Claims
- 1. A method for horizontally controlling an elevator car by exerting a force between said car and a hoistway rail with an electromagnet in response to a force command signal, comprising the steps of:
- sensing flux density between said electromagnet and said rail,
- providing a sensed flux density signal having a magnitude indicative thereof,
- squaring said magnitude of said flux density signal and providing a squared flux density signal having a magnitude indicative thereof,
- multiplying said magnitude of said squared flux density signal by a transformation signal having a magnitude indicative of force per flux density squared for providing a force feedback signal, and
- summing said force feedback signal with said force command signal for providing a difference signal having a magnitude indicative of the difference therebetween; and
- exerting a force between a blade of said rail and said car in proportion to the magnitude of said difference signal.
- 2. The method of claim 1, wherein said rail has a V-shaped section.
- 3. The method of claim 1, wherein said plural bladed rail has a Y-shaped section.
- 4. A control for an elevator car actuated horizontally by an electromagnet force actuator, for providing a coil current signal for causing said electromagnet actuator to provide magnetic flux for controlling horizontal accelerations of said elevator car travelling vertically in a hoistway along a rail mounted vertically on a hoistway wall, comprising:
- summing means, responsive to a force command signal and responsive to a force feedback signal, for providing a force difference signal having a magnitude in proportion to a difference in magnitudes between said force command signal and said force feedback signal;
- current control means, responsive to said difference signal, for providing said coil current signal;
- flux density sensing means, responsive to said magnetic flux, for providing a sensed flux density signal having a magnitude indicative thereof;
- means responsive to said flux density signal for multiplying said magnitude thereof by itself and by a signal having a magnitude indicative of force divided by flux density squared for providing said force feedback signal;
- an accelerometer, responsive to acceleration of said platform, for providing an acceleration signal having a magnitude indicative thereof;
- control means, responsive to said acceleration signal, for providing said force command signal in proportion to said magnitude of said acceleration signal.
- 5. The control of claim 4, wherein said current control means comprises:
- compensation means, responsive to said force difference signal for providing a proportionally compensated signal;
- a firing angle compensator, responsive to said proportionally compensated force difference signal, for providing a firing signal;
- a two quadrant, full wave power controller, responsive to said firing signal, for providing said coil current signal.
- 6. The control of claim 4, wherein said control means is a digital signal processor and said summing means, said means for multiplying and said current control means are analog.
- 7. The control of claim 5, wherein said compensation means is for providing a proportional-integral compensated signal.
- 8. A method for counteracting a disturbing force acting on an elevator platform in a hoistway, comprising the steps of sensing horizontal acceleration and horizontal position of said platform and providing sensed signals having magnitudes indicative thereof and applying a horizontal force between said platform and a wall of said hoistway in proportion to said magnitude of said sensed acceleration signal and in proportion to the integral of said sensed position signal.
- 9. The method of claim 8, wherein said sensed position signal is a sensed current signal divided by a sensed flux density signal multiplied by a transformation signal having a magnitude indicative of position times flux density divided by current.
- 10. Apparatus for providing a position signal indicative of a position of a platform actuated by an electromagnet for guiding said platform vertically along and horizontally with respect to a rail and a signal, in response to said position signal, for controlling the electromagnet for guiding said platform, comprising:
- means for sensing flux density between said rail and said electromagnet and for providing a sensed signal having a magnitude indicative thereof;
- means for sensing current of said electromagnet for providing a sensed signal having a magnitude indicative thereof;
- means responsive to said sensed signals for dividing said magnitude of said sensed current signal by said magnitude of said sensed flux density signal for providing a calculated position signal having a magnitude indicative of said position and for controlling said electromagnet in response to said calculated position.
- 11. The apparatus of claim 10, wherein said means for sensing flux density comprises a Hall cell.
- 12. Apparatus for controlling a horizontal position of an elevator platform suspended in a hoistway, comprising:
- sensor means, responsive to said position of said suspended platform as it moves vertically in said hoistway, for providing a sensed signal having magnitude indicative thereof;
- control means, responsive to said sensed signal, for providing a control signal; and
- reciprocating guide roller actuator means, responsive to said control signal, for horizontally actuating said platform with respect to said hoistway as said platform moves vertically in said hoistway.
- 13. The apparatus of claim 12, wherein said sensor means comprises a position sensor for sensing a position of said car with respect to a roller of said guide roller.
- 14. The apparatus of claim 12, wherein said sensor means comprises side-to-side and front-to-back roller sensors.
- 15. The apparatus of claim 14, further comprising: an accelerometer, responsive to acceleration of said platform, for providing an acceleration signal having a magnitude indicative thereof;
- wherein said control means is responsive to said acceleration signal for horizontally actuating said platform in proportion to said magnitude of said acceleration signal.
- 16. The apparatus of claim 12, wherein said control is responsive to an integrated signal being indicative of an integral of said magnitude of said position signal.
- 17. Apparatus for horizontally actuating an elevator platform against a rail attached to a hoistway wall, comprising:
- plural accelerometer means, responsive to corresponding horizontal accelerations of said platform, for providing corresponding plural acceleration signals indicative thereof; and
- control means, responsive to said plural acceleration signals, for providing corresponding plural control signals;
- a plurality of actuators situated to actuate said platform along horizontal lines which intersect said hoistway wall at equal angles, each corresponding to a selected on of said acceleration signals or to selected components of said acceleration signals which together resolve accelerations along said horizontal lines;
- said actuators responsive to said corresponding control signals for actuating said platform along said lines.
