Claims
- 1. Electronic equipment, comprising:a motor comprising a flat bipolar stator provided with a rotor housing having a shape generating a holding torque, a rotor including a bipolar permanent magnet and a drive coil magnetically coupled to said flat bipolar stator, in which a magnetomotive power generated in said drive coil is transferred to said rotor, drive pulse generating means for outputting a drive pulse for driving said motor; a drive circuit for supplying a drive current to said drive coil on the basis of the drive pulse from said pulse generating means; a counter electromotive voltage detection coil for detecting a counter electromotive voltage generated by rotation of said rotor; and magnetic pole position detection means for detecting a magnetic pole position of said rotor, which is rotating, with respect to said flat bipolar stator on the basis of the counter electromotive voltage generated in said counter electromotive voltage detection coil, and further in order to accelerate rotation speed of said rotor, said magnetic pole position detection means being allowed to output, to said drive pulse generating means, a detection signal for controlling an output timing of the drive pulse at a magnetic pole position of said rotor where the counter electromotive voltage becomes substantially zero when said rotor is rotating, and where the magnetic pole position of said rotor is different from a magnetic equilibrium point corresponding to the holding torque when said rotor is not rotating.
- 2. Electronic equipment according to claim 1, wherein said magnetic pole position detection means has a zero crossing comparator for outputting a detection signal upon detecting the fact that the counter electromotive voltage generated in said counter electromotive voltage detection coil reaches a zero level.
- 3. Electronic equipment according to claim 1, wherein said magnetic pole position detection means has a zero crossing comparator for outputting a detection signal upon detecting the fact that the counter electromotive voltage generated in said counter electromotive voltage detection coil reaches a zero level.
- 4. Electronic equipment according to claim 1, wherein the drive signal outputted from said drive pulse generating means is a pulse signal, the pulse signal comprising a starting pulse for starting rotation of said rotor which is in stationary condition, and a subsequent drive pulse for continuously driving said rotor after it has commenced rotation.
- 5. Electronic equipment according to claim 1, wherein the drive signal outputted from said drive pulse generating means is a pulse signal, the pulse signal comprising a starting pulse for starting rotation of said rotor being in stationary condition, and a subsequent drive pulse for continuously driving said rotor after it has commenced rotation.
- 6. Electronic equipment according to claim 4, wherein the starting pulse for starting rotation of said rotor being in stationary condition comprises a phase locking pulse for allowing magnetic poles of said rotor opposing magnetic poles generated in said flat stator to have the same polarity as that of said magnetic poles of said flat stator, and an initial pulse, outputted after the phase locking pulse, for causing said flat stator opposing said magnetic poles of said rotor to generate magnetic poles having the same polarity as that of said magnetic poles of said rotor magnet.
- 7. Electronic equipment according to claim 5, wherein the starting pulse for starting rotation of said rotor being in stationary condition comprises a phase locking pulse for allowing magnetic poles of said rotor opposing magnetic poles generated in said flat stator to have the same polarity as that of said magnetic poles of said flat stator, and an initial pulse, outputted after the phase locking pulse, for causing said flat stator opposing said magnetic poles of said rotor to generate magnetic poles having the same polarity as that of said magnetic poles of said rotor magnet.
- 8. Electronic equipment according to claim 6, wherein the initial pulse has a pulse width larger than that of the subsequent drive pulse.
- 9. Electronic equipment according to claim 7, wherein the initial pulse has a pulse width larger than that of the subsequent drive pulse.
- 10. Electronic equipment according to claim 8, wherein the initial pulse is a pulse train of a plurality of pulses each having a pulse width larger than that of the subsequent drive pulse.
- 11. Electronic equipment according to claim 9, wherein the initial pulse is a pulse train of a plurality of pulses each having a pulse width larger than that of the subsequent drive pulse.
- 12. Electronic equipment according to claim 10, wherein the pulse train of the plurality of pulses comprises a first initial pulse having a pulse width larger than that of the subsequent drive pulse, and a second initial pulse having a pulse width smaller than that of the first initial pulse.
- 13. Electronic equipment according to claim 11, wherein the pulse train of the plurality of pulses comprises a first initial pulse having a pulse width larger than that of the subsequent drive pulse, and a second initial pulse having a pulse width smaller than that of the first initial pulse.
- 14. Electronic equipment according to claim 4, wherein the pulse width of the subsequent drive pulse is narrowed as a rotational speed of said rotor is increased.
