SAFETY ARRANGEMENT, ELEVATOR SYSTEM, AND METHOD FOR PREVENTING DERAILMENT OF AN ELEVATOR CAR AT A TURNING STATION OF AN ELEVATOR SYSTEM
20220106165 · 2022-04-07
Assignee
Inventors
Cpc classification
B66B5/16
PERFORMING OPERATIONS; TRANSPORTING
B66B9/003
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66B5/28
PERFORMING OPERATIONS; TRANSPORTING
B66B1/36
PERFORMING OPERATIONS; TRANSPORTING
B66B5/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A safety arrangement is suitable for a turning station of an elevator system. The safety arrangement includes at least one first blocking position for preventing, by a first mechanical device, an elevator car from entering the turning station, wherein the first mechanical device is arranged to change its position in response to operation of the turning station, and at least one second blocking position for preventing, by a second mechanical device, an elevator car from exiting the turning station.
Claims
1. A safety arrangement for a turning station of an elevator system, comprising: at least one first blocking position for preventing, by a first mechanical device, an elevator car from entering the turning station, wherein the first mechanical device is arranged to change its position in response to operation of the turning station; and at least one second blocking position for preventing, by a second mechanical device, an elevator car from exiting the turning station.
2. The safety arrangement of claim 1, comprising at least one aligned position for allowing an elevator car to enter and/or exit the turning station.
3. The safety arrangement of claim 1, wherein the second mechanical device is arranged in fixed manner with respect to an elevator shaft of the elevator system.
4. The safety arrangement of claim 1, wherein the operation of the turning station includes rotation of one or several components of the turning station, including a turning device of the turning station.
5. The safety arrangement of claim 2, wherein, in the aligned position, at least one rail portion of the turning station is properly aligned with at least one rail portion of an elevator shaft so that derailment of the elevator car is prevented.
6. The safety arrangement of claim 1, wherein the elevator car comprises at least one buffer device arranged to contact the first mechanical device in the at least one first blocking position.
7. The safety arrangement of claim 1, wherein the elevator car comprises at least one buffer device arranged to contact the second mechanical device in the at least one second blocking position.
8. The safety arrangement of claim 6, wherein the at least one buffer device is arranged to absorb at least a portion of collision energy between the buffer device and the first or the second mechanical device.
9. An elevator system comprising: an elevator shaft; at least one or a plurality of elevator cars arranged to move in the elevator shaft; a linear motor arranged to extend in the elevator shaft, wherein the at least one elevator car is or the plurality of elevator cars are configured to be moved along the linear motor; at least one turning station for changing a movement direction of the elevator car or cars; at least one of the safety arrangements of claim 1.
10. The elevator system of claim 9, comprising a plurality of the safety arrangements.
11. The elevator system of claim 9, wherein the safety arrangement is associated with one of a plurality of movers of the elevator car.
12. A method for preventing derailment of an elevator car at a turning station of an elevator system, comprising: arranging a first mechanical device to prevent an elevator car from entering the turning station when the turning station is in a first blocking position relative to the elevator car; configuring the first mechanical device to change its position in response to operation of the turning station; and arranging a second mechanical device to prevent an elevator car from exiting the turning station when the turning station is in a second blocking position relative to the elevator car.
13. The method of claim 12, comprising arranging the first mechanical device and the second mechanical device to allow an elevator car to enter and/or exit the turning station in an aligned position of the turning station.
14. The method of claim 12, wherein the operation of the turning station includes rotating of one or several components of the turning station.
15. The method of claim 13, comprising arranging, in the aligned position, at least one rail portion of the turning station to properly align with at least one rail portion of an elevator shaft so that derailment of the elevator car is prevented.
16. The method of claim 12, arranging at least one buffer device to the elevator car to contact with the first mechanical device when the elevator car is entering the turning station in the at least one first blocking position.
17. The method of claim 12, arranging at least one buffer device to the elevator car to contact with the second mechanical device when the elevator car is exiting the turning station in the at least one second blocking position.
