45 a are upper end portions of the connector terminals 45. In the present embodiment, the connector terminals 45 include a plurality of connector terminals 45 whose outer end portions 45 a are exposed in the first connector tubular portion 43 b and a plurality of connector terminals 45 whose outer end portions 45 a are exposed in the second connector tubular portion 43 c.
[0063] The connector terminals 45, except for the outer end 45a and the portion embedded in the terminal holding portion 43, are located inside the housing 20. The portion of the connector terminal 45 located inside the housing 20 has an inner end 45b connected to the control board 31. In this embodiment, the inner end 45b is a lower end of the connector terminal 45. The inner end 45b axially penetrates the control board 31 from above the control board 31. The inner end 45b is electrically connected to the control board 31 by, for example, soldering. Thus, the connector terminals 45 are electrically connected to the control board 31. In this embodiment, the portion of the connector terminal 45 located inside the housing 20 protrudes downward from the upper wall portion of the base 43a, then bends and extends toward one side in the first direction X (the +X side), and further bends and extends downward to be connected to the control board 31.
[0064] In this embodiment, the outer end 45a is located above the elastic member 60a, and the inner end 45b is located below the elastic member 60a. In other words, the axial position of the elastic member 60a is between the axial positions of the outer end 45a and the inner end 45b. In other words, the position of the elastic member 60a in a predetermined direction is between the axial positions of the outer end 45a and the inner end 45b. The closer the position of the elastic member 60a is to the inner end 45b, the larger the axial moment arm when the elastic member 60a receives a force. However, on the other hand, the portion of the terminal holder 43 that contacts the housing 20 via the elastic member 60a must be located closer to the control board 31, which makes the first connector 41 larger overall in the axial direction. This reduces the strength of the first connector 41. In contrast to this, in this embodiment, by positioning the axial position of the elastic member 60a between the axial position of the outer end 45a and the axial position of the inner end 45b, the strength of the first connector 41 can be ensured while the elastic member 60a can appropriately bear the force.
[0065] As shown in FIG. 3, the second connector 42 has a terminal holding portion 44 and connector terminals 46. In the following description, the same components of the second connector 42 as those of the first connector 41 may be omitted. The terminal holding portion 44 has a base portion 44a, an inserted portion 44i, a connector tubular portion 44b, a second fixing portion 44g, an arm portion 44d, and a first protrusion 44h. As shown in FIG. 1, the inserted portion 44i is inserted into the second through-hole 24b. A first seal portion 51b is provided between the side surface of the inserted portion 44i and the inner surface of the second through-hole 24b. The first seal portion 51b contacts the second connector 42 and the housing 20 to seal the second through-hole 24b. The first seal portion 51b prevents liquids from entering the housing 20 from the outside through the second through-hole 24b.
[0066] In this embodiment, first seal portion 51b is made of an adhesive, thereby bonding second connector 42 and cover member 22 to each other. In this embodiment, the adhesive that forms first seal portion 51b is the same adhesive that forms first seal portion 51a.
[0067] The connector cylindrical portion 44b protrudes upward from the inserted portion 44i. The connector cylindrical portion 44b is located outside the housing 20. The connector cylindrical portion 44b is exposed to the outside of the housing 20. An external connector of an external device (not shown) is connected to the connector cylindrical portion 44b.
[0068] As shown in FIG. 3, the second fixing portion 44g protrudes from the lower end of the base 44a in a direction perpendicular to the axial direction. The second fixing portion 44g is fixed to a connector fixing portion 21j provided on the housing 20 by a bolt 72. In other words, the second connector 42 has the second fixing portion 44g fixed to the housing 20. The connector fixing portion 21j protrudes radially inward from the radially inner surface of the case member 21. The bolt 72 passes through the second fixing portion 44g in the axial direction and is fastened to an internally threaded hole provided on the upper surface of the connector fixing portion 21j. As shown in FIG. 4, in this embodiment, a pair of second fixing portions 44g are provided, sandwiching the connector tubular portion 44b between them, as viewed in the axial direction. The pair of second fixing portions 44g protrude from the base 44a in directions away from each other in the second direction Y.