- 15. Electronic equipment according to claim 5, wherein the pulse width of the subsequent drive pulse is narrowed as a rotational speed of said rotor is increased.
- 16. Electronic equipment according to claim 1, wherein said counter electromotive voltage detection coil is wound independently inside said drive coil.
- 17. Electronic equipment according to claim 1, wherein said counter electromotive voltage detection coil is wound independently inside said drive coil.
- 18. Electronic equipment according to claim 1, wherein said drive coil serves also as said counter electromotive voltage detection coil.
- 19. Electronic equipment according to claim 1, wherein said drive coil serves also as said counter electromotive voltage detection coil.
- 20. Electronic equipment according to claim 18, wherein a part of said drive coil serves also as said counter electromotive voltage detection coil by separating a tap from said part of said drive coil.
- 21. Electronic equipment according to claim 19, wherein a part of said drive coil serves also as said counter electromotive voltage detection coil by separating a tap from said part of said drive coil.
- 22. Electronic equipment according to claim 16, wherein said magnetic pole position detection means comprises a differential amplifier for differentially amplifying the counter electromotive voltage generated in said counter electromotive voltage detection coil, and a zero crossing comparator for outputting a detection signal upon detecting the fact that the counter electromotive voltage differentially amplified by said differential amplifier reaches zero.
- 23. Electronic equipment according to claim 11, wherein said magnetic pole position detection means comprises a differential amplifier for differentially amplifying the counter electromotive voltage generated in said counter electromotive voltage detection coil, and a zero crossing comparator for outputting a detection signal upon detecting the fact that the counter electromotive voltage differentially amplified by said differential amplifier reaches zero.
- 24. Electronic equipment according to claim 18, wherein said magnetic pole position detection means comprises a differential amplifier for differentially amplifying the counter electromotive voltage generated in said counter electromotive voltage detection coil, and a zero crossing comparator for outputting a detection signal upon detecting the fact that the counter electromotive voltage differentially amplified by said differential amplifier reaches zero.
- 25. Electronic equipment according to claim 19, wherein said magnetic pole position detection means comprises a differential amplifier for differentially amplifying the counter electromotive voltage generated in said counter electromotive voltage detection coil, and a zero crossing comparator for outputting a detection signal upon detecting the fact that the counter electromotive voltage differentially amplified by said differential amplifier reaches zero.
- 26. Electronic equipment according to claim 1, wherein said counter electromotive voltage detection coil comprises first and second counter electromotive voltage detection coils which have substantially the same DC resistance and self-inductance as each other and different directions of winding to each other and are connected in series to said drive coil.
- 27. Electronic equipment according to claim 1, wherein said counter electromotive voltage detection coil comprises first and second counter electromotive voltage detection coils which have substantially the same DC resistance and self-inductance as each other and different directions of winding to each other and are connected in series to said drive coil.
- 28. Electronic equipment according to claim 26, wherein said magnetic pole position detection means comprises an adder for adding counter electromotive voltages generated in said first and second counter electromotive voltage detection coils, and a zero crossing comparator for outputting the detection signal upon detecting the fact that a counter electromotive voltage added by said adder reaches zero.
- 29. Electronic equipment according to claim 27, wherein said magnetic pole position detection means comprises an adder for adding counter electromotive voltages generated in said first and second counter electromotive voltage detection coils, and a zero crossing comparator for outputting the detection signal upon detecting the fact that a counter electromotive voltage added by said adder reaches zero.
- 30. Electronic equipment according to claim 26, wherein said counter electromotive voltage detection coil is wound in a multi-layer manner inside said drive coil.
- 31. Electronic equipment according to claim 27, wherein said counter electromotive voltage detection coil is wound in a multi-layer manner inside said drive coil.
- 32. Electronic equipment according to claim 28, wherein said counter electromotive voltage detection coil is wound in a multi-layer manner inside said drive coil.
- 33. Electronic equipment according to claim 29, wherein said counter electromotive voltage detection coil is wound in a multi-layer manner inside said drive coil.
- 34. Electronic equipment according to claim 28, wherein said adder has a low-pass filter for cutting spike noise superposed on the counter electromotive voltage.
- 35. Electronic equipment according to claim 29, wherein said adder has a low-pass filter for cutting spike noise superposed on the counter electromotive voltage.
- 36. Electronic equipment according to claim 28, wherein said drive pulse generating means has mask means for digitally masking the detection signal from said zero crossing comparator in response to spike noise superposed on the counter electromotive voltage added by said adder.
