Claims
- 1. A rotation sensor comprising:
a first rotor comprising:
an annular insulating magnetic disk, and at least one electrical conductor attached to a surface of the disk; a second rotor comprising at least one radially extending electrical conductor; wherein the at least one electrical conductor of the first rotor is substantially geometrically similar to the at least one electrical conductor of the second rotor; and an excitation coil positioned such that the second rotor is located between the excitation coil and the first rotor.
- 2. The rotation sensor of claim 1, wherein the first rotor is attached to a first position of a shaft, and wherein the second rotor is attached to a second position of the shaft.
- 3. The rotation sensor of claim 1, wherein the first rotor is attached to a first shaft and the second rotor is attached to a second shaft.
- 4. The rotation sensor of claim 1, wherein the excitation coil is housed within an stationary core.
- 5. The rotation sensor of claim 1, further comprising oscillating means connected to the excitation coil for producing an oscillating signal in accordance with a magnitude of an eddy current generated at the second rotor.
- 6. The rotation sensor of claim 5, further comprising a phase shift detecting means for detecting a phase shift of the oscillating signal.
- 7. The rotation sensor of claim 6, further comprising a measuring means for measuring an angle of relative rotation based on the detected phase shift.
- 8. A relative rotation measurement apparatus comprising:
a first rotor comprising an insulating magnetic material and a first plurality of electrical conductors; a stationary core housing an excitation coil carrying an AC current that in conjunction with the first rotor creates a magnetic circuit; a second rotor comprising a second plurality of electrical conductors, wherein the second rotor is positioned between the first rotor and the stationary core for measuring an angle of relative rotation between the first rotor and the second rotor; oscillating means connected to the excitation coil for generating an oscillation signal; phase shifting means for shifting a phase of the oscillation signal in accordance with a magnitude of an eddy current generated at the second rotor; phase shift detecting means for detecting a phase shift of the oscillation signal; and measuring means for measuring, based on the detected phase shift, an angle of relative rotation.
- 9. The apparatus of claim 8, wherein the first rotor comprises a disk attached to a hollow shaft, and wherein the second rotor comprises a plurality of electrical conductors extending radially from a disk having a central opening.
- 10. The rotation sensor of claim 9, wherein the first rotor is attached to a first position of a central shaft positioned within the hollow shaft, and wherein the second rotor is attached to a second position of the central shaft.
- 11. The rotation sensor of claim 9, wherein the first rotor is attached to a first central shaft positioned within the first rotor, and wherein the second rotor is attached to a second central shaft positioned within the second rotor.
- 12. A method of measuring relative rotation, comprising:
attaching a disk-shaped rotor to a first shaft, wherein the first rotor having an insulating magnetic material and has a plurality of electrical conductors attached to a surface of the disk; providing a stationary body having an excitation coil carrying an AC current that in conjunction with the first rotor creates a magnetic circuit; attaching a second rotor to a second shaft, wherein the second rotor comprises radially extending electrical conductors; and positioning the second rotor between the first rotor and the stationary body.
- 13. The method of claim 12, further comprising generating an oscillation signal by sensing the excitation coil.
- 14. The method of claim 13, further comprising shifting a phase of the oscillation signal in accordance with a magnitude of an eddy current generated at the second rotor, and detecting a phase shift of the oscillation signal.
- 15. The method of claim 14, further comprising measuring an angle of relative rotation based on the detected phase shift.
- 16. A method of measuring relative rotation, comprising:
attaching a first rotor having an insulating magnetic material to a first shaft, wherein the first rotor comprises an annular disk and a plurality of electrical conductors; providing a stationary body having an excitation coil carrying an AC current that in conjunction with the first rotor creates a magnetic circuit; attaching a second rotor to a second shaft, wherein the second rotor comprises a plurality of electrical conductors extending radially from an annular member; positioning the second rotor between the first rotor and the stationary body; generating an oscillation signal based on a sensing of the excitation coil; shifting a phase of the oscillation signal in accordance with a magnitude of an eddy current generated at the second rotor; detecting a phase shift of the oscillation signal; and measuring an angle of relative rotation based on the detected phase shift.
- 17. The method of claim 16, wherein the first rotor and the second rotor are aligned coaxially, and wherein the plurality of electrical conductors of the first rotor corresponds in number and geometry to the plurality of conductors of the second rotor.
