Electric pump

JP2025144717A5Pending Publication Date: 2026-03-25KAYABA CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-21
Publication Date
2026-03-25

AI Technical Summary

Technical Problem

Existing electric pumps require multiple parts, such as bearings and snap rings, to restrict the movement of the pump drive motor shaft, increasing complexity and cost.

Method used

The electric pump design incorporates a drive shaft with a large and small diameter section, a shoulder section, and a retaining member to restrict axial and radial movement using a rotor with insertion holes and a stop member, eliminating the need for additional parts like bearings.

Benefits of technology

This configuration reduces the number of parts, lowers manufacturing costs, and simplifies assembly while maintaining effective shaft movement restriction, absorbing manufacturing errors and preventing seizing.

✦ Generated by Eureka AI based on patent content.

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Abstract

To reduce the number of parts in an electric pump.SOLUTION: An electric pump 100 comprises a pump part 10 and a motor part 20, and the pump part 10 has a rotor 12. A drive shaft 1 has a shoulder part 4 formed between a large-diameter part 2 and a small-diameter part 3. The rotor 12 has a first insertion hole 12a, which fits with an outer peripheral surface of the large-diameter part 2 of the drive shaft 1, and a second insertion hole 12b into which the small-diameter part 3 of the drive shaft 1 is inserted. A stop ring 70 for preventing the drive shaft 1 from coming off from the rotor 12 is provided on the outer peripheral surface of the small-diameter part 3 of the drive shaft 1. Movement of the drive shaft 1 to one side in the axial direction relative to the rotor 12 is restricted as the shoulder part 4 of the drive shaft 1 comes into contact with a step part 12c between the first insertion hole 12a and the second insertion hole 12b, and movement of the drive shaft to the other side in the axial direction relative to the rotor 12 is restricted as the stop ring 70 comes into contact with the rotor 12.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an electric pump. [Background technology]

[0002] Patent Document 1 discloses an electric pump unit in which a pump, an electric motor for driving the pump, and a motor controller are assembled in a unit housing. A bearing is provided on the outer circumferential surface of the pump drive motor shaft driven by the motor. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2010-112302 Summary of the Invention [Problem to be solved by the invention]

[0004] In an electric pump unit such as that described in Patent Document 1, radial movement of the pump drive motor shaft is restricted by a bearing. Furthermore, a snap ring or the like is provided to sandwich the bearing, thereby restricting axial movement of the pump drive motor shaft via the bearing. In such an electric pump unit, the number of parts increases because the bearing, snap ring, and the like are provided to restrict movement of the pump drive motor shaft.

[0005] The present invention has been made in consideration of the above-mentioned problems, and has an object to reduce the number of parts in an electric pump. [Means for solving the problem]

[0006] The present invention comprises a pump section that discharges liquid, and a motor section that rotates a drive shaft to drive the pump section, wherein the pump section has a rotor through which the drive shaft is inserted and connected, the drive shaft having a large diameter section, a small diameter section that is smaller in diameter than the large diameter section, and a shoulder section that is formed between the large diameter section and the small diameter section, the rotor having a first insertion hole that fits with the outer peripheral surface of the large diameter section of the drive shaft, and a second insertion hole through which the small diameter section of the drive shaft is inserted and through which rotational torque is transmitted from the small diameter section, and a stop member that prevents the drive shaft from coming off the rotor is provided on the outer peripheral surface of the small diameter section of the drive shaft, and the shoulder of the drive shaft comes into contact with a step between the first insertion hole and the second insertion hole, thereby restricting movement of the drive shaft in one axial direction relative to the rotor, and the stop member comes into contact with the rotor, thereby restricting movement of the drive shaft in the other axial direction relative to the rotor.

[0007] In this invention, the radial movement of the drive shaft relative to the rotor is restricted by the engagement between the outer circumferential surface of the main body of the drive shaft and the inner circumferential surface of the first insertion hole of the rotor, and the axial movement of the drive shaft relative to the rotor is restricted by the contact of the shoulder of the drive shaft and the retaining member provided on the drive shaft with the rotor. Thus, the radial and axial movement of the drive shaft relative to the rotor can be restricted with a small number of parts.

