The present invention relates to improvements on a position adjustable steering apparatus having a function of adjusting at least one of a front-rear position and an upper-lower position of a steering wheel in accordance with a physique or driving posture of a driver.
As shown in
Incidentally, in the specification and the claims, a front-rear direction, a left-right direction (width direction) and an upper-lower direction indicate a front-rear direction, a left-right direction (width direction) and an upper-lower direction of a vehicle, unless otherwise mentioned.
In the above-described steering apparatus, a position adjustable steering apparatus has been widely used which includes a tilt mechanism for adjusting an upper-lower position of the steering wheel 1 or a telescopic mechanism for adjusting a front-rear position thereof in accordance with a physique or driving posture of a driver.
According to the conventional structure, in order to configure the telescopic mechanism, in a steering column 6a, a front part of an outer column 11 is fitted onto a rear part of an inner column 10 to be axially relatively displaced. Also, in a steering shaft 5a, a rear part of an inner shaft 12 and a front part of an outer shaft 13 are fitted to be torque-transmittable and to be axially relatively displaced by spline engagement and the like. The steering wheel 1 (refer to
A housing 14 for accommodating therein a decelerator and the like configuring an electronic power steering apparatus is coupled and fixed to a front end portion of the inner column 10. An electric motor 15, which is an auxiliary power source of the electric power steering apparatus, and a controller 16 for controlling energization to the electric motor 15 are supported and fixed to an upper surface of the housing 14.
In order to configure the tilt mechanism, the housing 14 is supported to a vehicle body to be pivotally displaced about a horizontal shaft. Therefore, an upper front end of the housing 14 is provided with a support cylinder 17 extending in the left-right direction. A front end portion of the steering column 6a is supported to the vehicle body by the horizontal shaft such as a bolt, which can be inserted into a center hole 18 of the support cylinder 17 such that the steering column 6a can be pivotally displaced in a direction of moving up and down the rear part of the steering column 6a.
A lower part of the front part of the outer column 11 is provided with a slit 19, which is axially long, and an inner diameter of the front part is thus made to be elastically expanded and contracted. A pair of left and right sandwiched plate parts 20, 20 is provided with the slit 19 being interposed therebetween from both left and right sides, and a displacement bracket 21 is configured by both the sandwiched plate parts 20, 20. Both the sandwiched plate parts 20, 20 are supported to a support bracket 22 supported to the vehicle body such that upper-lower and front-rear positions thereof can be displaced.
At a state where the steering wheel 1 is kept at an adjusted position, both the sandwiched plate parts 20, 20 are strongly sandwiched by a pair of left and right support plate parts 23, 23 configuring the support bracket 22. One support plate part 23 (left side in
An adjustment rod 26 is inserted into the respective long holes 24, 25. An anchor part 27 fixed to a base end portion (a right end portion in
Both the driving cam 29 and the driven cam 30 are made of a metal such as a sintered metal, and have a round wheel shape as a whole and are formed with center holes for inserting therein the adjustment rod 26, respectively. Facing side surfaces of both the driving cam 29 and the driven cam 30 are configured as a driving cam surface 32 and a driven cam surface 33, each of which has an uneven shape in a circumferential direction. The driven cam 30 is engaged with the tilt adjustment long hole 24 formed at the one support plate part 23 so as to be only displaced along the tilt adjustment long hole 24. The driving cam 29 is coupled and fixed to a base end portion of an adjustment lever 34 provided for the tip portion of the adjustment rod 26, so as to be rotated around the adjustment rod 26 as the adjustment lever 34 is rotated. In the meantime, a thrust bearing 35 is provided between the nut 28 screwed to the tip portion of the adjustment rod 26 and the base end portion of the adjustment lever 34 such that the driving cam 29 is rotatable, while supporting a thrust load applied to the driving cam 29.
When adjusting a position of the steering wheel 1, the adjustment lever 34 is rotated in a predetermined direction (normally, a downward direction), so that a convex portion 36 provided on the driving cam surface 32 and a concave part 37 provided on the driven cam surface 33 are engaged to contract an axial dimension of the cam mechanism 31, as shown in
After moving the steering wheel 1 to a desired position, the adjustment lever 34 is rotated in an opposite direction (an upward direction) to the predetermined direction, so that the convex portion 36 of the driving cam surface 32 and a convex portion 38 provided on the driven cam surface 33 are engaged to widen the axial dimension of the cam mechanism 31, as shown in
According to the above-described position adjustable steering apparatus, a step portion 39, which is a stopper part, is provided at one circumferential side (a right side, in
In this position adjustable steering apparatus, when the adjustment lever 34 is rotated (the lock is released) in the predetermined direction so as to adjust a position of the steering wheel 1, the step portions 39, 40 strongly contact each other (collision) to generate a harsh abnormal noise (metal contact noise).
