Safety circuit for an elevator system
10239729 ยท 2019-03-26
Assignee
Inventors
Cpc classification
B66B5/16
PERFORMING OPERATIONS; TRANSPORTING
B66B13/22
PERFORMING OPERATIONS; TRANSPORTING
B66B5/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66B1/34
PERFORMING OPERATIONS; TRANSPORTING
B66B5/02
PERFORMING OPERATIONS; TRANSPORTING
B66B5/00
PERFORMING OPERATIONS; TRANSPORTING
B66B5/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A safety circuit for an elevator system includes a first circuit having a plurality of switching contacts and a second circuit having a plurality of switching contacts. The switching contacts of the first circuit are connected in series, and the switching contacts of the second circuit are connected in parallel. Each switching contact of the first circuit is associated with a different switching contact of the second circuit. The switching contacts that are associated with each other are in opposite switching states.
Claims
1. A safety circuit for switching between a safe operation state of an elevator system and a safe idle state of the elevator system comprising: a first circuit having a plurality of switching contacts; and a second circuit having a plurality of switching contacts, wherein the switching contacts of the first circuit are connected in series and the switching contacts of the second circuit are connected in parallel, at least one switching contact of the first circuit being associated with a switching contact of the second circuit, switching states of the associated switching contacts being in opposite switching states, and the first circuit and the second circuit being responsive to safety elements of the elevator system for controlling the switching between the safe operation state and the safe idle state of the elevator system.
2. The safety circuit according to claim 1 wherein the at least one switching contact of the first circuit forcibly switches the associated switching contact of the second circuit.
3. The safety circuit according to claim 1 wherein during an open switching state of the at least one switching contact of the first circuit, the associated switching contact of the second circuit is in a closed switching state.
4. The safety circuit according to claim 1 wherein during a closed switching state of the at least one switching contact of the first circuit, the associated switching contact of the second circuit is in an open switching state.
5. The safety circuit according to claim 1 wherein the safety circuit is only in an operating state thereby switching the elevator system into the safe operation state if the switching state of each of the switching contacts of the first circuit is closed and the switching state of each of the switching contacts of the second circuit is open.
6. The safety circuit according to claim 1 wherein the safety circuit includes a logic circuit monitoring at least one of the switching states of the switching contacts of the first circuit and the switching states of the switching contacts of the second circuit.
7. The safety circuit according to claim 6 wherein in response to identical switching states of at least one of the switching contacts of each of the first circuit and the second circuit, or in response to an open switching state of at least one of the switching contacts of the first circuit, or in response to a closed switching state of at least one of the switching contacts of the second circuit, the logic circuit interrupts a power supply to at least one of a main drive, a control and a brake of the elevator system.
8. The safety circuit according to claim 1 including a first contactor associated with the first circuit and a second contactor associated with the second circuit, each of the first contactor and the second contactor interrupting a power supply to at least one of a main drive, a control and a brake of the elevator system in response to a voltage or current in the associated one of the first circuit and the second circuit.
9. The safety circuit according to claim 8 wherein in response to a current or voltage interruption in the first circuit, the first contactor interrupts the power supply, and in response to a current or voltage increase in the second circuit, the second contactor interrupts the power supply.
10. An elevator system having safety elements and a safety circuit responsive to the safety elements for switching between a safe operation state of the elevator system and a safe idle state of the elevator system, the safety circuit comprising: a first circuit having a plurality of switching contacts; and a second circuit having a plurality of switching contacts, wherein the switching contacts of the first circuit are connected in series and the switching contacts of the second circuit are connected in parallel, at least one switching contact of the first circuit being associated with a switching contact of the second circuit, switching states of the associated switching contacts being in opposite switching states, and the first circuit and the second circuit being responsive to the safety elements of the elevator system for controlling the switching between the safe operation state and the safe idle state of the elevator system.
11. The safety circuit according to claim 10 wherein the safety circuit includes a logic circuit monitoring at least one of the switching states of the switching contacts of the first circuit and the switching states of the switching contacts of the second circuit.
12. The safety circuit according to claim 11 wherein in response to identical switching states of at least one of the switching contacts of each of the first circuit and the second circuit, or in response to an open switching state of at least one of the switching contacts of the first circuit, or in response to a closed switching state of at least one of the switching contacts of the second circuit, the logic circuit interrupts a power supply to at least one of a main drive, a control and a brake of the elevator system.
13. The safety circuit according to claim 10 including a first contactor associated with the first circuit and a second contactor associated with the second circuit, each of the first contactor and the second contactor interrupting a power supply to at least one of a main drive, a control and a brake of the elevator system in response to a voltage or current in the associated one of the first circuit and the second circuit.
14. The safety circuit according to claim 13 wherein in response to a current or voltage interruption in the first circuit, the first contactor interrupts the power supply, and in response to a current or voltage increase in the second circuit, the second contactor interrupts the power supply.
