Rotation detection device

The rotation detection device integrates induction and magnetic detection units with overlapping detection areas, addressing miniaturization challenges and enhancing detection accuracy and range.

JP7835807B2Active Publication Date: 2026-03-25ORIENTAL MOTOR CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-08-20
Publication Date
2026-03-25

AI Technical Summary

Technical Problem

Existing rotation detection devices face challenges in miniaturization due to the separation of detection areas for induction and magnetic detection units, making them unsuitable for dual-shaft or hollow-type applications.

Method used

A rotation detection device is designed with an induction detection unit and a magnetic detection unit, where the detection areas overlap in the axial direction, allowing for radial miniaturization by integrating both units on a single support structure.

Benefits of technology

The device achieves radial miniaturization while maintaining accurate detection of rotational information, utilizing both induction and magnetic detection methods to enhance precision and expand detection range.

✦ Generated by Eureka AI based on patent content.

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Abstract

A rotation detection device is provided that uses both an induction detection section and a magnetic detection section and has a structure that is advantageous for reducing the size in the radial direction. [Solution] A rotation detection device (100) includes a rotor (1) that rotates around a rotation axis (3), a stator (2) that faces the rotor (1) with a gap (7) therebetween, an induction detection unit (5), and a magnetic detection unit (6). The induction detection unit (5) includes a conductor (10) to be detected that is held by the rotor (1), a receiving coil (20) that is arranged in an annular region (30) centered on the rotation axis (3), and an excitation coil (40). The magnetic detection unit (6) includes a magnet (M) to be detected that is arranged on the opposite side of the stator (2) from the conductor (10) to the stator (1) so that at least a portion of the magnet overlaps with the annular region (30), and magnetic sensors (61, 62) that are arranged on the opposite side of the rotor (1) from the receiving coil (20) and the excitation coil (40) and that are held by the stator (2) so that at least a portion of the magnet overlaps with the annular region (30).
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Description

Technical Field

[0001] This invention relates to a rotation detection device including an induction detection unit and a magnetic detection unit.

Background Art

[0002] Patent Document 1 discloses an inductive rotation detector. This inductive rotation detection device forms an excitation coil and a detection coil with a conductor pattern on a printed wiring board, and has a configuration in which a conductive screen to be detected moves through a track facing the detection coil. The detection coil is formed in an 8-shaped form in which two loops are arranged along the track, and the two loops are each composed of two coils with one turn each having different winding directions. The excitation coil is arranged so as to surround the detection coil. of When an alternating current is passed through the excitation coil, an alternating magnetic field is generated, whereby electromotive forces in opposite directions are induced in the two loops (coils) of the detection coil, and eddy currents flow in the conductive screen. When the conductive screen does not face either of the two loops, the electromotive forces of the two loops are balanced and the output of the detection coil becomes zero. On the other hand, since the eddy current flowing in the conductive screen acts in a direction to weaken the alternating magnetic field generated by the excitation coil, when the conductive screen faces the detection coil, an imbalance occurs in the electromotive forces of the two loops according to the relative position between the conductive screen and the detection coil. Thereby, an output corresponding to the position of the conductive screen can be obtained from the detection coil.

[0003]

[0004] Patent Document 2 and Patent Document 3 disclose a rotation detection device having an inductive detector and a magnetic detector. By using two detectors with different detection methods together, there is an advantage of ensuring redundancy. Also, by making the detection periods of the two detectors different, the detection period can be extended by appropriate signal processing. Thereby, the absolute angle and the multi-rotation absolute angle can be measured with high accuracy.

[0005] ​ Patent Document 2 discloses a sensor device comprising a stator and a rotor facing each other. The printed circuit board constituting the stator has an antenna formed in an annular zone on a conductive track, and a magnetoresistive element or Hall sensor is arranged in a central zone separated inward from the antenna. The rotor, on the other hand, includes a shaft, a magnet attached to the end of the shaft, and a modulator arranged around the magnet and fixed to the shaft. The magnet faces the magnetoresistive element or Hall sensor, and the modulator faces the antenna. Thus, the antenna and modulator constitute a first rotational angle sensor, and the magnetoresistive element or Hall sensor and the magnet constitute a second rotational angle sensor.

[0006] Patent Document 3 discloses a rotary encoder comprising an inductive detection unit based on an inductive measurement principle and a magnetic detection unit using a magnet. The rotary encoder has a stator and a rotor that are rotatable relative to each other around an axis. The stator has a ring-shaped scanning circuit board, and the rotor has a code plate facing the scanning circuit board. In one example, the scanning circuit board has an excitation land pattern that constitutes an excitation winding, and two receiver land patterns, one inner and one outer, that constitute two receiver windings, respectively. The code plate is provided with inner and outer scale tracks corresponding to the two receiver land patterns. This constitutes the inductive detection unit. The magnetic detection unit comprises a pulse wire provided on the stator and a magnet fixed to the outer edge of the rotor. The pulse wire generates a pulse voltage when the magnet approaches. [Prior art documents] [Patent Documents]

[0007] [Patent Document 1] Japanese Patent Application Laid-Open No. 61-15101 [Patent Document 2] Special Publication No. 2022-512249 [Patent Document 3] Japanese Patent Publication No. 2008-203259 [Overview of the project] [Problems that the invention aims to solve]

[0008] The structure described in Patent Document 2 cannot be applied to dual-shaft or hollow-type rotation detection devices because the magnet is positioned at the end of the rotor shaft. Furthermore, when viewed in the axial direction along the rotor's rotation axis, it is necessary to separate the detection area of ​​the first rotation angle sensor (annular zone) and the detection area of ​​the second rotation angle sensor (central zone) in the radial direction to prevent mutual interference, making it difficult to miniaturize in the radial direction.

[0009] The structure described in Patent Document 3 can be applied to dual-axis and hollow-type rotation detection devices because the magnets and angle detectors are not arranged on the axis of rotation. However, since the detection areas of the inductive detection unit and the magnetic detection unit are separated radially, miniaturization in the radial direction is difficult.

[0010] One embodiment of this invention provides a rotation detection device with a structure advantageous for radial miniaturization, while using both an induction detection unit and a magnetic detection unit. [Means for solving the problem]

[0011] This embodiment of the invention provides a rotation detection device having the following features.

[0012] 1. A first support that rotates around the axis of rotation, A second support is positioned opposite the first support with a gap in the axial direction parallel to the axis of rotation, An induction detection unit for detecting rotational information of the first support about the rotation axis, The system includes a magnetic detection unit that detects rotational information of the first support about the rotation axis, The induction detection unit is, The conductor to be detected held in the first support, A receiving coil is held on the second support in an arrangement facing the conductor to be detected in the axial direction, and is positioned in an annular region centered on the rotation axis when viewed in the axial direction, The device includes an excitation coil, which is held in the second support and generates a magnetic field for inducing a voltage in the receiving coil, The magnetic detection unit is A magnet to be detected is held by the first support and is positioned on the opposite side of the second support from the conductor to be detected in the axial direction, and is positioned such that at least a portion of it overlaps with the annular region when viewed in the axial direction. A magnetic sensor is held by a second support, positioned on the opposite side of the axial direction from the first support with respect to the receiving coil and the excitation coil, and positioned such that at least a portion of it overlaps the annular region when viewed in the axial direction, and is used to detect the magnetic field generated by the magnet to be detected. Rotation detection device.

[0013] The induction detection unit, magnetic detection unit, conductor to be detected, magnet to be detected, magnetic sensor, excitation coil, and receiving coil may each be provided individually or in multiple quantities.

[0014] 2. The rotation detection device according to item 1, wherein the conductor to be detected includes a screen-shaped conductor.

[0015] 3. The rotation detection device according to item 1 or 2, wherein the magnet to be detected has a ring shape with its center on the rotation axis and is magnetized in the axial direction.

[0016] 4. The rotation detection device according to item 1 or 2, wherein the magnet to be detected includes a plurality of individual magnets that are magnetized in the axial direction and arranged along a circumference having their centers on the axis of rotation.

[0017] 5. The rotation detection device according to item 4, wherein the plurality of individual magnets are held on the first support in an arrangement that overlaps the screen-like conductor when viewed in the axial direction.

[0018] 6. The rotary detection device according to claim 1, wherein the conductive object to be detected is an annular coil pattern having a periodic concavo-convex pattern formed in an annular shape along a circumference centered on the rotation axis and having concavo-convex in the radial direction with respect to the circumference.

[0019] 7. The rotary detection device according to claim 6, wherein the magnet to be detected has a ring shape centered on the rotation axis and is magnetized in the axial direction.

[0020] 8. The rotary detection device according to claim 6, wherein the magnet to be detected is magnetized in the axial direction and includes a plurality of individual magnets arranged along a circumference centered on the rotation axis.

[0021] 9. The rotary detection device according to claim 8, wherein the circumferential center position of each individual magnet coincides with the circumferential position of the midpoint between the concave and convex portions adjacent to each other in the circumferential direction of the concavo-convex pattern.