[0069] In this embodiment, a pair of arms 44d are provided with the connector tube portion 44b sandwiched between them in the second direction Y when viewed from the axial direction. The pair of arms 44d protrude from the base portion 44a in directions away from each other in the second direction Y. The pair of arms 44d are arranged side by side on one side (+X side) of the pair of second fixing portions 44g in the first direction X.
[0070] The first protrusions 44h protrude upward from each of the pair of arm portions 44d. The first protrusions 44h are inserted into the first recesses 22f. An elastic member 60b that contacts the second connector 42 is provided between the inner surface of the first recesses 22f and the outer surface of the first protrusions 44h. The elastic member 60b contacts the inner surface of the first recesses 22f and the outer surface of the first protrusions 44h. This allows the terminal holding portion 44 to contact the housing 20 via the elastic member 60b. A pair of elastic members 60b are provided, sandwiching the inserted portion 44i in the second direction Y. In this embodiment, the elastic member 60b is made of an adhesive. The adhesive that forms the elastic member 60b in this embodiment is the same adhesive that forms the elastic member 60a.
[0071] The elastic member 60b also provides the same effect as the elastic member 60a described above. That is, the force applied to the terminal holding portion 44 of the second connector 42 can be appropriately received by the elastic member 60b. This makes it possible to prevent stress from being generated in the connection portion between the connector terminals 46 and the power board 32 due to the force applied to the terminal holding portion 44. Therefore, it is possible to prevent problems from occurring in the connection between the connector terminals 46 and the power board 32.
[0072] As shown in FIG. 1 , the connector terminal 46 is an elongated member made of metal. In the present embodiment, the connector terminal 46 is partially embedded and held in the terminal holding portion 44. The connector terminal 46 axially penetrates the base portion 44a and the inserted portion 44i of the terminal holding portion 44. The portion of the connector terminal 46 that penetrates the base portion 44a and the inserted portion 44i in the axial direction and protrudes above the inserted portion 44i is the outer end portion 46a that is exposed to the outside of the housing 20. The outer end portion 46a is exposed inside the connector tubular portion 44b, and is thereby exposed to the outside of the housing 20. In the present embodiment, the outer end portion 46a is the upper end portion of the connector terminal 46. A plurality of connector terminals 46 are provided.
[0073] The connector terminals 46, except for the outer end 46a and the portion embedded in the terminal holding portion 44, are located inside the housing 20. The portion of the connector terminal 46 located inside the housing 20 has an inner end 46b connected to the power board 32. In this embodiment, the inner end 46b is the end on the other side (-X side) in the first direction X of the lower end of the connector terminal 46. The inner end 46b penetrates the power board 32 in the first direction X from one side (+X side) of the power board 32 in the first direction X. The inner end 46b is electrically connected to the power board 32 by, for example, soldering. As a result, the connector terminals 46 are electrically connected to the power board 32. In this embodiment, the portion of the connector terminal 46 located inside the housing 20 protrudes downward from the upper wall portion of the base 44a, then bends and extends to the other side in the first direction X, and is connected to the power board 32 through the hole 21k.
[0074] After assembling the rotating electric machine 100, a worker or the like installs the control board 31, the first connector 41, and the second connector 42 into the case member 21 that houses the rotating electric machine main body 10, as shown in FIG. 3 , and then applies uncured adhesive to the inserted portions 43i of the first connector 41 and the inserted portions 44i of the second connector 42. At this time, the uncured adhesive applied to the inserted portions 43i, 44i is applied in an annular shape surrounding the inserted portions 43i, 44i when viewed from the axial direction. The worker or the like applies the uncured adhesive to the first recess 22f and the second recess 22e of the cover member 22, and then brings the cover member 22, with the uncured adhesive applied, close to the case member 21 from above to secure the cover member 22 to the case member 21. At this time, the first connector cylindrical portion 43b is passed through the first through hole 24a, the second connector cylindrical portion 43c is passed through the second through hole 24b, the first protrusion 43h is inserted into the first recess 22f, and the second protrusion 21b is inserted into the second recess 22e. Thereafter, the uncured adhesive applied to each portion as described above is cured, thereby forming the elastic member 60a, the first seal portions 51a and 51b, and the second seal portion 52.