Incidentally, Patent Documents 2 and 3 are other technical documents relating to the present invention. Patent Documents 2 and 3 disclose a structure in which a multi-disc type friction engagement mechanism is employed for a position adjustable steering apparatus to improve a force for holding a steering wheel at an adjusted position.
Patent Document 1: JP-A-2013-047088
Patent Document 2: JP-A-2005-343331
Patent Document 3: JP-A-2008-114837
The present invention has been made in view of the above circumstances. It is an object of the present invention to realize a structure of a position adjustable steering apparatus capable of suppressing generation of a harsh abnormal noise which is caused as stopper parts provided on both cam surfaces contact each other when rotating an adjustment lever in a predetermined direction (a direction in which an axial dimension of a cam mechanism is contracted) so as to adjust a position of a steering wheel.
The present invention provides a position adjustable steering apparatus including:
a cylindrical steering column;
a displacement bracket which is fixedly provided to a part of the steering column;
a steering shaft which is rotatably supported inside the steering column and includes a rear end portion which protrudes from a rear end opening of the steering column so as to support and fix a steering wheel;
a support bracket which is supported to a vehicle body side and includes a pair of support plate parts which interpose the displacement bracket therebetween from both sides in a width direction;
an adjustment rod which is inserted into a vehicle body side through hole formed at the support plate parts and a column side through hole formed at the displacement bracket in the width direction;
an anchor part which is provided at one end portion of the adjustment rod;
an adjustment lever which is provided at the other end portion of the adjustment rod; and
a cam mechanism which is provided between the adjustment lever and an outer surface of one support plate part of the pair of support plate parts and includes a metallic driving cam configured to rotate together with the adjustment lever and a metallic driven cam configured not to rotate irrespective of rotation of the adjustment lever.
The cam mechanism is configured by engaging cam surfaces which are provided on facing side surfaces of the driving cam and the driven cam and which have an uneven shape in a circumferential direction, and is configured to expand and contract an axial dimension of the cam mechanism based on rotation of the adjustment lever, thereby expanding and contracting an interval between the driven cam and the anchor part.
At least one of the vehicle body side through holes and the column side through hole is configured as an adjustment long hole which is long in a direction in which a position of the steering wheel is adjustable.
Particularly, the position adjustable steering apparatus of the present invention further includes a sub-arm which is fixed to the adjustment lever, a receiving side member which is fixed to the one support plate part, and a buffer member which is made of an elastic material and fixed to either one of the sub-arm and a part of the receiving side member. When the adjustment lever is rotated in a direction in which the axial dimension of the cam mechanism is contracted, the other of the sub-arm and the part of the receiving side member contacts the buffer member.
It is preferable that the cam mechanism is configured to regulate a relative rotation range of the driving cam and the driven cam in a direction in which the axial dimension thereof is contacted, by contact between stopper parts provided on the cam surfaces, respectively, and when the adjustment lever is rotated in the direction in which the axial dimension of the cam mechanism is contracted, the other of a tip portion of the sub-arm and the part of the receiving side member first contacts the buffer member before the stopper parts contact each other.
It is preferable that a contact surface of the buffer member which the other of a tip portion of the sub-arm and the part of the receiving side member contacts is formed with a plurality of projections extending in a direction perpendicular to an axial direction of the cam mechanism and arranged in the axial direction of the cam mechanism.
It is preferable that the receiving side member is fixed to the one support plate part such that when the adjustment lever is rotated by its own weight in the direction in which the axial dimension of the cam mechanism is contracted, the other of a tip portion of the sub-arm and the part of the receiving side member contacts the buffer member.
It is preferable that an outer surface of the receiving side member facing a tip portion of the sub-arm is provided with an engaging recess part and an inclined surface part, the engaging recess part being formed at a portion which faces the tip portion of the sub-arm and is an end portion at one side of a rotating direction of the sub-arm, in which the axial dimension of the cam mechanism is expanded, the inclined surface part being formed at a portion adjacent to the engaging recess part at the other side of the rotating direction of the sub-arm and being inclined in a direction in which a height in the width direction becomes lower as proceeding towards the other side of the rotating direction. The tip portion of the sub-arm contacts or engages the inclined surface part and the engaging recess part in a state where a pre-pressure based on elastic deformation of the sub-arm is applied.
It is preferable that a facing surface of the tip portion of the sub-arm, which faces the outer surface of the receiving side member, is formed with an inclined surface which has an angle greater than an inclined angle of the inclined surface part at a portion at the one side of the rotating direction of the sub-arm.