- 37. Electronic equipment according to claim 29, wherein said drive pulse generating means has mask means for digitally masking the detection signal from said zero crossing comparator in response to spike noise superposed on the counter electromotive voltage added by said adder.
- 38. Electronic equipment according to claim 22, wherein said differential amplifier has a low-pass filter for cutting spike noise superposed on the differentially amplified counter electromotive voltage.
- 39. Electronic equipment according to claim 23, wherein said differential amplifier has a low-pass filter for cutting spike noise Superposed on the differentially amplified counter electromotive voltage.
- 40. Electronic equipment according to claim 24, wherein said differential amplifier has a low-pass filter for cutting spike noise superposed on the differentially amplified counter electromotive voltage.
- 41. Electronic equipment according to claim 25, wherein said differential amplifier has a low-pass filter for cutting spike noise superposed on the differentially amplified counter electromotive voltage.
- 42. Electronic equipment according to claim 22, wherein said drive pulse generating means has mask means for digitally masking the detection signal from said zero crossing comparator in response to spike noise superposed on the counter electromotive voltage differentially amplified by said differential amplifier.
- 43. Electronic equipment according to claim 23, wherein said drive pulse generating means has mask means for digitally masking the detection signal from said zero crossing comparator in response to spike noise superposed on the counter electromotive voltage differentially amplified by said differential amplifier.
- 44. Electronic equipment according to claim 24, wherein said drive pulse generating means has mask means for digitally masking the detection signal from said zero crossing comparator in response to spike noise superposed on the counter electromotive voltage differentially amplified by said differential amplifier.
- 45. Electronic equipment according to claim 25, wherein said drive pulse generating means has mask means for digitally masking the detection signal from said zero crossing comparator in response to spike noise superposed on the counter electromotive voltage differentially amplified by said differential amplifier.
- 46. Electronic equipment according to claim 1, wherein said magnetic pole position detection means can detect a magnetic pole position of said rotor during rotation on the basis of the counter electromotive voltage generated in said counter electromotive voltage detection coil.
- 47. Electronic equipment according to claim 1, wherein said magnetic pole position detection means can detect a magnetic pole position of said rotor during rotation on the basis of the counter electromotive voltage generated in said counter electromotive voltage detection coil.
- 48. Electronic equipment according to claim 2, wherein said magnetic pole position detection means can detect a counter electromotive voltage in the neighborhood of and before or after a zero level by setting a zero crossing level of said zero crossing comparator, which being provided in said magnetic pole position detection means, to a predetermined level shifted from the zero level.
- 49. Electronic equipment according to claim 3, wherein said magnetic pole position detection means can detect a counter electromotive voltage in the neighborhood of and before or after a zero level by setting a zero crossing level of said zero crossing comparator, which being provided in said magnetic pole position detection means, to a predetermined level shifted from the zero level.
- 50. Electronic equipment according to claim 1, wherein said bipolar flat stator is one selected from the group consisting of a slit type stator and one piece type stator without having a slit.
- 51. Electronic equipment according to claim 1, further comprising:a battery for supplying electric power to said drive circuit; a battery voltage detection circuit for detecting a voltage of said battery; and a pulse width setting means for setting an optimum pulse width of the drive pulse in response to an output signal from said battery voltage detection circuit.
- 52. Electronic equipment according to claim 1, further comprising:a battery for supplying an electric power to said drive circuit; a battery voltage detection circuit for detecting a voltage of said battery; and a pulse width setting means for setting an optimum pulse width of the drive pulse in response to an output signal from said battery voltage detection circuit.
- 53. Electronic equipment according to claim 1, wherein said rotor has an eccentric weight mounted on a rotary shaft of said rotor so as to generate vibration when said rotor rotates.
- 54. Electronic equipment according to claim 1, wherein said rotor has an eccentric weight mounted on a rotary shaft of said rotor so as to generate vibration when said rotor rotates.
Priority Claims (2)
Number |
Date |
Country |
Kind |
4-91479 |
Mar 1992 |
JP |
|
4-354452 |
Dec 1992 |
JP |
|
Parent Case Info
This application is a Div of Ser. No. 08/877,247, filed Jun. 17, 1997, now U.S. Pat. No. 5,878,004.
US Referenced Citations (4)
Number |
Name |
Date |
Kind |
4283783 |
Nakajima et al. |
Aug 1981 |
A |
4312059 |
Mandai et al. |
Jan 1982 |
A |
4480218 |
Hair |
Oct 1984 |
A |
5298846 |
Shimizu et al. |
Mar 1994 |
A |