[0075] According to this embodiment, the protruding direction of the first protrusion 43h and the protruding direction of the second protrusion 21b are the same. Therefore, by applying uncured adhesive from the same side, it is possible to create the elastic member 60a located between the outer surface of the first protrusion 43h and the inner surface of the first recess 22f, and the second seal portion 52 located between the second protrusion 21b and the inner surface of the second recess 22e. Specifically, in this embodiment, as described above, it is sufficient to apply uncured adhesive from the underside of the lid member 22 to the inside of the first recess 22f and the second recess 22e. Because the protruding direction of the first protrusion 43h and the protruding direction of the second protrusion 21b are the same, it is not necessary to separate the application process of applying uncured adhesive to create the elastic member 60a and the second seal portion 52 into separate processes. Instead, the uncured adhesive constituting the elastic member 60a and the uncured adhesive constituting the second seal portion 52 can be applied in a single process. Therefore, the number of steps in the manufacturing process of the rotating electrical machine 100 can be further reduced.
[0076] Furthermore, according to this embodiment, the first protrusions 43h, 44h are provided on the terminal holders 43, 44, and the second protrusion 21b is provided on the case member 21. The first recess 22f and the second recess 22e are provided on the lid member 22. Therefore, as described above, the process of applying the uncured adhesive can be divided into two steps: a step of applying the uncured adhesive to the terminal holders 43, 44, and a step of applying the uncured adhesive to the lid member 22. Here, for example, if the first recess 22f and the second recess 22e are provided on the terminal holders 43, 44 and the case member 21 rather than on the lid member 22, it is possible to apply the uncured adhesive to the terminal holders 43, 44 and the housing 20 from above in a single step. However, in that case, the portions to which the uncured adhesive is applied will be relatively close to each other, making it difficult to apply the uncured adhesive. In contrast, by dividing the areas to which the uncured adhesive is applied between the terminal holding portions 43, 44 and the cover member 22, it is possible to easily apply the uncured adhesive to each portion. Furthermore, for example, if the second recess 22e is provided at the upper end of the case member 21, the outer diameter of the case member 21 is likely to be larger than if the second protrusion 21b is provided at the upper end of the case member 21. Therefore, by providing the second recess 22e in the cover member 22 instead of the case member 21, it is easier to reduce the radial size of the rotating electric machine 100.
[0077] Second Embodiment In the following embodiments, the same components as those in the above-described embodiments are denoted by the same reference numerals as appropriate, and descriptions thereof may be omitted. As shown in Fig. 9, in a housing 220 of a rotating electric machine 200 of this embodiment, a column portion 221k extending in the axial direction is provided on the inner peripheral surface of a case member 221. A first recess 221m recessed downward is provided on the upper surface of the column portion 221k. The inner diameter of the first recess 221m is constant throughout the axial direction.
[0078] A first protrusion 243h of the terminal holding portion 243 in the first connector 241 protrudes downward from the arm portion 43d. In this embodiment, the protruding direction of the first protrusion 243h and the protruding direction of the second protrusion 21b are opposite to each other. The first protrusion 243h is inserted into the first recess 221m. The other configurations of the respective parts of the first connector 241 are similar to the other configurations of the respective parts of the first connector 41 in the first embodiment.
