Claims
- 1. A magnetic rotary encoder comprising:
- a rotary means attachable to a rotatable shaft;
- a magnetic medium endlessly provided on a surface of said rotary means and divided at a pitch p into a plurality of magnetic sections each of which has a magnetic signal recorded thereon said magnetic medium having a thickness less than p and producing an alternating magnetic field as said rotary means revolves;
- a magnetic field detector including a magneto-resistor having a stripe-like configuration with width D and longitudinal dimension W and arranged in a plane substantially parallel to the nearest surface of said magnetic medium in the vicinity of said rotary means such as to be spaced relative to said magnetic medium by a spacing equal to or less than 20p at its furthest portion, said width D being so selected as not to be in excess of 20p at its furthest portion, said width D being so selected as not to be in excess of 20p but to be equal to or less than p.sec.phi., where .phi. is an angle defined by the nearest surfaces of said magneto-resistor and said magnetic medium, said magneto-resistor responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, the boundary dividing each of said magnetic sections being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of said magneto-resistor, said magnetic field detector further including high permeable magnetic means provided adjacent and substantially parallel to said magneto-resistor; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of the rotating conditions of said rotary means.
- 2. A magnetic rotary encoder comprising:
- rotary means attachable to rotatable shaft;
- a plurality of permanent magnets arranged on a surface of said rotary means so as to produce a magnetic field which changes in intensity and direction as said rotary means revolves:
- a magnetic field detector including a magneto-resistor having a stripe-like configuration with width D and longitudinal dimension W and arranged in a plane substantially parallel to the nearest surface of said magnetic medium in the vicinity of said rotary means such as to be spaced relative to said permanent magnet by a spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20p at its furthest portion, said width D being so selected as not to be in excess of 20p but to be equal or less than p.sec.phi., where .phi. is an angle defined by the nearest surface of said magneto-resistor and said permanent magnet, said magneto-resistor responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotational angle of said rotary means, the boundary dividing each of said permanent magnets being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of said magneto-resistor, said magnetic field detector further including high permeable magnetic means provided adjacent and substantially parallel to said magneto-resistor; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of the rotating conditions of said rotary means.
- 3. A magnetic rotary encoder as claimed in claim 2, wherein said permanent magnets are arranged contiguously and each of said permanent magnets has an opposite direction of magnetization with respect to its immediately adjacent magents.
- 4. A magnetic rotary encoder as claimed in claim 2, wherein said permanent magnets are regularly spaced by p and have the same direction of magnetization.
- 5. A magnetic rotary encoder as claimed in claims 1 or 2, wherein said magnetic field detector further includes means for slanting the magnetization of said magneto-resistor by an angle of 45 degrees relative to a sense current supplied from said rotary condition detector and flowing through said magneto-resistor.
- 6. A magnetic rotary encoder as claimed in claim 1, wherein said magnetic medium consists of magnetic fine particles bound on the surface of said rotary means for giving coercive force greater than 100 Oersted.
- 7. A magnetic rotary encoder as claimed in claims 1 or 2, wherein said rotary conditions are angular distance and/or angular velocity of said rotatable shaft.
- 8. A magnetic rotary encoder as claimed in claims 1 or 2, wherein said rotary condition detector generates a train of pulses each of which takes either a leading or trailing edge every time said magnetic rotary means moves an angular distance corresponding to p.
- 9. A magnetic rotary encoder as claimed in claims 1 or 2, wherein said rotary condition detector generates a train of pulses each of which has hysteresis.
- 10. A magnetic rotary encoder as claimed in claim 1, wherein said magnetic medium has coercive force greater than 100 Oersted.
- 11. A magnetic rotary encoder as claimed in claim 1, wherein said magnetic medium is a thin film of one of CO-P and CO-Ni-P alloy, providing a coercive force greater than 100 Oersted.
- 12. A magnetic rotary encoder as claimed in claim 2, wherein each said permanent magnets is made of one of barium ferrite and plastic rubber having barium ferrite fine particles dispersed therein.
- 13. A magnetic rotary encoder as claimed in claims 1 or 2, wherein said magneto-resistor is made of metal alloy including over 40 percent nickel.
- 14. A magnetic rotary encoder as claimed in claim 2, wherein each of said permanent magnets is made of a material consisting of at least one of Ni, Fe, Co, Al, and rare earth elements.
- 15. A magnetic rotary encoder as claimed in claim 1 or 2, wherein said magneto-resistor is made of a metal alloy including approximately 5% cobalt.
