This application is a U.S. National Stage Entry of International Patent Application Serial Number PCT/EP2016/068969, filed Aug. 9, 2016, which claims priority to German Patent Application No. DE 10 2015 216 536.1, filed Aug. 28, 2015, the entire contents of both of which are incorporated herein by reference.
The present disclosure generally relates to steering columns, including clamping devices of adjustable steering columns in motor vehicles.
With regard to clamping devices for steering columns, a problem arises that an actuation lever which is connected to the clamping pin in a rotationally secure manner has, in the event of a movement in the closure direction, to apply the force which is required for clamping the clamping jaws. In the event of a movement of the clamping lever in the opening direction, the forces mentioned act in the opposing direction on the actuation lever which can therefore release itself from the grip of the operator and can strike a stop in the opening direction. The service-life of the clamping device is thereby reduced and noises which are perceived to be unpleasant occur.
In order to prevent the problem mentioned, damping devices which damp the movement of the actuation lever from the closure position into the opening position and which prevent disruptive noises are known.
EP 2 738 062 A2 discloses a damping device in which a cam member which is arranged on a clamping pin during the movement into the open lever position further pretensions a weight compensation spring of the steering column and consequently carries out a damping operation. The disadvantage of this solution is that the damping is dependent on the height adjustment position since the weight compensation spring is pretensioned to different extents in different height adjustment positions.
DE 20 2012 102 159 U1 discloses a damping device with a fluid damper. The disadvantage of this is the complex construction and the use of fluid.
Thus a need exists for an improved damping device for a clamping device of a steering column which has a simple and cost-effective construction.
Although certain example methods and apparatus have been described herein, the scope of coverage of this patent is not limited thereto. On the contrary, this patent covers all methods, apparatus, and articles of manufacture fairly falling within the scope of the appended claims either literally or under the doctrine of equivalents. Moreover, those having ordinary skill in the art will understand that reciting ‘a’ element or ‘an’ element in the appended claims does not restrict those claims to articles, apparatuses, systems, methods, or the like having only one of that element, even where other elements in the same claim or different claims are preceded by ‘at least one’ or similar language. Similarly, it should be understood that the steps of any method claims need not necessarily be performed in the order in which they are recited, unless so required by the context of the claims. In addition, all references to one skilled in the art shall be understood to refer to one having ordinary skill in the art.
The present disclosure generally relates to clamping devices of adjustable steering columns for motor vehicles. In some examples, a carrier that is securely connected to a vehicle chassis is connected to two clamping jaws that surround the steering column. Between the clamping jaws may be a steering column tube that can be longitudinally and/or vertically adjusted and that rotatably supports a steering spindle. Such an example clamping device may further include a clamping pin that connects the two clamping jaws and that cooperates with a clamping retention device arranged on at least one of the two clamping jaws in such a manner that, in the event of a rotation of the clamping pin about a pin axis in a closure direction, the clamping retention device clamps the steering column tube between the two clamping jaws and, in the event of a rotation in the opening direction, releases the clamping jaws so that the steering column tube can be adjusted.
In some examples, a damping member may be arranged on a clamping pin and may be connected to the clamping pin in a frictionally engaging or resilient manner. The damping member may have a stop tongue that protrudes radially from the clamping pin and which, when the clamping pin is rotated in an opening direction, moves into abutment with the steering column tube or another component of the steering column and prevents a rotation of the damping member so that the rotation of the clamping pin in an opening direction is carried out counter to the friction force or resilient force and is damped.
The clamping device according to the invention has the advantage that it is, on the one hand, independent of the adjustment position of the steering column and, on the other hand, comprises a simple and cost-effective structure. In the simplest case, the damping member comprises a hole through which the clamping pin extends, wherein the diameter of the hole and the clamping pin are adapted to each other in such a manner that, with a relative rotation of the clamping pin with respect to the damping member, a defined friction force has to be overcome. As a result of the friction, the elastic energy which is released by the clamping jaws during the opening operation and which leads to an acceleration of the rotation movement of the clamping pin in an opening direction and the actuation lever which is connected to the clamping pin is absorbed by means of friction of the clamping pin on the damping member so that the movement is braked and the actuation lever reaches the stop thereof at a very low speed. Unpleasant noises are thereby prevented in the same manner as premature wear of the clamping device.
In an advantageous embodiment, the damping member comprises a plastics material or an elastomer material. Preferably, the damping member is formed completely by the plastics material or the elastomer material. This affords the advantage that improved damping can be achieved.
In an embodiment of the notion of the invention, there is provision for the resilient connection between the damping member and clamping pin to be produced by means of a resilient deformation of the damping member. If the damping member itself is resiliently deformed, no additional components provided for this purpose are required.