[0022] 10. The rotary detection device according to claim 8 or 9, wherein the circumferential width (angular width: length on the same circumference) of each individual magnet is a natural number multiple of the periodic width (angular width: length on the same circumference) of the concavo-convex pattern of the annular coil pattern.

[0023] 11. even number The rotary detection device according to any one of claims 8 to 10, wherein the individual magnets are arranged at equal intervals along the circumference centered on the rotation axis, and the number of periods of the concavo-convex pattern of the annular coil pattern around the rotation axis is odd.

[0024] 12. The annular coil pattern includes an inner circumferential annular coil pattern and an outer circumferential annular coil pattern arranged radially outside the inner circumferential annular coil pattern, and is the rotary detection device according to claim 8.

[0025] 13. The circumferential center position of each individual magnet is aligned (coincides) with the circumferential position of the midpoint between the recesses and protrusions adjacent in the circumferential direction of one of the inner annular coil pattern and the outer annular coil pattern. The rotation detection device according to item 12, wherein the circumferential width (angle width: length on the same circumference) of each individual magnet is a natural number multiple of the periodic width (angle width: length on the same circumference) of the uneven pattern of the other of the inner annular coil pattern and the outer annular coil pattern.

[0026] 14. An even number of the individual magnets are arranged at equal intervals along the circumference of the circle having its center on the axis of rotation, The circumferential center position of each individual magnet is aligned (coincides) with the circumferential position of the midpoint between the recesses and protrusions adjacent in the circumferential direction of one of the inner annular coil pattern and the outer annular coil pattern. The rotation detection device according to item 12, wherein the number of periods of the uneven pattern of the other of the inner annular coil pattern and the outer annular coil pattern around the rotation axis is odd.

[0027] 15. An even number of the individual magnets are arranged at equal intervals along the circumference of the circle having its center on the axis of rotation, The circumferential center position of each individual magnet is aligned (coincides) with the circumferential position of the midpoint between the recesses and protrusions adjacent in the circumferential direction of one of the inner annular coil pattern and the outer annular coil pattern. The circumferential width (angle width: length on the same circumference) of each individual magnet is a natural number multiple of the periodic width (angle width: length on the same circumference) of the uneven pattern of the other of the inner and outer annular coil patterns. The rotation detection device according to item 12, wherein the number of periods of the other of the inner annular coil pattern and the outer annular coil pattern around the rotation axis is odd.

[0028] 16The rotation detection device according to any one of claims 1 to 13, wherein the magnetic sensor includes a Hall element or a magnetoresistive element.

[0029] 17 The rotation detection device according to any one of claims 1 to 13, wherein the magnetic sensor includes a power generation sensor, the power generation sensor includes a magnetic wire that exhibits the Great Barkhausen effect and a coil wound around the magnetic wire.

[0030] 18 The magnetic sensor includes a first magnetic sensor including a power generation sensor and a second magnetic sensor including a Hall element or a magnetoresistive element, and the power generation sensor includes a magnetic wire that exhibits the Great Barkhausen effect and a coil wound around the magnetic wire, the rotation detection device according to any one of items 1 to 13. Place .

[0031] 19. The power generation sensor is positioned on the circumference of the circle with the magnetic wire oriented parallel to a tangent line on the circumference having its center on the axis of rotation. 17 or 18 The rotation detection device described above.

[0032] 20 A rotation detection device according to any one of items 1 to 17, for detecting an absolute angle.

[0033] 21 A rotation detection device according to any one of items 1 to 18, for detecting multi-turn absolute angles. [Effects of the Invention]

[0034] According to this invention, a rotation detection device with a structure advantageous for radial miniaturization can be provided while using both an induction detection unit and a magnetic detection unit. [Brief explanation of the drawing]

[0035] [Figure 1A] Figure 1A is an exploded perspective view illustrating an example of the configuration of a rotation detection device according to one embodiment of the present invention. [Figure 1B] Figure 1B is an exploded perspective view showing the configuration of Figure 1A from a diagonal downward angle. [Figure 2] Figure 2 is a cross-sectional view of the rotation detection device. [Figure 3A] Figure 3A is a plan view of the stator. [Figure 3B] Figure 3B is a bottom view of the stator. [Figure 4A-4B] Figures 4A and 4B are diagrams illustrating an example of the configuration of a receiving coil. [Figure 5] Figure 5 shows an example of the arrangement of a screen-shaped conductor, which is an example of a conductor to be detected, and a magnet to be detected. [Figure 6] Figure 6 shows an example of the arrangement of a screen-shaped conductor, which is an example of a conductor to be detected, and a magnet to be detected. [Figure 7] Figure 7 shows an example of the arrangement of a screen-shaped conductor, which is an example of a conductor to be detected, and a magnet to be detected. [Figure 8] Figure 8 shows an example of a tonal coil pattern configuration, which is another example of a conductor to be detected. [Figure 9] Figure 9 shows an example of the arrangement of a ring coil pattern and the magnet to be detected. [Figure 10] Figure 10 shows an example of the arrangement of a ring coil pattern and the magnet to be detected. [Figure 11] Figure 11 shows an example of the arrangement of a ring coil pattern and the magnet to be detected. [Figure 12] Figure 12 is a block diagram showing the electrical configuration of the rotation detection device. [Figure 13] Figure 13 is a cross-sectional view illustrating the configuration of a rotation detection device according to another embodiment of the present invention. [Figure 14A] Figure 14A is a bottom view of the stator provided in the rotation detection device shown in Figure 13. [Figure 14B] Figure 14B is a plan view of the rotor provided in the rotation detection device shown in Figure 13. [Modes for carrying out the invention]

[0036] Hereinafter, embodiments of this invention will be described in detail with reference to the accompanying drawings.

[0037] Figures 1A and 1B are exploded perspective views illustrating an example configuration of a rotation detection device according to one embodiment of the present invention, and Figure 2 is a cross-sectional view thereof. Figure 1A is an exploded perspective view of the configuration in Figure 2, viewed from diagonally above, and Figure 1B is an exploded perspective view of the configuration in Figure 2, viewed from diagonally below. In this case, "up" and "down" are based on the orientation shown in Figure 2 and are unrelated to the up and down in the actual usage state.

[0038] The rotation detection device 100 includes a rotor 1 as a first support that rotates around a rotation axis 3, and a stator 2 as a second support that faces the rotor 1 with an air gap 7 in the axial direction A parallel to the rotation axis 3, and comprises an induction detection unit 5 and a magnetic detection unit 6. Both the induction detection unit 5 and the magnetic detection unit 6 detect rotation information of the rotor 1 around the rotation axis 3.

[0039] In this example, the rotor 1 is coupled to a rotating shaft 4 that rotates around a rotation axis 3, and rotates together with the rotating shaft 4. The rotor 1 is made of, for example, a printed circuit board. The stator 2 is installed in a non-rotating state. The stator 2 is made of, for example, a printed circuit board. The stator 2 has an opening 2c through which the rotating shaft 4 is inserted. The rotor 1 and stator 2 are positioned parallel to each other, with a gap 7 in the axial direction A, and are in a position parallel to a plane perpendicular to the rotation axis 3. The rotor 1 and stator 2 are positioned in close proximity, for example, the distance of the gap 7 in the axial direction A is 0.5 mm.

[0040] The printed circuit boards constituting the rotor 1 and stator 2 may be multilayer printed circuit boards with multiple (for example, four) wiring layers stacked on top of each other. Each wiring layer is typically composed of a copper foil pattern, with an insulating layer interposed between each wiring layer. The thickness of the copper foil is, for example, about 20 μm. For example, a first wiring layer may be placed on one of the two main surfaces of the printed circuit board, a second wiring layer may be placed with a 0.2 mm insulating layer in between, a third wiring layer may be placed with a 1.2 mm insulating layer in between, and a fourth wiring layer may be placed with a 0.2 mm insulating layer in between. The fourth wiring layer may be placed on the other of the two main surfaces of the printed circuit board. Of course, the two printed circuit boards constituting the rotor 1 and stator 2 do not need to have the same structure.

[0041] The rotor 1 holds the conductor to be detected 10. More specifically, the conductor to be detected 10 is formed on the wiring layer (first wiring layer) of the main surface 1a of the printed circuit board constituting the rotor 1, which faces the stator 2. The rotor 1 also holds the magnet to be detected M. More specifically, the magnet to be detected M is fixed to the main surface 1b of the printed circuit board constituting the rotor 1, which is opposite to the stator 2. The magnet to be detected M is magnetized, for example, in an axial direction A parallel to the rotation axis 3.

