LIFT INSTALLATION HAVING A COMPENSATING DEVICE, SO THAT A FIRST ROLLER IS LARGELY RELIEVED OF LOADING WHEN THE LIFT CAR IS AT REST
20170327346 · 2017-11-16
Assignee
Inventors
Cpc classification
B66B19/002
PERFORMING OPERATIONS; TRANSPORTING
B60P1/4421
PERFORMING OPERATIONS; TRANSPORTING
B66B11/0407
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66B7/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The disclosure relates to a lift installation having a lift car which can be moved along a guide rail. The lift installation here comprises at least a first pair of rollers and a second pair of rollers. The guide rail runs between the two rollers of the first pair of rollers and between the two rollers of the second pair of rollers. The lift installation also has an apparatus for subjecting the lift car to a retaining force, wherein there is a horizontal offset between the point at which the retaining force takes effect and the center of gravity of the lift car, and therefore the lift car is subjected to a first torque.
Claims
1. A lift installation having a lift car which can be moved along a guide rail, the lift installation comprising: at least a first pair of rollers and a second pair of rollers, wherein the guide rail runs between the two rollers of the first pair of rollers and between the rollers of the second pair of rollers, and wherein the lift installation has an apparatus for subjecting the lift car to a retaining force, wherein there is a horizontal offset between the point at which the retaining force takes effect and the center of gravity of the lift car, and therefore the lift car is subjected to a first torque; and at least a first compensating device so that, when the lift car is at rest, the guide rail is subjected to sufficient force to give rise to a second torque, which largely compensates for the first torque, so that a first roller of the first pair of rollers is largely relieved of loading when the lift car is at rest.
2. The lift installation as claimed in claim 1, wherein the compensating device comprises at least one actuator to generate the force.
3. The lift installation as claimed in claim 2, wherein the first roller of the first pair of rollers is joined by an elastic connection element to a mounting and the actuator has a predefined travel which is adapted to the stiffness of the elastic connection element.
4. The lift installation as claimed in claim 2, wherein the travel of the actuator is adjustable.
5. The lift installation as claimed in claim 1, wherein the apparatus comprises a parking brake, in which the compensating device is integrated.
6. The lift installation as claimed in claim 5, wherein the parking brake comprises two brake shoes, which when the parking brake is active apply opposing pressing forces from opposite sides against the same vertical position on the guide rail, wherein the two brake shoes act with different pressing forces on the guide rail, so that the force remains as the resultant force of the two different pressing forces.
7. The lift installation as claimed in claim 6, wherein the first roller is connected by an elastic connection element to a mounting, a first brake shoe of the two brake shoes is arranged on the same side of the guide rail as the first roller, the first brake shoe is connected by an elastic element to a frame and the elastic element has greater stiffness than the elastic connection element.
8. The lift installation as claimed in claim 7 wherein the lift installation comprises lift controls and the compensating device is in signal communication with the controls.
9. The lift installation as claimed in claims 1, wherein the lift car comprises a load-bearing frame and an interior car, wherein between the interior car and the load-bearing frame there is arranged at least one weight sensor for determining the weight of the lift car.
10. The lift installation as claimed in claim 9, wherein the first compensating device comprises a control unit, which stands in signal communication with the weight sensor in order to generate from the signal of the weight sensor a control signal for the compensating device.
11. The lift installation as claimed in claims 1, wherein a roller of the first pair of rollers comprises a sensor for determining the force transmitted across the first roller
12. The lift installation as claimed in claim 10, wherein the first compensating device comprises a control unit, which stands in signal communication with the sensor in order to generate from the signal of the sensor a control signal for the compensating device.
13. The lift installation as claimed in claim 1, wherein the lift car comprises a second compensating device in order to apply a force to the guide rail when the lift car is at rest so that a second torque is produced, which largely compensates for the first torque, so that at least a first roller of the second pair of rollers is largely relieved of loading when the lift car is at rest, wherein the first compensating device and the second compensating device have a vertical offset from each other.
14. The lift installation as claimed in claim 13, wherein the two compensating devices are arranged so that the forces which the compensating devices can apply to the guide rail are directed opposite each other.
15. A method for operating a lift installation having a lift car which can be moved along a guide rail, comprising at least a first pair of rollers and a second pair of rollers, wherein the guide rail runs between the rollers of the first pair of rollers, between the rollers of the second pair of rollers, and wherein the lift installation has an apparatus; the method comprising: subjecting the lift car to a retaining force, wherein there is a horizontal offset between the point at which the retaining force takes effect and the center of gravity of the lift car; and subjecting the lift car to a first torque; when the lift car is at rest applying a force to the guide rail with a first compensating device of the lift car to give rise to a second torque, which compensates for the first torque, so that at least a first roller of the first pair of rollers is largely relieved of loading.
16. The method for operating a lift installation as claimed in claim 15, wherein when the lift car is moving the guide rail is not subjected to a force by the first compensating device of the lift car, wherein the forces compensating for the first torque are transmitted across the rollers of the first and second pair of rollers from the guide rail to the lift car.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In the following, the invention shall be explained more closely with the aid of drawings. Specifically, there are shown:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION
[0034]
[0035] Furthermore, the lift car 5 comprises a load-bearing frame 7, carrying an interior car 9. The weight 33 of the lift car 5 is composed of the weight 35 of the empty lift car 5 and the weight 17 of the payload. The weight 35 of the empty lift car 5 is applied at the center of gravity 37 of the empty lift car and the weight 17 of the payload 15 at the center of gravity 39 of the payload 15. The weight 33 of the loaded lift car 5, which is the sum of the weights 17 and 35, is applied at the center of gravity 27 of the loaded lift car 5.
