The subject matter disclosed herein relates generally to the field of elevators, and more particularly, to a wireless power supply for a self-propelled elevator.
Self-propelled elevator systems, also referred to as ropeless elevator systems, are useful in certain applications (e.g., high rise buildings) where the mass of the ropes for a roped system is prohibitive and/or there is a need for multiple elevator cars in a single hoistway. Elevator cars typically need power for ventilation, lighting systems, control units, communication units and to recharge batteries installed, for example, on an elevator car controller. Existing systems use moving cables or current collectors/sliders to connect a moving elevator car with power lines distributed along the elevator hoistway.
According to an exemplary embodiment of the invention, an elevator system includes an elevator car having an elevator car subsystem; a guide rail to guide the elevator car along a hoistway; primary windings positioned along the hoistway; permanent magnets coupled to the elevator car, the primary windings and permanent magnets defining a linear motor for imparting motion to the elevator car in response to a drive signal; and secondary windings coupled to the elevator car, the secondary windings generating a current to power the elevator car subsystem.
According to another exemplary embodiment of the invention, a wireless power supply for an elevator car includes primary windings; permanent magnets for coupling to an elevator car, the primary windings and permanent magnets defining a linear motor for imparting motion to the elevator car in response to a drive signal; and secondary windings for coupling to the elevator car, the secondary windings generating a current to power an elevator car subsystem.
According to another exemplary embodiment of the invention, a linear motor system includes a plurality of permanent magnets, configured to be attached to a movable component; a plurality of primary windings configured to impart motion to the permanent magnets; and a plurality of secondary windings configured to be coupled to the movable component, wherein the plurality of secondary windings are configured to passively generate an electrical current when the movable component moves in relation to the plurality of primary windings.
Other aspects, features, and techniques of embodiments of the invention will become more apparent from the following description taken in conjunction with the drawings.
Referring now to the drawings wherein like elements are numbered alike in the FIGURES:
Controller 20 provides drive signals to the primary windings 18 to impart motion to the elevator car 12. Controller 20 may be implemented using a general-purpose microprocessor executing a computer program stored on a storage medium to perform the operations described herein. Alternatively, controller 20 may be implemented in hardware (e.g., ASIC, FPGA) or in a combination of hardware/software. Controller 20 may also be part of an elevator control system. Controller 20 may include power circuitry (e.g., an inverter or drive) to power the primary windings 18.
Elevator car 12 also includes secondary windings 24 mounted to a cabin of elevator car 12, juxtaposed the primary windings 18. Secondary windings 24 include a plurality of coils coupled to the elevator car 12. Coils of the secondary windings 24 may be formed about ferromagnetic cores. Secondary windings 24 are not used for propulsion of elevator car 12, but rather as a secondary winding of an air core transformer formed by primary windings 18 and secondary windings 24. Drive signals applied to primary windings 18 produce leakage flux that induces an electromotive force in secondary windings 24 to generate a current in the secondary windings 24, as described in further detail herein.
Primary windings 18 may also be formed on a face of a flat stator core 21 as shown in
The secondary windings 24 are connected to a rectifier 30 to convert the AC current to DC current. The output of rectifier 30 is provided to one or more elevator car subsystems, including a battery 32, ventilation unit 34, lighting system 36, control unit 38 and communication unit 40. It is understood that rectifier 30 may provide power to a variety of elevator car subsystems, and the components in
Embodiments enable wireless energy transfer to a moving elevator car of a self-propelled elevator. This eliminates the need for moving cables or current collectors/sliders for connecting a moving elevator car with power lines distributed along the elevator hoistway. The secondary windings also provide an electromagnetic shielding barrier between primary windings of the linear motor and the interior of the elevator car.
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. While the description of the present invention has been presented for purposes of illustration and description, it is not intended to be exhaustive or limited to the invention in the form disclosed. Many modifications, variations, alterations, substitutions, or equivalent arrangement not hereto described will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the invention. Additionally, while the various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments and that various aspects of the invention, although described in conjunction with one exemplary embodiment may be used or adapted for use with other embodiments even if not expressly stated. Accordingly, the invention is not to be seen as being limited by the foregoing description, but is only limited by the scope of the appended claims.
Filing Document | Filing Date | Country | Kind |
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PCT/US2013/041999 | 5/21/2013 | WO | 00 |