[0042] In the illustrated example, the magnets to be detected M are a group of individual magnets M1, M2, ... arranged at intervals (typically equal intervals) on a circumference 150 centered on the rotation axis 3. The group of magnets are fixed to the rotor 1 such that their magnetic poles of different polarities are alternately arranged in the circumferential direction. In other words, in the illustrated example, the two individual magnets M1 and M2, arranged with a 180-degree phase difference around the rotation axis 3, have their magnetic pole directions determined so that their magnetic poles of different polarities face the stator 2. When the rotor 1 rotates around the rotation axis 3, the magnets to be detected M (individual magnets M1, M2, ...) move along a circumferential orbit that follows the circumference 151. The individual magnets M1, M2, ... may be neodymium magnets, and their surfaces may be nickel-plated.

[0043] Figure 3A is a plan view of the stator 2 seen from the opposite side of the rotor 1 along the axis of rotation 3, and Figure 3B is a bottom view of the stator 2 seen from the rotor 1 side along the axis of rotation 3.

[0044] The stator 2 holds magnetic sensors 61 and 62 for detecting the magnetic field generated by the target magnet M. The magnetic detection unit 6 includes the magnetic sensors 61 and 62 and the target magnet M. In this embodiment, the first magnetic sensor 61 and the second magnetic sensor 62 are held in the stator 2.

[0045] The first magnetic sensor 61 is, for example, a power generation sensor. The power generation sensor includes a magnetic wire FE that exhibits the Great Barkhausen effect and a winding SP wound around the magnetic wire FE. The magnetic wire FE is also called a pulse wire or wigand wire, and the power generation sensor is also called a wigand sensor. The power generation sensor generates a pulse voltage from the winding SP when the magnetization direction of the magnetic wire FE is reversed by a change in the magnetic field. The power generation sensor constituting the first magnetic sensor 61 is positioned on the circumference 151 having its center on the axis of rotation 3, with the axial length direction of the magnetic wire FE oriented parallel to the tangent line on the circumference 151 (more specifically, at the point of contact of the tangent line).

[0046] Typically, when viewed in the axial direction A, the circumference 151 coincides with the circumferential orbit (circumferential 150) of the magnet M to be detected. Therefore, at the position closest to the first magnetic sensor 61 (power generation sensor), the circumferential orbit (circumferential 150) of the magnet M to be detected faces the first magnetic sensor 61 (power generation sensor) in the axial direction A. When the magnet M to be detected passes along the circumferential orbit (circumferential 150), the Great Barkhausen effect occurs, and the first magnetic sensor 61 generates a pulse voltage.

[0047] The second magnetic sensor 62 may be, for example, a Hall element or a magnetoresistive element. The second magnetic sensor 62 is also positioned so as to face the axial direction A with respect to the circumferential orbit (circumference 150) of the magnet M to be detected.

[0048] The first magnetic sensor 61 and the second magnetic sensor 62 may be mounted, for example, on the main surface 2a of the printed circuit board constituting the stator 2, opposite to the rotor 1, and bonded to the first wiring layer formed on this main surface 2a.

[0049] The stator 2 further houses a signal processing circuit 8 that performs signal processing for the induction detection unit 5 and the magnetic detection unit 6. More specifically, it is mounted on the main surface 2a of the printed circuit board constituting the stator 2, opposite to the rotor 1, i.e., on the main surface 2a on which the first magnetic sensor 61 and the second magnetic sensor 62 are mounted. The signal processing circuit 8 is electrically connected, for example, by being bonded to the first wiring layer of the printed circuit board.

[0050] The stator 2 holds a receiving coil 20 so as to face the conductor 10 to be detected, which is held by the rotor 1. More specifically, the receiving coil 20 is formed by a fourth wiring layer formed on the main surface 2b of the printed circuit board constituting the stator 2 that faces the rotor 1, and a third wiring layer which is adjacent to this fourth wiring layer. The receiving coil 20 is positioned in an annular region 30 (in this example, an annular region; see Figure 3A) centered on the rotation axis 3 when viewed in the axial direction A.

[0051] Furthermore, the stator 2 holds an excitation coil 40 that generates a magnetic field to induce a voltage in the receiving coil 20. In this example, the excitation coil 40 is arranged in a ring (circular in this example) so as to surround the receiving coil 20. The excitation coil 40 is made up of the wiring layers of the printed circuit board that makes up the stator 2. The wiring layers that make up the excitation coil 40 may include the same wiring layers as the receiving coil 20, or they may include different wiring layers.

[0052] By passing an alternating current through the excitation coil 40, an alternating magnetic field with an axial direction A is generated in the space surrounded by the excitation coil 40. This alternating magnetic field induces a voltage in the receiving coil 20. The alternating magnetic field is affected by the detection target conductor 10 formed on the rotor 1. As a result, the voltage induced in the receiving coil 20 changes.

[0053] The induction detection unit 5 includes a conductor to be detected 10, a receiving coil 20, and an excitation coil 40. The air gap 7 between the rotor 1 and the stator 2 is, for example, 0.5 mm, in which case the distance between the conductor to be detected 10 and the receiving coil 20 is approximately 0.5 mm. If the thickness of the printed circuit board constituting the rotor 1 is 1.6 mm, the distance from the receiving coil 20 to the magnet to be detected M is approximately 2.1 mm.

[0054] The magnet M to be detected, which constitutes the magnetic detection unit 6, is held by the rotor 1 and is positioned such that, when viewed in the axial direction A, at least a portion, and in this embodiment, all, overlaps the annular region 30 where the receiving coil 20 is located. Therefore, when the magnet M to be detected rotates together with the rotor 1, when viewed in the axial direction A, the magnet M to be detected rotates around the rotation axis 3 within the annular region 30 where the receiving coil 20 is located. The first magnetic sensor 61 and the second magnetic sensor 62 are also held by the stator 2 and are positioned such that, when viewed in the axial direction A, at least a portion, and in this embodiment, all, overlaps the annular region 30 where the receiving coil 20 is located.

[0055] In this way, because the detection area of ​​the induction detection unit 5 and the detection area of ​​the magnetic detection unit 6 overlap in the axial direction A, the size of the rotation detection device 100, especially its radial size, can be reduced.

[0056] Figures 4A and 4B illustrate an example configuration of the receiving coil 20. The receiving coil 20 is composed of copper foil patterns that constitute the third and fourth wiring layers of the multilayer printed circuit board that makes up the stator 2. In this embodiment, the receiving coil 20 includes an A-phase receiving coil 20A and a B-phase receiving coil 20B that are offset by 1 / 4 period around the rotation axis 3.

[0057] The A-phase receiving coil 20A shown in Figure 4A includes a first coil section 23 (shown by a solid line) formed in the fourth wiring layer and a second coil section 24 (shown by a dashed line) formed in the third wiring layer.

[0058] The first coil section 23 has a periodic waveform pattern in which concave and convex portions repeatedly appear, with the distance from the rotation axis 3 changing by four periods, as it makes one full rotation along one circumferential direction (clockwise direction in Figure 4A) from the starting point 25. The first coil section 23 is connected to one end of the second coil section 24 of the third wiring layer at a turning point 26 near the starting point 25. The second coil section 24 has a periodic waveform pattern in which concave and convex portions repeatedly appear, with the distance from the rotation axis 3 changing by four periods, as it makes one full rotation along the other circumferential direction (counterclockwise direction in Figure 4A) from the turning point 26, as it makes one full rotation, as it makes by four periods, as it makes the distance from the rotation axis 3 change by four periods, and terminates at an endpoint 27 near the starting point 25.

[0059] The waveform patterns of the first coil section 23 and the second coil section 24 are shifted by 1 / 2 period around the rotation axis 3. Therefore, the concave / convex portion of the first coil section 23 and the convex / concave portion of the second coil section 24 are positioned at mutually aligned angular positions. As a result, the loops formed by the concave / convex portion of the first coil section 23 and the convex / concave portion of the second coil section 24 constitute one turn coil section 28, forming a total of eight coil sections 28. These eight coil sections 28 are coils with alternating winding directions along the circumferential direction. Therefore, the A-phase receiving coil 20A has a configuration in which eight coil sections 28 with alternating winding directions are connected in series.

[0060] The configuration of the B-phase receiving coil 20B shown in Figure 4B is substantially the same, and each part in Figure 4B is denoted by the same reference numerals as the corresponding part in Figure 4A. However, as explained earlier, the A-phase coil and the B-phase coil are positioned offset by 1 / 4 period around the rotation axis 3.

[0061] As the rotor 1 rotates around the rotation axis 3, the relative positions of the detection target conductor 10 on the rotor 1 and the receiving coil 20 on the stator 2 change, and accordingly, the voltage induced in the receiving coil 20 changes. Therefore, rotational position information of the rotor 1 can be obtained based on the voltage induced in the receiving coil 20. Also, as the rotor 1 rotates around the rotation axis 3, the relative positions of the detection target magnet M held on the rotor 1 and the magnetic sensors 61 and 62 held on the stator 2 change, and accordingly, the magnetic fields detected by the magnetic sensors 61 and 62 change. Therefore, rotational position information of the rotor 1 can be obtained based on the output signals of the magnetic sensors 61 and 62.

