Abstract:
A method for determining the mass of a car and counterweight of an elevator, running in an elevator shaft along their traveling paths driven by an elevator motor, in which method at least one test run is performed preferably as complete round trip of the elevator car and counterweight, in which test run a) the hoisting system balance mB, b) the hoisting system friction FμS, and c) the hoisting system compensation ΔB is calculated from constant speed data, and in which test run d) the hoisting system inertia mass mI is calculated from constant acceleration/deceleration data. From these parameters the weight of the car and counterweight is calculated without any need of weight measurements, but merely by using the power data of the elevator drive unit.
Abstract:
A method for allocating capacity of an energy storage associated with at least one passenger transport installation includes continuously monitoring performance data of the energy storage; obtaining first data associated with operating the at least one passenger transport installation; identifying different uses for the energy stored in the energy storage; determining an allocation of energy storage capacity available for the different uses based on the performance data and the first data; and applying the determined allocation.
Abstract:
The invention refers to a method for obtaining the system parameters of a transport system, particularly an elevator, in which method a) at least first and second input parameters of the transport system are determined, b) a power model fitting to the transport is provided, which power model comprises motor model components and hoistway model components, c) model parameters describing power flow in the transport system are fitted into the power model, d) the model parameters are optimized under use of at least one of the input parameters of the elevator, e) the optimized model parameters are post processed to obtain at least one of the system parameters of the transport system. The system provides missing system information about a transport system, particularly in cases in which an existing system is to be renovated with a new motor.
Abstract:
In an elevator, the status information of the receivers, and possibly also of the transmitters, of a light curtain of the elevator is transmitted from the control unit of the light curtain as a response to a query or as messages. The control system of the elevator car is configured to receive the responses or status information and to analyze i) the status information contained therein of at least one receiver the status information contained therein of at least one receiver and of at least one transmitter relating to it, for changing or adjusting the operating mode of the elevator or for giving a control command to the operating system of the elevator.
Abstract:
A method for an elevator call allocation of an elevator group includes obtaining call information indicative of at least one generated elevator call; generating a plurality of candidate allocations in response to obtaining the call information; defining at least two allocation objectives for each candidate allocation, wherein the defined at least two allocation objectives comprise a rope bending cost and at least one other allocation objective; and selecting the allocation for the at least one elevator call from among the candidate allocations based on the defined at least two allocation objectives. An elevator computing system and a computer program product for an elevator call allocation of an elevator group are also described.
Abstract:
Elevator groups are known have very high peak power demand. The peak power capacity of the power line can be reduced by using a power arrangement involving a battery. The battery can be discharged for operating elevators when the power demand exceeds the capacity of the power line. The battery may be further used for reducing power cost by charging the battery during lower cost time.
Abstract:
An arrangement and a method for monitoring the operational condition of an automatic door in an elevator, particularly a passenger and/or goods elevator, or in a building, the arrangement includes an automatic door which includes one or more door leaves, which slide horizontally in their location, a door operator, which includes a door motor and a door mechanism for moving the door leaf horizontally in its location, a closing device for closing the automatic door, a control system for the door operator for controlling the door motor, a device configured to define the operational condition of the closing device and the door mechanism of the automatic door, the device configured to define the operational condition of the closing device and the door mechanism of the automatic door includes a mechanism configured to determine the mechanical energy of the shaft in the door motor of the automatic door during an operating cycle.
Abstract:
An elevator system includes a control for controlling an elevator into an idle state and/or for cancelling the idle state. The elevator system is configured to receive data from a control circuit external to the elevator system, and the control is arranged to form a control command for controlling the elevator into an idle state and/or for cancelling the idle state on the basis of data received from a control circuit external to the elevator system.