Device and method for supporting and guiding a hauling cable of a vehicle transportation installation by cable
11745770 · 2023-09-05
Assignee
Inventors
Cpc classification
B61B12/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Device for supporting and guiding a hauling cable of a vehicle transportation installation by cable, including a sheave configured for supporting and guiding the hauling cable, a first girder provided with a main axis, a second girder supporting the sheave and mounted pivotally movable around the main axis, at least one recovery element mounted on the first girder, and at least one cooperating element mounted on the second girder at a distance from said at least one recovery element in a normal operating state where the second girder swivels around the main axis, and configured to be in contact with said at least one recovery element in an abnormal operating state corresponding to failure of the main axis.
Claims
1. A device for supporting and guiding a hauling cable of a vehicle transportation installation by cable, comprising: a sheave configured for supporting and guiding the hauling cable; a first girder provided with a main axis and two first flanges, the main axis passing through the two first flanges and defining a pivot axis; a second girder supporting the sheave and mounted pivotally movable around the main axis, the second girder being provided with two second flanges; at least one recovery element mounted on the first girder and configured to catch hold of the second girder in an abnormal operating state corresponding to failure of the main axis; and at least one cooperating element mounted on the second girder at a distance from said at least one recovery element in a normal operating state where the second girder swivels around the main axis, said at least one cooperating element being configured to be in contact with said at least one recovery element in the abnormal operating state, wherein: the at least one recovery element and the at least one cooperating element are facing along a vertical axis; and either: one of the at least one recovery element and the at least one cooperating element is an at least one protruding element arranged protruding from at least one of the two first flanges along a direction parallel to the pivot axis and wherein the other of the at least one recovery element and the at least one cooperating element is a housing formed by at least one of the two second flanges and designed to receive the at least one protruding element; or one of the at least one recovery element and the at least one cooperating element is an at least one protruding element arranged protruding from at least one of the two second flanges along a direction parallel to the pivot axis and wherein the other of the at least one recovery element and the at least one cooperating element is a housing formed by at least one of the two second flanges and designed to receive the at least one protruding element.
2. The device for supporting and guiding according to claim 1, wherein said at least one recovery element and said at least one cooperating element are shaped so as to allow swivelling of the second girder in the abnormal operating state.
3. The device for supporting and guiding according to claim 1, wherein said at least one cooperating element corresponds to a cooperating part mounted salient from the second girder and said at least one recovery element corresponds to a recovery housing formed on the first girder and configured to receive the cooperating part in the abnormal operating state.
4. The device for supporting and guiding according to claim 1, wherein said at least one cooperating element corresponds to a cooperating housing formed on the second girder and said at least one recovery element corresponds to a recovery part mounted salient from the first girder and configured to be inserted in the cooperating housing in the abnormal operating state.
5. The device for supporting and guiding according to claim 1, wherein the second girder is situated between the two first flanges.
6. The device for supporting and guiding according to claim 5, wherein the at least one protruding element is a cylindrical axis fixed to the two second flanges and protruding form opposite sides of the second girder and wherein each of the two first flanges defines a housing designed to receive one of opposite ends of the cylindrical axis when failure of the main axis occurs.
7. The device for supporting and guiding according to claim 5, wherein the protruding element is a cylindrical axis connecting the two first flanges and wherein each of the two second flanges defines a housing designed to receive one of opposite ends of the cylindrical axis when failure of the main axis occurs.
8. The device for supporting and guiding according to claim 5, wherein the at least one cooperating element comprises a cylindrical axis fixed to the two second flanges and protruding form opposite sides of the second girder, the cylindrical axis having a first end protruding from the second girder to form a first protruding element, wherein the at least one cooperating element comprises a first housing protruding from one of the two second flanges opposite the first protruding element; wherein the at least one recovery element comprises a second housing formed by one of the two first flanges and facing the first protruding element and comprises a second protruding element facing the first housing.
