This application claims the benefit of Japanese Patent Application No. 2002-321482 which is hereby incorporated by reference.
1. Field of the Invention
The present invention relates to a telescopically length adjustable steering column apparatus for adjusting the position of a steering wheel in the length direction of a vehicle by extending and contracting telescopically the whole length of a steering column through which a steering shaft is inserted in accordance with the physical constitution or the position of the driver.
2. Related Background Art
As a steering apparatus for a vehicle, there is a telescopically extendable and contractable steering column apparatus (a so-called telescopic steering column apparatus) for adjusting the position of a steering wheel in the length direction of a vehicle by extending and contracting telescopically the whole length of a steering column, through which a steering shaft is inserted, in accordance with the physical constitution or the position of the driver.
In the apparatus disclosed in Japanese Utility Model Application Laid-Open No. 6-78155 (Japanese Utility Model Registration No. 2588338), a lock housing portion is formed on an outer column through which an inner column is slidably inserted and a pair of movable pieces are fitted in a cylinder bore formed in the lock housing portion. That apparatus is provided with a locking mechanism for shifting the pair of movable pieces toward each other so as to press the inner column and shifting the pair of movable pieces away from each other to release the pressure on the inner column in response to swinging of an operating lever by the driver.
However, in the apparatus disclosed in Japanese Utility Model Application Laid-Open No. 6-78155 (Japanese Utility Model Registration No. 2588338), since the lock housing portion a has a circular cross section and the pair of movable pieces c also have circular cross sections, in the case that a torque is exerted on the movable piece c when the operating lever is swung, the movable piece is sometimes rotated.
In the case that the movable pieces c has been rotated due to swinging of the operating lever, the movable piece may bite the inner column at the time of adjustment of the telescopic position.
In addition, in the case that the cross sections of the cylinder bore b and the movable pieces c are circular, the pressing surfaces (or the friction surface) in which the movable pieces c press the inner column are unstable, so that the pressing force (or the holding force) as a frictional force becomes unstable.
The present invention has been made in view of the above-described situations. An object of the present invention is to avoid rotation of the movable pieces positively so as to prevent the movable pieces from biting the inner column at the time of adjustment of the telescopic position while increasing the surface area in which the movable pieces press the inner column so as to provide an extendable and contractable steering column apparatus in which the pressing force (or the retaining force) is stabilized.
In order to attain the above-described object, an extendable and contractable steering column apparatus according to the present invention includes an outer column through which an inner column is slidably inserted, a lock housing portion formed on the outer column, and a locking mechanism that includes a pair of movable pieces slidably fitted within a bore formed in the lock housing portion to shift the pair of movable pieces toward each other so as to press the inner column and to shift the pair of movable pieces away from each other so as to release the pressure on the inner column, in response to swinging of an operating lever, wherein the cross section of the bore of the lock housing portion is non-circular and the cross sections of said pair of movable pieces are also non-circular correspondingly.
As per the above, according to the present invention, the cross sectional shape of the bore in the lock housing portion is non-circular and the cross sectional shapes of the pair of movable pieces are also non-circular correspondingly. With this feature, rotation of the pair of movable pieces can be avoided reliably even if a torque is exerted on the pair of movable pieces when the operating lever is swung, so that the movable pieces can be prevented from biting the inner column upon adjustment of the telescopic position.
In addition, since the cross sectional shapes of the bore and the movable pieces are non-circular, the area of the pressing surfaces (or friction surfaces) in which the movable pieces press the inner column can be increased. Therefore, the pressing force (i.e. the holding force) as a frictional force can be stabilized.
In the following, a preferred embodiment of the present invention will be described with reference to the accompanying drawings.
As shown in
Inside the outer column 1, there is inserted an inner column 3 in the form of a long tube extending in the axial direction that can slide in the axial direction. A length adjustable, that is, extendable and contractable steering shaft 4 is rotatably supported in the interior of the inner column 3.
A lock housing portion 5 projecting below the outer column 1 is provided on the lower part of the supporting brackets 2. The lock housing portion 5 is integrally molded with the supporting brackets 2. The lock housing portion 5 has a bore 6 extending through the lock housing portion 5 in the width direction of the vehicle.
A first movable piece 7 is inserted in one of the half portions of the bore 6 (the right half in
A second movable piece 8 is inserted in the other half portion of the bore 6 (the left half in
The first and second bevels 7a and 8a may be either planar surfaces or curved surfaces that follow the shape of the outer peripheral surface of the inner column 3.
A locking mechanism for the first and second movable pieces 7 and 8 has the following structure. The first movable piece 7 has a threaded screw hole 9 having an internal thread. The second movable piece 8 has a through-hole 10 coaxial with the threaded screw hole 9. A screw rod 11 is inserted through the threaded screw hole 9 of the first movable piece 7 and the through-hole 10 of the second movable piece 8.
The screw rod 11 has a screw portion 11a having an external thread to be threaded in the threaded screw hole 9 at one end and an inverse screw portion 11b having an inverse external thread at the other end. The inverse screw portion 11b has a thread with a relatively large pitch such as a double-start thread.
A lock nut 12 is screwed on the portion of the screw rod 11 at one end thereof that projects beyond the outer surface of the first movable piece 7. The lock nut is tightly secured to the outer surface of the first movable piece 7 so as to retain the screw rod 11 non-rotatable relative to the first movable piece 7. The screw rod has a pair of planar surfaces 13 parallel to each other formed on the outer circumferential surface of the screw rod at the aforementioned end thereof to facilitate the tight securing operation.
A adjusting nut 14 is screwed on the inverse screw portion 11b projecting beyond the outer surface of the second movable piece 8 at the other end of the screw rod 11. A base end portion of an operating lever 15 is connected and fixed to the adjusting nut 14 by welding or the like means.
