Locking Device for a Rotatable Component
20200353853 ยท 2020-11-12
Inventors
Cpc classification
F16D41/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60N2/938
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A locking device for a component rotatably mounted on a bearing block, includes a lock mechanism for locking the component in different angular positions, and a switching mechanism for switching the lock mechanism between locking and release positions, the lock mechanism being a clamping lock mechanism including inner and outer rings, one held stationary on the bearing block and the other rotatably connected to the rotatable component with an annular gap therebetween, pairs of clamping bodies in the annular gap, a clamping contour on one ring and delimiting the gap, the clamping bodies and clamping contour being mirror-symmetrical, elastic spreading members between clamping bodies of each pair and prestress the clamping bodies into a clamping position, and a release element including release fingers which, in the release position, engage into intermediate spaces between pairs of clamping bodies and is rotatable together with the ring with the clamping contour.
Claims
1. A locking device for a component that is rotatably mounted on a bearing block, the device comprising: a lock mechanism for locking the component in different angular positions, and one of a manually actuated or motor-actuated switching mechanism for switching the lock mechanism between a locking position and a release position, wherein the lock mechanism is a clamping lock mechanism comprising: an inner ring and an outer ring, one of which is held stationary on the bearing block and the other of which is rotatably connected to the rotatable component and which together form an annular gap therebetween, a plurality of pairs of clamping bodies which are arranged in the annular gap, a clamping contour formed on one of the rings and which delimits the annular gap, wherein the arrangement of the clamping bodies and the shape of the clamping contour are mirror-symmetrical with respect to a plurality of axes of symmetry extending at uniform angular spacings, a plurality of elastic spreading members which are arranged between the clamping bodies of each pair and prestress the clamping bodies into a clamping position in the annular gap, and a release element including release fingers which, at least in the release position, engage into intermediate spaces between the pairs of clamping bodies and is rotatable together with the ring that forms the clamping contour.
2. The locking device according to claim 1, wherein the release element comprises two disks which both engage into the intermediate spaces between the pairs of clamping bodies with a respective said release finger and which are rotatable relative to one another between the locking position and the release position.
3. The locking device according to claim 1, wherein the release element is rigidly connected to the rotatable component and the switching mechanism is configured for: coupling, in the locking position, a release element non-rotatably to the ring that comprises the clamping contour and allowing, in the release position, a limited rotation of the release element relative to the ring.
4. The locking device according to claim 1, wherein the rotatable component is rotatable relative to the ring that forms the clamping contour within a restricted annular range, and the switching mechanism is configured for: coupling, in the release position, the release element non-rotatably to the rotatable component and allowing, in the locking position, a rotation of the release element relative to the rotatable component.
5. The locking device according to claim 1, comprising a remote control mechanism for actuating the switching mechanism.
6. The locking device according to claim 5, wherein the remote control mechanism comprises a flexible member.
7. The locking device according to claim 6, wherein the remote control mechanism that connects the switching mechanism to an actuating member is mounted on a member that is held on the rotatable component in a telescopically extensible manner.
8. An adjustable arm rest for vehicle seats, comprising a locking device according to claim 1.
9. The locking device according to claim 6, wherein the flexible member comprises a Bowden cable.
Description
[0014] Embodiment examples will now be described in conjunction with the drawings, wherein:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029] The clamping lock mechanism 12 has a switching mechanism 18 by which it can be switched between a locking position and a release position. Disposed on the distal end of the arm rest 10 is key 20 that is connected to the switching mechanism 18 by a remote control mechanism 22. In the example shown, the remote control mechanism comprises a Bowden cable 24.
[0030] When the user wants to change the inclination of the arm rest 10, she grips with her fingers around the front end of the arm rest and pulls the key 20 upwards. The actuating force is transmitted via the Bowden cable 24 to the switching mechanism 18 which thereupon switches the clamping lock mechanism 12 into the release position, so that the component 16 can freely be rotated relative to the bearing block 14 until the key 20 is released again. Upon release of the key 20, the clamping lock mechanism 12 is switched back into the locking position, so that the component 16 is clampingly held in the angular position that has been reached at that time, and the arm rest is locked in that new position.
