Rotation detection device
The rotation detection device simplifies axial gap adjustment through a screw mechanism and fixing member, addressing the complexity of existing devices and reducing costs and assembly complexity.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-22
- Publication Date
- 2026-04-08
AI Technical Summary
Existing rotation detection devices require complex interval adjustment operations for the axial gap between the detection and detected portions, which complicates the assembly process and increases manufacturing costs.
The rotation detection device incorporates a female screw portion on the housing and a male screw portion on the installation member, allowing for easy adjustment of the axial gap by screwing the male threaded portion into the female threaded portion, and utilizes a fixing member to secure the housing and installation member relative to each other, simplifying the adjustment process.
This configuration simplifies the axial gap adjustment, reduces manufacturing costs, and enhances precision in gap spacing, while also reducing the need for additional components like shims, thereby streamlining the assembly process.
Smart Images

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Abstract
Description
Technical Field
[0001] This disclosure relates to a rotation detection device.
Background Art
[0002] Patent Document 1 discloses a rotation detection device including a detected portion that rotates integrally with a rotating body, a detection portion that faces the detected portion in the axial direction with an axial gap therebetween, and an installation member on which the detection portion is installed.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] When obtaining the intended detection characteristics by a rotation detection device, an interval adjustment operation of an axial gap between the detection portion and the detected portion of the rotation detection device may be required. The inventor of the present application has recognized that there is room for improvement with respect to the prior art in order to simplify the interval adjustment operation of this axial gap.
[0005] One object of this disclosure is to provide a rotation detection device capable of simplifying the interval adjustment operation of an axial gap.
Means for Solving the Problems
[0006] The rotation detection device of this disclosure is a rotation detection device including a housing that houses a rotating body, a detected portion that rotates integrally with the rotating body, a detection portion that faces the detected portion in the axial direction with an axial gap therebetween, and an installation member on which the detection portion is installed, and includes a female screw portion provided on one of the housing and the installation member, and a male screw portion provided on the other of the housing and the installation member and screwed into the female screw portion.
Effects of the Invention
[0007] According to this disclosure, the process of adjusting the axial gap can be simplified. [Brief explanation of the drawing]
[0008] [Figure 1] This is a side view showing a partial cross-section of the rotating machine of the first embodiment. [Figure 2] This is a side cross-sectional view of the rotation detection device of the first embodiment. [Figure 3] This is a perspective view of the rotation detection device of the first embodiment. [Figure 4] This is a perspective view of the housing and mounting components. [Figure 5] This is a cross-sectional view of the area around section A in Figure 3. [Figure 6] This is a cross-sectional view of section 6-6 in Figure 5. [Figure 7] Figure 6 is a cross-sectional view showing the installation member in a rotated state. [Figure 8] This is a cross-sectional view of the area around section B in Figure 3. [Figure 9] Figure 9(A) is a front view of the rotation detection device of the first embodiment, and Figure 9(B) is a functional block diagram of the control unit. [Figure 10] This is a rear view showing the first detection unit and mounting components. [Figure 11] This is a cross-sectional view of line 11-11 in Figure 10. [Figure 12] This is a front view showing the second detection unit and mounting components. [Figure 13] This is a rear view showing the second detection unit and mounting components. [Figure 14] This is a cross-sectional view of section 14-14 in Figure 13. [Figure 15] This is a cross-sectional view of the rotation detection device of the second embodiment, taken from the same viewpoint as in Figure 6. [Modes for carrying out the invention]
[0009] Hereinafter, embodiments will be described. The same components are denoted by the same reference numerals, and redundant descriptions will be omitted. In each drawing, for convenience of explanation, components may be omitted, enlarged, or reduced as appropriate. The drawings are to be viewed in accordance with the orientation of the reference numerals.
[0010] (First Embodiment) Refer to FIG. 1. The rotation detection device 10 is used for a rotating machine 14 including a rotating body 12. Hereinafter, the direction along the rotation center line C12 of the rotating body 12 is referred to as the axial direction X, and the circumferential direction and the radial direction of the circle centered on the rotation center line C12 are simply referred to as the circumferential direction and the radial direction.
[0011] The rotating machine 14 of the present embodiment is an actuator. This includes a rotor shaft 16 as the rotating body 12, a motor 18 that rotates the rotor shaft 16, a speed reducer 20 that decelerates the rotation of the rotor shaft 16 and outputs it to a driven member, and a housing 22 that houses the rotating body 12. The rotating body 12 is rotatably supported via a bearing (not shown) incorporated in the rotating machine 14. The housing 22 of the present embodiment houses the motor 18 and the like in addition to the rotating body 12. A specific example of the driven member is not particularly limited, and for example, it is a part of a driven machine such as a conveyor, a wheel, a machine tool, a robot (industrial robot, service robot, etc.).
[0012] The motor 18 of the present embodiment is a three-phase brushless DC motor. A specific example of the motor 18 is not particularly limited, and for example, a DC motor with brushes, an AC motor (permanent magnet motor, induction motor, reluctance motor, etc.), a coreless motor, etc. may also be used. The motor 18 includes a stator 18a fixed to the housing 22 and a rotor 18b that can rotate integrally with the rotor shaft 16.
[0013] Refer to FIGS. 2, 3, and 4. In addition to the aforementioned housing 22, the rotation detection device 10 includes a detected portion 30 that rotates integrally with the rotating body 12 (rotor shaft 16), a detection portion 34 that faces the detected portion 30 in the axial direction X with an axial gap 32 therebetween, and an installation member 36 on which the detection portion 34 is installed. The housing 22 also serves as a part of the rotating machine 14. The housing 22 includes a cylindrical first peripheral wall portion 22a that opens toward one axial side.