- 18. A rotation sensor provided with a first rotor fixed at a predetermined position in an axial direction of a shaft, a second rotor fixed to said shaft adjoining said first rotor, and a magnetic core arranged around said first rotor and having a resonance coil for forming a magnetic circuit together with said first rotor, wherein said first rotor is formed of a magnetic material comprising an insulator, wherein an irregular magnetic field is formed with said magnetic core, and wherein said second rotor is provided with a conductor cutting across areas of different intensities of the irregular magnetic field in accordance with a difference in angle of rotation when a difference in angle of relative rotation arises between the shaft position where the first rotor is fixed and the shaft position where the second rotor is fixed.
- 19. A measurement circuit of a rotation sensor comprising:
a first rotor formed from an insulating magnetic material; a stationary core having a core body and an excitation coil carrying an AC current for forming a magnetic circuit by working in conjunction with said insulating magnetic material; and a second rotor arranged between said first rotor and said stationary core and measuring an angle of relative rotation of said first and second rotors; an oscillating means for generating an oscillation signal of a specific frequency; a phase shifting means for shifting a phase of said oscillation signal in accordance with a magnitude of an eddy current generated at said second rotor; a shift detecting means for detecting an amount of phase shift of said shifted oscillation signal; and a measuring means for measuring an angle of relative rotation based on said detected amount of phase shift.
- 20. A rotation sensor comprising:
a first rotor having a plurality of first conductor layers arranged at predetermined intervals along a circumferential direction; a second rotor having an insulating magnetic layer and a second conductor layer, rotating together with said first rotor, and rotating relative to said first rotor within a predetermined angle; a fixing member having an excitation coil and a core formed from an insulating magnetic material and holding said excitation coil; an oscillating means connected to said excitation coil and generating an oscillation signal of a specific frequency; a displacement sensor having a movable magnetic core moving in a rotation axis direction of said rotor along with rotation of said second rotor; and a coil connected with said oscillating means and working with said moving magnetic core for detecting a change of coil inductance based on movement in the rotation axis direction of said movable magnetic core.
- 21. A rotation sensor according to claim 20, further comprising at said excitation coil at least one relative rotation angle coil for detecting an angle of relative rotation accompanying relative rotation of said first and second rotors and/or a rotation angle coil for detecting an angle of rotation of said first and second rotor with respect to said fixing member.
- 22. A rotation sensor according to claim 21, further comprising:
a first signal processing means for processing an output signal from said relative rotation angle coil; a second signal processing means for processing an output signal from a means for measuring said relative angle of rotation and/or an output signal from said rotation angle coil and a displacement sensor; and a means for measuring the angle of rotation.
- 23. A rotation sensor comprising:
a first rotor having a plurality of first conductor layers arranged at predetermined intervals along a circumferential direction; a second rotor having an insulating magnetic layer and a second conductor layer, rotating together with said first rotor, and rotating relative to said first rotor within a predetermined angle; a fixing member having a relative rotation angle coil for detecting an angle of relative rotation accompanying relative rotation of said first and second rotors; a rotation angle coil for detecting an angle of rotation of said first and second rotor; a core formed from an insulating magnetic material and holding said relative rotation angle coil and rotation angle coil; an oscillating means connected to said relative rotation angle coil and rotation angle coil and generating an oscillation signal of a specific frequency; a displacement sensor having a movable magnetic core moving in a rotational axis direction of said second rotor along with rotation of said second rotor; and a coil connected with said oscillating means and working with said moving magnetic core and detecting a change of coil inductance based on movement in the rotational axis direction of said movable magnetic core.
- 24. A rotation sensor according to claim 23, further provided with a first signal processing means for processing an output signal from said relative rotation angle coil, a second signal processing means for processing an output signal from a means for measuring said relative angle of rotation and an output signal from said rotation angle coil and a displacement sensor, and a means for measuring the angle of rotation.
- 25. A rotation sensor according to any one of claims 19 to 24, further comprising:
a pitch sensor having a conductor piece and insulating layer; and a coil connected to said oscillating means and working with said conductor piece, one being provided at said fixing member and the other at said second rotor for detecting a change of coil inductance based on rotation of said second rotor.
- 26. A rotation sensor according to claim 22 or 24, wherein the second signal processing means processes a signal so as to output the same signal as an output signal at an upper limit point and a lower limit point of an output signal from said rotation angle coil near an upper limit point and lower limit point.