[0008] The present invention is also characterized in that, when the retaining member is in contact with the rotor, a gap is formed between the shoulder of the drive shaft and the step of the rotor.

[0009] In this invention, the clearance between the shoulder of the drive shaft and the step of the rotor can absorb manufacturing errors in the drive shaft and the like.

[0010] The present invention is also characterized in that a ring-shaped accommodating hole is formed in the small diameter portion of the drive shaft to accommodate a portion of the anti-pullout member, and the rotor further has a pressing portion that presses the anti-pullout member against the accommodating hole by a reaction force when the anti-pullout member comes into contact with the rotor.

[0011] In addition, the present invention is characterized in that the pressing portion of the rotor is formed in a tapered shape inclined with respect to the axial direction.

[0012] In these inventions, the pressing portion of the rotor makes it difficult for the retaining member to fall out of the receiving hole.

[0013] The present invention is also characterized in that the small diameter portion of the drive shaft has a flat portion formed by cutting out a portion of the outer circumferential surface in the axial direction, and the shoulder portion of the drive shaft is formed between the large diameter portion and the flat portion.

[0014] This invention makes it easier to process the drive shaft. [Effects of the Invention]

[0015] According to the present invention, the number of parts of the electric pump can be reduced. [Brief explanation of the drawings]

[0016] [Figure 1] 1 is a cross-sectional view of an electric pump according to an embodiment of the present invention. [Figure 2] FIG. 2 is an enlarged view of a portion A shown in FIG. [Figure 3] FIG. 2 is an enlarged view of a portion B shown in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0017] An electric pump 100 according to an embodiment of the present invention will now be described with reference to the drawings. The electric pump 100 is mounted on, for example, a vehicle and discharges a coolant (liquid) for cooling an electric motor mounted on the vehicle, or discharges oil (liquid) for lubricating gears mounted on the vehicle. The electric pump 100 may also be used as a fluid pressure supply source that discharges a working fluid (liquid) for driving equipment. The electric pump 100 may also be mounted on industrial machinery other than vehicles.

[0018] As shown in Fig. 1, the electric pump 100 includes a pump unit 10 that discharges liquid, a motor unit 20 that rotates a drive shaft 1 to drive the pump unit 10, a control unit 30 that controls the motor unit 20, and a housing 40 that accommodates the pump unit 10, the motor unit 20, and the control unit 30. In the electric pump 100, the control unit 30, the motor unit 20, and the pump unit 10 are arranged in this order from the top in Fig. 1. Hereinafter, the axial direction of the drive shaft 1 will also be simply referred to as the "axial direction," and the radial direction of the drive shaft 1 will also be simply referred to as the "radial direction."

[0019] The pump section 10 is an internal gear pump. The pump section 10 has an inner rotor 12 as a rotor through which the drive shaft 1 is inserted and connected. An outer rotor 13 is provided on the outside of the inner rotor 12. The configuration of the drive shaft 1 and the configuration of the connection between the drive shaft 1 and the inner rotor 12 will be described later. The inner rotor 12 and the outer rotor 13 are housed in a housing 40 (specifically, a housing main body 41 described later), are provided eccentrically with respect to each other, and are covered by a pump cover 56 of the housing 40. Specifically, the inner rotor 12 is provided coaxially with the drive shaft 1 so that its center overlaps with the drive shaft 1, and the outer rotor 13 is provided so that its center is offset from the drive shaft 1. The inner rotor 12 has a plurality of external teeth (not shown) on its outer peripheral surface, and the outer rotor 13 has a plurality of internal teeth (not shown) on its inner peripheral surface that slide against the external teeth. The external teeth and the internal teeth are formed with different numbers of teeth, and a pump chamber 14 is defined by adjacent external teeth of the inner rotor 12 and internal teeth of the outer rotor 13. A plurality of pump chambers 14 are formed in the pump section 10.

[0020] When the drive shaft 1 rotates, the inner rotor 12 and the outer rotor 13 rotate while the external teeth of the inner rotor 12 slide against the internal teeth of the outer rotor 13. As the inner rotor 12 and the outer rotor 13 rotate, the volume of the pump chamber 14 repeatedly expands and contracts. In the expansion region (suction region) where the pump chamber 14 expands, liquid is sucked in through a suction port (not shown) formed in the pump cover 56, and in the contraction region (discharge region) where the pump chamber 14 contracts, liquid is discharged to the outside through a discharge port (not shown) formed in the pump cover 56.