[0014] The detected part 30 and the detection part 34 of the rotation detection device 10 constitute a non-contact rotary encoder. The rotary encoder of the present embodiment is a magnetic encoder in which the detection part 34 is a magnetic sensor and the detected part 30 is a magnetic scale. This specific example is not particularly limited. For example, an optical encoder in which the detection part 34 is an optical sensor and the detected part 30 is an optical scale may be used.
[0015] The detected part 30 is an annular scale such as a magnetic scale. The detected part 30 of the present embodiment is fixed to an annular hub 38 attached to the rotating body 12 using bolts B1 or the like. The detected part 30 of the present embodiment is housed in the housing 22.
[0016] The detection part 34 can detect the rotation of the rotating body 12 by detecting a change in a predetermined physical quantity (such as magnetic field, light quantity, etc.) when the detected part 30 rotates together with the rotating body 12. The detection part 34 of the present embodiment is a sensor IC (IC: Integrated Circuit) incorporating a sensor element (such as a magnetic sensitive element) that detects a predetermined physical quantity and converts it into an electrical signal. This sensor IC can generate a detection signal indicating the rotation state (such as rotation angle) of the rotating body 12 as the detection result by processing the electrical signal detected by the sensor element.
[0017] When using such a rotary encoder, the detection characteristics by the detection part 34 vary according to the interval of the axial gap 32. For example, when using a magnetic encoder as in the present embodiment, the density, direction, etc. of the magnetic flux emitted by the detected part 30 (magnetic scale) vary according to the interval of the axial gap 32. Along with this, the detection characteristics vary because the signal intensity that can be detected by the detection part 34 (sensor element) changes.
[0018] The detection part 34 is a part of the detection unit 40. The detection unit 40 includes, in addition to the detection part 34, a circuit board 42 on which the detection part 34 is mounted. The circuit board 42 of the present embodiment has an arc shape.
[0019] The mounting member 36 comprises a second circumferential wall portion 36a provided in a position that radially overlaps with the first circumferential wall portion 22a of the housing 22, an inner surface portion 36b on the side of the detected portion 30 in the axial direction X (hereinafter also simply referred to as the axial inner side), an outer surface portion 36c on the opposite side from the detected portion 30 in the axial direction X (hereinafter also simply referred to as the axial outer side), and a mounting portion 36d on which the detection portion 34 is installed. The inner surface portion 36b has a tapered portion 36e that extends radially outward as it moves axially inward. The outer surface portion 36c has a flange portion 36f that protrudes radially outward from the second circumferential wall portion 36a and faces the opening end of the housing 22 in the axial direction X. The mounting portion 36d is composed of a projection that protrudes radially inward from the second circumferential wall portion 36a. In this embodiment, the detection portion 34 is installed on the mounting portion 36d via other components of the detection unit 40 (circuit board 42).
[0020] The rotation detection device 10 comprises a female threaded portion 46 provided on the housing 22 and a male threaded portion 48 provided on the installation member 36. The female threaded portion 46 is provided on the inner circumference of the first circumferential wall portion 22a of the housing 22, and the male threaded portion 48 is provided on the outer circumference of the second circumferential wall portion 36a of the installation member 36. The female threaded portion 46 is provided on the inner circumference of the non-load side opening end of the first circumferential wall portion 22a of the housing 22. The male threaded portion 48 is screwed into the female threaded portion 46. The male threaded portion 48 and the female threaded portion 46 constitute a screw mechanism 50. By changing the amount the male threaded portion 48 is screwed into the female threaded portion 46, the axial relative position of the housing 22 and the installation member 36 changes. Accordingly, the axial relative position between the rotating body 12 (detected portion 30) inside the housing 22 and the detection portion 34 installed on the installation member 36 changes, and the axial gap 32 between the detected portion 30 and the detection portion 34 can be adjusted.
[0021] Refer to Figure 5. Figure 5 is also the 5-5 cross-sectional view of Figure 6, which will be described later. The rotation detection device 10 includes a fixing member 60 that fixes the housing 22 and the installation member 36 so that they cannot rotate relative to each other, with an axial gap 32 between the detected part 30 and the detection part 34. The fixing member 60 fixes the housing 22 and the installation member 36 so that they cannot move relative to each other in the axial direction X by fixing them so that they cannot rotate relative to each other.
[0022] The fixing member 60 in this embodiment is an insertion member that is inserted through the first insertion hole 62A of the housing 22 and the second insertion hole 62B of the installation member 36. The fixing member 60 (insertion member) in this embodiment is a blind rivet, that is, a rivet, which is a fastening member that fastens the housing 22 and the installation member 36 together.
[0023] The fixing member 60 comprises a shaft portion 60a inserted through the first insertion hole 62A and the second insertion hole 62B, a head portion 60b that sits on the peripheral edge of the radially outer insertion hole 62A, and a pull-out restricting portion 60c that restrains the pull-out of each insertion hole 62A and 62B by contacting the peripheral edge of the radially inner insertion hole 62B. When the fixing member 60 is a rivet, the pull-out restricting portion 60c is formed by a crimping portion provided at the end of the shaft portion 60a. When the fixing member 60 is a blind rivet, the pull-out restricting portion 60c (crimping portion) is provided by inserting a mandrel through the hollow hole 60d formed in the shaft portion 60a and pulling the mandrel radially outward while breaking the mandrel head 64. The specific example of the pull-out restricting portion 60c is not particularly limited, and when the fixing member 60 is a bolt, the pull-out restricting portion 60c may be formed by a nut or the like.