- 16. A magnetic rotary comprising:
- rotary means attachable to a rotatable shaft;
- a magnetic medium endlessly provided on a surface of said rotary means and divided at a pitch p into a plurality of magnetic sections each of which has a magnetic signal recorded thereon, said magnetic medium having a thickness less than p and producing an alternating magnetic field as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D, and longitudinal dimension W and arranged in a plane substantially parallel to the nearest surface of said magnetic medium in the vicinity of said rotary means such as to be spaced relative to said magnetic medium by a spacing equal to or less than p at its nearest portions and by a spacing equal to or less than 20p at its furthest portion, said width D being so selected as not to be in excess of 20p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnetic medium, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, the boundary dividing each of said magnetic sections being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors, said magnetic field detector further including high permeable magnetic means provided adjacent and substantially parallel to said magneto-resistor; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of rotating conditions of said rotary means.
- 17. A magnetic rotary encoder comprising:
- rotary means attachable to a rotatable shaft;
- a plurality of permanent magnets arranged on a surface of said rotary means so as to produce magnetic field which changes in intensity and direction as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D and longitudinal dimension W and arranged in a plane substantially parallel to the nearest surface of said magnetic medium in the vicinity of said rotary means such as to be spaced relative to said magnets by spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20p at its furthest portion, said width D being so selected as not to be in excess of 20p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnets, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to be increment of the rotation angle of said rotary means, the boundary dividing each of said permanent magnets being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors, said magnetic field detector further including high permeable magnetic means provided adjacent and substantially parallel to said magneto-resistor; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signals and producing output signals indicative of the rotating conditions of said rotary means.
- 18. A magnetic rotary encoder as claimed in claim 17, wherein said permanent magnets are arranged contiguously and each of said permanent magnets has an opposite direction of magnetization with respect to its immediately adjacent magnets.
- 19. A magnetic rotary encoder as claimed in claim 17, wherein said permanent magnets are regularly spaced by p and having the same direction of magnetization with one another.
- 20. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said magneto-resistors are regularly spaced by p or its integral multiple.
- 21. A magnetic rotary encoder as claimed in claims 16 or 17, wherein some of said magneto-resistors are spaced by k.p+.DELTA.S (where k is a positive integer or zero and .DELTA.S is a positive real number less than p) and the remaining magneto-resistors are spaced by k'.p (where k'=1, 2, 3, 4, . . . ) from each other.
- 22. A magnetic rotary encoder as claimed in claims 16 or 17, wherein the minimum of phase differences between said analog signals from said magneto-resistors is more than .delta. H, where .delta. H is a phase deviation resulting from noises.
- 23. A magnetic rotary encoder as claimed in claims 16 or 17, wherein the minimum of spacings between adjacent magneto-resistors, S.sub.m satisfy: ##EQU13## where .delta. H is a phase deviation where .delta. H is a phase deviation resulting from noises.
- 24. A magnetic rotary encoder as claimed in claims 16 or 17, wherein the spacings between adjacent magneto-resistors satisfy the following: ##EQU14## where T is the number of magneto-resistors, h is the number of said analog signals differing in phase, each of the suffixes i and j is a positive integer ranging form l to T, S.sub.i,j indicates that a spacing between i-th and j-th magnetoresistors, l and k are integers and .delta. H is a phase deviation resulting from noises.
- 25. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said magnetic field detector further includes means for slanting the magnetization of each said magneto-resistors by an angle of 45 degrees relative to a sense current supplied from said rotary condition detector and flowing through said magneto-resistors.
- 26. A megnetic rotary encoder as claimed in claims 16 or 17, wherein said rotary conditions are angular distance, angular velocity, and the direction of rotation of said rotatable shaft.
- 27. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said rotary condition detector generates a train of pulses each of which takes either a leading or trailing edge every time said magnetic rotary means moves an angular distance corresponding to p.
- 28. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said rotary condition detector generates a train of pulses having hysteresis.
- 29. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said rotary condition detector produces at least two pulse trains wherein each of the pulses takes either a leading or trailing edge every time two of the analog signals different in phase take the same value simultaneously.
- 30. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said rotary condition detector produces at least two pulse trains wherein each of the pulses takes either a leading or trailing edge every time two of the analog signals different in phase take a predetermined phase difference.