[0021] The motor unit 20 includes an annular stator 21 and a motor rotor (not shown) disposed radially inside the stator 21. The stator 21 includes an annular stator core 22 disposed to surround the motor rotor and coil wires 23 wound around the stator core 22. The stator core 22 is formed with U-phase coils, V-phase coils, and W-phase coils corresponding to three-phase drive currents, and the ends of the coil wires 23 are connected to the control unit 30. The motor rotor includes a rotor core (not shown) coupled to the outer circumferential surface of the drive shaft 1 and rotating together with the drive shaft 1, and a plurality of permanent magnets (not shown) provided on the outer circumferential surface of the rotor core. In the motor unit 20, the motor rotor rotates about the drive shaft 1 due to the interaction between the magnetization state of the stator core 22 and the permanent magnets of the motor rotor. This drives the pump unit 10.

[0022] The control unit 30 controls the current supplied to the stator 21 to drive the motor unit 20. The control unit 30 includes electronic components 31 and a substrate 32 on which the electronic components 31 are mounted and to which the coil wires 23 of the motor unit 20 are connected. The electronic components 31 include, for example, a magnetic detection sensor such as a Hall element that can detect changes in magnetism that occur in response to the rotation of the drive shaft 1, and a calculation unit that calculates the rotation angle and rotation speed of the drive shaft 1 based on the detection value of the magnetic detection sensor. The control unit 30 controls the direction of the current flowing through the coil wires 23 of the stator 21 in accordance with the rotation angle of the drive shaft 1, and also controls the magnitude of the current supplied to the coil wires 23 so that the rotation speed of the drive shaft 1 matches a target rotation speed input from outside. A heat dissipation unit 33 that dissipates heat from the substrate 32 is provided between the substrate 32 and the housing 40.

[0023] The housing 40 has a housing main body portion 41 having an opening 42 , a cover 51 that covers the opening 42 , and a pump cover 56 that covers the pump portion 10 .

[0024] The housing main body 41 has an insertion hole 43 through which the drive shaft 1 is inserted, an annular motor accommodating recess 44 in which the motor section 20 is accommodated, an oil seal accommodating recess 46 formed axially continuous with the insertion hole 43 and in which the oil seal 65 is accommodated, and a pump accommodating recess 47 in which the pump section 10 is accommodated.

[0025] The insertion hole 43 is formed to extend in the axial direction between the oil seal accommodating recess 46 and the pump accommodating recess 47. The motor accommodating recess 44 is formed to be continuous with the opening 42, and the stator core 22 of the motor section 20 is provided in contact with an inner circumferential surface 44a. The oil seal accommodating recess 46 is formed to have a larger diameter than the insertion hole 43. The pump accommodating recess 47 is formed with its center offset from the insertion hole 43, and accommodates the inner rotor 12 and outer rotor 13 of the pump section 10.

[0026] The cover 51 has a protrusion 51a that protrudes from the opposite side to the housing main body 41 (upward in FIG. 2). The protrusion 51a is hollow, and the board 32 and heat dissipation unit 33 of the control unit 30 are housed in the hollow part of the protrusion 51a. The board 32 is electrically connected to the outside via a connector (not shown) provided in the housing main body 41. The cover 51 is fixed to the housing main body 41 with fastening members 81.

[0027] The pump cover 56 is provided to cover the pump accommodating recess 47. The pump cover 56 is fixed to the housing main body 41 by a fastening member (not shown). The pump cover 56 is formed with a shaft accommodating portion 56a that accommodates the tip end 1a of the drive shaft 1.

[0028] Next, the configuration of the drive shaft 1 and the configuration of the connection between the drive shaft 1 and the inner rotor 12 will be described in detail.