[0024] The housing 22 and the mounting member 36 are each provided with mounting portions 66A and 66B for attaching the fixing member 60. The first mounting portion 66A is provided on the first circumferential wall portion 22a of the housing 22, and the second mounting portion 66B is provided on the second circumferential wall portion 36a of the mounting member 36. The first mounting portion 66A includes a first insertion hole 62A through which the fixing member 60 is inserted. The second mounting portion 66B includes a second insertion hole 62B through which the fixing member 60 is inserted. In addition, the radially outer mounting portion 66A includes a counterbore hole 68 on which the head 60b of the fixing member 60 sits. In this embodiment, the first insertion hole 62A is a round hole, and the second insertion hole 62B is an elongated hole 70. The elongated hole 70 in this embodiment extends with the axial direction X as the longitudinal direction. In this embodiment, the fixing member 60 is inserted through the first insertion hole 62A and the second insertion hole 62B, and is then attached to the respective mounting portions 66A and 66B of the housing 22 and the installation member 36.
[0025] Refer to Figures 6 and 7. Figure 6 is also a cross-sectional view of line 6-6 in Figure 5. Figure 7 shows the state in which the mounting member 36 has been rotated by a switching rotation angle θ (described later) from the state in Figure 6. The housing 22 and the mounting member 36 can be fixed by the fixing member 60 when the relative circumferential positions of the housing 22 and the mounting member 36 are positioned at a fixable position. This fixable position is the position in which the fixing member 60 can be attached to the first mounting portion 66A of the housing 22 and the second mounting portion 66B of the mounting member 36. In this embodiment, the fixable position is the position in which the first insertion hole 62A of the first mounting portion 66A and the second insertion hole 62B of the second mounting portion 66B overlap radially in order to allow the fixing member 60 to be inserted.
[0026] In this embodiment, the housing 22 and the mounting member 36 are configured to have multiple (in this case, eight) selectable fixing positions. To achieve this, multiple mounting portions 66A and 66B of at least one of the housing 22 and the mounting member 36 are provided at intervals in the circumferential direction. In this embodiment, eight first mounting portions 66A, the same number as the number of fixable positions, are provided on the housing 22, and four second mounting portions 66B are provided on the mounting member 36. In other words, when providing multiple first mounting portions 66A and multiple second mounting portions 66B, the number of one mounting portion is less than the number of the other mounting portions.
[0027] The housing 22 and the mounting member 36 can be rotated relative to each other to sequentially switch between a plurality of fixable positions. In this embodiment, the housing 22 and the mounting member 36 are configured such that the switching rotation angle θ for switching between such fixable positions is constant (45° in this case). To achieve this, one of the mounting portions 66A and 66B (the first mounting portion 66A in this case) of the housing 22 and the mounting member 36 is provided at a first equiangular interval (45° in this case) that is the same as the switching rotation angle θ. The first mounting portion 66A is provided at each of the plurality of first equiangular positions P1 (a total of eight first equiangular positions P1 in this case) obtained by dividing 360° into first equiangular intervals. In addition, the second mounting portion 66B of the mounting member 36 is provided at at least some of the second equiangular positions P2 of the plurality of second equiangular positions P2 spaced at first equiangular intervals. The multiple second equiangular positions P2 are positions that divide 360° equally at first equiangular intervals. In this embodiment, second mounting portions 66B are provided at every other second equiangular position P2 and are provided on the mounting member 36 at 90° equiangular intervals. When second mounting portions 66B are provided at two or more second equiangular positions P2 in this way, multiple sets (four sets in this case) of first mounting portions 66A and second mounting portions 66B can be superimposed radially regardless of which fixed position they are in.
[0028] The rotation detection device 10 can adjust the spacing of the axial gap 32 in steps by positioning the housing 22 and the mounting member 36 at one of the multiple fixable positions. The size of this axial gap 32 corresponds to the amount of screwing in the screw mechanism 50, and the larger the screwing amount, the smaller the spacing of the axial gap 32. The width of the interval that can be adjusted in steps by this rotation detection device 10 (the width from the interval of one step to the interval of the next step) is called the spacing adjustment width. In this embodiment, the spacing adjustment width is "screw pitch of screw mechanism 50 / number of fixable positions". Here, the screw pitch refers to the axial distance between adjacent screw threads of the male screw portion 48 and the female screw portion 46. For example, if the screw pitch of the screw mechanism 50 is 1.0 mm and the number of fixable positions is eight, the spacing adjustment width is 0.125 mm (= 1.0 mm / 8). In other words, the rotation detection device 10 of this embodiment can adjust the spacing of the axial gap 32 in steps with a spacing adjustment width on the order of millimeters (sub-millimeters). To change this spacing adjustment range, one should change the screw pitch and the number of fixable positions. Note that the screw pitch, number of fixable positions, and spacing adjustment range mentioned here are merely examples, and specific examples are not limited to these.
[0029] The effects of the rotation detection device 10 described above will now be explained.
[0030] (A) The rotation detection device 10 includes a female threaded portion 46 provided on the housing 22 and a male threaded portion 48 provided on the installation member 36. Therefore, the spacing of the axial gap 32 can be easily adjusted simply by changing the amount the male threaded portion 48 is screwed into the female threaded portion 46. Consequently, the work of adjusting the spacing of the axial gap 32 can be simplified.
[0031] For example, to adjust the spacing of the axial gap 32, one could consider increasing the machining accuracy of each component of the rotation detection device 10 (housing 22, mounting member 36, circuit board 42, etc.). In contrast, according to this embodiment, it is not necessary to increase the machining accuracy of each component, and machining costs can be reduced.
[0032] In addition, another method for adjusting the axial gap 32 is to place a shim between two components of the rotation detection device 10 (for example, the mounting member 36 and the detection unit 40). In this case, a series of steps are required: assembly of the rotation detection device 10 → measurement of the axial gap 32 → disassembly of the rotation detection device 10 → placement of the shim. In this respect, according to this embodiment, the axial gap 32 can be adjusted simply by changing the screw-in amount of the screw mechanism 50 without disassembling the rotation detection device 10. Therefore, compared to the case where a shim is used, the work of adjusting the axial gap 32 can be simplified, and the manufacturing cost of the shim can also be reduced.