It is preferable that the outer surface of the receiving side member is provided with a flat part at an opposite side to the engaging recess part with respect to the inclined surface part, a facing surface of the tip portion of the sub-arm which faces the outer surface of the receiving side member is formed with a planar surface parallel with the flat part, and the flat part of the receiving side member is formed to be long such that the planar surface of the tip portion of the sub-arm is spaced from the inclined surface part of the receiving side member at a state where the other of the tip portion of the sub-arm and the part of the receiving side member contacts the buffer member.
It is preferable that the tip portion of the sub-arm contacts or engages the outer surface of the receiving side member including the inclined surface part and the engaging recess part always in a state where the pre-pressure based on the elastic deformation of the sub-arm is applied.
According to the above-described position adjustable steering apparatus of the present invention, when the adjustment lever is rotated in the predetermined direction so as to adjust a position of the steering wheel, either one of the sub-arm and the receiving side member contacts the buffer member. Therefore, it is possible to prevent the stopper parts provided on cam surfaces of the driving cam and driven cam from contacting each other. Also, even when both the stopper parts contact each other, it is possible to prevent the strong contact (collision). Therefore, it is possible to suppress the generation of the harsh noise (metal contact noise), which is caused by the contact.
In a structure of this embodiment, a pair of sandwiched plate parts 20a, 20a configuring a displacement bracket 21a is provided with being spaced in a width direction via a slit 19a on an upper surface of an outer column 11a configuring a steering column 6b. An adjustment rod 26a is inserted into telescopic adjustment long holes 25, 25 formed at corresponding positions of both the sandwiched plate parts 20a, 20a and tilt adjustment long holes 24, 24 formed at a pair of left and right support plate parts 23a, 23a configuring a support bracket 22a. An interval between an anchor part 27a fixed to a base end portion of the adjustment rod 26a and a driven cam 30a of a cam mechanism 31a is expanded and contracted based on an operation of the adjustment lever 34a provided at a tip portion of the adjustment rod 26a, so that an upper-lower position and a front-rear position of the steering wheel 1 (refer to
According to the structure of this embodiment, friction plate units 44a, 44b are respectively sandwiched between the driven cam 30a and the one support plate part 23a (left, in
In this embodiment, the adjustment rod 26a is rotatably supported about a center axis thereof by both the support plate parts 23a, 23a, and the like. A thrust bearing 45 is provided between the anchor part 27a and an outer surface of the friction plate unit 44b, and a base end portion of the adjustment lever 34a is coupled and fixed to the tip portion of the adjustment rod 26a.
In this embodiment, the driven cam 30a out of a driving cam 29a and the driven cam 30a which configure the cam mechanism 31a is engaged with the friction plate unit 44a so as to be only displaced (with rotation thereof being inhibited) in a longitudinal direction of the tilt adjustment long hole 24. In contrast, the driving cam 29a is coupled and fixed to the tip portion of the adjustment rod 26a, together with the base end portion of the adjustment lever 34a. A small convex portion 46 which has a substantially rectangular shape and is provided at a center part of an outer surface of the driving cam 29a is fitted in a non-circular manner (a rectangular manner, in the shown embodiment) to a fitting hole 47 provided at the base end portion of the adjustment lever 34a so as not to be relatively rotatable. At this state, the driving cam 29a and the base end portion of the adjustment lever 34a are sandwiched and fixed between a step surface 48 provided at a tip side part of an outer peripheral surface of the adjustment rod 26a and facing the tip side and a nut 28 screwed to the tip portion of the adjustment rod 26a.
In this embodiment, a sub-arm 49 configured to rotate together with the adjustment lever 34a is coupled and fixed to the base end portion of the adjustment lever 34a. A large convex portion 51 which has a substantially rectangular shape and is provided around the small convex portion 46 of the outer surface of the driving cam 29a is fitted in a non-circular manner (a rectangular manner, in the shown embodiment) to a fitting hole 50 provided at a base end portion of the sub-arm 49 so as not to be relatively rotatable. At this state, the base end portion of the sub-arm 49 is sandwiched and fixed between the driving cam 29a and the base end portion of the adjustment lever 34a. The sub-arm 49 is formed of a metal or a synthetic resin such as a fiber reinforced plastic having elasticity, and is made to be thinner than the adjustment lever 34a so as to have the stiffness lower than the adjustment lever 34a. An inner surface of a tip portion 58 of the sub-arm 49 protrudes in a width direction.