[0029] As shown in FIGS. 1 and 2, the drive shaft 1 has a large diameter portion 2, a small diameter portion 3 formed with a diameter smaller than the large diameter portion 2, and a shoulder portion 4 (see FIG. 2) formed between the large diameter portion 2 and the small diameter portion 3. The drive shaft 1 has the small diameter portion 3 formed on the tip end 1a side (lower side in FIG. 1) and the large diameter portion 2 formed on the base end 1b side (upper side in FIG. 1). The tip end 1a is accommodated in the shaft accommodating portion 56a of the pump cover 56 so as not to come into contact with the pump cover 56. A magnet 67 is provided on the base end 1b so as not to come into contact with the electronic components 31 and the circuit board 32 of the control unit 30. The control unit 30 detects changes in magnetism caused by the magnet 67 and calculates the rotation angle and rotation speed of the drive shaft 1.

[0030] The large diameter portion 2 is formed over the motor accommodating recess 44, the oil seal accommodating recess 46, the insertion hole 43, and the pump accommodating recess 47 of the housing main body 41 of the housing 40. The large diameter portion 2 is formed in a cylindrical shape with a uniform outer diameter along the axial direction, and has no notches or the like. An oil seal 65 and multiple bushings 60 are provided on the outer peripheral surface of the large diameter portion 2. The multiple bushings 60 are provided between the inner peripheral surface of the insertion hole 43 and the outer peripheral surface of the large diameter portion 2, and support the drive shaft 1 rotatably relative to the housing main body 41. It is noted that only one bushing 60 may be provided.

[0031] In this embodiment, the small diameter portion 3 is formed in a so-called D-cut shape. Specifically, the small diameter portion 3 has a flat portion 3a formed by cutting out a portion of the outer circumferential surface in the axial direction. The flat portion 3a is formed extending in the axial direction from the tip end portion 1a to the large diameter portion 2, and two flat portions 3a are formed parallel to each other. In other words, the small diameter portion 3 has a width across flats. As will be described later, the flat portions 3a come into contact with the inner rotor 12 and rotate, thereby transmitting the rotational torque of the drive shaft 1 to the inner rotor 12. Shoulders 4 (see FIG. 2) are formed between the large diameter portion 2 and the two flat portions 3a. The shoulders 4 are formed extending radially between the large diameter portion 2 and the two flat portions 3a.

[0032] As shown in FIGS. 1 and 3, a retaining ring 70 is provided on the outer peripheral surface of the small diameter portion 3 as a retaining member that prevents the drive shaft 1 from slipping out of the inner rotor 12. Specifically, an annular accommodating hole 3b (see FIG. 3) is formed on the outer peripheral surface of the small diameter portion 3 of the drive shaft 1, and a portion of the retaining ring 70 is accommodated in the accommodating hole 3b. A portion of the retaining ring 70 is exposed radially from the accommodating hole 3b. The retaining ring 70 is formed in an annular shape, and when not attached to the accommodating hole 3b, its inner diameter is smaller than the innermost diameter of the accommodating hole 3b or is approximately the same as the innermost diameter of the accommodating hole 3b. The accommodating hole 3b is formed with an arc-shaped cross section that conforms to the shape of the retaining ring 70. When attaching the retaining ring 70 to the drive shaft 1, the inner rotor 12 is first attached to the drive shaft 1, and then force is applied from the inside to the retaining ring 70, causing it to elastically deform and expand in diameter, and move along the outer peripheral surface of the small diameter portion 3. Then, by loosening the force applied to the retaining ring 70 on the receiving hole 3b, the retaining ring 70 is reduced in diameter and received in the receiving hole 3b. The retaining ring 70 may be formed in a C-shape or an E-shape.

[0033] The retaining ring 70 is capable of contacting the inner rotor 12 (specifically, the pressing portion 12d, which will be described later), and contact of the retaining ring 70 with the inner rotor 12 restricts movement of the drive shaft 1 in the axial direction (upward in FIG. 1-3) relative to the inner rotor 12. This prevents the drive shaft 1 from coming off the inner rotor 12. The retaining ring 70 is positioned so that, even when it comes into contact with the inner rotor 12, the magnet 67 provided on the drive shaft 1 will not come into contact with the electronic components 31 or the board 32 of the control unit 30.