[0062] As shown in Figure 12, the signal processing circuit 8 includes a first signal processing unit 81 (induction detection processing unit) that performs signal processing related to the induction detection unit 5, and a second signal processing unit 82 (magnetic detection processing unit) that performs signal processing related to the magnetic detection unit 6. The first signal processing unit 81 performs a first rotational position calculation process to calculate first rotational position information representing the rotational position of the rotor 1 by supplying an alternating current to the excitation coil 40, detecting the voltage induced in the receiving coil 20, and performing signal processing. The second signal processing unit 82 performs a second rotational position calculation process to calculate second rotational position information representing the rotational position of the rotor 1 based on the output signals of the magnetic sensors 61 and 62. The signal processing circuit 8 further includes a calculation processing unit 83 that uses one or both of the first and second rotational position information to obtain and output rotational position information representing the rotational position of the rotor 1. For example, the first rotational position information may be precise angle information representing a precise (high-resolution) rotation angle within one rotation around the rotation axis 3 of the rotor 1. Furthermore, the second rotational position information may be rotational speed information representing the number of rotations of the rotor 1 around the rotation axis 3. In this case, the arithmetic processing unit 83 may use the induction detection unit 5 as a precision angle detector, and the magnetic detection unit 6 may be used for periodic determination to expand the detection range of the induction detection unit 5, thereby obtaining the angle information.

[0063] Next, we will consider the mutual influence between the induction detection unit 5 and the magnetic detection unit 6, particularly the influence caused by their detection areas overlapping in the axial direction A. First, we will explain the influence on the magnetic detection unit 6, and then we will explain the influence on the induction detection unit 5.

[0064] The magnetic detection unit 6 includes a magnet M to be detected and magnetic sensors 61 and 62, with printed circuit boards constituting the rotor 1 and stator 2 interposed between them. The printed circuit boards are constructed by alternately laminating insulating layers made of glass epoxy resin or phenolic resin and wiring layers made of copper foil patterns. Since both the insulating layer and the wiring layer are made of non-magnetic materials, they do not affect the magnetic field. Therefore, there is no influence on the magnetic detection unit 6 from the rotor 1 and stator 2.

[0065] By passing an alternating current through the excitation coil 40 of the induction detection unit 5, an alternating magnetic field is generated. However, the generated alternating magnetic field is weaker than the magnetic field generated by the target magnet M of the magnetic detection unit 6, and therefore has almost no effect on detection by the magnetic detection unit 6. Furthermore, the excitation frequency of the excitation coil 40 of the induction detection unit 5 is a high frequency of, for example, about 3 MHz, while the signal frequency detected by the magnetic detection unit 6 is a low frequency of less than 1 kHz. Therefore, if necessary, the influence of the high-frequency alternating magnetic field generated by the excitation coil 40 can be eliminated by separating and removing the high-frequency components using a low-pass filter or the like.

[0066] Furthermore, as mentioned above, when the induction detection unit 5 is used as a high-precision angle detector and the magnetic detection unit 6 is used for periodic determination to expand the detection range of the induction detection unit 5, the detection accuracy of the magnetic detection unit 6 does not affect the accuracy of the final rotational position information. Therefore, the fact that the magnetic detection unit 6 is slightly affected by the induction detection unit 5 does not pose a practical problem.

[0067] Thus, the influence on the magnetic detection unit 6 due to the overlap of the detection areas of the induction detection unit 5 and the magnetic detection unit 6 in the axial direction A is hardly a problem.

[0068] On the other hand, the induction detection unit 5 detects the voltage induced by the change in the magnetic field. More specifically, it extracts and detects a component that changes with the excitation frequency (carrier frequency) when the excitation coil 40 is excited from the output signal of the receiving coil 20. As mentioned above, the excitation frequency is a high frequency of about 3 MHz, whereas the magnetic field generated by the target magnet M of the magnetic detection unit 6 does not change when the rotor 1 is stopped, and is a low frequency of less than 1 kHz even when it is rotating. Therefore, there is no influence from the magnetic field generated by the target magnet M of the magnetic detection unit 6.

[0069] Furthermore, both the excitation coil 40 and the receiving coil 20 of the induction detection unit 5 are coreless air-core coils. When a magnetic material is used for the core of a coil, changes in characteristics may occur due to magnetic saturation of the magnetic material caused by an external magnetic field, but in this embodiment, such changes in characteristics do not occur. From this viewpoint as well, there is no influence on the induction detection unit 5 from the magnet M to be detected.

[0070] If the magnet M to be detected is a conductor, the alternating magnetic field generated by the excitation coil 40 induces eddy currents, and these eddy currents weaken the magnetic field linked to the receiving coil 20, which may affect detection by the induction detection unit 5. For example, neodymium magnets are conductors, and the nickel plated on their surface is also a conductor. Therefore, if the magnet M to be detected is a conductor, measures may be needed to minimize this effect.

[0071] Figures 5 to 7 show examples of the arrangement of the magnet M to be detected when the conductor 10 to be detected is composed of a screen-shaped conductor S. A screen-shaped conductor S is a conductor that spreads out in a planar shape. When the rotor 1 is viewed in the axial direction A, the area where the screen-shaped conductor S is arranged constitutes a conductive part, and the area where the screen-shaped conductor S is not arranged constitutes a non-conductive part. The screen-shaped conductor S is formed on the rotor 1 in a pattern in which the ratio of conductive and non-conductive parts that overlap with each of the multiple coil parts 28 (eight coil parts 28 in the example of Figures 4A and 4B) of the receiving coil 20 changes periodically as the rotor 1 rotates around the rotation axis 3.

[0072] In the examples shown in Figures 5 to 7, multiple screen-like conductors (four in this example) are arranged at intervals (equally spaced in this example) around the axis of rotation 3. In this example, the shapes of the multiple screen-like conductors S are substantially congruent, resembling sectors with a portion of the central angle cut off. The central angle of the sector is approximately 45 degrees, and there is an angular gap of approximately 45 degrees around the axis of rotation 3 between adjacent screen-like conductors S. The multiple screen-like conductors S are arranged to be rotationally symmetrical (four-fold symmetry in the illustrated examples) around the axis of rotation 3.

[0073] In the examples of Figures 5 and 7, the magnet M to be detected consists of multiple (two in this example) individual magnets M1, M2, ..., while in the example of Figure 6, it is a single ring magnet Mr with a ring shape (specifically, annular) centered on the rotation axis 3. The ring magnet Mr is magnetized in the axial direction A, and is a multi-pole magnetized magnet (for example, a quad-pole magnetized magnet) in which the north and south poles are arranged alternately in the circumferential direction along the circumference 150 when viewed from the axial direction A. When the rotor 1 rotates around the rotation axis 3, the magnetic poles of the ring magnet Mr move along a circumferential orbit along the circumference 150.

[0074] In the examples in Figures 5 and 6, the magnet M to be detected is held on the rotor 1 in a position where a portion of it protrudes from the screen-shaped conductor S when viewed in the axial direction A. The example in Figure 7 shows an arrangement where the entire magnet M to be detected overlaps with the screen-shaped conductor S.

[0075] The alternating magnetic field generated by the excitation coil 40 induces eddy currents in the screen-shaped conductor S. These eddy currents generate a magnetic field that weakens the alternating magnetic field, thereby reducing the voltage induced in the coil portion 28 of the opposing receiving coil 20 (see Figures 4A and 4B).

[0076] When the magnet M to be detected is a conductor, eddy currents are similarly induced on the surface of the magnet M on the receiving coil 20 side, and the magnetic field generated by these eddy currents weakens the voltage induced in the coil portion 28 of the opposing receiving coil 20.

[0077] The screen-shaped conductor S, which is the target of detection by the induction detection unit 5, and the conductor of the target magnet M, which is not the target of detection by the induction detection unit 5, perform similar functions. Therefore, it is difficult to remove noise components caused by eddy currents on the surface of the target magnet M through signal processing. Although the target magnet M is further from the receiving coil 20 than the screen-shaped conductor S, it affects the voltage induced in the receiving coil 20, and therefore may affect the accuracy of rotation detection by the induction detection unit 5.

[0078] Magnetic force is inversely proportional to the square of the distance. The distance between the receiving coil 20 and the conductor to be detected 10 is approximately equal to the distance between the rotor 1 and the stator 2, for example, about 0.5 mm. Adding the thickness of the printed circuit board that makes up the rotor 1, for example 1.6 mm, the distance between the receiving coil 20 and the surface of the magnet to be detected M is for example about 2.1 mm. The influence of eddy currents flowing on the surface of the magnet to be detected M, which is located relatively far from the receiving coil 20, is smaller than the influence of eddy currents flowing on the screen-like conductor S, which is located relatively close to the receiving coil 20.

