DEVICE FOR TENSIONING A BOWDEN CABLE OF A CABLE-OPERATED WINDOW LIFTER
20210324669 · 2021-10-21
Assignee
Inventors
Cpc classification
F16C1/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A device for compensating cable play within a cable window-lifter, including a cable including at least one section with a Bowden, the device including a cable-guiding element configured to receive an end of the Bowden, mounted in an axially displaceable manner in a receptacle, the device including a spring arranged between a supporting surface of the receptacle and a head of the cable-guiding element, configured to keep the cable under tension and thereby compensating cable play, where stop surfaces are provided on the cable-guiding element and on the receptacle, which can engage with each other during the loading of the cable and thereby stop further compensation of the spring, and where an elastic material damping the stop noises is arranged between the stops.
Claims
1. A device for compensating for cable play within a cable window lifter, including a cable including at least one section with a Bowden, the device including a cable-guiding element configured to receive an end of the Bowden, mounted in an axially displaceable manner in a receptacle, the device including wherein a spring arranged between a support surface of the receptacle and a head of the cable-guiding element, configured to keep the cable under tension, stop surfaces on the cable-guiding element and on the receptacle, configured to engage with one another when a load is applied to the cable and thereby preventing further compensation of the spring, the device including an elastic, stop noise damping material is arranged between the stop surfaces, the device comprising: first and second pair of stops between the cable and the receptacle configured such that in the case of a cable force exceeding a tensioning force of the spring, the first pair of stops engage an intermediate damper, and after a predetermined length of compression of the damper, the second pair of stops engage with each other, and wherein the second pair of stops are harder than the first pair of stops.
2. The device according to claim 1, wherein the stops of the first pair of stops are designed by an outer edge of a spring housing and by surface facing a head of the cable guide element facing an outer edge.
3. The device according to claim 1, wherein the damping element arranged between the stops of the first pair of stops is designed as a separate element out of elastomer or out of rubber.
4. The device according to claim 1, wherein the damping element arranged between the stops of the first pair of stops is injection-molded by 2-component injection molding technology to the cable guiding element or to a free edge of the spring housing of the receptacle.
5. The device according to claim 2, wherein the damping element arranged between the stops of the first pair of stops is designed as an integral component of the spring housing.
6. The device according to claim 5, wherein the spring housing defines a clearance, so that a resilient section extends between the lateral supports and configured to act as a damping element, wherein a protrusion integrally designed on the head is configured to act on the damping element, until areas of the head laterally adjoining the protrusion rest on the stop surfaces of the stops of the lateral supports, wherein the lateral supports are non-elastic.
7. The device according to claim 1, wherein the stops of the second pair of stops are formed by an inner stop protruding on an inner channel of the receiving element and a free end of an inner guide shaft of the cable guiding element.
8. The device according to claim 7, wherein the inner stop or the free end of the inner guide shaft includes a damping element, having a much lower elasticity and a much higher limiting continuous thermal withstand power than the other damping element.
9. The device according to claim 1, wherein the receptacle is a component of a cable outlet housing of a window lifter drive or a mounting element, including a mounting plate of a door module.
10. Device according to one of the preceding claims, wherein a kinematical reversal occurs when the elastic stop is arranged in an area of the second pair of stops and the less elastic and/or harder stop is arranged in the area of the first pair of stops.
11. A window lifter assembly comprising: a cable outlet housing defining a cable channel configured to receive a cable; a cable guiding element including a head, an inner guide shaft, and an outer guide shaft extending between the head and the inner guide shaft, wherein a portion of the head forms a first stop and wherein a portion of the inner guide shaft forms a second stop; a receiving element defining an inner guide shaft channel wherein the inner guide shaft channel terminates at the cable shaft channel to form a third stop arranged to engage the second stop; a spring housing extending from the receiving element, wherein a portion of the spring housing forms a fourth stop; a spring disposed in the spring housing, wherein the spring defines a spring rate configured to apply tension to the cable; and a damping element disposed between the first stop and the fourth stop.
12. The window lifter assembly of claim 11, wherein when a first force is applied to the cable, the first stop and the fourth stop compress the damping element.
13. The window lifter assembly of claim 12, wherein when a second force, greater than the first force, is applied to the cable, the second stop engages the third stop.
14. The window lifter assembly of claim 11, wherein the damping element is attached to the head of the cable guiding element.
15. The window lifter assembly of claim 14, wherein the damping element is integrally formed with the head by a 2-component injection molding process.