Description
DESCRIPTION OF THE DRAWINGS
(1) The invention is described below in more detail by means of exemplary embodiments. In the figures:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) The switching contacts 6.1, 6.2, 6.n of the first circuit 2 are in opposite switching states with respect to the switching contacts 5.1, 5.2, 5.n of the second circuit 3. The first circuit 2 is in an operating state when all switching contacts 6.1, 6.2, 6.n are closed. Accordingly, the second circuit 3 is in an operating state when all switching contacts 6.1, 6.2, 6.n are open. When a switching contact 6.1, 6.2, 6.n of the first circuit 2 is open or a switching contact 5.1, 5.2, 5.n of the second circuit 3 is closed, the first and the second circuits 2, 3 are each in a safe state.
(7) Preferably, a switching contact 5.1, 5.2, 5.n of the second circuit 3 is forcibly switched via a connection 7.1, 7.2, 7n by a switching contact 6.1, 6.2, 6.n of the first circuit 2. This ensures that associated switching contacts 6.1, 5.1 can only be simultaneously in an operating state if the switching contact 6.1 of the first circuit 2 is closed and the switching contact 5.1 of the second circuit 3 is open, or in a safe state, if the switching contact 6.1 of the first circuit 2 is open and the switching contact 5.1 of the second circuit 3 is closed.
(8) The two circuits 2, 3 are powered from a 24V voltage source. It is within the discretion of the person skilled in the art to select a voltage source which is suitable for his/her purposes, and the voltage of which can be a voltage value different than 24V, for example 12V, 36V, 110V or any other voltage value. In an operating of the first circuit 2, a corresponding current flows through the switching contacts 6.1, 6.2, 6.n. A first contactor 8 is connected at the end of the first circuit 2, on the one hand, to the latter and, on the other, to a 0V conductor 4. The first contactor 8 comprises a switching magnet 8.1 and a switch 8.2, wherein the latter is integrated in a three-phase power supply 10 of a main drive 11. The power supply is typically 380 V, but can also differ depending on the specific country. In accordance with a switching state of the first circuit 2, the switching magnet 8.1 switches the associated switch 8.2. The energized switching magnet 8.1 keeps the switch 8.2 closed. As soon as a switching contact 6.1, 6.2, 6.n of the first circuit 2 is open and the current flow in the first circuit 2 is interrupted, power supply to the switching magnet 8.1 is interrupted. As a result, the associated switch 8.2 is opened and the power supply 10 to the main derive 11 is interrupted. Thus, the switch 8.2 is a normally open contact which is open in the normal or currentless state.
(9) In an operating state of the second circuit 3, all switching contacts 5.1, 5.2, 5.n thereof are open. Accordingly, the current flow in the second circuit 3 is interrupted. A second contactor 9 is connected at the end of the second circuit 3, on the one hand, to the latter and, on the other, to a 0V conductor 4. The second contactor 9 comprises a switching magnet 9.1 and a switch 9.2, wherein the latter is integrated in the power supply 10 of the main drive 11. In accordance with a switching state of the second circuit 3, the switching magnet 9.1 switches the associated switch 9.2. The switch 9.2 is closed as long as the switching magnet is de-energized. When a switching contact 5.1, 5.2, 5.n of the second circuit 3 is closed, the switching magnet 9.1 is supplied with current and the associated switch 9.2 is opened. Accordingly, the power supply 10 to the main drive 11 is interrupted. Thus, the switch 9.2 is a normally closed contact which is closed in the normal or currentless state. Due to the parallel connection of the switching contacts 5.1, 5.2, 5.n, the contactor 9 responds upon closing of each individual switching contact 5.1, 5.2, 5.n.
(10)
(11) In
(12) In this exemplary embodiment, the safety circuit 1 is in an operating state. All switching contacts 6.1, 6.2, 6.n of the first circuit 2 are closed and all switching contacts 5.1, 5.2, 5.n of the second circuit 3 are open. Accordingly, current flows through the first circuit 2, and current flow through the second circuit 3 is interrupted. The logic circuits 12.1, 12.2 evaluate the incoming current values and voltage values and keep the associated switches 13.1, 13.2 closed. When a switching contact 6.1 of the first circuit 2 is opened and/or a switching contact 5.1 of the second circuit 3 is closed, the current value or the voltage value in the corresponding circuit 2, 3 changes. The first circuit 12.1 now measures a current value or voltage value of zero and opens the associated switch 13.1 in the power supply 10 of the main drive 11. The second circuit 12.1, however, now measures a current value or voltage value that differs from zero and opens the associated switch 13.2 in the power supply 10 of the main drive 11. Thus, the elevator system can be transferred into a safe idle state.
(13) In the example shown in
(14) In accordance with the provisions of the patent statutes, the present invention has been described in what is considered to represent its preferred embodiment. However, it should be noted that the invention can be practiced otherwise than as specifically illustrated and described without departing from its spirit or scope.