A receiving side member 52 is fixed to a part (a lower end portion, in the shown embodiment) of the outer surface of the one support plate part 23a, which faces the tip portion 58 of the sub-arm 49, by a screw and the like. The receiving side member 52 is made of a metal or a synthetic resin such as a fiber reinforced plastic. The receiving side member 52 has a receiving plate part 53 which protrudes in the width direction at a front end portion of an outer surface thereof. A buffer member 54 made of a rubber or a synthetic resin, which is an elastic material, is supported and fixed to a rear surface of the receiving plate part 53 by a screw, an adhesive and the like. A rear end surface of the buffer member 54 is made to have a waveform shape, so that the stiffness of a rear end portion thereof is lowered to improve a buffering function of the rear end portion. Specifically, the rear end surface (contact surface) of the buffer member 54 which the tip portion 58 of the sub-arm 49 contacts is formed with a plurality of projections 54a extending in a direction (upper-lower direction) perpendicular to an axial direction of the cam mechanism 31a and arranged in the axial direction of the cam mechanism 31a.
Incidentally, a property of the buffer member 54 can be adjusted by changing the number or depth of the projections 54a. Also, a shape of the projection 54a is not limited to a triangular shape of this embodiment, may be a shape having a curved surface at a tip thereof or may have a trapezoidal section, and may be arbitrarily formed as long as it can be smoothly tilt-adjusted even though the sub-arm 49 is contacted thereto during unclamping.
For example, as shown in
The receiving side member 52 is fixed to the one support plate part 23a such that the tip portion 58 of the sub-arm 49 contacts the buffer member 54 when the adjustment lever 34a is rotated by its own weight in a direction in which the axial dimension of the cam mechanism 31 is contracted. That is, even when an operator releases a hand from the adjustment lever 34a at the unlocked state and the adjustment lever 34a is thus rotated by its own weight, the tip portion 58 of the sub-arm 49 contacts the buffer member 54, so that the movement of the adjustment lever 34a at the unlocked state is regulated.
Regarding the outer surface of the receiving side member 52 facing the tip portion 58 of the sub-arm 49, a rear end side part thereof is provided with an engaging recess part 55, an intermediate part adjacent to a front side of the engaging recess part 55 in the front-rear direction is provided with an inclined surface part 56, and a front end side part adjacent to a front side of the inclined surface part 56 is provided with a flat part 57. The inclined surface part 56 is inclined in a direction in which a height in the width direction becomes lower as proceeding towards a front end side. The flat part 57 is provided at a position lower than a bottom surface of the engaging recess part 55 in the height in the width direction and smoothly continues to the inclined surface part 56.
At the locked state where the adjustment lever 34a is rotated upwards, the tip portion 58 of the sub-arm 49 is engaged with the engaging recess part 55, as shown in
In this embodiment, the buffer member 54, the engaging recess part 55, the inclined surface part 56 and the flat part 57 are respectively formed to be long in the adjusting direction (a tangential direction of a circle having a horizontal axis, which is a rotation center axis of the steering wheel 1 as a center) of the upper-lower position of the steering wheel 1 such that the tip portion 58 of the sub-arm 49 contacts, engages with or closely faces the rear end surface of the buffer member 54, the engaging recess part 55, the inclined surface part 56 and the flat part 57 in a similar manner to the above even when the upper-lower position of the sub-arm 49 is changed as the upper-lower position of the steering wheel 1 is changed.
As shown in
The flat part 57 of the receiving side member 52 is formed to be long such that the planar surface 59a of the tip portion 58 of the sub-arm 49 is spaced from the inclined surface part 56 of the receiving side member 52 at a state where the tip portion 58 of the sub-arm 49 contacts the buffer member 54. That is, as shown in
According to the above-described position adjustable steering apparatus of this embodiment, when the adjustment lever 34a is rotated downwards from the locked state shown in
Also, when the adjustment lever 34a is rotated upwards from the unlocked state shown in
In this embodiment, since the flat part 57 is provided with the stroke s at the rear with respect to the planar surface 59a of the sub-arm 49 contacting the buffer member 54, it is possible to smoothly perform the tilt adjustment.
Since the other configurations and operations are the same as the first embodiment, the overlapping illustrations and descriptions are omitted.
The present invention can be implemented not only as a tilt telescopic steering apparatus where both the front-rear position and upper-lower position of the steering wheel can be adjusted but also as a telescopic steering apparatus where only the front-rear position can be adjusted or a tilt steering apparatus where only the upper-lower position can be adjusted.
When the present invention is applied to the tilt telescopic steering apparatus, various structures including the conventional structure shown in
The sub-arm may be produced integrally with the adjustment lever. Also, although the sub-arm is fixed to the base end portion of the adjustment lever, the sub-arm may have any structure which is fixed to the adjustment lever.
Although the buffer member contacts the tip portion of the sub-arm, the buffer member may contact any part of the sub-arm.
The buffer member may be fixed to the sub-arm, not the receiving side member.
The present application is based on Japanese Patent Application No. 2013-215599 filed on Oct. 16, 2013, the contents of which are incorporated herein by reference.
Number | Date | Country | Kind |
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2013-215599 | Oct 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/075217 | 9/24/2014 | WO | 00 |