In a first construction variant of the embodiment mentioned, the resilient deformation is a deformation of the stop tongue. The stop tongue which protrudes radially from the clamping pin can be formed for this purpose from relatively thin material so that it is initially placed against the steering column tube and with a further rotation of the clamping pin and the damping member bends, whereby it applies to the clamping pin a torque counter to the opening rotation direction.
In a second variant of the above-mentioned embodiment, the resilient deformation may also be achieved by expanding a region of the damping member partially surrounding the clamping pin, in particular by means of a cam of the clamping pin. In this instance, any cross-sectional shape of the pin which deviates from the circular form is suitable in principle in combination with a correspondingly formed counter-face of the damping member.
In a particularly preferred embodiment, the clamping device according to the invention besides the damping action may also perform an additional function. Advantageous in this regard is the feature combination that the steering column tube is provided with a fixed longitudinal stop and that the damping member comprises at the end of the stop tongue thereof a stop face which, when the clamping retention device is open, is opposite the longitudinal stop so that a longitudinal displacement of the steering column tube toward the vehicle front is limited by the stop face stopping against the longitudinal stop, and which, when the clamping retention device is closed, is located above the longitudinal stop so that, in the event of an accident of the motor vehicle, the steering column tube can with the friction force of the clamping jaws being overcome be displaced in the direction of the vehicle front beyond the longitudinal stop. In this embodiment, the stop tongue of the damping member which is present in any case together with a longitudinal stop which is secured to the steering column tube takes up the function of a limitation of the longitudinal adjustment which can be switched on and off and which in the case of the intentional longitudinal adjustment by the driver is effective when the clamping retention device is open and remains switched off when the clamping retention device is closed in order to enable further displacement of the steering column beyond the normal adjustment range in the longitudinal direction in the event of an accident.
Clamping retention devices are adequately known from the prior art, for example, as a wedge disk/cam disk clamping retention device in which a cam disk which is connected to the actuation lever is rotated with respect to a non-rotatable wedge disk, whereby a clamping stroke brings about the clamping retention of the clamping jaws. Furthermore, there are known from the prior art tilting pin clamping retention devices and ball or roller clamping retention devices. This exemplary listing of the clamping retention devices is, however, not intended to be understood to be a limitation to one type of clamping retention devices. The solution according to the invention is consequently not limited to the clamping retention devices mentioned.
In order to enable a rotation of the damping member together with the clamping pin over a small rotation angle range, which is required for switching off the limitation of the longitudinal adjustment and to prevent further rotation of the damping member even when the clamping pin rotates further in the closure direction, another embodiment of the invention is provided in which the damping member comprises a resilient element which protrudes radially from the clamping pin in a direction counter to the stop tongue and rests against the steering column tube or another component of the steering column so that, in the event of a rotation of the clamping pin in the closure direction, the rotational movement of the damping member is limited in such a manner that the stop face of the stop tongue is located outside the effective region of the longitudinal stop. In an advantageous development, the resilient element and the damping member may be constructed as an integral single-piece component, preferably of plastics material.
The last-mentioned embodiment of the invention with switchable limitation of the longitudinal adjustment of the steering column can be even further improved in that the resilient deformation of the damping member brings about an increase of the spacing between the pin axis and stop face of the stop tongue. This measure has the advantage that the stop face of the stop tongue when the clamping retention device is closed is always first moved a small distance away from the longitudinal stop in the direction toward the pin axis before the stop face rotates together with the damping member and the clamping pin, wherein the stop face moves upward out of the region of the longitudinal stop. If the clamping retention device is subsequently opened again, the stop face moves as a result of the rotation of the damping member with the clamping pin initially downward into the region of the longitudinal stop and, with a further rotation of the clamping pin in the opening direction, the damping member is prevented from further rotation and becomes resiliently deformed, whereby the spacing between the stop face and pin axis is further increased until the stop face in an extreme case is again in abutment with the longitudinal stop. Without the shortening of the spacing between the pin axis and stop face when the clamping retention device is closed, the end of the stop tongue when the clamping retention device is opened could come to rest on the longitudinal stop so that the stop face is also located above the longitudinal stop and consequently a limitation of the adjustment path in the longitudinal direction is no longer provided.
A simple embodiment of the resilient deformation of the damping member according to the invention involves the stop tongue being bent from the region of the clamping pin in the direction toward the steering column tube and, when the stop tongue is in abutment with the steering column tube and the clamping pin is rotated further in the opening direction, the stop tongue being bent up so that the spacing of the stop face from the pin axis is increased.
As can be seen in
The clamping device comprises a clamping pin 6 which cooperates with a clamping retention device 7 in order to move the two clamping jaws 2, 3 toward each other so that they clamp the steering column tube 1 securely between them. Between the steering column tube 1 and the carrier 4 there is provided an energy absorption device 26 which cooperates with the clamping retention device 7 in such a manner that in the open clamping device a force flow through the energy absorption device 26 is interrupted so that an adjustment of the steering column tube 1 can be carried out and with the closed clamping device a force flow is produced so that, in the event of a vehicle front-end collision, the steering column tube 1 can be displaced relative to the carrier 4 with energy absorption, for example, by means of deformation of a bending wire.
