Claims
- 1. A method for reducing acceleration of an elevator car, comprising the steps of:
- sensing horizontal accelerations of the car's bottom and providing sensed bottom acceleration signals having magnitudes indicative thereof and applying horizontal forces at the bottom of the car in proportion to the magnitudes of the sensed bottom acceleration signals but opposite to the directions thereof; and
- sensing horizontal accelerations of the car's top and providing sensed top acceleration signals having magnitudes indicative thereof and applying horizontal forces at the top of the car in proportion to the magnitudes of the sensed top acceleration signals but opposite to the directions thereof.
- 2. A method for reducing accelerations of an elevator car, comprising the steps of sensing horizontal accelerations of the car's top and bottom and providing sensed top and bottom acceleration signals having magnitudes indicative thereof and effectively adding mass to the top and bottom of the car in proportion, respectively, to the magnitude of the sensed top and bottom acceleration signals.
- 3. Apparatus for reducing accelerations of an elevator car comprising:
- means for sensing acceleration along a car bottom horizontal axis for providing a car bottom acceleration signal having a magnitude indicative thereof;
- means for sensing acceleration along a car top horizontal axis parallel to said car bottom horizontal axis, for providing a car top acceleration signal having a magnitude indicative thereof;
- means responsive to said car bottom acceleration signal for exerting a counterforce against said car bottom in a direction opposite that of said sensed car bottom acceleration; and
- means responsive to said car top acceleration signal for exerting a counterforce against said car top in a direction opposite that of said sensed car top acceleration.
- 4. The apparatus of claim 3, wherein said means for exerting said counterforce comprises a plurality of electromagnets.
- 5. Apparatus for stabilizing an elevator car, comprising:
- one or more sensor means, responsive to one or more accelerations indicative of a rotation of said car about a horizontal axis, for providing one or more corresponding sensed signals having magnitudes indicative thereof;
- control means, responsive to said one or more sensed signals, for providing a plurality of control signals; and
- bilevel actuator means, correspondingly responsive to said plurality of control signals, for actuating said platform in a direction opposite said sensed rotation.
- 6. The apparatus of claim 5, wherein said sensor means comprises:
- first sensing means, responsive to translational movements of said car at a first level, for providing one or more sensed first level signals indicative thereof; and
- second sensing means, responsive to translational movements of said car at a second level, for providing one or more sensed second level signals indicative thereof, wherein
- said control means is responsive to said first and second level sensed signals for providing said control signals for countering said translational movements at said levels whereby rotation about one or more horizontal axes in between said levels are automatically countered as well.
- 7. The apparatus of claim 6, wherein said first and second sensing means each comprise three sensors, and two of said three sensors are situated to sense translational movement along lines situated on opposite sides of a car centerline and parallel to a single selected axis and wherein a single sensor of said three sensors is situated to sense translational movement along an axis perpendicular to said single selected axis.
- 8. The apparatus of claim 5, wherein said first and second sensing means provide sensed signals indicative of accelerations.
- 9. The apparatus of claim 5, wherein said actuator means comprises a plurality of actuators situated to actuate said platform along lines which intersect a selected plane at equal angles.
- 10. The apparatus of claim 5, wherein said control means comprises separate roof and floor control means for providing separate roof and floor control signals and wherein said sensor means comprises three sensors for sensing translational movements of the car roof for providing three sensed roof signals indicative thereof to said roof control means for computing corresponding forces required to counteract said sensed roof movements and wherein said sensor means further comprises three sensors for sensing translational movements of said car floor for providing three sensed floor signals indicative thereof to said floor control means for computing corresponding forces required to counteract said sensed floor movements and wherein said actuator means comprises separate roof and floor actuator means, respectively responsive to said roof and floor control signals, for actuating said car.
- 11. The apparatus of claim 5, wherein said control comprises:
- means responsive to said sensed acceleration signals and to a position feedback signal for providing a force command signal; and
- means responsive to said force command signal for providing said position feedback signal.
- 12. The apparatus of claim 11, wherein said means responsive to said force command signal comprises:
- means, responsive to an error signal indicative of the difference in magnitudes between said force command signal and a force feedback signal, for providing a thyristor firing signal;
- a thyristor power converter, responsive to said firing signal, for providing a force actuation signal for causing said actuator to exert a force against said car;
- divider means, responsive to a sensed current signal indicative of the magnitude of said force actuation signal and responsive to a sensed position signal indicative of the position of said car, for providing said position feedback signal; and
- means, responsive to said sensed position signal, for providing said force feedback signal.
- 13. The apparatus of claim 12, wherein said converter is a two-quadrant, full-wave thyristor converter.
- 14. The apparatus of claim 5, wherein said actuator comprises an electromagnet actuator having a U-shaped core having a pair of legs each wound with a coil responsive to said control signal.
- 15. The apparatus of claim 5, wherein said actuator comprises an electromagnet and a blade of a rail.
- 16. The apparatus of claim 15, wherein said rail comprises three blades in a Y-shape.
- 17. The apparatus of claim 15, wherein said rail comprises two blades in a V-shape.
- 18. A method for stabilizing an elevator car, comprising the steps of:
- sensing an acceleration associated with rotation of said car about a horizontal axis and providing a sensed signal indicative thereof;
- providing a control signal in response to said sensed signal; and
- actuating said platform in response to said control signal to counter said rotation.
- 19. The method of claim 18, wherein said step of sensing comprises the step of sensing horizontal translational movements of said platform by providing said sensed signal as two sensed signals indicative of translations at two separate levels of said car for providing said control signal as one or more control signals required to counteract movements indicated by said sensed signals.
- 20. The method of claim 18, wherein said step of actuating comprises the step of actuating said car along lines which intersect said car's walls at angles of forty-five degrees.
- 21. The method of claim 18, wherein said step of actuating comprises the step of actuating along four separate lines intersecting walls of said car to form isosceles right triangles in the corners thereof.
- 22. The method of claim 18, wherein said step of actuating comprises the step of actuating along four separate lines intersecting one another to form a rectangle or square.
- 23. A method for stabilizing an elevator platform in a hoistway, for stopping at hoistway doors and transferring passengers across a threshold comprising a hoistway sill and a platform sill, comprising the steps of:
- providing a stop signal indicative of the said platform being vertically at rest at a hoistway sill for transferring passengers; and
- horizontally actuating said platform, in response to said stop signal, such that said platform sill is horizontally at rest with respect to said hoistway sill.
- 24. Apparatus, for stabilizing an elevator platform for moving up and down a hoistway, stopping at hoistway doors and transferring passengers across a threshold comprising a hoistway sill and a platform sill, comprising:
- means for providing a signal indicative of the said platform being vertically stopped at a hoistway sill for transferring passengers; and
- horizontal actuator means, responsive to said signal indicative of said platform being vertically stopped, for causing said platform sill to be horizontally stationary with respect to said hoistway sill.
- 25. The apparatus of claim 3, wherein both said means for exerting a counterforce comprises an actuable roller cluster.
- 26. The apparatus of claim 5, wherein each of said actuators comprises an actuable roller cluster.
Parent Case Info
This is a continuation-in-part of co-pending application Ser. No. 07/555,133, filed on Jul. 18, 1990, now abandoned.
US Referenced Citations (21)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0033184 |
Aug 1981 |
EPX |
Continuation in Parts (1)
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Number |
Date |
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555133 |
Jul 1990 |
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