[0034] 2 and 3, the inner rotor 12 has a first insertion hole 12a (see FIG. 2) that fits onto the outer peripheral surface of the large diameter portion 2 of the drive shaft 1, a second insertion hole 12b (see FIG. 2) through which the small diameter portion 3 of the drive shaft 1 is inserted, and a pressing portion 12d (see FIG. 3) that can come into contact with the retaining ring 70. The first insertion hole 12a, the second insertion hole 12b, and the pressing portion 12d are formed continuously and lined up in this order from the top side in FIG.

[0035] As shown in Figure 2, the first insertion hole 12a is formed at one axial end of the inner rotor 12 (upper side in Figures 1 to 3). The inner diameter of the first insertion hole 12a is larger than the inner diameter of the second insertion hole 12b and is approximately the same diameter as the large diameter portion 2 of the drive shaft 1. Therefore, when the drive shaft 1 is inserted into the inner rotor 12, the outer peripheral surface of the large diameter portion 2 of the drive shaft 1 fits into the inner peripheral surface of the first insertion hole 12a of the inner rotor 12. This allows the drive shaft 1 and the inner rotor 12 to be arranged coaxially, and restricts radial movement of the drive shaft 1 relative to the inner rotor 12.

[0036] The second insertion hole 12b is formed between the first insertion hole 12a and the pressing portion 12d. The second insertion hole 12b is formed to correspond to the shape of the small diameter portion 3 of the drive shaft 1. Specifically, the second insertion hole 12b has a flat portion 12e that comes into surface contact with the flat portion 3a of the small diameter portion 3. When the drive shaft 1 rotates, rotational torque is transmitted from the flat portion 3a of the drive shaft 1 to the flat portion 12e of the inner rotor 12, causing the inner rotor 12 to rotate.

[0037] A stepped portion 12c is formed between the first insertion hole 12a and the second insertion hole 12b. The stepped portion 12c is formed to extend radially. The stepped portion 12c is formed to face the shoulder portion 4 of the drive shaft 1 in the axial direction and is capable of contacting the shoulder portion 4. The shoulder portion 4 contacts the stepped portion 12c, thereby restricting the movement of the drive shaft 1 in the axial direction (downward in FIGS. 1 to 3) relative to the inner rotor 12. The shoulder portion 4 of the drive shaft 1 is positioned so that the tip end 1a of the drive shaft 1 does not contact the pump cover 56 even when it contacts the stepped portion 12c of the inner rotor 12.

[0038] As shown in FIG. 3, the pressing portion 12d is formed in an annular shape at the other axial end (lower side in FIGS. 1 to 3) of the inner rotor 12. The pressing portion 12d is formed in a tapered shape inclined with respect to the axial direction. Specifically, the pressing portion 12d is formed so that its diameter gradually increases with increasing distance from the second insertion hole 12b. The pressing portion 12d can come into contact with a retaining ring 70. When the retaining ring 70 comes into contact with the tapered pressing portion 12d, the axial movement of the drive shaft 1 relative to the inner rotor 12 (upper side in FIGS. 1 to 3) is restricted. Furthermore, when the retaining ring 70 comes into contact with the pressing portion 12d, a reaction force F of the force of the retaining ring 70 pressing the pressing portion 12d acts from a point P where they contact each other in a direction perpendicular to the pressing portion 12d (arrow F shown in FIG. 3). An extension line of the reaction force F intersects with the accommodating hole 3b. In other words, the accommodating hole 3b is provided at a position where an extension line of the reaction force F extending from the point P intersects. Therefore, the retaining ring 70 is pressed against the accommodating hole 3b of the drive shaft 1. This makes it difficult for the retaining ring 70 to fall off from the accommodating hole 3b. Furthermore, because the retaining ring 70 is difficult to fall off from the accommodating hole 3b, the accommodating hole 3b can be formed shallower than in a configuration without the pressing portion 12d, and the cross-sectional loss of the small diameter portion 3 is reduced.