[0033] The rotation detection device 10 includes a fixing member 60 that securely fixes the housing 22 and the mounting member 36 so that they cannot rotate relative to each other. Therefore, the fixing member 60 ensures that they are securely fixed at the spacing adjusted by the screw mechanism 50.
[0034] The fixing member 60 is an insertion member that is inserted through the housing 22 and the mounting member 36. Therefore, the housing 22 and the mounting member 36 can be fixed in a way that prevents relative rotation by simply inserting the insertion member through the housing 22 and the mounting member 36.
[0035] (B) The mounting member 36 of this embodiment is provided with an elongated hole 70 as an insertion hole 62B. Therefore, the housing 22 and the mounting member 36 can be fixed by the fixing member 60 inserted through each insertion hole 62A, 62B, while allowing for large fluctuations in the relative positions of each insertion hole 62A, 62B in the longitudinal direction of the elongated hole 70.
[0036] Thus, the elongated holes 70 are provided to widen the allowable variation in the relative position of each insertion hole 62A, 62B (hereinafter referred to as the allowable variation) when inserting the fixing member 60 through each insertion hole 62A, 62B while overlapping them radially. This allowable variation can be widened in the longitudinal direction of the elongated holes 70 compared to the case where the insertion holes that become the elongated holes 70 are round holes (round holes with the same diameter as the inscribed circle that is inscribed in the elongated holes 70 when viewed from the radial direction).
[0037] (C) At least one of the first mounting portion 66A and the second mounting portion 66B is provided in multiple quantities. Therefore, the number of fixable positions can be increased compared to the case where there is only one of each mounting portion 66A and 66B. Accordingly, the adjustment range of the axial gap 32 can be reduced, and the spacing of the axial gap 32 can be adjusted more precisely.
[0038] (D) One of the mounting portions 66A and 66B of the housing 22 and the mounting member 36 are provided at equal angular intervals. This makes the switching rotation angle θ constant, allowing the spacing adjustment width of the axial gap 32 to be made as close to constant as possible, and enabling accurate spacing adjustment work.
[0039] Next, other features of the rotation detection device 10 will be described. Refer to Figures 8 and 9. Figure 8 is also a cross-sectional view of line 8-8 in Figure 7. The rotating machine 14 is equipped with a plurality of first wirings 80 that connect the first electrical equipment located inside the housing 22 and the second electrical equipment located outside the housing 22. In Figure 3, etc., the first wirings 80 are omitted. In Figure 9, only the centerline of the first wirings 80 is used to show the first wirings 80. The plurality of first wirings 80 in this embodiment are motor wirings 81 connected to the motor 18, which is the first electrical equipment. The motor wirings 81 are connected, for example, to the coils (not shown) of the stator 18a of the motor 18. The motor wirings 81 are individually provided corresponding to each phase of the coil (here, the three phases of U, V, and W), and serve as energizing paths to the phases corresponding to themselves. In this embodiment, a total of three motor wirings 81 are provided.
[0040] In this embodiment, the motor wiring 81 is electrically connected to the control unit 44 of the control unit 76, which is a second electrical device. The control unit 76 includes a control unit 44 that controls the rotating machine 14. The control unit 44 is, for example, a control IC mounted on a circuit board (not shown). The control unit 44 can control the rotating machine 14 by driving the motor 18 using a driver circuit. The control unit 44 can drive the motor 18 by supplying power through the motor wiring 81. The control unit 44 is electrically connected to the detection unit 34 of the detection unit 40 via the second wiring 83. The detection unit 34 outputs a detection value, which is its detection result, to the control unit 44. The control unit 44 drives the motor 18 based on the detection value of the detection unit 34. In this embodiment, the control unit 44 performs feedback control to drive the motor 18 so that the detection value of the detection unit 34 (for example, the rotation angle of the rotating body 12) approaches a target value.
[0041] The control unit 76, although not shown, is provided integrally with the mounting member 36 on the axially outer side of the detection unit 40. Alternatively, the control unit 76 may be provided separately from the rotation detection device 10. The control unit 76 includes a first connector 76a to which the first wiring 80 (motor wiring 81) is mechanically connected, and a second connector 76b to which the second wiring 83 is mechanically connected. The second wiring 83 is mechanically connected to a third connector 84 (see also Figure 3) provided on the circuit board 42 of the detection unit 40.
[0042] Multiple wires 80 are mechanically connected to the first connector 76a of the control unit 76 by passing sequentially through the internal space of the housing 22 → the wiring passage 88 (described later) → the external space 82 located axially outside the installation member 36. Alternatively, the motor 18 may be electrically connected to the control unit 44 by providing a control unit 44 in the detection unit 40 and mechanically connecting it to the third connector 84 of the detection unit 40.
[0043] The housing 22 is provided with a first wiring hole 86A, and the mounting member 36 is provided with a second wiring hole 86B. The first wiring hole 86A is formed by a notch that penetrates the first circumferential wall portion 22a of the housing 22 radially and opens outward toward the axial direction X of the housing 22. The second wiring hole 86B is formed by a groove that is recessed radially inward and extends axially X on the outer circumference of the second circumferential wall portion 36a of the mounting member 36. In this embodiment, the second wiring hole 86B is formed not only in the second circumferential wall portion 36a of the mounting member 36 but also in the flange portion 36f.
[0044] When the first wiring hole 86A and the second wiring hole 86B are positioned to overlap each other radially, they form a wiring passage 88 for drawing the wiring 80 out of the housing 22. The wiring passage 88 is formed to extend continuously in the axial direction X by the first wiring hole 86A of the housing 22 and the second wiring hole 86B of the installation member 36.
[0045] In this way, the wiring holes 86A and 86B of the housing 22 and the mounting member 36, respectively, can form a wiring passage 88 that is continuous in the axial direction X. Therefore, compared to the case where the mounting member 36 does not have wiring holes 86A and 86B, the overall outer diameter of the rotation detection device 10 can be reduced in the axial range that overlaps radially with the wiring 80 that passes through the radially outer side of the housing 22 and the mounting member 36.