[0036] Between interior car 9 and load-bearing frame 7 are arranged damping elements 11 and a weight sensor 13. With the weight sensor 13, the weight 17 of the payload 15 can be determined. Connected to the load-bearing frame 7 is an apparatus 19 which applies a retaining force 21 to the lift car. The apparatus 19 comprises a supporting rope 23, which connects the lift car 5 across a traction sheave to a counterweight.
[0037] Between the point 25 at which the retaining force 21 takes effect and the center of gravity 27 of the loaded lift car 5 there exists a horizontal offset, so that a first torque acts on the lift car. This offset is typical for lift installations with an off-center apparatus 19 for holding the lift car 5. In order to hold the lift car 5 in a stable position, the first torque must be compensated. For this, it is known how to transmit compensating forces 41 and 43 across a first roller 45 of the first pair of rollers 29 and a first roller 47 of the second pair of rollers 31 from the guide rail 3 to the lift car 5. This shall be explained below with the aid of
[0038] The lift installation 1 is designed as a so-called rucksack configuration. In this, guide rails are arranged only on one side of the lift car 5. Due to the representation,
[0039]
[0040]
[0041] All four rollers 45, 46, 47 and 48 are connected by an elastic connection element 55 to a mounting 57.
[0042] All four rollers 45, 46, 47 and 48 have a material on their running surface which dampens noise and vibration. For example, this is an elastomer coating 58.
[0043]
[0044]
[0045] The compensating devices 63 and 65 in the present case each comprise a support element 71, a control unit 73, an actuator 75 and a contact element 75. By the respective control unit 73, the two compensating devices 63 and 65 stand in signal communication with lift controls 79. The signal communication is indicated by the broken line.
[0046] When the lift car 5 comes to a stop, the lift controls 79 send a signal to the first compensating device 63 and the second compensating device 65. The signal is processed by the control units 73. These activate the two actuators 75, which thereupon extend by a travel. Thus, the actuator 75 of the first compensating device 63 generates a force 67 and the actuator 75 of the second compensating device 65 a force 69. The two forces 65 and 67 act across the contact elements 77 on the guide rail 3. Consequently, corresponding opposing forces act on the support elements 71. The two opposing forces together generate a second torque, which largely compensates for the first torque, so that the first roller 45 of the first pair of rollers 29 and the first roller 47 of the second pair of rollers 31 are largely relieved of loading.
[0047] In one variant, likewise represented, the first roller 45 of the first pair of rollers 29 comprises a sensor 50 for determining the force transmitted across the first roller 45. In this way, it can be directly measured whether a successful load relieving of the first roller 45 occurs. In addition to a pure checking, the sensor signal can also be used to regulate the force. For this, the first compensating device comprises a control unit 73, which stands in signal communication with the sensor 50 in order to generate from the signal of the sensor 50 a control signal for the compensating device 63. For example, the travel of the actuator 75 is increased until the first roller 45 is entirely relieved of loading. The signal communication is indicated in
[0048] Before the lift car 5 continues in its movement, the lift controls 79 send a signal to the first compensating device 63 and the second compensating device 65. The signal is processed by the control units 73. These then contract by a travel until the guide rail 3 no longer has any contact with the contact elements 77. The forces are once again taken up across the first roller 45 of the first pair of rollers 29 and the first roller 47 of the second pair of rollers 31 as shown in
[0049]
[0050]
[0051] The parking brake 85 likewise stands in signal communication with the lift controls 79. The parking brake 85 can be used to brake the lift car from its movement or also only to hold the braked lift car in the position of rest.
LIST OF REFERENCE NUMBERS
[0052] Lift installation 1 [0053] Guide rail 3 [0054] Lift car 5 [0055] Load-bearing frame 7 [0056] Interior car 9 [0057] Damping elements 11 [0058] Weight sensor 13 [0059] Payload 15 [0060] Weight (payload) 17 [0061] Apparatus 19 [0062] Retaining force 21 [0063] Supporting rope 23 [0064] Point at which the retaining force takes effect 25 [0065] Center of gravity 27 [0066] First pair of rollers 29 [0067] Second pair of rollers 31 [0068] Roller housing 32 [0069] Weight (total) 33 [0070] Weight (empty lift car) 35 [0071] Center of gravity (empty lift car) 37 [0072] Center of gravity (payload) 39 [0073] Compensating forces 41 [0074] Compensating forces 43 [0075] First roller (of first pair of rollers) 45 [0076] Second roller (of first pair of rollers) 46 [0077] First roller (of second pair of rollers) 47 [0078] Second roller (of second pair of rollers) 48 [0079] Linear motor 49 [0080] Sensor 50 [0081] Stationary component 51 [0082] Mobile component 53 [0083] Elastic connection element 55a, b, c, d [0084] Mounting 57 [0085] Elastomer coating 58 [0086] Load-deformed contact region 59 [0087] Load-deformed contact region 61 [0088] First compensating device 63 [0089] Second compensating device 65 [0090] Force 67 [0091] Force 69 [0092] Support element 71 [0093] Control unit 73 [0094] Actuator 75 [0095] Contact element 77 [0096] Lift controls 79 [0097] First extension 81 [0098] Second extension 83 [0099] Parking brake 85 [0100] Brake shoe 86 [0101] Brake shoe 87 [0102] Pressing force 88 [0103] Pressing force 89 [0104] Elastic element 91 [0105] Frame 93