- 31. A magnetic rotary encoder as claimed in claims 16 or 17, wherein, with T standing for the number of said magneto-resistors and h for the number of said analog signals different in phase, said rotary condition detector produces h(h-1) pulse trains at maximum each of which is different in phase, wherein 2.ltoreq.h.ltoreq.T and each of the pulses takes either a leading or trailing edge every time two of the analog signals different in phase take the same value simultaneously.
- 32. A magnetic rotary encoder as claimed in claims 16 or 17, wherein, with h standing for the number of said analog signals different in phase and m(.ltoreq.h(h-1) for the number of the pulse trains appearing during the angular distance corresponding to p, said rotary condition detector produces pulse trains, wherein its minimum angular determining unit is defined by p/(R.m): R standing for an inner radius of said rotary means.
- 33. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said rotary condition detector detects said rotating direction based on whether the phase difference between two analog signals is positive or negative.
- 34. A magnetic rotary encoder as claimed in claim 16, wherein said magnetic medium has coercive force more than 100 Oersted.
- 35. A magnetic rotary encoder as claimed in claim 16, wherein said magnetic medium is a thin film of one of Co-p and Co-Ni-P alloy and having coercive force more than 100 Oersted.
- 36. A magnetic rotary encoder as claimed in claim 17, wherein each said permanent magnets is made of one of barium ferrite and plastic rubber having barium ferrite fine particles dispersed therein.
- 37. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said magneto-resistor is made of metal alloy including over 40% nickel of nickel.
- 38. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said plurality of magneto-resistors are arranged on one substrate.
- 39. A magnetic rotary encoder as claimed in claims 16 or 17, wherein said plurality of magneto-resistors are arranged on more than one substrate.
- 40. A magnetic rotary encoder as claimed in claim 16, wherein said magnetic medium is comprised of magnetic fine particles bound on the surface of said rotary means, and having coercive force of more than 100 Oersted.
- 41. A magnetic rotary encoder as claimed in claim 17, wherein each of said permanent magnets is comprises of a material consisting mainly of at least one of Ni, Fe, Co, Al, and rare earth elements.
- 42. A magnetic rotary encoder as claimed in claim 16 or 16, wherein said magneto-resistor is made of a metal alloy including approximately 5% of cobalt.
- 43. A magnetic rotary encoder comprising:
- rotary means attachable to a rotatable shaft;
- a magnetic medium endlessly provided on a surface of said rotary means and divided at a pitch p into a plurality of magnetic sections each of which as a magnetic signal recorded thereon said magnetic medium having a thickness less than p and producing an alternating magnetic field as said rotary means revolves;
- a magnetic field detector including a magneto-resistor having a stripe-like configuration with width D and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnetic medium by a spacing equal to or less than 20p at its furthest portion said width D being so selected as not to be in excess of 20p but to be equal to or less than p.sec.phi., where .phi. is an angle defined by the nearest surfaces of said magneto-resistor and said magnetic medium, said magneto-resistor responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment to the rotation angle of said rotatary means, and the boundary dividing each of said magnetic sections being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of said magneto-resistor; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of the rotating conditions of said rotary means; wherein said magnetic field detector further includes means for slanting the magnetization of said magneto-resistor by an angle of 45.degree. relative to a sense current supplied from said rotary condition detector and flowing through said magneto-resistor.
- 44. A magnetic rotary encoder comprising:
- rotary means attachable to rotatable shaft;
- a plurality of permanent magnets arranged on a surface of said rotary means so as to produce a magnetic field which changes in intensity and direction as said rotary means revolves;
- a magnetic field detector including a magneto-resistor having a stripe-like configuration with width D and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said permanent magnetic by a spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal or less than p.sec.phi., where .phi. is an angle defined by the nearest surface of said magneto-resistor and said permanent magnet, said magneto-resistor responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotational angle of said rotary means, and the boundary dividing each of said permanent magnets being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of said magneto-resistor; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of the rotating conditions of said rotary means; wherein said magnetic field detector further includes means for slanting the magnetization of said magneto-resistor by an angle of 45.degree. relative to a sense current supplied from said rotary condition detector and flowing through said magneto-resistor.
- 45. A magnetic rotary comprising:
- rotary means attachable to a rotatable shaft;
- a magnetic medium endlessly provided on a surface of said rotary means and divided at a pitch p into a plurality of magnetic sections each of which has a magnetic signal recorded thereon, said magnetic medium having a thickness less than p and producing an alternating magnetic field as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D, and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnetic medium by a spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnetic medium, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, and the boundary dividing each of said magnetic sections being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of rotating conditions of said rotary means; wherein the minimum of spacings between adjacent magneto-resistors, S.sub.m satisfy: ##EQU15## where .delta.H is a phase deviation where .delta.H is a phase deviation resulting from noises.