18. The safety arrangement of claim 2, wherein the second mechanical device is arranged in fixed manner with respect to an elevator shaft of the elevator system.
19. The safety arrangement of claim 2, wherein the operation of the turning station includes rotation of one or several components of the turning station, including a turning device of the turning station.
20. The safety arrangement of claim 3, wherein the operation of the turning station includes rotation of one or several components of the turning station, including a turning device of the turning station.
Description
BRIEF DESCRIPTION OF FIGURES
[0036] Some embodiments of the invention are illustrated by way of example, and not by way of limitation, in the figures of the accompanying drawings.
[0037]
[0038]
[0039]
[0040]
[0041]
DETAILED DESCRIPTION OF SOME EMBODIMENTS
[0042]
[0043] There may also be other electrically operated equipment in the elevator car 10 such as lighting, doors, user interface, emergency rescue equipment, etc. The electrical converter unit 12 or a further electrical converter unit, such as an inverter or a rectifier, may be utilized for operating one or several of said other equipment of the elevator car 10. The energy storage may, preferably, be electrically coupled to the electrical converter unit 12, for example, to the intermediate circuit of the frequency converter, for providing electrical power to the electrical converter unit 12 and/or for storing electrical energy provided by the electrical converter unit or a further electrical converter unit or other electrical power source.
[0044] There are preferably at least two landing floors, having landing floor doors 19 or openings 19, comprised in the elevator system 100. Thus, there may also be at least two landings which the elevator car(s) 10 serve. There may also be doors comprised in the elevator car 10. Although shown in
[0045] Regarding the elevator shaft 13, it may be such as defining substantially closed volume in which the elevator car 10 is adapted and configured to be moved. The walls may be, for example, of concrete, metal or at least partly of glass, or any combination thereof. The elevator shaft 13 herein refers basically to any structure or pathway along which the elevator car 10 is configured to be moved.
[0046] As can be seen in
[0047] However, it should be realized that there may also be stator beams 16 in the middle part of the shaft 13, such as shown in
[0048] The stator beams 16 are part of an electric linear motor of the elevator system 100 utilized to move the elevator car 10 or cars 10 in the elevator shaft 13. The stator beams 16 may, preferably, be arranged in fixed manner, that is, stationary with respect to the elevator shaft 13, for example, to a wall of the shaft by fastening portions, which may be arranged to be rotatable at turning stations 11, such as comprising a turning device, for example, a turngear or a turntable or the like.
[0049] The elevator system 100 may comprise an elevator control unit 1000 for controlling the operation of the elevator system 100. The elevator control unit 1000 may be a separate device or may be comprised in the other components of the elevator system 100 such as in or as a part of the electrical converter unit 12. The elevator control unit 1000 may also be implemented in a distributed manner so that, e.g., one portion of the elevator control unit 1000 may be comprised in the electrical converter unit 12 and another portion in the elevator car 10. The elevator control unit 1000 may also be arranged in distributed manner at more than two locations or in more than two devices.
[0050] The elevator control unit 1000 may comprise one or more processors, one or more memories being volatile or non-volatile, or non-transitory, for storing portions of computer program code and any data values and possibly one or more user interface units. The mentioned elements may be communicatively coupled to each other with e.g. an internal bus.
[0051] The processor may be arranged to access the memory and retrieve and store any information therefrom and thereto. For sake of clarity, the processor herein refers to any unit suitable for processing information and control the operation of the elevator control unit 1000, among other tasks. The operations may also be implemented with a microcontroller solution with embedded software.
[0052] Similarly, the memory is not limited to a certain type of memory only, but any memory type suitable for storing the described pieces of information may be applied in the context of the present invention.
[0053] Furthermore, the elevator system 100 may, preferably, comprise safety device(s), such as at the end(s) of the shaft 13 and/or at door zone(s). These safety devices 46 may be, for example, buffers or other known safety devices in the elevator shaft 13.