[0039] In this way, in the electric pump 100, the outer peripheral surface of the large diameter portion 2 of the drive shaft 1 is fitted into the inner peripheral surface of the first insertion hole 12a of the inner rotor 12, thereby restricting radial movement of the drive shaft 1 relative to the inner rotor 12, and the shoulder portion 4 of the drive shaft 1 and the retaining ring 70 provided on the drive shaft 1 come into contact with the inner rotor 12, thereby restricting axial movement of the drive shaft 1 relative to the inner rotor 12. In other words, radial and axial movement of the drive shaft 1 relative to the inner rotor 12 can be restricted without providing a bearing or a snap ring, washer, or the like that restricts axial movement of the bearing. Therefore, radial and axial movement of the drive shaft 1 relative to the inner rotor 12 can be restricted with a small number of parts.

[0040] Furthermore, the electric pump 100 does not require bearings, which are relatively expensive components, thereby reducing the manufacturing costs of the electric pump 100. Furthermore, the electric pump 100 can be assembled simply by fitting the outer peripheral surface of the large diameter portion 2 of the drive shaft 1 with the inner peripheral surface of the first insertion hole 12a of the inner rotor 12 and providing the retaining ring 70, which improves the ease of assembly of the electric pump 100 compared to a configuration in which movement of the drive shaft 1 is restricted by bearings, snap rings, washers, etc.

[0041] 1 and 2, in the electric pump 100, when the retaining ring 70 is in contact with the inner rotor 12, a gap S (see FIG. 2) is formed between the shoulder 4 of the drive shaft 1 and the step 12c of the inner rotor 12. If the gap S were not formed, a force would be applied from the drive shaft 1 to press the inner rotor 12 toward the pump cover 56 due to manufacturing errors in the drive shaft 1, etc. For example, the drive shaft 1 would receive a force from a motor rotor (not shown) of the motor unit 20, which would press the inner rotor 12 toward the pump cover 56. In this case, the inner rotor 12 would seize or become seized. However, in the electric pump 100 of this embodiment, the gap S is formed, and the gap S can absorb manufacturing errors in the drive shaft 1, etc. This prevents the inner rotor 12 from seizing or becoming seized or becoming seized.

[0042] Furthermore, in electric pump 100, part of the outer circumferential surface of large diameter portion 2 of drive shaft 1 is cut away to form flat portion 3a of small diameter portion 3, which makes it easier to process drive shaft 1.

[0043] According to the present embodiment described above, the following effects are achieved.

[0044] In the electric pump 100, the outer peripheral surface of the large diameter portion 2 of the drive shaft 1 fits into the inner peripheral surface of the first insertion hole 12a of the inner rotor 12, restricting radial movement of the drive shaft 1 relative to the inner rotor 12, and the shoulder portion 4 of the drive shaft 1 and a retaining ring 70 provided on the drive shaft 1 come into contact with the inner rotor 12, restricting axial movement of the drive shaft 1 relative to the inner rotor 12. Thus, the radial and axial movement of the drive shaft 1 relative to the inner rotor 12 can be restricted with a small number of parts.

[0045] Next, modified examples of this embodiment will be described. The following modified examples are also within the scope of the present invention, and it is possible to combine the configurations shown in the modified examples with the configurations described in the above embodiment, or to combine the configurations described in the following different modified examples.

[0046] <Variation 1> In the above embodiment, the drive shaft 1 has the small diameter portion 3 on the tip end 1a side and the large diameter portion 2 on the base end 1b side. Alternatively, the drive shaft 1 may have the large diameter portion 2 on the tip end 1a side and the small diameter portion 3 on the base end 1b side. In this configuration, the inner rotor 12 is formed upside down from the shape shown in FIG. 1 . The retaining ring 70 provided on the outer peripheral surface of the small diameter portion 3 contacts the pressing portion 12d of the inner rotor 12, thereby restricting axial movement of the drive shaft 1 in one direction relative to the inner rotor 12, and the shoulder portion 4 contacts the step portion 12c of the inner rotor 12, thereby restricting axial movement of the drive shaft 1 in the other direction relative to the inner rotor 12. This configuration also provides the same effects as the above embodiment.

[0047] <Variation 2> In the above embodiment, when the retaining ring 70 is in contact with the inner rotor 12, a gap S is formed between the shoulder 4 of the drive shaft 1 and the step 12c of the inner rotor 12, and this gap S can absorb manufacturing errors of the drive shaft 1, etc. However, although it is preferable that the gap S is formed, it is not an essential component of the electric pump 100.