[0079] Therefore, in the structure of this embodiment, even if there is some reduction in accuracy due to the influence of eddy currents on the surface of the magnet M to be detected, the induction detection unit 5 can detect the position of the screen-shaped conductor S with sufficient accuracy.

[0080] The effect can be further reduced by increasing the thickness of the printed circuit board that makes up the rotor 1 and moving the target magnet M further away. However, since the distance between the magnetic sensors 61, 62 and the target magnet M will increase, it is preferable to consider the trade-off with the detection accuracy of the magnetic detection unit 6.

[0081] Among the arrangement examples in Figures 5, 6, and 7, the arrangements in Figures 6 and 7 are relatively preferred.

[0082] In the arrangement examples shown in Figures 5 and 6, the detection target magnet M partially overlaps the screen-shaped conductor S, and a portion of the detection target magnet M faces the receiving coil 20 without intervening the screen-shaped conductor S. In the arrangement example in Figure 6, the magnetic field caused by eddy currents induced on the surface of the ring magnet Mr slightly lowers the voltage induced in the receiving coil 20, but since the effect is uniform around the entire circumference of the rotation axis 3, it does not lead to a decrease in detection accuracy. On the other hand, in the arrangement example in Figure 5, the effect of the detection target magnet M cannot be said to be uniform around the entire circumference, which is disadvantageous compared to the arrangement example in Figure 6. The ring magnet Mr is also effective when the detection target conductor 10 is composed of an annular coil pattern C (see Figure 8), which will be described later.

[0083] In the arrangement example shown in Figure 7, the entire magnet M to be detected overlaps with the screen-shaped conductor S, and from the perspective of the receiving coil 20, the entire magnet M to be detected is located behind the screen-shaped conductor S. Due to the shielding effect of the screen-shaped conductor S, the magnetic field induced by the excitation coil 40 is shielded, so the magnetic flux reaching the magnet M to be detected is greatly reduced, and accordingly, the eddy currents induced on the surface of the magnet M to be detected are reduced. In addition, the magnetic field generated by the eddy currents on the surface of the magnet M to be detected is also shielded by the screen-shaped conductor S and is less likely to reach the receiving coil 20. Therefore, the influence of the magnet M to be detected on the detection accuracy of the induction detection unit 5 can be reduced.

[0084] Figure 8 shows an example of an annular coil pattern C, which is another example of the conductor 10 to be detected.

[0085] The annular coil pattern C is formed in an annular shape along a circumference 13 centered on the axis of rotation 3, and is a periodic uneven pattern having radial irregularities relative to the circumference 13. The annular coil pattern C is an endless pattern composed of linear conductor patterns. That is, the annular coil pattern C is a linear conductor pattern whose distance from the axis of rotation 3 changes periodically according to its circumferential position.

[0086] The annular coil pattern C is constructed by alternately arranging convex portions 11 that protrude radially (away from the axis of rotation 3) and concave portions 12 that recess radially (towards the axis of rotation 3) in the circumferential direction around the axis of rotation 3. In the example shown in Figure 8, the annular coil pattern C has multiple (specifically 4) convex portions 11 and multiple (specifically 4) concave portions 12, and is formed to be rotationally symmetric (four-fold symmetry in the illustrated example) around the axis of rotation 3. In this example, the four convex portions 11 and the four concave portions 12 are each formed in regions within a 45-degree angular range around the axis of rotation 3.

[0087] The annular coil pattern C has four outer arc sections 16 formed along an outer circumference 14 centered on the axis of rotation 3, four inner arc sections 17 formed along an inner circumference 15 centered on the axis of rotation 3, and eight straight sections 18 formed to connect the ends of the outer arc sections 16 to the inner arc sections 17. In the illustrated example, the straight sections 18 are along the radial direction, but may be inclined with respect to the radial direction. The outer arc sections 16 and the two straight sections 18 connected to both ends form a convex portion 11, and the inner arc sections 17 and the two straight sections 18 connected to both ends form a concave portion 12.

[0088] When an induced current i (shown in Figure 8 as an induced current flowing clockwise around the rotation axis 3) flows through the annular coil pattern C due to the alternating magnetic field generated by the excitation coil 40, this induced current i generates a magnetic field B in the convex portion 11 and the concave portion 12 in a direction parallel to the rotation axis 3. The direction of the magnetic field B is opposite in the convex portion 11 and the concave portion 12 (one direction parallel to the rotation axis 3 and the other direction), and the convex portion 11 and the concave portion 12 form a positive magnetic flux region B+ and a negative magnetic flux region B-. The relationship between the convex portion 11 and the concave portion 12 and the positive and negative magnetic flux regions B+ and B- is reversed depending on the direction of the induced current i. Therefore, one of the convex portion 11 and the concave portion 12 strengthens the magnetic field generated by the excitation coil 40, while the other weakens the magnetic field generated by the excitation coil 40.

[0089] As the annular coil pattern C rotates together with the rotor 1 around the rotation axis 3, the ratio of the opposing area between the positive magnetic flux region B+ and the negative magnetic flux region B- for each coil portion 28 of the receiving coil 20 (see Figures 4A and 4B) changes, and accordingly, a voltage corresponding to the rotation position of the rotor 1 is induced in the receiving coil 20.

[0090] An annular coil pattern C, whose distance from the rotation axis 3 changes periodically according to the circumferential position around the rotation axis 3, has an inner region and an outer region with respect to the circumference 13. The change in distance from the rotation axis 3 may be gradual. However, a pattern that steeply switches between the two distances (distance to the outer arc portion 16 and distance to the inner arc portion 17), as shown in Figure 8, can increase the change in the area of ​​the positive magnetic flux region B+ and the negative magnetic flux region B- facing the coil portion 28 of the receiving coil 20 (see Figures 4A and 4B), thereby increasing the signal voltage.

[0091] While the screen-shaped conductor S hinders magnetic flux changes due to eddy currents and acts only in a direction that reduces the voltage induced in the receiving coil 20, the annular coil pattern C generates magnetic flux in both positive and negative directions, which can act on the receiving coil 20. As a result, the signal voltage output from the receiving coil 20 can be increased, and the influence of the magnet M to be detected can be relatively reduced. Therefore, by using the annular coil pattern C as the conductor to be detected 10, the influence of the magnet M to be detected can be reduced compared to when using the screen-shaped conductor S.

[0092] Figures 9 to 11 show examples of the arrangement of the magnet M to be detected when the conductor 10 to be detected is composed of an annular coil pattern C. In all of these arrangement examples, when viewed from the axial direction A, the entire magnet M to be detected is located within the annular region where the annular coil pattern C is formed (the annular region demarcated by the outer circumference 14 and the inner circumference 15 in Figure 8).

[0093] In the arrangement example shown in Figure 9, the magnet to be detected M includes multiple individual magnets M1, M2, ... (two in this example) arranged at intervals in the circumferential direction around the rotation axis 3. In this example, the individual magnets M1, M2, ... are cylindrical, and their magnetization direction is parallel to the rotation axis 3.

[0094] When viewed in the axial direction A, each individual magnet M1, M2, ... has a shape that is symmetrical with respect to the radius extended from the rotation axis 3 so as to pass through the circumferential center position. Furthermore, the circumferential center position 161 of each individual magnet M1, M2, ... coincides with the circumferential position of the midpoint (midpoint of the straight section 18) of the circumferentially adjacent convex portions 11 and concave portions 12 of the concave and concave pattern of the annular coil pattern C. In other words, the center position of the switching point in the distance from the rotation axis 3 of the annular coil coincides with the circumferential center position 161 of the magnet M to be detected. As a result, each individual magnet M1, M2, ... is arranged so that it faces (overlaps) the positive magnetic flux region and the negative magnetic flux region with equal area, regardless of the circumferential width. Therefore, since the individual magnets M1, M2, ... affect both the positive and negative magnetic flux equally, the impact on the detection accuracy of the induction detection unit 5 is minimal.

[0095] In the arrangement example shown in Figure 10, the magnet to be detected M includes multiple (two in this example) individual magnets M1, M2, ... arranged at intervals in the circumferential direction around the rotation axis 3. In this example, the individual magnets M1, M2, ... are arc-shaped with their centers on the rotation axis 3. The multiple individual magnets M1, M2, ... are arranged along a circumference 150 with its centers on the rotation axis 3, and are arc-shaped along the circumference 150. When viewed in the axial direction A, the circumferences 13 and 150 may almost overlap.

[0096] When viewed in the axial direction A, each individual magnet M1, M2, ... has a shape that is symmetrical with respect to a radius extended from the axis of rotation 3 so as to pass through the circumferential center position 162. The circumferential width 163 (angle width or length on the circumference 13,150) of the individual magnets M1, M2, ... is a natural number multiple of the periodic width 164 (angle width or length on the circumference 13,150) of the uneven pattern of the annular coil pattern C.

