ELEVATOR SYSTEM WITH A SPEED-VARIABLE ELEVATOR CAR, AND OPERATING METHOD OF THE ELEVATOR SYSTEM
20180370763 ยท 2018-12-27
Inventors
Cpc classification
B66B5/005
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An elevator system includes a counterweight and an elevator car supported by support device and moved in opposite directions in an elevator shaft. In an operating method for operating the elevator system, the elevator car approaches the counterweight and/or moves past the counterweight in an approach zone in the elevator shaft, and the elevator car moves at a first speed outside of the approach zone and at a second speed in the approach zone, the second speed being lower than the first speed.
Claims
1-14. (canceled)
15. An elevator system including an elevator shaft, an elevator car and a counterweight arranged in the elevator shaft and being connected by support means guided by at least one diverting means, such that the elevator car and the counterweight move in opposite directions, the elevator car approaching the counterweight and/or passing the counterweight in the elevator shaft in an approach zone, comprising: an elevator controller that moves the elevator car at a first speed when the elevator car is outside of the approach zone and, when the elevator car is entering the approach zone, decelerates the elevator car to a second speed, the second speed being lower than the first speed.
16. The elevator system according to claim 15 wherein a length of the approach zone in a movement direction of the elevator car is greater than or equal to half a length of a predetermined height of a person plus an optional safety clearance.
17. The elevator system according to claim 16 wherein the height of a person is predetermined in accordance with an average height of a person from a country in which the elevator system is installed or is intended to be installed.
18. The elevator system according to claim 16 wherein the length of the approach zone in the movement direction of the elevator car corresponds to half a total of a length of the predetermined height of a person, a length of the counterweight and a length of the optional safety clearance.
19. The elevator system according to claim 15 wherein an upper boundary of the approach zone is at a height in the elevator shaft at which an upper edge of the counterweight and a top of the elevator car cross when the counterweight and the elevator car are passing.
20. The elevator system according to claim 15 wherein the elevator controller decelerates the elevator car from the first speed to the second speed sharply, or in a plurality of sharp, partial deceleration stages.
21. The elevator system according to claim 15 wherein the elevator controller accelerates the elevator car from the second speed to the first speed continuously.
22. The elevator system according to claim 15 wherein the elevator controller begins accelerating the elevator car from the second speed to the first speed after the elevator car leaves the approach zone.
23. The elevator system according to claim 15 including a warning device for generating at least one of an acoustic, a vibrating and a visual alarm signal in response to the elevator car changing from the first speed to the second speed.
24. An operating method for an elevator system that includes an elevator shaft, an elevator car and a counterweight arranged in the elevator shaft and being connected by support means guided by at least one diverting means, such that the elevator car and the counterweight move in opposite directions, the elevator car approaching the counterweight and/or passing the counterweight in the elevator shaft in an approach zone, comprising the steps of: moving the elevator car at a first speed when the elevator car is outside of the approach zone; when the elevator car is entering the approach zone, decelerating the elevator car to a second speed, the second speed being lower than the first speed; setting an upper boundary of the approach zone at a height in the elevator shaft at which an upper edge of the counterweight and a top of the elevator car cross when the counterweight and the elevator car are passing one another; and setting a length of the approach zone in a movement direction of the elevator car greater than or equal to half a length of a predetermined height of a person plus an optional safety clearance.
25. The operating method according to claim 24 including decelerating the elevator car from the first speed to the second speed sharply, or in a plurality of sharp, partial deceleration stages.
26. The operating method according to claim 24 including accelerating the elevator car from the second speed to the first speed continuously.
27. The operating method according to claim 24 including generating at least one of an acoustic, a vibrating and a visual alarm signal when the elevator car is changing from the first speed to the second speed.
28. The operating method according to claim 24 including accelerating the elevator car from the second speed to the first speed beginning after the elevator car leaves the approach zone.
Description
DESCRIPTION OF THE DRAWINGS
[0018] In the drawings:
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023]
[0024] There is an approach zone A in the elevator shaft 2. In order to ensure maximum safety, the length of the approach zone A in the longitudinal direction is advantageously greater than or equal to half the height I.sub.G of the counterweight 3 plus the predetermined length I.sub.P of the height 7 of a person and an optional safety clearance I.sub.B of 0.5 meters, for example.
[0025] The height 7 of a person can be specified and prestored in accordance with the average height of a person from a country in which said elevator system is installed or is intended to be installed. The average height of a person varies from country to country and ranges between approximately just about 1.6 meters in South-East Asia and a good 1.80 meters in Northern Europe.
[0026] A center line M1 of the elevator shaft 2 in the transverse direction thereof substantially coincides with a center line M2 of the approach zone A, i.e. the two center lines M1 and M2 are orthogonal to the movement direction (the longitudinal direction) and are at the same height, which is generally half the height of the elevator shaft 2. The center line M2 of the approach zone A should for example be above the center line M1 of the elevator shaft 2 by approximately half the height 7 of a person.