An compression spring 16 is provided between the first and second movable pieces 7 and 8. The screw rod 11 passes through the compression coil spring 16. With the biasing force of the compression coil spring 16, both the movable pieces are positively spaced apart from each other upon telescopic adjustment of the position of the steering wheel. The compression coil spring 16 is not essential to this structure, and it may be provided as circumstances demand.
In the extendable and contractable steering column apparatus having the above-described structure, when the operating lever 15 is swung in one direction to rotate the adjusting nut 14 in one direction for attaining securing at the telescopically adjusted position, since the adjusting nut 14 is screwed on the inverse screw portion 11b of the non-rotatable screw rod 11, a tensile force acts on the non-rotatable screw rod 11 toward the left in
Consequently, the non-rotatable screw rod 11 is shifted toward the left in
On the other hand, upon telescopically adjusting the position of the steering wheel, the operating lever is swung in the direction reverse to the above to rotate the adjusting nut 14 in the reverse direction. Then, a pressing force toward the right in
Consequently, the non-rotatable screw rod 11 is shifted toward the right in
In this embodiment, as shown in
The shapes of the cross sections of the bore 6 and the movable pieces 7 and 8 need only to be non-circular, and they may be quadrangular as shown in
With the above-described feature, rotation of the pair of movable pieces 7 and 8 can be avoided reliably even if a torque is exerted on the pair of movable pieces when the operating lever 15 is swung, so that the movable pieces 7 and 8 can be prevented from biting the inner column 3 upon telescopic adjustment of the position of the steering wheel.
In addition, since the cross sectional shapes of the bore 6 and the movable pieces 7 and 8 are non-circular, the area of the pressing surfaces (or friction surfaces) in which the movable pieces 7 and 8 press the inner column can be increased.
Specifically, in the case that the cross sectional shapes of the bore 6 and the movable pieces 7 and 8 are triangular, the axial length of the area in which the movable pieces 7 and 8 are in contact with the inner column is D1 as shown in
Therefore, with the non-circular cross sectional shapes of the bore 6 and the movable pieces 7 and 8, the area of the pressing surfaces (or the friction surfaces) in which the movable pieces 7 and 8 press the inner column 3 can be increased as compared to the case of the circular cross sectional shapes, so that the pressing force (i.e. the holding force) as a frictional force can be stabilized.
The cross sections of the movable pieces may be non-circular such as elliptic. The screw rod and the movable pieces may be arranged above the inner column.
It should be noted that the present invention is not limited to the details of the above-described embodiment and various modifications can be made to the embodiment. For example, while the above description of the embodiment has been made in connection with the telescopically length adjustable steering column, the present invention can also be applied to the tilt adjustable and telescopically length adjustable steering column.
As per the above, according to the present invention, the cross sectional shape of the bore in the lock housing portion is non-circular and the cross sectional shapes of the pair of movable pieces are also non-circular correspondingly. With this feature, rotation of the pair of movable pieces can be avoided reliably even if a torque is exerted on the pair of movable pieces when the operating lever is swung, so that the movable pieces can be prevented from biting the inner column upon the telescopic adjustment of the position of the steering wheel.
In addition, since the cross sectional shapes of the bore and the movable pieces are non-circular, the area of the pressing surfaces (or friction surfaces) in which the movable pieces press the inner column can be increased. Therefore, the pressing force (i.e. the holding force) as a frictional force can be stabilized.
Number | Date | Country | Kind |
---|---|---|---|
2002-321482 | Nov 2002 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
3977692 | Findley et al. | Aug 1976 | A |
4535645 | De Bisschop et al. | Aug 1985 | A |
4554843 | Andersson | Nov 1985 | A |
4563912 | Parks | Jan 1986 | A |
4890505 | Kinoshita et al. | Jan 1990 | A |
4893518 | Matsumoto et al. | Jan 1990 | A |
5152627 | Arnold | Oct 1992 | A |
5199319 | Fujiu | Apr 1993 | A |
RE34359 | Matsumoto et al. | Aug 1993 | E |
5361646 | Venable | Nov 1994 | A |
5363716 | Budzik et al. | Nov 1994 | A |
5439252 | Oxley et al. | Aug 1995 | A |
5598741 | Mitchell et al. | Feb 1997 | A |
5743150 | Fevre et al. | Apr 1998 | A |
5941129 | Anspaugh et al. | Aug 1999 | A |
5979265 | Kim et al. | Nov 1999 | A |
6036228 | Olgren et al. | Mar 2000 | A |
6062101 | Higashino | May 2000 | A |
6092957 | Fevre et al. | Jul 2000 | A |
6467807 | Ikeda et al. | Oct 2002 | B2 |
6623036 | Yamamura et al. | Sep 2003 | B2 |
6659504 | Riefe et al. | Dec 2003 | B2 |
6695349 | Bohlen et al. | Feb 2004 | B2 |
6799779 | Shibayama | Oct 2004 | B2 |
6948741 | Manwaring et al. | Sep 2005 | B2 |
20040113408 | Yamamoto | Jun 2004 | A1 |
Number | Date | Country |
---|---|---|
4029573 | Jul 1991 | DE |
5-178218 | Jul 1993 | JP |
5-262238 | Oct 1993 | JP |
6-295 | Jan 1994 | JP |
2588338 | Oct 1998 | JP |
2002-67976 | Mar 2002 | JP |
2002-67977 | Mar 2002 | JP |
2002-166835 | Jun 2002 | JP |
2004-155268 | Jun 2004 | JP |
Number | Date | Country | |
---|---|---|---|
20040090058 A1 | May 2004 | US |