[0046] Refer to Figures 6 and 7. The housing 22 and the mounting member 36 are configured such that the second wiring hole 86B radially overlaps the first wiring hole 86A whenever they are positioned in any of the multiple fixed positions. This allows a wiring passage 88 to be formed between the first wiring hole 86A and the second wiring hole 86B, and the wiring 80 to be drawn out from that wiring passage 88, whenever they are in any of the fixed positions.
[0047] To achieve this, the second wiring holes 86B in this embodiment are provided on the mounting member 36 at first equi-angle intervals (45° in this case) equal to the switching rotation angle θ for switching the fixable position. The second wiring holes 86B are provided at each of the multiple third equi-angle positions P3 (a total of eight third equi-angle positions P3 in this case) which divide 360° equally at the first equi-angle intervals. The multiple third equi-angle positions P3 are located at positions shifted circumferentially from the multiple second equi-angle positions P2 where the second mounting portion 66B is located. In addition, the first wiring holes 86A are provided at at least some of the multiple fourth equi-angle positions P4 which are spaced at first equi-angle intervals equal to the switching rotation angle θ. The fourth equi-angle positions P4 are located at positions which divide 360° equally at the first equi-angle intervals. In this embodiment, the first wiring holes 86A are provided at three fourth equi-angle positions P4, the same number as the motor wiring 81. The motor wiring 81 passes through wiring passages 88 formed by individual first wiring holes 86A. The multiple fourth equiangular positions P4 are circumferentially offset from the multiple first equiangular positions P1 where the first mounting portion 66A is located.
[0048] The second wiring holes 86B of the mounting member 36 are provided at the same equi-angle intervals as the mounting portions 66A and 66B of either the housing 22 or the mounting member 36. In this embodiment, multiple second wiring holes 86B are provided at the same first equi-angle intervals (here, 45°) as the first mounting portion 66A of the housing 22. In this case, the multiple first mounting portions 66A and multiple second wiring holes 86B of the housing 22, which are provided at the same equi-angle intervals, do not overlap in the radial direction X, but are provided at positions offset in the circumferential direction. In addition, the second wiring holes 86B may be provided at the same equi-angle intervals as the second mounting portion 66B of the mounting member 36.
[0049] Refer to Figures 8 and 9. The detection unit 40 includes a wiring fixing member 90 (see also Figure 3) for fixing the wiring 80 to the mounting member 36. The wiring fixing member 90 is positioned on the axial side of the mounting member 36 away from the housing 22 and is attached to the outer surface portion 36c of the mounting member 36. The mounting member 36 includes a mounting portion 36g for attaching the wiring fixing member 90. The mounting portion 36g includes a mounting hole 36h for attaching the wiring fixing member 90 with a bolt B2. In this embodiment, the mounting hole 36h is a female screw hole, and the wiring fixing member 90 can be detachably attached to the mounting member 36 by screwing a bolt B2 that passes through the wiring fixing member 90 into the mounting hole 36h. The wiring fixing member 90 in this embodiment is a clamp that fixes the wiring 80 to the mounting member 36 by clamping the wiring 80. To achieve this, the wiring fixing member 90 in this embodiment clamps the wiring 80 between itself and the mounting member 36. In addition, the wiring fixing member 90 may also be used to clamp the wiring 80 by itself.
[0050] This allows the wiring fixing member 90 to resist any unintended external force applied to the wiring 80. Consequently, it prevents the wiring 80 from becoming detached from the mating member to which it is connected. This is particularly effective when the wiring 80 is exposed to the outside, as in this embodiment, as unintended external forces are more likely to be applied to the wiring 80. In this embodiment, the mating member refers to the motor 18 (stator 18a) and the control unit 76.
[0051] The mounting member 36 is provided with a number of mounting portions 36g equal to the number of second wiring holes 86B. Each of the mounting portions 36g is individually provided corresponding to each of the multiple second wiring holes 86B of the mounting member 36. When viewed from the axial direction X, each of the mounting portions 36g is positioned radially inward from the second wiring hole 86B corresponding to itself, so that the wiring fixing member 90 can be attached.
[0052] As a result, regardless of which second wiring hole 86B the wiring 80 is drawn from, the wiring 80 can be fixed to the mounting member 36 by attaching the wiring fixing member 90 to the mounting portion 36g corresponding to that second wiring hole 86B. Furthermore, if there are multiple second wiring holes 86B from which the wiring 80 is drawn, each individual wiring 80 drawn from a second wiring hole 86B can be fixed to the mounting member 36 by attaching the same number of wiring fixing members 90 as the number of second wiring holes 86B to the mounting member 36.
[0053] Furthermore, a notch 36i is formed in the inner surface portion 36b of the mounting member 36 on the axially inward side, extending radially inward from the axially inward end of the second wiring hole 86B. This eliminates the need to form an edge between the tapered portion 36e of the inner surface portion 36b of the mounting member 36 and the second wiring hole 86B, thereby avoiding contact between the wiring 80 passing through the second wiring hole 86B and the edge.
[0054] Next, an overview of the spacing adjustment work using the aforementioned rotation detection device 10 will be described. First, a wiring extraction process is performed in which the wiring 80 is pulled out from inside the housing 22 through the first wiring hole 86A. Next, a temporary fixing process is performed in which the installation member 36 is temporarily fixed to the housing 22 by screwing the male threaded part 48 into the female threaded part 46. Next, a spacing adjustment process is performed in which the spacing of the axial gap 32 is adjusted to within the target spacing range. After the spacing adjustment process, a first fixing process is performed in which the housing 22 and the installation member 36 are fixed using the fixing member 60. Also, after the spacing adjustment process, before or after the first fixing process, a second fixing process is performed in which the wiring 80 is fixed to the installation member 36 using the wiring fixing member 90. In the second fixing process, the wiring 80 that was pulled out from the first wiring hole 86A is pulled out in advance through the wiring passage 88 formed by the first wiring hole 86A and the second wiring hole 86B. The spacing adjustment work is completed by performing the above series of steps.