[0027] The counterweight 3 and the elevator car 4 approach one another and pass one another in the approach zone A in the elevator shaft 2. In order to prevent a possible collision in which a person who e.g. has to remain on the top of the elevator car 4 during maintenance work collides with the counterweight 3, the elevator car 4 moves at a lower speed in the approach zone A. When the elevator car 4 leaves the approach zone A, the speed thereof is set back to a higher speed, namely a normal travel speed or a high maintenance speed of the elevator car 4.
[0028] The elevator system 1 also comprises a warning device 6 such as a speaker, vibration alarm or a visual means. As an additional measure, an acoustic, vibrating and/or visual alarm signal can alternatively be generated by this warning device 6 when initiating the second speed, in order to give the persons greater warning of the danger.
[0029]
[0030] When the elevator car is moving upwards, the elevator car 4 enters an approach zone at the point in time shown in
[0031] If a safety clearance is not provided, the reaction time is accordingly reduced. In this case, the approach zone according to
[0032] The speed of the elevator system is now reduced until the elevator car is considered to have left the approach zone again. In a first variant at the point in time shown in
[0033] Alternatively, the elevator car is only considered to have left the approach zone at the point in time shown in
[0034] If the elevator car is considered to have left the approach zone, the speed of the elevator system is increased again.
[0035] The absolute length of the approach zone depends on the relevant entry height and exit height. Based on the top of the elevator car, the difference between the heights h.sub.3 and h.sub.2 gives the minimum vertical extent of the approach zone a.sub.2. When the elevator car and the counterweight are moving at the same speed, the minimum vertical extent of the approach zone corresponds to half the height of a person.
[0036] If the safety clearance I.sub.B is added thereto, again based on the top of the elevator car, the difference between the heights h.sub.3 and h.sub.1 gives the minimum vertical extent of the approach zone a.sub.1. When the elevator car and the counterweight are moving at the same speed, in this case the extent of the approach zone corresponds to half the height of a person plus half the safety clearance.
[0037] If the approach zone is also extended beyond the length of the counterweight for an additional level of safety, the vertical extension of the approach zone increases again by half the length of the counterweight. The following values therefore result for the above-described additional approach zones:
[0038] If the elevator car is moving from the top downwards, the limits of the approach zones are swapped, such that the speed is reduced when the upper edge of the counterweight approaches (optional safety clearance (not shown)) or moves above (
[0039] In absolute terms, the approach zones, as described in
[0040] When the elevator car is moving downwards, the start and the end of the approach zone are accordingly swapped.
[0041] A change in the speed S is for example activated by an elevator controller 9 depending on a position of the elevator car 4 in the elevator shaft 2, the position having been determined by a positioning system 9.
[0042] By means of a speed/time coordinate system, an operating method for an elevator system of this type is shown in
[0043] By contrast with
[0044] It is clear from the two characteristic curves for the travel speed that the progression of the characteristic curve is steeper when the speed changes from S1 to S2 than from S2 to S1. The reason is that the second speed S2 needs to be set to be lower than the first speed S1 in order to make the change from S1 to S2 perceptible to humans. A person who is e.g. carrying out maintenance work on the top of the elevator car 4 can thus tell that the counterweight 3 will move past the elevator car 4. Because a potential risk of collision with the moving counterweight 3 is noticed in good time and the elevator car 4 and the counterweight 3 are moving slower, with decelerated acceleration (t2), the person 7 has more time to react and prevent an accident.
[0045] In
[0046] A warning device 6, such as a speaker, a vibration alarm or visual means, is activated when changing the speed from S1 to S2 or at the point in time t1 as an additional safety measure, and an acoustic, vibrating and/or visual alarm signal is generated in order to better protect the person on top of the car against the risk of a collision.
[0047] This operating method can be initiated and carried out for maintenance work, installation and/or a test process for an elevator system 1 either automatically by a control system of the elevator system or manually by a person who remains on the top of the car of the elevator system 1 to complete work.
[0048] 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.
LIST OF REFERENCE SIGNS
[0049] 1 Elevator system [0050] 2 Elevator shaft [0051] 3 Counterweight [0052] 31 Upper edge of the counterweight [0053] 32 Lower edge of the counterweight [0054] 4 Elevator car [0055] 41 Top of the elevator car [0056] 5 Support means [0057] 6 Warning device [0058] 7 Height of a person [0059] 9 Positioning system/elevator controller [0060] A Approach zone [0061] a.sub.n Vertical extent of the approach zone (n={1, 2, 3, 4}) [0062] h.sub.n Absolute vertical height of the top of the elevator car (n={1, 2, 3, 4}) [0063] l.sub.x Length (X={B (safety clearance), G (counterweight), P (height of person)}) [0064] M1 Center line of the elevator shaft [0065] M2 Center line of the approach zone [0066] S Travel speed of the elevator car [0067] S1 First speed [0068] S2 Second speed [0069] t Travel time [0070] t1 Point in time of change from S1 to S2 [0071] t2 Point in time of change back from S2 to S1