- 27. A rotation sensor comprising:
a first rotor having a plurality of first conductor layers arranged at predetermined intervals along a circumferential direction; a second rotor having an insulating magnetic layer and a second conductor layer, rotating together with said first rotor, and rotating relative to said first rotor within a predetermined angle; a fixing member having an excitation coil and a core formed from an insulating magnetic material and holding said excitation coil; an oscillating means connected to said excitation coil and generating an oscillation signal of a specific frequency; a displacement sensor comprising:
a first gear member fixed to said fixing member; a second gear member having first and second gear parts with different number of teeth, said first gear part engaging with a third gear part formed at said second rotor and the first gear member; a slider having a fourth gear part engaging with said second gear part and a third conductor layer, being transmitted the rotation of said second rotor reduced in speed, and comprised of a magnetic material moving in a rotational direction of said second rotor; and a coil member having a coil provided at said fixing member and connected to said oscillating means and detecting a change of coil inductance between said third conductor layer and coil based on rotation of said first and second rotors.
- 28. A rotation sensor according to claim 27, comprising at said excitation coil at least one of (i) a relative rotation angle coil for detecting an angle of relative rotation accompanying relative rotation of said first and second rotors and (ii) a rotation angle coil for detecting an angle of rotation of said first and second rotor with respect to said fixing member.
- 29. A rotation sensor according to claim 28, further comprising:
a first signal processing means for processing an output signal from said relative rotation angle coil; a second signal processing means for processing an output signal from (i) a means for measuring said relative angle of rotation or (ii) an output signal from said rotation angle coil and a displacement sensor; and means for measuring the angle of rotation.
- 30. A rotation sensor comprising:
a first rotor having a plurality of first conductor layers arranged at predetermined intervals along a circumferential direction; a second rotor having an insulating magnetic layer and a second conductor layer, rotating together with said first rotor, and rotating relative to said first rotor within a predetermined angle; a fixing member comprising:
a relative rotation angle coil for detecting an angle of relative rotation accompanying relative rotation of said first and second rotors; a rotation angle coil for detecting an angle of rotation of said first and second rotor; and a core formed from an insulating magnetic material and holding said relative rotation angle coil and rotation angle coil; an oscillating means connected to said relative rotation angle coil and rotation angle coil and generating an oscillation signal of a specific frequency; a displacement sensor comprising:
a first gear member fixed to said fixing member; a second gear member having first and second gear parts with different number of teeth, said first gear part engaging with a third gear part formed at said second rotor and the first gear member; a slider having a fourth gear part engaging with said second gear part and a third conductor layer, being transmitted rotation of said second rotor reduced in speed, and comprised of a magnetic material moving in a rotational direction of said second rotor; and a coil provided at said fixing member and connected to said oscillating means and detecting a change of coil inductance between said third conductor layer and coil based on rotation of said first and second rotors.
- 31. A rotation sensor according to claim 30, further comprising a first signal processing means for processing an output signal from said relative rotation angle coil, a second signal processing means for processing an output signal from a means for measuring said relative angle of rotation and an output signal from said rotation angle coil and a displacement sensor, and means for measuring the angle of rotation.
- 32. A rotation sensor according to any one of claims 27 to 31, further comprising a pitch sensor having a conductor piece and a coil connected to said oscillating means and working with said conductor piece, one being provided at said fixing member and the other at said second rotor, and detecting a change of coil inductance based on rotation of said second rotor.
- 33. A rotation sensor according to claim 29 or 31, wherein the second signal processing means processes a signal so as to output the same signal as an output signal at an upper limit point and a lower limit point of an output signal from said rotation angle coil near an upper limit point and lower limit point.
Priority Claims (5)
Number |
Date |
Country |
Kind |
11-173792 |
Jun 1999 |
JP |
|
11-281706 |
Oct 1999 |
JP |
|
11-289633 |
Oct 1999 |
JP |
|
2000-172066 |
Jun 2000 |
JP |
|
2000-182166 |
Jun 2002 |
JP |
|
RELATED APPLICATIONS
[0001] This application is a divisional application of previously filed U.S. patent application Ser. No. 09/790,304, entitled ROTATION SENSOR AND MEASUREMENT CIRCUIT, filed on Feb. 21, 2001, and is a continuation of PCT Application No. PCT/JP00/04061, filed on Jun. 21, 2000, both of which are hereby incorporated herein by reference.
[0002] This application is related to U.S. Patent Application entitled APPARATUS AND METHOD FOR SENSING RELATIVE ROTATION, having attorney docket number NAGAT14.1C1DV1, which is filed on even date herewith and is hereby incorporated herein by reference.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09790304 |
Feb 2001 |
US |
Child |
10225401 |
Aug 2002 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/JP00/04061 |
Jun 2000 |
US |
Child |
10225401 |
Aug 2002 |
US |