[0055] In the aforementioned spacing adjustment step, the spacing of the axial gap 32 may be measured using a gap gauge or the like to determine whether the spacing of the axial gap 32 is within the target spacing range. Alternatively, the signal strength of the electrical signal detected by the detection unit 34 (sensor element) may be measured while the rotating body 12 is rotating. This can be achieved, for example, by connecting the control unit 76 to an external terminal and executing a dedicated measurement program using the external terminal. This external terminal is electrically connected to the control unit 44 of the control unit 76 via a cable connected to the control unit 76. This measurement program can execute an instruction function that instructs the control unit 44 of the control unit 76 to rotate the rotating body 12, and a measurement function that measures the signal strength of the electrical signal detected by the detection unit 34. In this case, if the signal strength of the electrical signal is within the target intensity range, it is determined that the spacing of the axial gap 32 is within the target spacing range.
[0056] Next, other features of the mounting member 36 will be described. Refer to Figures 9, 10, and 11. A first type detection unit 40A (hereinafter also referred to as the first detection unit 40A) can be installed on the mounting member 36. A first mounting hole 36j for installing the first detection unit 40A is provided in the mounting portion 36d of the mounting member 36. In this embodiment, the first mounting hole 36j is a female screw hole. Multiple mounting portions 36d of the mounting member 36 are provided at intervals in the circumferential direction.
[0057] The first detection unit 40A is the detection unit described above. The first detection unit 40A is positioned so as to overlap the multiple mounting portions 36d of the mounting member 36 in the axial direction inward (towards the detection portion 30). A spacer 100 (in this case, a bush) is placed between the circuit board 42 of the first detection unit 40A and the mounting portions 36d of the mounting member 36. The first detection unit 40A is installed on the mounting member 36 by fastening the spacer 100 and the mounting member 36 together with a bolt B3. In this embodiment, the bolt B3 is screwed into the first mounting hole 36j (female screw hole) of the mounting member 36, and its head is positioned inward in the axial direction of the first detection unit 40A.
[0058] Refer to Figures 12 to 14. In addition to the first detection unit 40A, a second type of detection unit 40B (hereinafter also referred to as the second detection unit 40B), which has a different configuration from the first detection unit 40A, can also be installed on the installation member 36. The installation portion 36d of the installation member 36 is provided with a second installation hole 36k for installing the second detection unit 40B. In this embodiment, the second installation hole 36k is a female screw hole. In this embodiment, the inner diameter of one of the first installation hole 36j and the second installation hole 36k (here, the first installation hole 36j) is smaller than the inner diameter of the other (here, the second installation hole 36k).
[0059] The second detection unit 40B includes, in addition to the detection unit 34 and the circuit board 42, a cover 110 that covers the outer surface portion 42a of the circuit board 42 on the axially outer side (opposite side from the detected unit 30) from the axially outer side, and a frame 112 that supports the circuit board 42. The cover 110 is attached to the circuit board 42, for example, by adhesive. The cover 110 serves to protect electronic components (not shown) mounted on the outer surface portion 42a of the circuit board 42. The frame 112 has a through hole 112a that penetrates the frame 112, and the circuit board 42 is positioned inside the through hole 112a. The circuit board 42 is attached to the frame 112, for example, by engaging an edge portion 112b provided on the inner circumferential surface of the through hole 112a of the frame 112.
[0060] The second detection unit 40B is positioned so as to overlap the multiple mounting portions 36d of the mounting member 36 in the axial direction. The second detection unit 40B is installed on the mounting member 36 by fastening the frame 112 and the mounting member 36 together with bolts B4. In this embodiment, the bolts B4 are screwed into the second mounting holes 36k of the mounting member 36, and their heads are positioned axially inward of the second detection unit 40B.
[0061] Thus, either the first detection unit 40A or the second detection unit 40B can be installed on the common mounting member 36. Furthermore, although not shown, the rotation detection device 10 allows adjustment of the axial gap 32 regardless of whether the first detection unit 40A or the second detection unit 40B is installed on the mounting member 36. Therefore, the mounting member 36 can be shared when using different detection units 40 in the rotation detection device 10. Consequently, the number of parts can be reduced between rotation detection devices 10 using different detection units 40.
[0062] Furthermore, the first type detection unit 40 and the second type detection unit 40 only need to differ in their configuration, and there are no particular limitations on specific examples. Also, in a rotation detection device 10 using different detection units 40, the housing 22 and the detected part 30 may be shared in addition to the mounting member 36. When viewed as a rotating machine 14 equipped with the rotation detection device 10, it can be said that the components of the rotating machine 14 other than the detection unit 40 may be shared. In addition, the detected part 30 may also be of a different type depending on whether the first type detection unit 40 or the second type detection unit 40 is used. For example, when using the first detection unit 40A, the first type detected part 30 may be used, and when using the second detection unit 40B, a second type detected part 30 with a different configuration from the first type detected part 30 may be used.
[0063] Refer to Figures 9 to 11. The circuit board 42 comprises an outer surface portion 42a located axially outward (opposite side from the detected portion 30) and an inner surface portion 42b located axially inward (towards the detected portion 30). Only the first electronic component 114A (sensor IC) constituting the detection unit 34 is mounted on the inner surface portion 42b, while the other electronic components 114B and 114C are mounted on the outer surface portion 42a of the circuit board 42. These other electronic components 114B and 114C include a second electronic component 114B whose height dimension in the thickness direction (axial X) of the circuit board 42 is greater than that of the first electronic component 114A. As a result, the circuit board 42 can be brought closer to the detected portion 30 compared to the case where the first electronic component 114A and the other electronic components 114B and 114c are mounted on the same inner surface portion 42b, thereby reducing the axial dimension of the rotation detection device 10.
