COUPLING FOR A BELT TIGHTENER
20170136987 · 2017-05-18
Inventors
Cpc classification
B60R2022/468
PERFORMING OPERATIONS; TRANSPORTING
B60R2022/4695
PERFORMING OPERATIONS; TRANSPORTING
F16D41/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60R22/46
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In a coupling (18) for a belt tensioner (10) in a vehicle comprising an input element (26), an output element (34), a coupling element (28) which is movably supported between an initial position and an activated position and in the activated position couples the input element (26) to the output element (34), and a control element (36) which upon movement of the input element (26) relative to the control element (36) moves the coupling element (28) between the initial position and the activated position, the control element (36) is coupled to an inertia mass (36).
Claims
1-9. (canceled)
10. A coupling (18) for a belt tensioner (10) in a vehicle, comprising an input element (26), an output element (34), a coupling element (28) which is movably supported on the input element (26) between an initial position and an activated position and in the activated position couples the input element (26) to the output element (34), and comprising a control element (36) which upon movement of the input element (26) relative to the control element (36) moves the coupling element (28) between the initial position and the activated position, wherein the control element (36) is coupled to an inertia mass (44) having a high mass.
11. The coupling according to claim 10, wherein the input element (26) and the control element (36) are disk-shaped or ring-shaped and are supported to be rotatable about a joint axis.
12. The coupling according to claim 10, wherein the input element (26) and the control element (36) are coupled to each other via a spring element (38), wherein the spring element (38) is biased in the activated position of the coupling element (28).
13. The coupling according to claim 10, wherein the inertia mass (44) is ring-shaped and encloses the control element (36) in the circumferential direction.
14. The coupling according to claim 10, wherein the control element (36) is pressed against the inertia mass (44) especially by spring load.
15. The coupling according to claim 14, wherein the control element (36) is formed by a discontinuous ring which is forced apart by spring load.
16. The coupling according to claim 10, wherein the coupling element (28) is a coupling pawl which in the activated position engages in a toothing (32) on the output element (34).
17. The coupling according to claim 16, wherein the coupling element (28) is moved from radially outside against the toothing (32) of the output element (34) into the activated position.
18. The coupling according to claim 10, wherein the control element (36) and/or the inertia mass (44) include a toothing for engagement of a control lever (48).
Description
BRIEF DESCRIPTION OF THE INVENTION
[0021] Further advantages and features will be evident from the following description in combination with the enclosed drawings, in which;
[0022]
[0023]
[0024]
[0025]
[0026]
DESCRIPTION
[0027] In
[0028] The drive 16 includes a drive motor 20 having a motor gearwheel 22 coupled to a spur gear unit 24. The spur gear unit 24 is coupled to an input element 26 of the coupling 18. The input element 26 is formed by a disk (cf, also
[0029] Moreover, at the input element 26 a coupling element 28, a coupling lever in the embodiment shown here, is provided which is movable from an initial position shown in
[0030] As is evident especially from
[0031] In the activated position the coupling element 28 is engaged in the toothing 32 of the output element 34 which is coupled to the belt shaft 35 of the belt reel 12 and is rotatable about the axis 27 thereof. When the coupling element 28 is provided in the activated position, the coupling element 28 engages in the toothing 32 and couples the output element 34 to the input element 26. In this way the output element 34 and thus the belt reel 12 can be moved by the drive 16 in the direction of rotation D and the webbing 14 can be wound onto the belt reel 12 (
[0032] The teeth 29 include an undercut so that the teeth 29 can be released from the toothing 32 only in the case of an opposite rotation of the output element 34. Hence in the activated position the coupling element 28 is reliably coupled to the output element. The coupling element 28 can be released only when there is no force acting on the input element and the output element.
[0033] For moving the coupling element 28 from the initial position to the activated position there is provided a control element 36 formed by a discontinuous ring which is supported rotatably relative to the input element about the axis 27. The control element 36 is coupled to the input element 26 via a spring element 38, with the spring element 38 being substantially unloaded in the initial position of the coupling element as shown in
[0034] At the control element 36 an activating geometry 40 is provided which upon movement of the input element 26 and thus also of the coupling element 28 supported on the input element, moves the coupling element 28 relative to the control element to the activated position (
[0035] As is evident especially in
[0036] When the input element 26 is accelerated by the drive 16 in the direction of rotation D, the large mass causes the inertia mass 44 to lag behind the movement of the input element 26. The control element 36 coupled to the inertia mass 44 equally lags behind the movement of the input element 26 along with the inertia mass 44, wherein the spring element 38 is tensioned (
[0037] Due to the movement of the input element 26 relative to the control element 36, the coupling element 28 gets into contact with the activating geometry 40. The activating geometry 40 includes an inclined contact surface 41 against which the coupling element 28 abuts. Upon further rotation of the control element 36 in the direction of rotation D, the coupling element is urged radially inwardly by said contact face until the teeth 29 engage in the toothing 32 of the output element 34. In such activated position the input element 26 is coupled to the output element 34. In the case of further rotation of the input element 26, the output element 34 and thus the belt reel 12 are moved in the direction of rotation D, with the webbing 14 being tensioned (
[0038] As is evident from
[0039] Upon completion of the tensioning operation the drive 16 is deactivated so that no force is exerted on the input element 26 and thus on the coupling 18, The spring element 38 moves the control element 36 and hence the inertia mass 44 to the original position vis--vis the input element 26, with the coupling element 28 being returned to the initial position by the disengaging geometry 44.
[0040] Hence, the input element 26 is uncoupled from the output element 34 automatically after completion of the tensioning operation without any additional control being required. The drive 16 and, resp., the control for the drive 16 thus may be designed in a substantially simpler manner, as the input element 26 need not be rotated into the opposite direction or any pawl for the control element 36 need to be removed so as to move the control element 36 relative to the input element 26. This operation is carried out by the spring element 38 biased during the coupling operation. The output element 34 is moved by the belt winding spring (not shown) in the retracting direction D so that the coupling element 28 may be released from the undercut. Reversing the direction of rotation of the drive is not required, nor is any reversal of the direction of rotation or polarity reversal of the motor required.
[0041] In addition, for activating the coupling 18 and thus of the belt tensioner 10 no active control and, resp., no additional control lever are required apart from the activation of the drive 16.
[0042] As is evident from
[0043] In the embodiment shown here the input element 26 and the control element 36 are disk-shaped or ring-shaped and are rotatably supported about a joint axis, in this case the axis 27 of the belt reel 12. This renders the coupling very compact so that it may be employed even in the case of small constructed space. Irrespective thereof, the input element 26 and the control element 36 may have any design, as long as it is ensured that the coupling element 28 is moved to the activated position by a movement of the input element 26 relative to the control element 36.
[0044] The inertia mass 44 in this embodiment is equally ring-shaped, thus causing the same to have a very high mass inertia moment. Irrespective thereof, the inertia mass 44 may have any design, as long as the inertia mass 44 is ensured to be sufficiently large so that the control element 36 lags behind the input element 26 when the latter is accelerated. The inertia mass 44 may be adjusted to the desired acceleration at which the coupling 12 is intended to be activated.