The clamping pin 6 connects the two clamping jaws 2, 3 and is connected at one end 13 thereof to an actuation lever 10 which can be rotated about the pin axis 19. Another end of the clamping pin 6 is screwed to the clamping jaw 2 by means of a nut 12. The actuation lever 10 acts together with the clamping pin 6 on a clamping retention device 7 in such a manner that, when the actuation lever 10 is rotated in the closure direction 14 about the pin axis 19, the two clamping jaws 2, 3 securely clamp the steering column tube 1 and, when the actuation lever 10 is rotated in the opening direction 15 (counter to the clamping or closure direction), the clamping jaws 2, 3 release the steering column tube 1 for the steering column adjustment in the longitudinal direction 8 and in the vertical direction 9.
A resilient element 22 is secured to the damping member 11 and furthermore also to the modified damping member 24 according to an embodiment of the invention which is described below. The resilient element 22 protrudes radially from the clamping pin 6 in the opposite direction to the stop tongue 16 of the damping member 11. The resilient element 22 is also in abutment against the steering column tube 1 and in this manner prevents a larger rotational movement of the damping member 11, 24 if the clamping pin 6 rotates in the closure direction 14. As can be seen in
As can be seen in
In an alternative embodiment, which is not illustrated in detail here, a region 17 of the damping member 24 which surrounds the clamping pin 6 and which of course must not be completely closed can be resiliently deformed by means of expansion, for example, by means of a cam (not shown) of the clamping pin 6. In this instance, a portion of the movement energy of the clamping pin 6 and the actuation lever 10 would also be used by the resilient deformation of the region 17 and the movement would be damped.
A preferred embodiment which is illustrated in
If, in contrast, as shown in
The spring 22 in this embodiment ensures that the damping member 24 can rotate in the closure direction 14 until the end of the stop tongue 16 thereof is lifted from the effective region of the longitudinal stop 18 of the steering column tube 1.
In
The gap is important when, in the open state of the clamping retention device 7 according to
In order to prevent this, the stop tongue 16 of the damping member 24 is constructed in a resilient manner.
Number | Date | Country | Kind |
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10 2015 216 536 | Aug 2015 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/068969 | 8/9/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2017/036748 | 3/9/2017 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5143402 | Higashino | Sep 1992 | A |
5239889 | Hancock | Aug 1993 | A |
8555745 | Inoue | Oct 2013 | B2 |
10308275 | Huber | Jun 2019 | B2 |
20040084886 | Yamamoto | May 2004 | A1 |
20080202276 | Harris | Aug 2008 | A1 |
20090013818 | Arbanas | Jan 2009 | A1 |
20100186535 | Scapozza | Jul 2010 | A1 |
20100300236 | Goulay | Dec 2010 | A1 |
20110185839 | Inoue | Aug 2011 | A1 |
20130074641 | Schnitzer | Mar 2013 | A1 |
20140000405 | Anspaugh | Jan 2014 | A1 |
20150053041 | Schnitzer | Feb 2015 | A1 |
20150266499 | Yoshihara | Sep 2015 | A1 |
20170247046 | Huber | Aug 2017 | A1 |
20170355393 | Okada | Dec 2017 | A1 |
20180079443 | Anspaugh | Mar 2018 | A1 |
20190031224 | Huber | Jan 2019 | A1 |
20190047606 | Dite | Feb 2019 | A1 |
Number | Date | Country |
---|---|---|
103339015 | Oct 2013 | CN |
103702891 | Apr 2014 | CN |
10222070 | Dec 2002 | DE |
10304640 | Aug 2004 | DE |
102008029247 | Dec 2009 | DE |
102010000504 | Mar 2011 | DE |
102010050015 | May 2012 | DE |
202012102159 | Jul 2012 | DE |
102012209283 | Dec 2012 | DE |
102011056351 | Jun 2013 | DE |
102012112890 | Jan 2014 | DE |
102013107728 | Jul 2014 | DE |
102014016510 | Feb 2015 | DE |
102013109931 | Mar 2015 | DE |
0606085 | Jul 1994 | EP |
1681223 | Jul 2006 | EP |
1894812 | Mar 2008 | EP |
2738062 | Jun 2014 | EP |
20140065884 | May 2014 | KR |
2009121386 | Oct 2009 | WO |
2009141045 | Nov 2009 | WO |
2016074838 | May 2016 | WO |
Entry |
---|
English Translation of International Search Report issued in PCT/EP2016/068969, dated Oct. 28, 2016 (dated Nov. 9, 2016). |
Number | Date | Country | |
---|---|---|---|
20180290680 A1 | Oct 2018 | US |