[0079] In this embodiment, the second connector may have a configuration similar to that of the second connector 42 of the first embodiment, or may have a configuration in which the protruding direction of the first convex portion is opposite to that of the second connector 42 of the first embodiment, like the first connector 241 of this embodiment.
[0080] The present invention is not limited to the above-described embodiments, and other configurations and methods may be adopted within the scope of the technical concept of the present invention. The elastic member is not particularly limited as long as it contacts the connector and the housing at a position different from the position where the first seal portion is provided. The number of elastic members is not particularly limited as long as it is one or more. The material constituting the elastic member may be any material. The elastic member does not have to be made of adhesive. The material constituting the elastic member may be an elastomer such as rubber. The elastic member may be a rubber sheet, etc. When multiple elastic members are provided, the multiple elastic members may include elastic members made of different materials.
[0081] The portion of the terminal holding portion that comes into contact with the elastic member is not particularly limited. The portion of the housing that comes into contact with the elastic member is not particularly limited. When a first recess and a first protrusion are provided, the first recess and the first protrusion may be provided on either the terminal holding portion or the lid member of the housing. For example, in the first embodiment described above, the terminal holding portion 43 may have the first recess 22f, and the lid member 22 may have the first protrusion 43h. The first recess and the first protrusion may not be provided.
[0082] The first seal may have any configuration as long as it surrounds the connector and contacts the connector with the housing to seal the through-hole provided in the housing. The first seal may be an O-ring or may be made by hardening a liquid gasket. The first seal may not have elasticity. When the elastic member and the first seal are made of adhesive, the second adhesive constituting the first seal may be an adhesive containing a different component from the first adhesive constituting the elastic member.
[0083] The second seal portion may be in contact with the lid member and the case member in any manner as long as it is provided between the lid member and the case member. When the second recess and the second protrusion are provided, the second recess and the second protrusion may be provided on either the case member or the lid member. For example, in the first embodiment described above, the case member 21 may have the second recess 22e, and the lid member 22 may have the second protrusion 21b. The second recess and the second protrusion may not be provided. When the elastic member and the second seal portion are made of adhesive, the third adhesive constituting the second seal portion may be an adhesive containing a different component from the first adhesive constituting the elastic member.
[0084] The number of connectors and the number of through holes into which the connectors are inserted are not particularly limited, as long as they are one or more. The through holes may be provided in any of the members constituting the housing, as long as the connectors can be inserted in the predetermined direction. The through holes may be provided in the case member. The through holes may have any shape, as long as they penetrate the housing in the predetermined direction. For example, in the first embodiment described above, the through holes may be notches cut out from the radial outer edge of the cover member 22 toward the radially inward direction. The number of boards is not particularly limited, as long as they are one or more. The boards may be arranged in any orientation relative to the connectors. The predetermined direction in which the connectors protrude from the inside of the housing to the outside of the housing may be any direction, and may even be a direction intersecting the axial direction of the rotating electric machine main body.
[0085] The application of the rotating electric machine to which the present invention is applied is not particularly limited. The rotating electric machine may be mounted in any type of equipment. The rotating electric machine does not have to be mounted in a vehicle. The electronic device to which the present invention is applied may be equipment other than a rotating electric machine. Note that the configurations described above in this specification can be combined as appropriate within a range that does not contradict each other. [Explanation of symbols]
[0086] 10... rotating electrical machine main body, 20, 220... housing, 21, 221... case member, 21a... cylindrical portion, 21b... second convex portion, 21g... opening, 22... cover member, 22e... second concave portion, 22f, 221m... first concave portion, 24... through hole, 24a... first through hole (through hole), 24b... second through hole (through hole), 31... control board (board), 31b... first fixing portion, 32... power board (board), 40... connector, 41... second 1 connector (connector), 42... second connector (connector), 43, 44, 243... terminal holding portion, 43h, 44h, 243h... first protrusion portion, 43k, 44g... second fixing portion, 45, 46... connector terminal, 45a, 46a... outer end portion, 45b, 46b... inner end portion, 51a, 51b... first seal portion (sealing member), 52... second seal portion, 60a, 60b... elastic member, 100, 200... rotating electric machine (electronic device)
Claims
1. a rotating electrical machine main body; A substrate; a housing having a through hole and accommodating the rotating electrical machine main body and the substrate therein; a connector that is passed through the through hole and protrudes in a predetermined direction from the inside of the housing to the outside of the housing; a first seal portion that surrounds the connector and seals the through hole; an elastic member that contacts the connector; Equipped with The connector comprises: a connector terminal electrically connected to the substrate; a terminal holding portion that holds the connector terminal; and the terminal holding portion contacts the housing via the elastic member; The elastic member is provided at a position different from the first seal portion.