- 46. A magnetic rotary encoder comprising:
- rotary means attachable to a rotatable shaft;
- a plurality of permanent magnets arranged on a surface of said rotary means so as to produce magnetic field which changes in intensity and direction as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnets by spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnets, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, and the boundary dividing each of said permanent magnets being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signals and producing output signals indicative of the rotating conditions of said rotary means; wherein the minimum of spacings between adjacent magneto-resistors, S.sub.m satisfy: ##EQU16## where .delta.H is a phase deviation where .delta.H is a phase deviation resulting from noises.
- 47. A magnetic rotary comprising:
- rotary means attachable to a rotatable shaft;
- a magnetic medium endlessly provided on a surface of said rotary means and divided at a pitch p into a plurality of magnetic sections each of which has a magnetic signal recorded thereon, said magnetic medium having a thickness less than p and producing an alternating magnetic field as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D, and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnetic medium by a spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnetic medium, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, and the boundary dividing each of said magnetic sections being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of rotating conditions of said rotary means; wherein the spacings between adjacent magneto-resistors satisfy the following: ##EQU17## where T is the number of magneto-resistors, h is the number of said analog signals differing in phase, each of the suffixes i and j is a positive integer ranging from 1 to T, S.sub.i,j indicates a spacing between i-th and j-th magneto-resistors, l and k are integers and .delta.H is a phase deviation resulting from noises.
- 48. A magnetic rotary encoder comprising:
- rotary means attachable to a rotatable shaft;
- a plurality of permanent magnets arranged on a surface of said rotary means so as to produce magnetic field which changes in intensity and direction as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnets by spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnets, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, and the boundary dividing each of said permanent magnets being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signals and producing output signals indicative of the rotating conditions of said rotary means; wherein the spacings between adjacent magento-resistors satisfy the following: ##EQU18## where T is the number of magneto-resistors, h is the number of said analog signals differing in phase, each of the suffixes i and j is a positive integer ranging from 1 to T, S.sub.i,j indicates a spacing between i-th and j-th magneto-resistors, l and k are integers and .delta.H is a phase deviation resulting from noises.
- 49. A magnetic rotary comprising:
- rotary means attachable to a rotatable shaft;
- a magnetic medium endlessly provided on a surface of said rotary means and divided at a pitch p into a plurality of magnetic sections each of which has a magnetic signal recorded thereon, said magnetic medium having a thickness less than p and producing an alternating magnetic field as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D, and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnetic medium by a spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnetic medium, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, and the boundary dividing each of said magnetic sections being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of rotating conditions of said rotary means; wherein said magnetic field detector further includes means for slanting the magnetization of each said magneto-resistors by an angle of 45.degree. relative to a sense current supplied from said rotary condition detector and flowing through said magneto-resistor.
- 50. A magnetic rotary encoder comprising:
- rotary means attachable to a rotatable shaft;
- a plurality of permanent magnets arranged on a surface of said rotary means so as to produce magnetic field which changes in intensity and direction as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnets by spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnets, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, and the boundary dividing each of said permanent magnets being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signals and producing output signals indicative of the rotating conditions of said rotary means; wherein said magnetic field detector further includes means for slanting the magnetization of each of said magneto-resistors by an angle of 45.degree. relative to a sense current supplied from said rotary condition detector and flowing through said magneto-resistor.
- 51. A magnetic rotary comprising:
- rotary means attachable to a rotatable shaft;
- a magnetic medium endlessly provided on a surface of said rotary means and divided at a pitch p into a plurality of magnetic sections each of which has a magnetic signal recorded thereon, said magnetic medium having a thickness less than p and producing an alternating magnetic field as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D, and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnetic medium by a spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnetic medium, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, and the boundary dividing each of said magnetic sections being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing output signals indicative of rotating conditions of said rotary means; wherein with T standing for the number of said magneto-resistors and h for the number of said analog signals different in phase, said rotary condition detector produces h(h-l) pulse trains at maximum each of which is different in phase, wherein 2.ltoreq.h.ltoreq.T and each of the pulses takes either a leading or trailing edge every time two of the analog signals different in phase take the same value simultaneously.