[0054]
[0055] The turning station 11 may comprise a turning device 41. In various embodiments, the turning device 41 may comprise a rotatable platform and in connection thereto, rail portions 42 of the turning station 11 being similar or corresponding with respect to the stator beams 16 of the electric linear motor of the elevator system 100. The turning device 41 may resemble a turntable having an axis of rotation 43, for instance. As can be seen in
[0056] The primary function of the turning station 11 is to enable movement of the elevator car 10 between said two sets of the stator beams 16, especially between the vertical sets and the horizontal set. Thus, the turning device 41 must be in the correct position with respect to the stator beams 16 from which or to which the elevator car 10 is moving in order to avoid derailment of the elevator car 10. The correct position depends, of course, from which the elevator car 10 is approaching the turning station 11 or to which direction is the elevator car 10 is about to move away from the turning station 11. As becomes clear, the turning device 41 is thus configured to turn or at least allow turning of the rail portions 42 of the turning device 41.
[0057] The safety arrangement 150 may comprise at least one first blocking position 101, wherein an elevator car 10 is prevented from entering the turning station 11 by one or several first mechanical devices 30. This is visible in both
[0058] In various embodiments, the first mechanical device 30 may be a part of or being mounted on the turning device 41, and thereby changing its position in response to change of position of the turning device 41.
[0059] In various embodiments, the second mechanical device 20 may be part of or being mounted in fixed manner with respect to the elevator shaft 13. Thus, the second mechanical device 20 may maintain its position when the turning station 11 is being operated.
[0060] As can be seen in
[0061]
[0062] Furthermore, as shown in
[0063] Alternatively or in addition, the safety arrangement 150 may comprise, in the elevator car 10, at least one buffer device 40 arranged to contact the second mechanical device 20 in the at least one second blocking position 102. Thus, the buffer(s) 40 may be the same for the first 30 and the second 20 mechanical devices, or there may buffer(s) 40 for just one of them, or different buffers 40 for both of them. As may be understood, the elevator car 10 exiting the turning station 11 may typically have lower speeds than the ones approaching and entering the turning station 11. Thus, the buffers 40 may also be dimensioned differently.
[0064] In some embodiments, the at least one buffer device may be arranged to absorb at least a portion of collision energy between the buffer device and the first 30 or the second mechanical device 20. Thus, the mechanical device 20, 30 may not be damaged severely due to the impact.
[0065]
[0066] Step 400 refers to a start-up phase of the method. Suitable equipment and components are obtained and systems assembled and configured for operation.
[0067] Item 410 may refer to arranging a first mechanical device 30 to prevent an elevator car 10 from entering the turning station 11 when the turning station is in a first blocking position 101 relative to the elevator car 10.
[0068] Item 420 may refer to configuring the first mechanical device 30 to change its position in response to operation of the turning station 11, such as in response to rotation of the turning device 41 thereof.
[0069] Item 430 may refer to arranging a second mechanical device 20 to prevent an elevator car from exiting the turning station 11 when the turning station 11 is in a second blocking position 102 relative to said elevator car 10.
[0070] Method execution may be stopped at 499.
[0071] The method may, preferably, comprise arranging the first mechanical device 30 and the second mechanical device 20 to allow an elevator car 10 to enter and/or exit the turning station 11 in an aligned position 103 of the turning station 11.
[0072] In various embodiments, the method may comprise arranging, in the aligned position 103, at least one rail portion 42 of the turning station 11 to properly align with at least one rail portion 16 of an elevator shaft 13 so that derailment of the elevator car 10 may be prevented.
[0073] In some embodiments, the method may comprise arranging at least one buffer device 40 to the elevator car 10 to contact with the first mechanical device 30, when the elevator car 10 is entering the turning station 11 in the at least one first blocking position 101.
[0074] Alternatively or in addition, the method may comprise arranging at least one buffer device 40 to the elevator car 10 to contact with the second mechanical device 20, when the elevator car 10 is exiting the turning station 11 in the at least one second blocking position 102.
[0075]