2. The rotating electric machine according to claim 1 , wherein the elastic member is disposed at a position farther from the portion of the connector that protrudes outside the housing than the first seal portion in a direction perpendicular to the predetermined direction.
3. The rotating electric machine according to claim 1 , wherein the elastic member includes a first adhesive.
4. the first sealing portion includes a second adhesive; 4. The rotating electric machine according to claim 3, wherein the first adhesive and the second adhesive contain the same components.
5. The housing includes: a case member having an opening and accommodating the rotating electrical machine main body; a cover member having the through hole and closing the opening; and a second seal portion is provided between the cover member and the case member; the second sealing portion includes a third adhesive; 5. The rotating electric machine according to claim 3, wherein the first adhesive and the third adhesive contain the same components.
6. One of the cover member and the terminal holding portion has a first recess, the other of the cover member and the terminal holding portion has a first protrusion inserted into the first recess, the elastic member contacts an inner surface of the first recess and an outer surface of the first protrusion, one of the cover member and the case member has a second recess; the other of the cover member and the case member has a second protrusion inserted into the second recess, the second seal portion contacts an inner surface of the second recess and an outer surface of the second protrusion, The rotating electric machine according to claim 5 , wherein a direction in which the first protrusions protrude and a direction in which the second protrusions protrude are the same.
7. the first protrusion is provided on the terminal holding portion, the second protrusion is provided on the case member, The rotating electric machine according to claim 6 , wherein the first recess and the second recess are provided in the cover member.
8. One of the housing and the terminal holding portion has a first recess, the other of the housing and the terminal holding portion has a first protrusion inserted into the first recess, The rotating electric machine according to claim 1 , wherein the elastic member is in contact with an inner surface of the first recess and an outer surface of the first protrusion.
9. an inner diameter of the first recessed portion becomes smaller as the first recessed portion is recessed; The rotating electric machine according to claim 6 , wherein an outer diameter of the first protrusion decreases in a direction in which the first protrusion protrudes.
10. At least one pair of the elastic members is provided, The rotating electric machine according to claim 1 , wherein the pair of elastic members are arranged to sandwich a portion of the connector that protrudes outside the housing when viewed from the predetermined direction.
11. the substrate has a first fixing portion fixed to the housing, The rotating electric machine according to claim 1 , wherein the elastic member is disposed at a position different from that of the first fixed portion when viewed from the predetermined direction.
12. the connector has a second fixing portion fixed to the housing or the board, The rotating electric machine according to claim 1 , wherein the elastic member is disposed at a position different from that of the second fixed portion when viewed from the predetermined direction.
13. The connector terminal is an outer end portion exposed to the outside of the housing; an inner end connected to the substrate; and The rotating electric machine according to claim 1 , wherein the position of the elastic member in the predetermined direction is between the position of the outer end portion in the predetermined direction and the position of the inner end portion in the predetermined direction.
14. A substrate; a housing having a through hole and accommodating the substrate therein; a connector having a connector terminal electrically connected to the substrate and inserted into the through hole; a sealing member that seals the through hole; Equipped with The connector contacts the housing via an elastic member at a position different from the position where the sealing member is provided.
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