9. The device for supporting and guiding according to claim 1, wherein the two first flanges delimit an inner space between the two first flanges, and the second girder is situated outside the inner space, and wherein the at least one protruding element protrudes from only one first flange or second flange.
10. The device for supporting and guiding according to claim 9, wherein the housing extends toward the protruding element in the direction parallel to the pivot axis.
11. The device for supporting and guiding according to claim 1, wherein the main axis is hollow.
12. The device for supporting and guiding according to claim 1, wherein the second girder is provided with two stop screws and a rotation axis, the sheave is mounted movable in rotation around the rotation axis, and the two stop screws are shaped so as to allow rotation of the sheave around the rotation axis in the normal operating state and to be in contact with the sheave in a broken state corresponding to breaking of the rotation axis.
13. A method for supporting and guiding a hauling cable of a vehicle transportation installation by cable, the installation comprising a sheave configured for supporting and guiding the hauling cable, a first girder provided with a main axis, and a second girder supporting the sheave and mounted pivotally movable around the main axis, the method comprising: swivelling of the second girder around the main axis in a normal operating state, at least one recovery element being mounted on the first girder and at least one cooperating element being mounted on the second girder at a distance from said at least one recovery element in the normal operating state, and wherein said at least one cooperating element comes into contact with said at least one recovery element in an abnormal operating state corresponding to failure of the main axis.
14. A device for supporting and guiding a hauling cable of a vehicle transportation installation by cable, comprising: a sheave configured for supporting and guiding the hauling cable; a first girder provided with a main axis and two first flanges, the main axis passing through the two first flanges and defining a pivot axis; a second girder supporting the sheave and mounted pivotally movable around the main axis, the second girder being provided with two second flanges; and a rotation axis connecting the sheave to the second girder, the rotation axis passing through the sheave, the sheave rotating around the rotation axis; wherein the sheave defines a recess around the rotation axis and wherein a pin is fixed to one of the two second flange and inserts into the recess to catch hold the sheave to the second girder when failure of the rotation axis occurs.
15. A device for supporting and guiding a hauling cable of a vehicle transportation installation by cable, comprising: a sheave configured for supporting and guiding the hauling cable, the sheave defining an annular trench on each side of the sheave; a rotation axis passing through the sheave, the sheave being mounted rotatable around the rotation axis; a first girder provided with a main axis and two first flanges, the main axis passing through the two first flanges and defining a pivot axis; a second girder supporting the sheave and mounted pivotally movable around the main axis, the second girder being mounted rotatable around a rotation axis; two stop screws mounted on the second girder and configured to catch hold of the sheave in an abnormal operating state corresponding to failure of the main axis, the two stop screws being inside the annular trenches; and the two stop screws being at a distance from said sheave in a normal operating state, said two stop screws being configured to be in contact with said sheave in the abnormal operating state; wherein each of the two stop screws and the sheave are facing along a vertical axis.
Description
DESCRIPTION OF THE DRAWINGS
(1) Other advantages and features will become more clearly apparent from the following description of particular embodiments and implementation modes of the invention given for non-restrictive example purposes only and represented in the appended drawings, in which:
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DETAILED DESCRIPTION
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(21) In general manner, device 1 comprises at least one sheave 3 and at least two girders 4 to 14. Device 1 is designed to support hauling cable 2, more particularly device 1 provides a support and a guide for the cable 2. Hauling cable 2 rests on sheaves 3 which are configured for supporting and guiding the hauling cable 2. Girders 4 to 14 each comprise at least one axis 15 to 25. The installation further comprises a fixed support structure 27 and girders 4 to 14 are articulated with respect to support structure 27. A first set of axes 15 to 23 and 25, called main axes, enable girders 4 to 14 to be articulated on one another and with respect to support structure 27. Main axes 15 to 23 and 25 can be solid or hollow. A second set of axes 24, noted rotation axes, enable sheaves 3 to be articulated on a girder 9 to 14. In other words, sheaves 3 are mounted movable in rotation respectively around rotation axes 24. Preferentially, rotation axes 24 are mounted in fixed manner on girders 9 to 14.