[0097] In the illustrated example, the circumferential width 163 of the individual magnets M1, M2, ... is equal to 1x the periodic width 164 of the uneven pattern of the annular coil pattern C. However, for example, the circumferential width 163 of the individual magnets M1, M2, ... can be kept the same, but the number of periods within one rotation of the uneven pattern of the annular coil pattern C can be doubled, tripled, ..., etc., so that the circumferential width 163 of the individual magnets M1, M2, ... is equal to 2x, 3x, ..., etc. With such an arrangement, the individual magnets M1, M2, ... face (overlap) the positive magnetic flux region and the negative magnetic flux region with equal area, regardless of their circumferential arrangement. Therefore, they affect both the positive and negative magnetic flux equally, thus minimizing the impact on the detection accuracy of the induction detection unit 5.

[0098] In the arrangement example shown in Figure 11, the magnet M to be detected includes an even number of individual magnets M1, M2, ... (2 in the illustrated example) arranged at equal intervals along a circumference 150 centered on the rotation axis 3. The number of periods (number of periods within one rotation) of the uneven pattern of the annular coil pattern C is odd (3 in the illustrated example).

[0099] In this case, the two individual magnets M1 and M2, positioned on opposite sides of the rotation axis 3 (at a 180-degree phase difference), are in a relative position with opposite phases to the uneven pattern of the annular coil pattern C. Therefore, the area facing the positive magnetic flux region and the area facing the negative magnetic flux region are equal for the entire set of individual magnets M1, M2,... Consequently, the positive and negative magnetic fluxes of the individual magnets M1, M2,... are affected equally, resulting in minimal impact on the detection accuracy of the induction detection unit 5.

[0100] As mentioned above, the arrangement of the ring magnet Mr (see Figure 6) in combination with the annular coil pattern C also has little effect on the detection accuracy of the induction detection unit 5.

[0101] Figures 13, 14A, and 14B illustrate the configuration of a rotation detection device 101 according to another embodiment of the present invention. Figure 13 is a cross-sectional view similar to that of Figure 2, Figure 14A is a bottom view of the stator 2, and Figure 14B is a plan view of the rotor 1. In Figures 13, 14A, and 14B, parts corresponding to those shown in Figures 1 to 3B are denoted by the same reference numerals. Figures 4A to 12 are also referred to as necessary.

[0102] This rotation detection device 101 includes a rotor 1 as a first support that rotates around a rotation axis 3, and a stator 2 as a second support that faces the rotor 1 with a gap 7 in the axial direction A parallel to the rotation axis 3, and comprises an induction detection unit 5 and a magnetic detection unit 6. Both the induction detection unit 5 and the magnetic detection unit 6 detect rotation information of the rotor 1 around the rotation axis 3. In this embodiment, the induction detection unit 5 is a precision absolute angle detector that detects the precise absolute angle within one rotation of the rotor 1 around the rotation axis 3. The magnetic detection unit 6 is a multi-rotation detector that detects multi-rotation information corresponding to the number of rotations of the rotor 1 around the rotation axis 3.

[0103] The stator 2 is composed of a printed circuit board, more specifically a four-layer printed circuit board. A first magnetic sensor 61 and a second magnetic sensor 62 are mounted on the surface of the printed circuit board constituting the stator 2 opposite to the rotor 1, for detecting the magnetic field generated by the magnet M to be detected. The first magnetic sensor 61 is, for example, a power generation sensor. The second magnetic sensor 62 is, for example, a Hall element or a magnetoresistive element, and detects a magnetic field in the axial direction A parallel to the rotation axis 3. The first magnetic sensor 61 (power generation sensor) and the second magnetic sensor 62 are bonded (for example, soldered) to a copper foil pattern constituting the first wiring layer located on the side of the printed circuit board constituting the stator 2 opposite to the rotor 1. The configuration and arrangement of the first magnetic sensor 61 and the second magnetic sensor 62 are the same as in the embodiment described above.

[0104] The stator 2 further houses a signal processing circuit 8 that performs signal processing for the induction detection unit 5 and the magnetic detection unit 6. More specifically, it is mounted on the main surface 2a of the printed circuit board constituting the stator 2, opposite to the rotor 1, i.e., on the main surface 2a on which the first magnetic sensor 61 and the second magnetic sensor 62 are mounted. The signal processing circuit 8 is electrically connected, for example, by being bonded to the first wiring layer of the printed circuit board.

[0105] An excitation coil 40 is formed on the printed circuit board that constitutes the stator 2. Specifically, the excitation coil 40 is made up of the copper foil pattern of the fourth wiring layer, which is the wiring layer on the surface of the printed circuit board facing the rotor 1. As shown in Figure 14A, the excitation coil 40 has a concentric outer circumference excitation coil 41 and an inner circumference excitation coil 42 centered on the rotation axis 3, which are connected in series in opposite directions, and an AC voltage is applied to both ends 43, 44 of the series circuit of the outer circumference excitation coil 41 and the inner circumference excitation coil 42. In the illustrated example, the outer circumference excitation coil 41 and the inner circumference excitation coil 42 are each one-turn coils, but the number of turns may be multiple.

[0106] In the plane of Figure 14A, when a clockwise (rightward) current flows through the outer excitation coil 41, a counterclockwise (leftward) current flows through the inner excitation coil 42, and a magnetic flux is generated in the annular region between the two coils, directed toward the back of the plane of Figure 14A. In the plane of Figure 14A, when a counterclockwise (leftward) current flows through the outer excitation coil 41, a clockwise (rightward) current flows through the inner excitation coil 42, and a magnetic flux is generated in the annular region between the two coils, directed toward the front of the plane of Figure 14A.

[0107] Two sets of receiving coils, namely the outer receiving coil 21 and the inner receiving coil 22, are arranged in an annular region sandwiched between the outer excitation coil 41 and the inner excitation coil 42. The outer receiving coil 21 and the inner receiving coil 22 are formed in two concentric annular regions, namely the outer receiving coil region 31 and the inner receiving coil region 32, which have their centers on the rotation axis 3. The outer receiving coil 21 and the inner receiving coil 22 are formed by a fourth wiring layer (copper foil pattern) formed on the main surface 2b of the printed circuit board constituting the stator 2 that faces the rotor 1, and a third wiring layer (copper foil pattern) which is adjacent to this fourth wiring layer.

[0108] The outer receiving coil 21 and the inner receiving coil 22 are each composed of a pair of A-phase receiving coils and B-phase receiving coils, similar to the receiving coil 20 in Figures 4A and 4B. However, the number of periods differs from the examples in Figures 4A and 4B. For example, the outer receiving coil 21 is composed of a waveform pattern that changes 16 periods per revolution, and the inner receiving coil 22 is composed of a waveform pattern that changes 15 periods per revolution.

[0109] The printed circuit board constituting the rotor 1 has a main surface 1a facing the stator 2 on which the conductor to be detected 10 is held, and a main surface 1b opposite the stator 2 on which the magnet to be detected M is held. The conductor to be detected 10 is composed of annular coil patterns C1 and C2. More specifically, two annular coil patterns, namely an outer annular coil pattern C1 and an inner annular coil pattern C2, are provided concentrically with their centers on the rotation axis 3. These two annular coil patterns C1 and C2 are composed of wiring layers (copper foil patterns) formed on the surface of the printed circuit board facing the rotor 1. Since no coil patterns are provided on the side of the rotor 1 opposite the stator 2, a single-sided printed circuit board is sufficient for the printed circuit board constituting the rotor 1, but of course, a multilayer printed circuit board or a double-sided printed circuit board can also be used.

[0110] The outer annular coil pattern C1 is positioned so as to overlap with the outer receiving coil region 31, i.e., with the outer receiving coil 21, when viewed in the axial direction A. Similarly, the inner annular coil pattern C2 is positioned so as to overlap with the inner receiving coil region 32, i.e., with the inner receiving coil 22, when viewed in the axial direction A.

[0111] The annular coil patterns C1 and C2 are composed of linear conductor patterns with a waveform (a rectangular waveform in this example) whose distance from the rotation axis 3 changes periodically according to the circumferential position, similar to the case in Figure 8. However, the number of periods differs from the example in Figure 8. For example, the outer annular coil pattern C1 is composed of a waveform (rectangular waveform) that changes 16 times per revolution, while the inner annular coil pattern C2 is composed of a waveform (rectangular waveform) that changes 15 times per revolution.

[0112] In this embodiment, the magnets to be detected M are individual sector-shaped magnets M1, M2, ... (more precisely, sector-shaped magnets with the portion near the central angle removed, i.e., arc-shaped). The magnetization direction of the individual magnets M1, M2, ... is parallel to the rotation axis 3. Multiple (more specifically, four) individual magnets M1, M2, M3, M4 are arranged at intervals in the circumferential direction around the rotation axis 3. That is, the four individual magnets M1, M2, M3, M4 are arranged at 90-degree angular intervals around the rotation axis 3, or in other words, at equal intervals on a circumference 150 centered on the rotation axis 3. The four individual magnets M1, M2, M3, M4 are fixed to the rotor 1 such that the magnetic poles facing the stator 2 alternate between north and south poles in a circumferential arrangement. As a result, an alternating magnetic field with two periods is generated per rotation, and this alternating magnetic field is detected by the first magnetic sensor 61 and the second magnetic sensor 62.