[0048] <Variation 3> In the above embodiment, the accommodating hole 3b is formed with an arc-shaped cross section that conforms to the shape of the retaining ring 70. However, the shape of the accommodating hole 3b is not limited to this, and may be, for example, rectangular in cross section. Also, in the above embodiment, the pressing portion 12d of the inner rotor 12 is formed with a tapered shape, and the retaining ring 70 is pressed against the accommodating hole 3b by the reaction force F. However, the pressing portion 12d does not have to be formed with a tapered shape as long as the retaining ring 70 can be pressed against the accommodating hole 3b by the reaction force F, and further, the pressing portion 12d does not have to be formed in cases where there is no risk of the retaining ring 70 falling off, etc.

[0049] <Variation 4> In the above embodiment, the shoulder portion 4 is formed to extend linearly in the radial direction. However, the shape of the shoulder portion 4 is not limited to the above as long as it can restrict axial movement of the drive shaft 1 relative to the inner rotor 12 by coming into axial contact with the step portion 12c of the inner rotor 12. For example, the shoulder portion 4 may be formed to have a curved surface or a tapered shape.

[0050] <Variation 5> In the above embodiment, the small diameter portion 3 of the drive shaft 1 is formed in a so-called D-cut shape. Specifically, the small diameter portion 3 has two flat portions 3a formed by cutting out part of the outer circumferential surface of the large diameter portion 2. However, the shape of the small diameter portion 3 is not limited to this as long as it can transmit the rotational torque of the drive shaft 1 to the inner rotor 12. The small diameter portion 3 may also be configured to have only one flat portion 3a. Furthermore, the small diameter portion 3 and the inner rotor 12 may be spline-coupled.

[0051] <Variation 6> In the above embodiment, the pump section 10 is an internal gear pump in which the inner rotor 12 has a plurality of external teeth on its outer peripheral surface, and the outer rotor 13 has a plurality of internal teeth on its inner peripheral surface that are in sliding contact with the external teeth. However, the configuration of the pump section 10 is not limited to this, and the pump section 10 may be, for example, a vane pump having a cam ring or a plurality of vanes.

[0052] The configuration, operation, and effects of the embodiment of the present invention will be described below.

[0053] The electric pump 100 includes a pump section 10 that discharges a liquid, and a motor section 20 that drives the pump section 10 by rotating a drive shaft 1. The pump section 10 has an inner rotor 12 as a rotor through which the drive shaft 1 is inserted and connected. The drive shaft 1 has a large diameter section 2, a small diameter section 3 that is formed with a diameter smaller than that of the large diameter section 2, and a shoulder section 4 that is formed between the large diameter section 2 and the small diameter section 3. The inner rotor 12 has a first insertion hole 12a that fits with the outer circumferential surface of the large diameter section 2 of the drive shaft 1, and a second insertion hole 12b through which the small diameter section 3 of the drive shaft 1 is inserted and which is connected to the small diameter section 3 of the drive shaft 1. and a second insertion hole 12b through which rotational torque is transmitted from the first insertion hole 12a to the second insertion hole 12b. A retaining ring 70 is provided on the outer peripheral surface of the small diameter portion 3 of the drive shaft 1 as a retaining member that prevents the drive shaft 1 from slipping out of the inner rotor 12. The shoulder 4 of the drive shaft 1 comes into contact with a step 12c between the first insertion hole 12a and the second insertion hole 12b, thereby restricting movement of the drive shaft 1 in one axial direction relative to the inner rotor 12, and the retaining ring 70 comes into contact with the inner rotor 12, thereby restricting movement of the drive shaft 1 in the other axial direction relative to the inner rotor 12.

[0054] In this configuration, the outer peripheral surface of the large diameter portion 2 of the drive shaft 1 fits into the inner peripheral surface of the first insertion hole 12a of the inner rotor 12, restricting radial movement of the drive shaft 1 relative to the inner rotor 12, and the shoulder portion 4 of the drive shaft 1 and a retaining ring 70 provided on the drive shaft 1 come into contact with the inner rotor 12, restricting axial movement of the drive shaft 1 relative to the inner rotor 12. Therefore, the radial and axial movement of the drive shaft 1 relative to the inner rotor 12 can be restricted with a small number of parts.