[0031]
[0032] A first embodiment example of the clamping lock mechanism 12 will now be explained in conjunction with
[0033] The clamping lock mechanism 12 shown in
[0034] As can be seen more clearly in
[0035] As has been shown in
[0036] On the left side in
[0037] The outer disk 132 has a central bore 140 that is penetrated by the shaft 116, and it has, at its inner peripheral edge, a hub with which it is rotatably supported in the bore 138 of the inner disk 130. The outer peripheral edge of the inner disk 130 reaches up to the circle of pins 118 but has, at the position of three of these pins, a respective recess 142 that extends in circumferential direction (hidden in
[0038] The outer disk 132 has three radially projecting arms 144 each of which has at its free end a recess 146 that corresponds to the recess 142, so that the angle of rotation of the disk 132 relative to the ring 110 is also restricted. This also restricts the possible angle of rotation of the two disks 130, 132 relative to one another.
[0039] Each of the arms 144 of the outer disk 132 is accommodated in a shallow recess 148 of the inner disk 130, so that the outer surfaces of the two disks 130, 132 are flush with one another.
[0040] The switching mechanism 18 serves for rotating the two disks 130, 132 of the release element 128 relative to one another. In the example shown, in order to form the switching mechanism, an outer sheath of the Bowden cable 24 is fixed at the inner disk 130, and an inner wire of the Bowden cable is fixed at the outer disk 132. Disposed between the fixing points of the outer sheath and the inner wire is a compression spring 154 that urges the two disks 130, 132 into the relative angular position shown in
[0041] If, however, the Bowden cable 124 is actuated and the compression spring 154 is compressed thereby, then the two disks 130, 132 are rotated into a release position as shown in
[0042] If a torque, e.g. in clockwise direction in
[0043] The embodiment example that has been described above can be modified in various ways.
[0044] At first, it will be understood that it is not essential for the function of the clamping lock mechanism whether the shaft 16 and the inner ring 112 are stationary and the component 16 and the outer ring 110 are rotatable or vice versa. It is only essential that the disks 130, 132 of the release element are coupled, though with a certain play, to the ring 110 that forms the clamping contour 124.
[0045] In another embodiment, however, the clamping contour could be formed on the inner ring 112 rather than the outer ring 110. In that case, the disks of the release element would be coupled with the inner ring 112 such that they could be rotated only by a restricted angle relative to the inner ring 112.
[0046]
[0047] The annular gap 214 accommodates six pairs of clamping bodies 222 (rollers or balls) that are in sliding engagement with the outer peripheral surface of the inner ring 212 and with the inner peripheral surface of the outer ring 210. Whereas the inner ring 212 has a cylindrical outer periphery, the inner periphery of the outer ring 210 constitutes a non-circular clamping contour 224 which, in the example shown, takes the form of a regular hexagon with the corners slightly rounded off. The clamping contour 224 thus has six axes of symmetry intersecting each other in the center of the clamping lock mechanism at angles of 60. The clamping bodies 222 of each pair are respectively arranged mirror-symmetrically with respect to these axes of symmetry, and in each corner of the hexagon, an elastic spreading member 226 is arranged between the clamping bodies 222 for urging the two clamping bodies apart and into tapering zones of the annular gap 214. When, now, a torque acts onto the component 16 and, therewith, onto the outer ring 210, the six sides of the hexagonal clamping contour 224 respectively run onto one of the two clamping bodies 222 of each pair, whereby this clamping body is brought into a clamping position and blocks a relative rotation of the rings 210, 212 irrespective of the direction of rotation. In this way, the component 16 is clampingly held in the angular position to which it has been adjusted.
[0048] The clamping lock mechanism has a release element 228 that has only been shown incompletely in
[0049] As has been shown in
[0050] Just as the switching mechanism 18 in
[0051] In
[0052] In
[0053] When, however, the coupling member 234 is lifted into the position shown in
[0054] If, now, a torque acts upon the component 16 while the coupling member 234 is in the position shown in
[0055] As soon as the torque is cancelled in the position that the component 16 has reached, the elastic restoring forces of the spreading members 226 assure that the release fingers 230 and the recesses 240 in the projections 238 are re-aligned in circumferential direction with the rivets 218, so that the coupling member 234 can again be pressed closer against the release element 228 and, consequently, the projections 238 come again into engagement with the heads of the rivets 218, and the locked position as shown in
[0056] As can be seen in
[0057] However, the lever 242 can be pivoted in counter-clock sense against the force of the tension spring 248 by the remote control mechanism 22, whereby the coupling member 234 is drawn into the release position shown in
[0058] Since the component 16 is not rotated relative to the coupling member 234 and the release member 228 in this embodiment, the remote control mechanism 22 may also be rigid, e.g. in the form of a rigid actuating rod.