16. The window lifter assembly of claim 11, wherein the spring housing includes a support surface and axially extending supports extending therefrom and wherein the damping element extends from the axially extending supports.
17. A window lifter assembly comprising: a cable outlet housing defining a cable channel configured to receive a cable; a cable guiding element including a head and a tapered shaft extending from the head to a free end; a receiving element defining an inner guide shaft channel wherein the inner guide shaft channel terminates at the cable shaft channel to form an inner stop; a spring housing extending from the receiving element; a spring disposed in the spring housing, wherein the spring defines a spring rate configured to apply tension to the cable; and a first damping element disposed between the head and the spring housing.
18. The window lifter assembly of claim 17, wherein a first predetermined force is applied to the cable the first damping element is partially compressed.
19. The window lifter assembly of claim 18, wherein when a second force, greater than the first force, is applied to the cable, the first damping element is fully compressed and the free end engages the inner stop.
20. The window lifter assembly of claim 19, further comprising a second damping element disposed between the free end of the cable guiding element and the inner stop.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0022] DE 20 2007 007 032 U1 and DE 198 52 977 C1 disclose generic devices for Bowden window lifters with a cable-guiding element accommodating a Bowden tube end, which is moveably embedded in a base-side receiving element and is initially tensioned elastically by at least one compression spring against the Bowden tube end. Provided that the cable force exceeds the maximum tensioning force of the compression spring, for example, when approaching the closed position of the window, the cable-guiding element is moved axially in the receiving element, until it encounters an associated stop or the spring reaches the blocked state.
[0023] When reaching the block state and/or a stop, there regularly appear sounds, which should be avoided or at least dampened.
[0024] In DE 20 2008 011 934 U1 a cable-guiding element is described, which includes a combination of two materials, wherein one of the two materials may include a comparatively more elastic material and is suitable to make a noise-damping stop.
[0025] However, it has proved disadvantageous, in that the stability of the elastic component cannot be ensured over a sufficiently long period of time. When the elastic material in the blocked state of the window lifter, i.e. in the closed position of the window pane, remains compressed for a long period of time and is exposed to elevated temperatures at the same time, it arrives at a so-called setting of the material. As a result, the material thickness decreases and the material hardens.
[0026] The effectiveness of the damper therefore decreases noticeably.
[0027] One or more embodiments of the present disclosure may provide a permanently good damping effect of the elastic material that may be maintained even when the system—in which the device for compensating the cable is integrated—for a comparatively long period of time, and under unfavorable thermal conditions.
[0028]
[0029] The cable-guiding element 3 has an inner guide shaft 30, over which the cable-guiding element 3 in the channel 14 of the receiving element 1a is moveably guided. On the inner guide shaft 30, an outer shaft 31 is connected, on which a helically wound compression spring 35 is superimposed. The outer free end of the cable-guiding element 3 constitutes a head 32, on whose facing surface an elastic damping element 33 is arranged for receiving.
[0030] In the assembled state (see
[0031] The section of
[0032] The illustrations of
[0033]
[0034] The dimensioning was made such that the deflection of the springy partition 33a corresponds to the axial dimension of the projection 32a of the head 32 and thereby no overloading of the damping element 33a may occur. Once the maximum elastic deformation of the damping element 33a is achieved, the stop surfaces above the side supports 11b engage with the associated surfaces of the head 32 laterally of the projections 32a, thus preventing overloading of the integrated damping elements 33a.
[0035] In the present embodiment, a further pair of stops 10, 300 is provided (but not necessarily required), analogously to the already described variant according to
LIST OF REFERENCE NUMBERS
[0036] 1 Housing, Cable outlet housing [0037] 1a Receiving element for the cable-guiding element 3 [0038] 10 Inner receiving element [0039] 11 Spring housing [0040] 11a Recess [0041] 11b Lateral supports [0042] 12 Outer stop; free edge of the spring housing 11 [0043] 13 Support surfaces for spring 35 [0044] 14 Inner channel [0045] 15 Cable channel [0046] 16 Cable drum housing [0047] 17 Bearing pin [0048] 18 Mounting dome [0049] 100 Gap [0050] 2 Cable drum [0051] 3 Cable-guiding element [0052] 30 Inner guide shaft [0053] 30a Cable channel of the guide shaft [0054] 31 Outer guide shaft [0055] 32 Head [0056] 32a Protrusion [0057] 33 Spring-elastic damping element, separately designed [0058] 33a Spring-elastic damping element, integrated [0059] 34 Bowden cable-Receiving element [0060] 300 Free end [0061] 4 Cable [0062] 40 Bowden tube