- 52. A magnetic rotary encoder comprising:
- rotary means attachable to a rotatable shaft;
- a plurality of permanent magnets arranged on a surface of said rotary means so as to produce magnetic field which changes in intensity and direction as said rotary means revolves;
- a magnetic field detector including a plurality of magneto-resistors each having a stripe-like configuration with a width D and longitudinal dimension W and arranged in the vicinity of said rotary means such as to be spaced relative to said magnets by spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of one of said magneto-resistors and said magnets, each of said magneto-resistors responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotation angle of said rotary means, and the boundary dividing each of said permanent magnets being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of each of said magneto-resistors; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signals and producing output signals indicative of the rotating conditions of said rotary means; wherein with T standing for the number of said magneto-resistors and h for the number of said analog signals different in phase, said rotary condition detector produces h(h-l) pulse trains at maximum each of which is different in phase, wherein 2.ltoreq.h.ltoreq.T and each of the pulses takes either a leading or trailing edge every time two of the analog signals different in phase take the same value simultaneously.
- 53. A magnetic rotary encoder having a magnetic rotary encoder unit and a housing member for containing said encoder unit wherein said magnetic rotary encoder unit comprises:
- rotary means attachable to a rotatable shaft;
- a magnetic medium endlessly provided on a surface of said rotary means and divided at a pitch p into a plurality of magnetic sections each of which has a magnetic signal recorded thereon, said magnetic medium having a thickness less than p producing an alternating magnetic field as said rotary means revolves;
- a magnetic field detector including at least one magneto-resistor having a stripe-like configuration with a width D and longitudinal dimension W and arranged in a plane substantially parallel to the nearest surface of said magnetic medium in the vicinity of said rotary means such as to be spaced relative to said magnetic medium by a spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal to or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of said magneto-resistor and said magnetic medium, and said magneto-resistor responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistor change corresponding to the increment of the rotational angle of said rotary means, the boundary dividing each of said magnetic sections being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of said at least one magneto-resistor, said magnetic field detector further including high permeable magnetic means provided adjacent and substantially parallel to said magneto-resistor; and
- a rotary condition detector electrically connected to said magnetic field detector for receiving said analog signal and producing signals indicative of the rotating conditions of said rotary means, and wherein said housing member has means for magnetically shielding itself from external magnetic fields.
- 54. A magnetic rotary encoder having a magnetic rotary encoder unit and a housing member for containing said encoder unit wherein said encoder unit comprises:
- rotary means attachable to rotatable shaft;
- a plurality of permanent magnets arranged on a surface of said rotary means so as to produce a magnetic field which changes in intensity and direction as said rotary means revolves;
- a magnetic field detector including at least one magneto-resistor having a stripe-like configuration with width D and longitudinal dimension W and arranged in a plane substantially parallel to the nearest surface of said magnetic medium in the vicinity of said rotary means such as to be spaced relative to said permanent magnet by a spacing equal to or less than p at its nearest portion and by a spacing equal to or less than 20 p at its furthest portion, said width D being so selected as not to be in excess of 20 p but to be equal or less than p. sec.phi., where .phi. is an angle defined by the nearest surfaces of said magneto-resistor and said permanent magnets, said magneto-resistor responsive to said alternating magnetic field and generating an analog signal representative of its electrical resistance change corresponding to the increment of the rotational angle of said rotary means, the boundary dividing each of said permanent magnets being within approximately 45.degree. from parallel with respect to the direction of said longitudinal dimension of said at least one magneto-resistor, said magnetic field detector further including high permeable magnetic means provided adjacent and substantially parallel to said magneto-resistor; and
- a rotary condition detector electrically connected to said magnet field detector for receiving said analog signal and producing signals indicative of the rotating conditions of said rotary means, and wherein said housing member has means for magnetically shielding itself from external magnetic fields.
Priority Claims (1)
Number |
Date |
Country |
Kind |
53-23118 |
Feb 1978 |
JPX |
|
Parent Case Info
This is a continuation of application Ser. No. 16,701, filed Feb. 28, 1979, now abandoned.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
3993946 |
Makino |
Nov 1976 |
|
4039936 |
Jones et al. |
Aug 1977 |
|
Non-Patent Literature Citations (2)
Entry |
Wills, Magnetic Tachometer, IBM Technical Disclosure Bulletin, vol. 16, No. 1, Jun. 1973, p. 260. |
Kuijk et al., The Barber Pole, a Linear Magnetoresistive Head, IEEE Trans on Magnetics, vol. Mag-11, No. 5, Sep. 1975, pp. 1215-1217. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
16701 |
Feb 1979 |
|