- 18. The apparatus of claim 17, wherein said plurality of actuators comprises for electromagnets arranged in pairs, said pairs located on opposite sides of said platform.
- 19. The apparatus of claim 17, wherein said plurality of actuators is a plurality of electromagnets each having a core and a coil, and wherein said apparatus further comprises:
- plural sensor means, responsive to magnetic induction in a gap between each of said electromagnet cores and said rail, for providing a flux density signal having a magnitude indicative thereof; and wherein said control means comprises:
- first control means responsive to said acceleration signals and to a plurality of force feedback signals for providing said plural control signals as corresponding force command signals and
- plural second control means responsive to said flux density signals from corresponding ones of said plural sensor means, for multiplying said magnitude of each flux density signal by itself and by a factor having dimensions of force divided by flux density squared in order to transform said flux density signal and to provide a transformed flux density signal as a corresponding one of said force feedback signals for comparison with a corresponding one of said force command signals wherein a difference therebetween is provided as a current signal for a corresponding coil for inducing flux in a corresponding core for providing said magnetic induction for actuating said platform.
- 20. The apparatus of claim 17, wherein said plurality of actuators is a plurality of electromagnets each having a core and a coil, and wherein said control means comprises:
- first control means, responsive to said acceleration signals and to a plurality of position signals for providing said control signals as corresponding force command signals; and
- a plurality of second control means, each responsive to a corresponding one of said force command signals, for providing corresponding coil current signals for a corresponding coil for actuating said platform against said rail, wherein each of said second control means includes a current sensor for sensing said coil current for providing a sensed coil current signal, and wherein each second control means is responsive to a corresponding one of said second current signals, and wherein each of said second control means is also responsive to a sensed magnetic induction signal, for providing a corresponding one of said position signals indicative of a position of said platform.
- 21. The apparatus of claim 18, wherein each of said electromagnets has a U-shaped core having a pair of legs each wound with said coil responsive to a corresponding one of said control signals.
- 22. The method of claim 1, wherein said rail has a T-shaped section.
- 23. A method for exerting a horizontal force between a hoistway rail and an elevator car with an electromagnet attached thereto for providing, in response to a command signal, magnetic flux to said hoistway rail, comprising the steps of:
- sensing flux density between said electromagnet and said rail, for providing a sensed flux density signal having a magnitude indicative thereof,
- sensing a current for actuating said electromagnet, for providing a sensed current signal having a magnitude indicative thereof,
- dividing said magnitude of said current signal by said magnitude of said flux density signal for providing a factor signal having a magnitude indicative thereof;
- multiplying said magnitude of said factor signal by a transformation signal having a magnitude indicative of position times flux density divided by current for providing a position feedback signal,
- summing said position feedback signal with said command signal for providing a difference signal having a magnitude indicative of the difference therebetween, and
- providing said current for exerting said force between said rail and said car in proportion to the magnitude of said difference signal.
- 24. Apparatus, for controlling a horizontal force between a hoistway rail and an elevator car with an electromagnet attached thereto for providing, in response to a reference signal, current to said electromagnet for providing magnetic flux between said electromagnet and said hoistway rail, said apparatus comprising:
- a magnetic flux density sensor for sensing flux density in a gap between said electromagnet and said rail, for providing a sensed flux density signal having a magnitude indicative thereof,
- a current sensor sensing said current provided to said electromagnet, for providing a sensed current signal having a magnitude indicative thereof,
- signal conditioning means, responsive to said sensed flux density signal and to said sensed current signal, for dividing said magnitude of said current signal by said magnitude of said flux density signal and for multiplying a quotient therebetween by a scale factor for providing a gap signal having a magnitude indicative of a linear dimension of said gap;
- a multiplier, responsive to said gap signal and a transformation factor signal, for multiplying said magnitude of said flux density signal by itself and by a transformation factor signal for providing a force feedback signal, and
- means for summing said force feedback signal with said reference signal having a magnitude indicative of a force for providing a difference signal having a magnitude indicative of the difference therebetween; and
- means for providing said current to said electromagnet for controlling said flux between said rail and said electromagnet in proportion to said magnitude of said difference signal.
- 25. The control of claim 4, further comprising:
- current sensing means, responsive to said coil current signal, for providing a sensed signal having a magnitude indicative thereof;
- a divider, responsive to said second flux density signal and to said sensed coil current signal, for dividing said magnitude of said sensed coil current signal by said magnitude of said sensed flux density signal for providing a factor signal having a magnitude indicative thereof;
- a multiplier, responsive to said factor signal and to a transformation signal, for multiplying said magnitude of said flux density signal by a transformation signal having a magnitude indicative of position times flux density divided by current, for providing a position feedback signal having a magnitude indicative of the magnitude of a gap between said electromagnet and said rail;
- wherein said control means is responsive to said position feedback signal and to a position reference signal, for providing a position difference signal having a magnitude indicative of the difference therebetween; and
- wherein said control means is responsive to said acceleration signal and to said position difference signal for providing said force command signal.
Parent Case Info
This is a continuation-in-part of co-pending application Ser. No. 07/555,131 filed on Jul. 18, 1990, now abandoned.
US Referenced Citations (22)
Foreign Referenced Citations (1)
Number |
Date |
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0033184 |
Aug 1981 |
EPX |
Continuation in Parts (1)
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Number |
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555131 |
Jul 1990 |
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