[0055] In the electric pump 100, when the retaining ring 70 is in contact with the inner rotor 12, a gap S is formed between the shoulder portion 4 of the drive shaft 1 and the step portion 12c of the inner rotor 12.

[0056] In this configuration, the gap S between the shoulder portion 4 of the drive shaft 1 and the step portion 12c of the inner rotor 12 can absorb manufacturing errors of the drive shaft 1 and the like.

[0057] In addition, in the electric pump 100, an annular accommodating hole 3b that accommodates a portion of the retaining ring 70 is formed in the small diameter portion 3 of the drive shaft 1, and the inner rotor 12 further has a pressing portion 12d that presses the retaining ring 70 against the accommodating hole 3b by a reaction force when the retaining ring 70 comes into contact with it.

[0058] In the electric pump 100, the pressing portion 12d of the inner rotor 12 is formed in a tapered shape that is inclined with respect to the axial direction.

[0059] In these configurations, the pressing portion 12d of the inner rotor 12 makes it difficult for the retaining ring 70 to fall out of the receiving hole 3b.

[0060] In addition, in the electric pump 100, the small diameter portion 3 of the drive shaft 1 has a flat portion 3a formed by cutting out a portion of the outer circumferential surface in the axial direction, and the shoulder portion 4 of the drive shaft 1 is formed between the large diameter portion 2 and the flat portion 3a.

[0061] This configuration makes it easier to process the drive shaft 1.

[0062] Although the embodiments of the present invention have been described above, the above embodiments merely illustrate some of the application examples of the present invention, and it is not intended that the technical scope of the present invention be limited to the specific configurations of the above embodiments. [Explanation of symbols]

[0063] 1...drive shaft, 2...large diameter portion, 3...small diameter portion, 3a...flat portion, 3b...accommodating hole, 4...shoulder portion, 10...pump portion, 12...inner rotor (rotor), 12a...first insertion hole, 12b...second insertion hole, 12c...step portion, 12d...pressing portion, 20...motor portion, 70...retaining ring (retaining member), 100...electric pump

Claims

1. A pump section that discharges liquid, It comprises a motor unit that rotates the drive shaft to drive the pump unit, The pump section has a rotor through which the drive shaft is inserted and connected, The aforementioned drive shaft is Large diameter section and A small-diameter portion is formed with a smaller diameter than the aforementioned large-diameter portion, It has a shoulder portion formed between the large diameter portion and the small diameter portion, The rotor is A first insertion hole that fits with the outer circumferential surface of the large-diameter portion of the drive shaft, The drive shaft has a second insertion hole through which the small-diameter portion of the drive shaft is inserted and through which rotational torque is transmitted from the small-diameter portion, A retaining member is provided on the outer circumferential surface of the small-diameter portion of the drive shaft to prevent the drive shaft from coming off the rotor. The aforementioned drive shaft is The shoulder portion of the drive shaft contacts the stepped portion between the first insertion hole and the second insertion hole, thereby restricting its movement in one axial direction relative to the rotor. The retaining member contacts the rotor, thereby restricting its movement in the other axial direction relative to the rotor. An annular housing hole is formed in the small-diameter portion of the drive shaft to accommodate a part of the retaining member. The rotor further has a pressing portion that, when the retaining member comes into contact with it, presses the retaining member against the housing hole due to a reaction force, The electric pump is characterized in that the receiving hole is provided at a position where the extension of the reaction force of the force with which the retaining member presses against the pressing portion intersects when the retaining member contacts the pressing portion.

2. An electric pump according to claim 1, An electric pump characterized in that when the retaining member is in contact with the rotor, a gap is formed between the shoulder portion of the drive shaft and the stepped portion of the rotor.

3. An electric pump according to Claim 1, The electric pump is characterized in that the pressing portion of the rotor is formed in a tapered shape that is inclined with respect to the axial direction.

4. An electric pump according to claim 1, The small-diameter portion of the drive shaft has a flat portion formed by cutting out a part of its outer surface in the axial direction. The electric pump is characterized in that the shoulder portion of the drive shaft is formed between the large-diameter portion and the flat portion.