[0059] In the embodiment shown here, the clamping contour 224 is formed on the outer ring 210, and the release element 228 is adapted to be coupled to the ring 210. In another embodiment, however, the clamping contour could also be formed on the inner ring 212 rather than on the outer ring 210. In that case, the release element would be adapted to be coupled to the inner ring 212.
[0060]
[0061] The annular gap 314 accommodates five pairs of clamping bodies 322 (rollers or balls) that are in sliding engagement with the outer peripheral surface of the inner ring 312 and with the inner peripheral surface of the outer ring 310. Whereas the outer ring 312 has a cylindrical inner periphery, the outer periphery of the inner ring 310 constitutes a non-circular clamping contour 324 which, in the example shown, takes the form of a regular pentagon with the corners slightly rounded off. The clamping contour 324 thus has five axes of symmetry intersecting each other in the center of the clamping lock mechanism at angles of 72. The clamping bodies 322 of each pair are respectively arranged mirror-symmetrically with respect to these axes of symmetry, and in each corner of the pentagon, an elastic spreading member 326 is arranged between the clamping bodies 322 for urging the two clamping bodies apart and into tapering zones of the annular gap 314.
[0062] The component 16 is keyed onto an end of the shaft 316 that projects from the ring 312 such that it can be rotated in a restricted angular range relative to the shaft and, beyond that, can be rotated only jointly with the shaft 316. The component 16 is rotatably supported on the bearing block 14 by means of the clamping lock mechanism and optionally by means of additional bearings.
[0063] When, now, a torque acts upon the component 16 and, therewith, upon the inner ring 312, the five sides of the clamping contour 324 run respectively onto one of the two clamping bodies 322 of each pair, whereby this clamping body is brought into a clamping position and locks the rings 310, 312 against relative rotation, irrespective of the direction of rotation. In this way, the component 16 is clampingly held in the position to which it has been adjusted.
[0064] The clamping lock mechanism further has a disk-shaped release element 330 that is disposed in a plane offset from the rings 310, 312 and has release fingers 332 engaging into the interstices between the pairs of clamping bodies 322. In
[0065]
[0066] When the clamping lock mechanism is to be switched into the release position, the remote control mechanism 22 is used for moving the latch 336 radially inwards, such that its head enters into the catch 340. In this way, the release element 330 is rigidly locked to the component 16. If, in this condition, a torque acts upon the component 16, this component can rotate relative to the shaft 316 and the inner ring 312 in the restricted angular range but entrains the release element 330, so that the release fingers 332 thereof press respectively on one of the clamping bodies 322 of each pair and keep this clamping body away from the clamping position. The clamp action thus being cancelled, the inner ring 312 can rotate together with the clamping bodies and the release element, so that the component 16 can continuously be adjusted into the desired angular position. When no torque acts upon the component 16 any longer, the elastic spreading members 326 assure that the clamping bodies 322 are urged back into the clamping position, whereby the release element 330 is held in the angular position in which the catch 340 remains aligned with the latch 336. Then, the latch 336 can be withdrawn from the catch 340 in order to lock the component 316 again, and it can smoothly be inserted into the catch 340 again, if a new angular adjustment of the component 16 is desired.
[0067] The latch 336 may also be biased elastically into its radially outward terminal position so that, when the actuating mechanism is released, it retreats automatically from the catch 340 and holds the clamping lock mechanism in the locking position.
[0068] The embodiment described above can be modified in various ways.
[0069] For example, the release element 330 may have, in place of the single catch 340 at its peripheral edge, a plurality of catches or a toothed rim into which a suitably adapted latch may engage. The latch may also be formed at an end of a pivotable pawl.
[0070] While the clamping contour 324 is formed on the inner ring 312 in the example shown, other embodiments are possible in which the clamping contour is formed on the outer ring 310. In that case, the component 16 and the release element 330 would be coupled to the outer ring 310 and would be rotatable relative to this ring only in a restricted angular range, whereas the inner ring 312 would be held rigidly on the bearing block 14.