[0064] (Second Embodiment) Refer to Figure 15. In this embodiment, the number of motor wirings 81 is three, the same as in the first embodiment. In this embodiment, the number of wiring holes 86A and 86B in the housing 22 and the mounting member 36, respectively, is greater than the number of motor wirings 81. To achieve this, in this embodiment, the number of first wiring holes 86A and second wiring holes 86B is eight each. In this embodiment, the second wiring holes 86B are provided in the mounting member 36 at the same first equi-angle interval as the switching rotation angle θ (45° in this case), and the first wiring holes 86A are also provided in the housing 22 at the same first equi-angle interval. The second wiring holes 86B are provided in each of the aforementioned multiple (8) third equi-angle positions P3, and the first wiring holes 86A are provided in each of the aforementioned multiple (8) fourth equi-angle positions P4. As a result, when positioned in any of the multiple fixable positions, a number of wiring passages 88 greater than the number of motor wirings 81 can be formed.
[0065] With the above configuration, the number of wiring holes 86A and 86B is less than or equal to the number of motor wirings 81, which increases the number of options for the wiring passages 88 that can actually be used. Therefore, for example, depending on the surrounding structure of the rotation detection device 10, the motor wiring 81 can be drawn out from among the multiple wiring passages 88 that are less likely to interfere with the surrounding structure, allowing for flexible changes to the wiring passage 88 used.
[0066] Thus, the relative number of wiring holes 86A and 86B in the housing 22 and the mounting member 36, respectively, and the number of motor wirings 81 are not particularly important. In addition, the number of wiring holes 86A and 86B in the housing 22 and the mounting member 36 may be less than the number of motor wirings 81. In this case, multiple motor wirings 81 may be routed through a single wiring hole 86A or 86B. Alternatively, motor wiring 81 and other wirings 80 may be routed through a single wiring hole 86A or 86B.
[0067] Next, we will describe the transformation forms of each component described so far.
[0068] The specific example of a rotating machine 14 in which the rotation detection device 10 is used is not limited to an actuator. The rotating machine 14 may be, for example, a motor device equipped with a motor 18 without a reduction gear 20. In this case, the rotating machine 14 may be a servo motor device that performs feedback control based on the detected value of a rotary encoder (detection unit 34), as in the embodiment.
[0069] The specific examples of the rotating body 12 are not particularly limited. For example, the rotating body 12 may be a rotating shaft that can rotate integrally with the output shaft of the reduction gear 20 and passes through both the rotor shaft 16 and the output shaft, instead of the rotor shaft 16.
[0070] The specific types of gear reducers 20 are not particularly limited. For example, they may be flexible mesh type gear reducers, eccentric oscillating type gear reducers, simple planetary type gear reducers, etc. The types of flexible mesh type gear reducers are not particularly limited and may be cylindrical, top hat type, cup type, etc. The types of eccentric oscillating type gear reducers are not particularly limited and may be center crank type in which the crankshaft is positioned on the center line of the internal gear, or distribution type in which the crankshaft is positioned at an offset position from the center line.
[0071] The multiple wirings 80 may include different types of wiring connected to a first electrical device other than the motor 18. Here, the other first electrical device means at least one of the following, for example, a sensor (temperature sensor, pressure sensor, etc.), a brake, etc.
[0072] In relation to the effect of (A), it is sufficient that one of the housing 22 and the mounting member 36 is provided with a female threaded portion 46 and the other with a male threaded portion 48. Unlike the embodiment, the female threaded portion 46 may be provided on the inner circumference of the second circumferential wall portion 36a of the mounting member 36, and the male threaded portion 48 may be provided on the outer circumference of the first circumferential wall portion 22a of the housing 22. In this case, the male threaded portion 48 may be provided on the outer circumference of the non-load-side opening end of the first circumferential wall portion 22a of the housing 22.
[0073] The rotation detection device 10 does not necessarily have to include a fixing member 60. The rotation detection device 10 may also include a cover that covers the installation member 36 to prevent fluctuations in the spacing of the axial gap 32.
[0074] Specific examples of the fixing member 60 are not limited to through members. The fixing member 60 may be, for example, a clamp, a wedge, etc. When the fixing member 60 is an through member (fastening member), specific examples of the fixing member 60 are not particularly limited, and may be, for example, a combination of bolts and nuts, a bolt, etc., in addition to a rivet. When the fixing member 60 is equipped with a bolt, the inner of the first through hole 62A and the second through hole 62B may be a female threaded hole into which the bolt is screwed.
[0075] In this example, the fixing member 60 is described as being able to fix the housing 22 and the mounting member 36 only when it is in a specific circumferential relative position (fixable position). In addition, the fixing member 60 may be able to fix the housing 22 and the mounting member 36 at any circumferential relative position. In this case, unlike the embodiment, the rotation detection device 10 will be able to adjust the axial gap 32 in a stepless manner. This may be achieved, for example, by using a clamp, wedge, or the like for the fixing member 60.
[0076] In relation to the effect of (B), it is sufficient that the elongated hole 70 is provided in at least one of the housing 22 and the mounting member 36. It can also be said that it is sufficient that at least one of the first insertion hole 62A and the second insertion hole 62B is the elongated hole 70. The direction in which the elongated hole 70 extends (longitudinal direction) is not particularly limited, and may be, for example, in the helical direction along the threads of the screw mechanism 50.
[0077] The number of first mounting portion 66A and second mounting portion 66B is not particularly limited. There may be only one of each, or there may be two or more of any number.
