Steering apparatus of vehicle
11242096 · 2022-02-08
Assignee
Inventors
Cpc classification
B62D21/09
PERFORMING OPERATIONS; TRANSPORTING
B62D21/11
PERFORMING OPERATIONS; TRANSPORTING
International classification
B62D21/09
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A steering apparatus of a vehicle includes a plurality of coupling portions formed in a rack housing of a gear box and coupled to mounting portions of a vehicle body; and a nut member having a support surface and installed in each of the mounting portions of the vehicle body. In particular, each of the plurality of coupling portions has a seating surface formed as a curved surface with a predetermined curvature, and the seating surfaces are respectively seated on the support surface of the nut member installed in each of the mounting portions of the vehicle body such that the rack housing of the gear box is fixed to the vehicle body by a bolt which passes through each of the plurality of coupling portions to be engaged with the nut member of each of the mounting portions.
Claims
1. A steering apparatus of a vehicle, comprising: a gear box having a rack housing, a plurality of coupling portions formed in the rack housing and respectively coupled to mounting portions of a vehicle body of the vehicle; and a nut member having a support surface and installed in each of the mounting portions of the vehicle body, wherein each of the plurality of coupling portions has a seating surface formed as a curved surface with a predetermined curvature, and the seating surfaces are respectively seated on the support surface of the nut member installed in each of the mounting portions of the vehicle body, wherein the rack housing of the gear box is fixed to the vehicle body by a bolt which passes through each of the plurality of coupling portions and engages with the nut member of each of the mounting portions, and wherein the nut member includes: a body portion which has a screw thread formed on an inner circumferential surface of the body portion and which is fixed to the vehicle body; and a head portion integrally formed with the body portion and having the support surface formed on an upper surface of the head portion.
2. The steering apparatus of claim 1, wherein the seating surface is a convex curved surface formed on a lower surface of each of the plurality of coupling portions; and wherein when the seating surface of each of the plurality of coupling portions is seated on the support surface of the nut member and before the bolt is engaged with the nut member, the plurality of coupling portions of the rack housing are rotatable with respect to the nut members of the mounting portions.
3. The steering apparatus of claim 1, wherein the support surface of the nut member and the seating surface of each of the plurality of coupling portions are curved surfaces having the same curvature.
4. The steering apparatus of claim 1, wherein the bolt has a flange portion which extends in a radial direction of the bolt, and wherein a coupling surface is formed on a lower surface of the flange portion and seated on a bonding surface formed on an upper surface of each of the plurality of coupling portions, the coupling surface and bonding surface formed as curved surfaces each having a predetermined curvature.
5. The steering apparatus of claim 4, wherein the coupling surface is formed as a convex curved surface and the bonding surface is formed as a concave curved surface such that the bolt is tiltable with respect to the plurality of coupling portions in a state in which the coupling surface is seated on and bonded to the bonding surface.
6. The steering apparatus of claim 4, wherein the predetermined curvature of the coupling surface of the flange portion is the same as the predetermined curvature of the bonding surface of the plurality of coupling portions.
7. The steering apparatus of claim 4, wherein an inner diameter of a coupling hole formed in each of the plurality of coupling portions is greater than an outer diameter of the body portion of the bolt.
8. The steering apparatus of claim 7, wherein the coupling hole formed in each of the plurality of coupling portions has a shape of which inner diameter gradually increases toward an upper side of the coupling hole.
Description
DRAWINGS
(1) In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
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(12) The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
(13) The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
(14) Throughout this disclosure, when an element is referred to as “comprising” a component, it refers that the element can further include other components, not excluding the other components unless specifically stated otherwise.
(15) It should be understood that the appended drawings are not necessarily to scale, presenting a somewhat simplified representation of various exemplary features illustrative of the basic principles of the present disclosure. The specific design features of the present disclosure as disclosed herein, including, for example, specific dimensions, orientations, locations, and shapes will be determined in part by the particular intended application and use environment.
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(18) Further,
(19) As shown in
(20) The coupling portion 22 is a portion which is coupled to the mounting portion 11 of the sub-frame 10 by the bolt 30. The coupling portion 22 has a coupling hole 23 into which the bolt 30 is inserted to pass through.
(21) A mounting hole 12 is formed in the mounting portion 11 of the sub-frame 10, and the nut member 13 is inserted to pass through the mounting hole 12.
(22) Here, the sub-frame 10 may be made of a weldable material such as a steel alloy.