[0113] The first magnetic sensor 61 and the second magnetic sensor 62 are fixed to the stator 2 at a position opposite the axial direction A with respect to the circumferential orbit (orbit along the circumference 150) through which the individual magnets M1, M2, ... pass when the rotor 1 rotates around the rotation axis 3.

[0114] The individual magnets M1, M2, ... are arranged so that, when viewed in the axial direction A, they overlap with the annular region 30, that is, the annular outer receiving coil region 31 and the inner receiving coil region 32, respectively. In other words, when viewed in the axial direction A, the individual magnets M1, M2, ... overlap with both the outer receiving coil region 31 and the inner receiving coil region 32. Therefore, when viewed in the axial direction A, the arrangement of the individual magnets M1, M2, ... overlaps with the outer annular coil pattern C1 and the inner annular coil pattern C2.

[0115] The individual magnets M1, M2, ... are arranged in the same way as in Figure 9 with respect to the outer annular coil pattern C1, and in the same way as in Figure 10 with respect to the inner annular coil pattern C2.

[0116] In other words, multiple individual magnets M1, M2, ... are arranged along a circumference with its center on the rotation axis 3. When viewed in the axial direction A, each individual magnet M1, M2, ... has a shape that is symmetrical with respect to the radius extended from the rotation axis 3 so as to pass through its circumferential center position. The circumferential center position 161 of the individual magnets M1, M2, ... coincides with the circumferential position of the radius switching position of the outer annular coil pattern C1. Therefore, when viewed in the axial direction A, the area of ​​the portion of the individual magnets M1, M2, ... that overlaps with the positive magnetic flux region of the outer annular coil pattern C1 is equal to the area of ​​the portion that overlaps with the negative magnetic flux region. Consequently, the individual magnets M1, M2, ... affect both the positive and negative magnetic flux equally, resulting in little influence on the detection accuracy based on the output signal of the outer receiving coil 21.

[0117] On the other hand, the circumferential width 163 of the individual magnets M1, M2, ... is a natural number multiple of the period width 164 of the uneven pattern of the inner annular coil pattern C2, and in the illustrated example, it is equal to the period width 164 of the uneven pattern of the inner annular coil pattern C2. Therefore, regardless of their circumferential position, the individual magnets M1, M2, ... face the positive and negative magnetic flux regions of the inner annular coil pattern C2 with an area equal to their respective circumferential positions. As a result, the individual magnets M1, M2, ... affect both the positive and negative magnetic flux equally, thus minimizing the impact on detection accuracy based on the output signal of the inner receiving coil 22.

[0118] Furthermore, in the illustrated example, the number of individual magnets M1, M2, ... is four, which is an even number, and the number of periods of the inner annular coil pattern C2 is 15, which is an odd number, so the arrangement is the same as in Figure 11. Therefore, the two individual magnets M1, M3; M2, M4 located on opposite sides of the rotation axis 3 (at a position with a 180-degree phase difference) are in opposite phase with respect to the inner annular coil pattern C2. Consequently, the total area of ​​all individual magnets M1, M2, ... facing the positive magnetic flux region is equal to the total area of ​​all individual magnets M1, M2, ... facing the negative magnetic flux region. Therefore, the multiple individual magnets M1, M2, ... affect both the positive and negative magnetic flux equally, resulting in little influence on the detection accuracy based on the output signal of the inner receiving coil 22.

[0119] The individual magnets M1, M2, ... may be arranged in the same way as in Figure 10 with respect to the outer annular coil pattern C1, and in the same way as in Figure 9 with respect to the inner annular coil pattern C2. In this case, the individual magnets M1, M2, ... may be arranged in the same way as in Figure 11 with respect to the outer annular coil pattern C1.

[0120] When the rotor 1 rotates around the rotation axis 3, an angle signal with 16 periods per revolution is obtained from the outer receiving coil 21, and an angle signal with 15 periods per revolution is obtained from the inner receiving coil 22. Then, by appropriately processing the 16-period / revolution angle signal and the 15-period / revolution angle signal in the first signal processing unit 81 (induction detection processing unit) of the signal processing circuit 8, absolute angle information with 1 period / revolution can be obtained.

[0121] The power generation sensor constituting the first magnetic sensor 61 is positioned on the circumference 151 (more specifically, at the point of contact of the tangent) with the axial length of the magnetic wire FE facing parallel to the tangent to the tangent on the circumference 151, which has its center on the rotation axis 3. When the rotor 1 rotates around the rotation axis 3, the magnets to be detected M move along a circumferential orbit (an orbit along the circumference 150) around the rotation axis 3. At the position where it is closest to the first magnetic sensor 61 (power generation sensor), this circumferential orbit faces the first magnetic sensor 61 (power generation sensor) in the axial direction A. When individual magnets M1, M2, ... pass near the first magnetic sensor 61 along the circumferential orbit, the Great Barkhausen effect occurs, and the first magnetic sensor 61 generates a pulse voltage. As the four individual magnets M1, M2, M3, M4 rotate along the circumferential orbit, for example, four pulse voltages are generated per rotation.

[0122] When the rotor 1 rotates clockwise, a positive pulse voltage is generated when the north pole passes near the first magnetic sensor 61, and a negative pulse voltage is generated when the south pole passes near the first magnetic sensor 61. On the other hand, when the rotor 1 rotates counterclockwise, a negative pulse voltage is generated when the north pole passes near the first magnetic sensor 61, and a positive pulse voltage is generated when the south pole passes near the first magnetic sensor 61.

[0123] The second magnetic sensor 62 determines the polarity of the magnetic pole passing near the first magnetic sensor 61 (the polarity of the magnetic pole facing the first magnetic sensor 61) when the first magnetic sensor 61 generates a pulse voltage. Since the arrangement of the magnetic poles of the four individual magnets M1, M2, M3, and M4 is known in advance, if the second magnetic sensor 62 is positioned so as to face one of the magnetic poles of the four individual magnets M1, M2, M3, and M4 when one individual magnet M1, M2, ... faces the first magnetic sensor 61, the polarity of the magnetic pole passing near the first magnetic sensor 61 can be determined. In the illustrated example, the second magnetic sensor 62 is positioned 180 degrees out of phase with the first magnetic sensor 61, and therefore, the magnetic pole with the same polarity as the magnetic pole located near the first magnetic sensor 61 is detected by the second magnetic sensor 62.

[0124] As shown in Figure 12, the signal processing circuit 8 includes a first signal processing unit 81 (induction detection processing unit) that performs signal processing related to the induction detection unit 5, and a second signal processing unit 82 (magnetic detection processing unit) that performs signal processing related to the magnetic detection unit 6. The first signal processing unit 81 performs a first rotational position calculation process to calculate first rotational position information representing the rotational position of the rotor 1 by supplying alternating current to the excitation coil 40, detecting the voltage induced in the receiving coils 21 and 22, and performing signal processing. The second signal processing unit 82 performs a second rotational position calculation process to calculate second rotational position information representing the rotational position of the rotor 1 based on the output signals of the magnetic sensors 61 and 62. The first rotational position information is precise absolute angle information within one rotation, i.e., one-rotation absolute angle information. The second rotational position information is multi-rotation information corresponding to the number of rotations around the rotation axis 3 of the rotor 1, i.e., rotational number information. The signal processing circuit 8 further includes an arithmetic processing unit 83 that integrates the first rotational position information and the second rotational position information to calculate multi-rotation absolute angle information. Thus, the rotation detection device 101 of this embodiment constitutes an absolute angle detection device, or more specifically, a multi-rotation absolute angle detection device.

[0125] For example, the second signal processing unit 82 (magnetic detection processing unit) of the signal processing circuit 8 determines the rotation direction of the rotor 1 based on the polarity of the pulse voltage generated by the first magnetic sensor 61 (power generation sensor) and the output signal of the second magnetic sensor 62 (Hall element, etc.). Based on the determination of the rotation direction, the amount of rotation is counted each time the first magnetic sensor 61 generates a pulse voltage. The count value is updated each time a pulse voltage is generated and stored in a non-volatile memory (not shown) provided in the second signal processing unit 82.

[0126] The second magnetic sensor 62 (Hall element) and the second signal processing unit 82 (magnetic detection processing unit) can be operated by power supplied from an external power source, and also by the power of the pulse voltage generated by the first magnetic sensor 61 (power generation sensor). Therefore, the counting operation based on the pulse voltage of the first magnetic sensor 61 continues even when the external power supply is cut off, and the updated count value is stored in the non-volatile memory while the energy of the pulse voltage remains. In other words, the detection of rotation information by the magnetic detection unit 6 (multi-turn detection unit) continues even when the power supply is cut off.