[0078] In relation to the effect of (C), it is sufficient that multiple mounting portions 66A and 66B of at least one of the housing 22 and the mounting member 36 are provided at intervals in the circumferential direction. For example, the housing 22 may be provided with multiple (e.g., eight) first mounting portions 66A and the mounting member 36 may be provided with one second mounting portion 66B, or vice versa. Furthermore, each of the multiple mounting portions 66A and 66B may be provided at arbitrary angular intervals, rather than at equal angular intervals.
[0079] In relation to the effect of (D), the second mounting portion 66B may be provided on the installation member 36 at the same first equi-angle interval as the switching rotation angle θ. In this case, the first mounting portion 66A may be provided on the housing 22 at at least some of the equi-angle positions among a plurality of equi-angle positions spaced at the first equi-angle interval. It can also be said that it is sufficient to provide mounting portions 66A and 66B at equi-angle intervals on either the housing 22 or the installation member 36.
[0080] Furthermore, only one of the housing 22 or the mounting member 36 may be provided with wiring holes 86A and 86B, or neither may be provided with wiring holes 86A and 86B. The wiring holes 86B of the mounting member 36 do not have to be provided at the same equi-angle intervals as the mounting portions of either the housing 22 or the mounting member 36.
[0081] The rotation detection device 10 does not necessarily need to be equipped with a wiring fixing member 90.
[0082] The mounting member 36 may be capable of mounting only one of the different types of detection units 40.
[0083] The embodiments and variations described above are illustrative. The abstract technical ideas derived from them should not be interpreted restrictively to the content of the embodiments and variations. Many design changes, such as changes, additions, and deletions of components, are possible in the embodiments and variations. In the embodiments described above, the content that allows for such design changes is emphasized with the notation "embodiment." However, design changes are also permitted in content without such notation. The hatching applied to the cross-sections in the drawings does not limit the material to which the hatching is applied. The structures / numerical values mentioned in the embodiments and variations naturally include those that can be considered identical when considering manufacturing tolerances.
[0084] In an embodiment, a component composed of a single member may be composed of multiple members. Similarly, in an embodiment, a component composed of multiple members may be composed of a single member. [Explanation of Symbols]
[0085] 10...Rotation detection device, 12...Rotating body, 18...Motor, 22...Housing, 30...Detected part, 32...Axial gap, 34...Detection part, 36...Installation member, 40...Detection unit, 46...Female thread part, 48...Male thread part, 60...Fixing member, 66A...Mounting part, 70...Slotted hole, 80...Wiring, 81...Motor wiring, 86A...Wiring hole, 86B...Wiring hole, 88...Wiring passage, 90...Wiring fixing member.
Claims
1. A rotation detection device comprising: a housing for accommodating a rotating body; a detection unit that rotates integrally with the rotating body; a detection unit that faces the detection unit in the axial direction with an axial gap between them; and an installation member on which the detection unit is installed, A female threaded portion is provided on one of the housing and the mounting member, A male threaded portion is provided on the other side of the housing and the mounting member and is screwed into the female threaded portion, The housing and the installation member are fixed so that they cannot rotate relative to each other, with an axial gap between the detected part and the detection part. The fixing member is a rotation detection device which is an insertion member inserted into the housing and the installation member.
2. The rotation detection device according to claim 1, wherein at least one of the housing and the mounting member is provided with an elongated hole through which the fixing member is inserted.
3. A rotation detection device comprising: a housing for accommodating a rotating body; a detection unit that rotates integrally with the rotating body; a detection unit that faces the detection unit in the axial direction with an axial gap between them; and an installation member on which the detection unit is installed, A female threaded portion is provided on one of the housing and the mounting member, A male threaded portion is provided on the other side of the housing and the mounting member and is screwed into the female threaded portion, The housing and the installation member are fixed so that they cannot rotate relative to each other, with an axial gap between the detected part and the detection part. Each of the housing and the mounting member is provided with a mounting portion for attaching the fixing member. The mounting portion of at least one of the housing and the mounting member is a plurality of rotation detection devices provided at intervals in the circumferential direction.
4. The rotation detection device according to claim 3, wherein the mounting portion of one of the housing and the mounting member is provided at equal angular intervals.
5. A rotation detection device comprising: a housing for accommodating a rotating body; a detection unit that rotates integrally with the rotating body; a detection unit that faces the detection unit in the axial direction with an axial gap between them; and an installation member on which the detection unit is installed, A female threaded portion is provided on one of the housing and the mounting member, The housing and the other mounting member are provided with a male threaded portion that is screwed into the female threaded portion, A rotation detection device wherein the housing and the mounting member are each provided with a wiring hole for forming a wiring passage through which wiring is drawn out from inside the housing.
6. The aforementioned wiring includes motor wiring, The rotation detection device according to claim 5, wherein the number of wiring holes in the housing and the mounting member is greater than the number of motor wirings.
7. On either the housing or the mounting member, mounting portions for attaching a fixing member for securing the housing and the mounting member are provided at equal angular intervals. The rotation detection device according to claim 5 or 6, wherein the mounting member is provided with a plurality of wiring holes at the same equi-angle intervals as the mounting portion of either the housing or the mounting member.
8. The housing and the mounting member can be fixed by the fixing member when the relative circumferential positions of the housing and the mounting member are positioned at any of the plurality of fixable positions. The rotation detection device according to any one of claims 5 to 7, wherein the mounting member and the housing are configured such that when they are positioned at any of the plurality of fixable positions, the wiring hole of the mounting member overlaps radially with the wiring hole of the housing.
9. The rotation detection device according to any one of claims 1 to 8, further comprising a wiring fixing member for fixing wiring to the aforementioned installation member.
10. A detection unit having the aforementioned detection unit is provided, The mounting member can be used to install either the first type of detection unit or the second type of detection unit, which has a different configuration from the first type of detection unit. The rotation detection device according to any one of claims 1 to 9, wherein the amount of screwing the male screw portion into the female screw portion can be changed regardless of whether the first type or the second type of detection unit is installed on the mounting member.
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