(23) In a state in which the nut member 13 is inserted to pass through the mounting hole 12, the nut member 13 is welded and fixed to a sub-frame portion around the mounting hole 12, i.e., the mounting portion 11 around the mounting hole 12, and a screw thread is formed on an inner circumferential surface of the nut member 13 so as to allow the bolt 30 to be engaged with the nut member 13.
(24) The nut member 13 may employ a nut member which is manufactured by forging a weldable material such as a steel alloy. In a state in which the nut member 13 is welded to the sub-frame 10, the nut member 13 supports the coupling portion 22 of the rack housing 21, which is seated above the nut member 13.
(25) As shown in
(26) In this case, the screw thread (not shown) for bolt engagement may be formed on an inner circumferential surface of at least a part of the body portion 14. In addition, the screw thread may be formed on an inner circumferential surface of the head portion 15.
(27) In an exemplary form, in order to allow the bolt 30 which is engaged as described below to be rotated, the coupling hole 23, which is formed in the coupling portion 22 of the rack housing 21 and into which the bolt 30 is inserted to pass through, may have an inner diameter that is greater than an inner diameter of the hollow of the nut member 13 or an outer diameter of a body portion 31 as much as a predetermined size.
(28) An inner diameter of the coupling hole 23 in the coupling portion 22 is made to be greater than the inner diameter of the hollow of the nut member 13 or the outer diameter of the body portion 31 of the bolt 30 as much as a predetermined size such that the bolt 30 inserted to pass through the coupling hole 23 may be relatively rotated and tilted in the coupling portion 22.
(29) Further, the rack housing 21 may be manufactured by die casting aluminum and mounted on the sub-frame 10 by being engaged therewith by the bolt 30.
(30) In the present disclosure, the coupling portion 22 of the rack housing 21 and the mounting portion 11 of the sub-frame 10 may be provided at a plurality of predetermined positions. In this case, the nut member 13 is installed in the mounting portion 11, and the coupling portion 22 is engaged with the nut member 13 by the bolt 30 in a state of being seated on the nut member 13 installed on the mounting portion 11.
(31) The bolt 30 is inserted into the hollow of the nut member 13 and screw engaged with the nut member 13 through the screw thread, thereby serving to apply an axial force to the rack housing 21 in a state of being engaged with the nut member 13.
(32) The bolt 30 may be formed of a material such as a steel alloy or the like. The bolt 30 includes the body portion 31 inserted into the inner circumferential surface of the nut member 13 and screw engaged therewith, a head portion 32 formed at an end portion of the body portion 31, and a flange portion 33 formed at a boundary between the body portion 31 and the head portion 32 in a shape extending in a radial direction.
(33) Meanwhile, in the rack housing 21, a lower surface of the coupling portion 22 becomes a seating surface 22a which is seated on an upper side of the nut member 13, and the seating surface 22a of the coupling portion 22 may be formed as a convex curved surface having a predetermined curvature.
(34) Further, an upper end surface of a head portion 15 in the nut member 13 becomes a support surface 15a which is bonded and supported in a state in which the seating surface 22a of the coupling portion 22 is seated. The support surface 15a, which is the upper end surface of the head portion 15 in the nut member 13, may be formed as a concave curved surface corresponding to the seating surface 22a of the coupling portion 22.
(35) That is, the support surface 15a, which is the upper end surface of the head portion 15 in the nut member 13, may be formed as a concave curved surface having a predetermined curvature. In the rack housing 21, the seating surface 22a of the coupling portion 22 may be formed as a convex curved surface corresponding to the support surface 15a of the head portion 15.
(36) More specifically, in the rack housing 21, the seating surface 22a of the coupling portion 22 may be a curved surface having a curvature that is the same as that of the support surface 15a of the head portion 15.
(37) Further, the flange portion 33 of the bolt 30 is coupled in a state of being seated on an upper surface of the coupling portion 22 of the rack housing 21. A coupling surface 33a, which is a lower surface of the flange portion 33 in the bolt 30, may also be formed as a convex curved surface having a predetermined curvature.
(38) In this case, in the rack housing 21, the upper surface of the coupling portion 22 becomes a bonding surface 22b which is bonded in a state in which the flange portion 33 of the bolt 30 is seated. The bonding surface 22b of the coupling portion 22 may be formed as a concave curved surface corresponding to the coupling surface 33a of the bolt 30.
(39) Similarly, the bonding surface 22b of the coupling portion 22 may be formed as a concave curved surface having a predetermined curvature. In the bolt 30, the coupling surface 33a of the flange portion 33 may be formed as a convex curved surface corresponding to the bonding surface 22b of the coupling portion 22.