(22) In general manner, device 1 comprises at least one girder 4 to 8, called primary girder, equipped with at least one main axis 15 to 23 and 25. Device 1 further comprises at least one girder 9 to 14, called secondary girder, supporting at least one sheave 3. A secondary girder 9 to 14 is mounted pivotally movable around a main axis 19 to 23 and 25 mounted on a primary girder 6 to 8. Primary girders 4 to 8 can further be mounted in fixed manner on support structure 27 or be mounted pivotally movable around other main axes 15 to 18. Preferably, main axes 15 to 23 and 25 are mounted in fixed manner on primary girders 4 to 8 and rotation axes 24 are mounted in fixed manner on secondary girders 9 to 14. A specific primary girder 4 is also called support girder as it is mounted pivotally movable around a support axis 26. Support axis 26 is mounted in fixed manner on support structure 27.
(23) For example, as illustrated in
(24) Fifth primary girder 8 comprises two main axes 20, 21 around which a third secondary girder 11 and a fourth secondary girder 12 are respectively mounted in pivotally movable manner.
(25) Third primary girder 6 comprises two main axes 22, 23 around which a fifth secondary girder 13 and a sixth secondary girder 14 are respectively mounted in pivotally movable manner.
(26) In general manner, sheaves 3 are mounted movable in rotation respectively around rotation axes 24 and girders 4 to 14 are mounted pivotally movable with respect to one another. What is meant by “mounted movable in rotation” is an element that is able to accomplish one or more full rotations around an axis. What is meant by “mounted pivotally movable” is an element that is able to accomplish a part of a rotation through less than 360° in one direction of rotation or the other.
(27) More particularly, device 1 comprises at least one recovery element 30 to 39 and at least one cooperating element 40 to 47. A recovery element 30 to 39 is designed to cooperate with a cooperating element 40 to 47 in an abnormal operating state of the device in order to guarantee support and guiding of the hauling cable. An abnormal operating state of device 1 corresponds to wear, or even exceptionally breaking, of a main axis 15 to 23 and 25. In general manner, at least one recovery element 30 to 39 is mounted on a first girder and at least one cooperating element 40 to 47 is mounted on a second girder. In particular, a cooperating element 40 to 47 is mounted at a distance from a recovery element 30 to 39 in a normal operating state of device 1. In other words, cooperating element 30 to 39 is not in contact with a recovery element in the normal operating state. What is meant by normal operating state is the situation where the second girder swivels around main axis 15 to 23 and 25 mounted on the first girder. More particularly, recovery element 30 to 39 is configured to catch hold of the second girder and cooperating element 40 to 47 is configured to come into contact with recovery element 30 to 39 in the abnormal operating state.
(28) Advantageously, a recovery element 30 to 39 and a cooperating element 40 to 47 are shaped so as to allow swivelling of the second girder in the abnormal operating state. Thus, when cooperating element 40 to 47 comes into contact with the recovery element 30 to 39, the second girder can still swivel and guarantee the function of support and guiding of device 1. In other words, in the abnormal operating state, the second girder is moved by pressing of hauling cable 2 and cooperating element 40 to 47 moves towards recovery element 30 to 39. In a limit situation of the abnormal operating state, cooperating element 40 to 47 comes into contact with recovery element 30 to 39.
(29) For example, a cooperating element 40 to 47 can be a cooperating part 40, 44, 45, 46, 47 mounted salient from the second girder and recovery element 30 to 39 corresponds to a recovery housing 30, 34 formed on the first girder and configured to receive cooperating part 40, 44, 45, 46, 47 in the abnormal operating state.
(30) As a variant, cooperating element 40 to 47 corresponds to a cooperating housing 41, 42, 43 formed on the second girder and recovery element 30 to 39 corresponds to a recovery part 31, 32, 33, 35 to 39 mounted salient from the first girder and configured to be inserted in cooperating housing 41, 42, 43 in the abnormal operating state.
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