[0127] The first signal processing unit 81 (induction detection processing unit) and the arithmetic processing unit 83 of the signal processing circuit 8 can only perform rotation information detection operations when an external power supply is provided. Therefore, when an external power supply is provided, the first signal processing unit 81 detects the precise absolute angle within one rotation based on the output signals of the two receiving coils 21 and 22. This precise absolute angle for one rotation and the count value of the magnetic detection unit 6 (multi-rotation detection unit) are integrated by the arithmetic processing unit 83, making it possible to determine the precise absolute angle over multiple rotations.

[0128] Thus, according to this embodiment, an absolute angle detection device equipped with an induction detection unit 5 and a magnetic detection unit 6, more specifically a multi-turn absolute angle detection device, can be realized. Furthermore, when viewed from the axial direction A, the detection areas of the induction detection unit 5 and the magnetic detection unit 6 overlap and are shared. As a result, miniaturization, especially in the radial direction, can be achieved without compromising detection accuracy.

[0129] While embodiments of this invention have been described above, this invention can also be implemented in other forms.

[0130] For example, in the above-described embodiment, an example of a screen-shaped conductor S constituting the conductor to be detected 10 was shown as a pattern in which the opposing relationship with the receiving coils 20, 21, 22 changes by multiple periods per rotation (see Figures 5, 6, and 7), but a pattern showing a change by one period per rotation may also be used. For example, a single fan-shaped screen-shaped conductor spanning a 180-degree angular range around the rotation axis 3 may be used as the conductor to be detected 10, or a single circular or elliptical screen-shaped conductor eccentrically positioned with respect to the rotation axis 3 may be used as the conductor to be detected 10. In other words, the screen-shaped conductor S should be a pattern designed so that the opposing area of ​​the conductor / non-conductor portion with respect to the coil portion 28 of the receiving coils 20, 21, 22 changes periodically with the rotation of the rotor.

[0131] Furthermore, in the embodiment shown in Figure 13, etc., an example is shown in which an outer annular coil pattern C1 and an inner annular coil pattern C2 are used as the conductor to be detected 10, but one or both of these may be replaced with a screen-shaped conductor. Moreover, the conductor to be detected 10 may be constructed by arranging three or more annular coil patterns or screen-shaped conductors in a concentric circle around the rotation axis 3.

[0132] Furthermore, various design modifications can be made within the scope of the matters described in the patent claims. [Explanation of Symbols]

[0133] 1: Rotor 2: Stator 3: Axis of rotation 5: Induction detection unit 6: Magnetic detection unit 7 :Void 8: Signal Processing Circuits 10: Conductor to be detected 11: Convex part 12: Recess 20: Receiving coil 21: Outer circumference receiving coil 22: Inner frequency receiving coil 30: Ring region 31: Outer peripheral receiving coil area 32: Inner frequency receiving coil area 40: Excitation coil 61: First magnetic sensor 62: Second magnetic sensor 100: Rotation detection device 101: Rotation detection device 161: Circumferential center position 162: Circumferential center position 163: Circumferential width 164: Period width A: Axis C: Annular coil pattern C1: Outer ring coil pattern C2: Inner circular coil pattern FE: Magnetic wire M: Magnet to be detected M1,M2,…:Individual magnet Mr: Ring Magnet S: Screen-shaped conductor SP: Winding

Claims

1. A first support that rotates around the axis of rotation, A second support is positioned opposite the first support with a gap in the axial direction parallel to the axis of rotation, An induction detection unit for detecting rotational information of the first support about the rotation axis, The system includes a magnetic detection unit for detecting rotational information of the first support about the rotation axis, The induction detection unit is, The conductor to be detected held in the first support, A receiving coil is held on the second support in an arrangement facing the conductor to be detected in the axial direction, and is positioned in an annular region centered on the rotation axis when viewed in the axial direction, The device includes an excitation coil, which is held by the second support and generates a magnetic field for inducing a voltage in the receiving coil, The magnetic detection unit is A magnet to be detected, held by the first support, is positioned on the opposite side of the second support from the conductor to be detected in the axial direction, and is positioned such that at least a portion of it overlaps with the annular region when viewed in the axial direction. A magnetic sensor is held by a second support, positioned on the opposite side in the axial direction from the first support with respect to the receiving coil and the excitation coil, and positioned such that at least a portion of it overlaps the annular region when viewed in the axial direction, and is used to detect the magnetic field generated by the magnet to be detected. Rotation detection device.

2. The rotation detection device according to claim 1, wherein the conductor to be detected includes a screen-shaped conductor.

3. The rotation detection device according to claim 2, wherein the magnet to be detected has a ring shape with its center on the rotation axis and is magnetized in the axial direction.

4. The rotation detection device according to claim 2, wherein the magnet to be detected includes a plurality of individual magnets that are magnetized in the axial direction and arranged along a circumference having their centers on the axis of rotation.

5. The rotation detection device according to claim 4, wherein the plurality of individual magnets are held on the first support in an arrangement that overlaps with the screen-like conductor when viewed in the axial direction.

6. The rotation detection device according to claim 1, wherein the conductor to be detected is an annular coil pattern formed in a ring shape along a circumference having its center on the axis of rotation, and having a periodic uneven pattern with radial irregularities relative to the circumference.

7. The rotation detection device according to claim 6, wherein the magnet to be detected has a ring shape with its center on the rotation axis and is magnetized in the axial direction.

8. The rotation detection device according to claim 6, wherein the magnet to be detected includes a plurality of individual magnets that are magnetized in the axial direction and arranged along a circumference having their centers on the axis of rotation.

9. The rotation detection device according to claim 8, wherein the circumferential center position of each individual magnet is aligned with the circumferential position of the midpoint between adjacent recesses and protrusions in the circumferential direction of the uneven pattern.

10. The rotation detection device according to claim 8, wherein the circumferential width of each individual magnet is a natural number multiple of the periodic width of the uneven pattern of the annular coil pattern.

11. An even number of the individual magnets are arranged at equal intervals along the circumference of the circle having its center on the axis of rotation, The rotation detection device according to claim 8, wherein the number of periods of the uneven pattern of the annular coil pattern around the rotation axis is odd.

12. The aforementioned annular coil pattern is Inner circular annular coil pattern, The rotation detection device according to claim 8, further comprising an outer annular coil pattern arranged radially outward from the inner annular coil pattern.

13. The circumferential center position of each individual magnet is aligned with the circumferential position of the midpoint of the circumferentially adjacent recess and protrusion of one of the inner annular coil pattern and the outer annular coil pattern. The rotation detection device according to claim 12, wherein the circumferential width of each individual magnet is a natural number multiple of the periodic width of the uneven pattern of the other of the inner annular coil pattern and the outer annular coil pattern.

14. An even number of the individual magnets are arranged at equal intervals along the circumference of the circle having its center on the axis of rotation, The circumferential center position of each individual magnet is aligned with the circumferential position of the midpoint between the recesses and protrusions of one of the inner annular coil patterns and the outer annular coil pattern, which are adjacent in the circumferential direction. The rotation detection device according to claim 12, wherein the number of periods around the rotation axis of the uneven pattern of the other of the inner annular coil pattern and the outer annular coil pattern is odd.

15. An even number of the individual magnets are arranged at equal intervals along the circumference of the circle having its center on the axis of rotation, The circumferential center position of each individual magnet is aligned with the circumferential position of the midpoint between the recesses and protrusions of one of the inner annular coil patterns and the outer annular coil pattern, which are adjacent in the circumferential direction. The circumferential width of each individual magnet is a natural number multiple of the periodic width of the uneven pattern of the other of the inner annular coil pattern and the outer annular coil pattern. The rotation detection device according to claim 12, wherein the number of periods of the other of the inner annular coil pattern and the outer annular coil pattern around the rotation axis is odd.

16. The rotation detection device according to any one of claims 1 to 13, wherein the magnetic sensor includes a Hall element or a magnetoresistive element.

17. The magnetic sensor includes a power generation sensor, The rotation detection device according to any one of claims 1 to 13, wherein the power generation sensor includes a magnetic wire that exhibits the Great Barkhausen effect and a coil wound around the magnetic wire.

18. The magnetic sensor includes a first magnetic sensor including a power generation sensor and a second magnetic sensor including a Hall element or a magnetoresistive element. The rotation detection device according to any one of claims 1 to 13, wherein the power generation sensor includes a magnetic wire that exhibits the Great Barkhausen effect and a coil wound around the magnetic wire.

19. The rotation detection device according to claim 17, wherein the power generation sensor is arranged on the circumference of the circle with the magnetic wire facing parallel to a tangent line on the circumference having its center on the axis of rotation.

20. A rotation detection device according to any one of claims 1 to 13, which detects an absolute angle.

21. A rotation detection device according to any one of claims 1 to 13, for detecting a multi-turn absolute angle.

Citation Information

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