(40) More specifically, in the bolt 30, the coupling surface 33a of the flange portion 33 may be a curved surface having a curvature that is the same as that of the bonding surface 22b of the coupling portion 22.
(41) As a result, a predetermined curvature is applied to each of contact surfaces of the nut member 13 fixed to the sub-frame 10, the coupling portion 22 formed in the rack housing 21, and the bolt 30 for engaging the nut member 13 with the coupling portion 22 such that relative rotation, a tilting, and a position adjustment between parts being brought into contact with each other become possible.
(42) More specifically, in a state in which the coupling portion 22 of the rack housing 21 is seated on the head portion 15 of the nut member 13, specifically, in a state in which the convex seating surface 22a of the coupling portion 22 in the rack housing 21 is seated on the concave support surface 15a of head portion 15 in the nut member 13, slip occurs between the seating surface 22a and the support surface 15a such that the coupling portion 22 of the rack housing 21 may be rotated with respect to the nut member 13.
(43) With such rotation, an angle and inclination of the rack housing 21 may be adjusted with respect to the sub-frame 10 and the nut member 13 at the mounting portion 11.
(44) Further, clearance absorption may be achieved in the plurality of mounting portions 11 through the above-described rotation.
(45) That is, in each of the plurality of mounting portions 11 of the sub-frame 10, the angle and inclination of the rack housing 21 may be adjusted through the slip and rotation, and the coupling surface 33a, which is the lower surface of the flange portion 33 of the bolt 30, may also be rotated in a state of being bonded to the bonding surface 22b which is the upper surface of the coupling portion 22 of the rack housing 21.
(46) As a result, according to one form of the present disclosure, relative rotation between the sub-frame 10 and the rack housing 21 in the mounting portion 11 may be possible without a separate member therebetween, and the rack housing 21 may be tilted relative to the sub-frame 10.
(47) Further, the bolt 30 may be rotated and tilted relative to the coupling portion 22 of the rack housing 21.
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(49) As shown in the drawing, in order to allow relative rotation between the bolt 30, the coupling portion 22 of the rack housing 21, and the nut member 13, the coupling hole 23, which is formed in the coupling portion 22 of the rack housing 21 and through which the bolt 30 is inserted to pass, may have an inner diameter that is greater than the inner diameter of the hollow of the nut member 13 and the outer diameter of the nut member 13 as much as a predetermined size.
(50) Further, in an exemplary form, the coupling hole 23 of the coupling portion 22 in the rack housing 21 may have a shape of which inner diameter gradually increases toward an upper side of the coupling hole 23.
(51) This is to prevent interference of the bolt 30 with other parts in rotating and tilting the bolt 30 when compensating for a deviation of an engagement axis, i.e., when compensating for a deviation between a hollow axis and a coupling hole axis of the nut member 13. As described above, in one form, the coupling hole 23 of the coupling portion 22 is formed in a shape of which diameter gradually decreases toward a downward direction so as to allow the bolt 30 screw engaged with the nut member 13 to be rotated and tilted in the coupling portion 22 of the rack housing 21.
(52) Thus, in accordance with a steering apparatus according to one form of the present disclosure, a structure for mounting a gear box on a sub-frame allows relative rotation (tilting) of parts in a matching portion (contact portion) of the parts such that compensation for a clearance and a deviation of an engagement axis can be performed.
(53) Further, owing to the mounting structure, even though a deviation of a nut member occurs in the sub-frame, it is possible to compensate for a clearance (spacing) in another mounting portion due to rotation of a rack housing in a mounting portion corresponding to a reference hole, and even though a deviation between a hollow axis of the nut member and a coupling hole axis of the rack housing occurs, it is possible to compensate for the deviation through a bolt tilting.
(54) Therefore, owing to the mounting structure capable of absorbing a clearance between the mounting portions, it is possible to achieve a stable coupling between the rack housing of the gear box and the sub-frame in each of the mounting portions, and additional machining for preventing occurrence of a deviation can be omitted such that a production cost can be reduced.
(55) Further, it is possible to prevent deformation of the rack housing and stress concentration on a contact portion through deviation absorption such that it is possible not only to maintain a normal axial engagement force but also to prevent damage to the rack housing. Moreover, it is possible to reduce or minimize an adverse affection due to friction, improve stability of a vehicle, and prevent a steering feeling from being degraded.
(56) Although the forms of the present disclosure have been described in detail, the scope of the prevent present disclosure is not limited to these forms, and various modifications and improvements devised by those skilled in the art using the fundamental concept of the present disclosure fall within the scope of the present disclosure.