The disclosure of Japanese Patent Application No. 2017-042925 filed on Mar. 7, 2017 including the specification, drawings and abstract, is incorporated herein by reference in its entirety.
The present invention relates to a rack guide device.
In a rack guide device, a rack guide that slidably supports a rack shaft is housed in a housing hole of a housing so as to be slidable between the rack shaft side and the opposite side. A plug is screwed to the inner periphery of an outer opening end portion of the housing hole on the opposite side of the rack shaft. An urging member is housed in a recessed portion formed in at least one of facing surfaces of the plug and the rack guide. The urging member urges the rack guide toward the rack shaft. The clearance between the facing surfaces of the plug and the rack guide is adjusted to a predetermined value of 0.1 mm or less, for example.
In order to prevent slipping of the plug, the following methods which use clinching are normally used. For example, in a first method, a plastically deformed portion is first formed by clinching on a part of ridges of external threads of the plug. The clearance between the plug and the rack guide is adjusted to a predetermined value by tightening the plug which is provided with the plastically deformed portion until the plug abuts against the rack guide, and thereafter unscrewing the plug by a predetermined amount. The first method is also referred to as a “pre-clinching method” since clinching is performed before the clearance is adjusted.
In a second method, the clearance is adjusted to a predetermined value by tightening the plug until the plug abuts against the rack guide, and thereafter unscrewing the plug by a predetermined amount. After that, an end surface of the plug is clinched to the housing. The second method is also referred to as a “post-clinching method” since clinching is performed after the clearance is adjusted. As a common technique of preventing loosening of a screw, Japanese Patent Application Publication No. 2011-12784 (JP 2011-12784 A) proposes a technique of forming a plastically deformed external thread portion by forming an external thread portion of a bolt, for example, by form rolling or cutting and thereafter plastically deforming at least some of ridges of the external thread portion to displace a crest portion of the ridges in the radial direction and/or the axial direction of the external threads. In JP 2011-12784 A, a projection material is projected onto the ridges, high-pressure water is jetted toward the ridges, or a pressing instrument is pressed against the bolt in the screwed state in a plastic deformation step in which the ridges are plastically deformed.
The clinching steps of the first method, the second method, etc. and the plastic deformation step of JP 2011-12784 A in which the crest portion of the ridges is displaced involve complicated work, and do not facilitate manufacture.
It is an object of the present invention to provide a rack guide device that facilitates manufacture.
An aspect of the present invention provides a rack guide device including: a housing in which a housing hole is formed; a rack guide housed in the housing hole so as to be movable in a first direction toward a rack shaft and a second direction that is opposite to the first direction, the rack guide supporting the rack shaft so as to be slidable in an axial direction; a plug screwed to an outer opening end portion that is an end portion of the housing hole on a side in the second direction; and an urging member interposed between the plug and the rack guide to urge the rack guide in the first direction, in which: an outer peripheral surface of the plug includes external threads screwed to internal threads formed in an inner peripheral surface of the housing hole at the outer opening end portion; and a root portion of the external threads includes an interference portion that interferes with a crest portion of the internal threads.
The foregoing and further features and advantages of the invention will become apparent from the following description of example embodiments with reference to the accompanying drawings, wherein like numerals are used to represent like elements and wherein:
An embodiment of the present invention will be described below with reference to the accompanying drawings.
The steering operation mechanism 4 is constituted of a rack-and-pinion mechanism, for example. The steering operation mechanism 4 includes a pinion shaft 7 and a rack shaft 8 that serves as a steered shaft. The pinion shaft 7 is coupled to the steering shaft 5 via the intermediate shaft 6. A pinion 7a is formed in the vicinity of an end portion of the pinion shaft 7. A rack 8a to be meshed with the pinion 7a of the pinion shaft 7 is formed on the outer periphery of a part of the rack shaft 8 in an axial direction W.
The rack shaft 8 is supported in a rack housing 9, which is fixed to a vehicle body, via a rack bushing B etc. so as to be movable in the axial direction W (corresponding to the vehicle width direction which is the right-left direction of the vehicle body). End portions of the rack shaft 8 project to both sides from the corresponding end portions of the rack housing 9. The end portions of the rack shaft 8 are coupled to the corresponding steered wheels 3 via corresponding tie rods 10 and corresponding knuckle arms (not illustrated).
When the steering member 2 is rotationally operated to rotate the steering shaft 5, rotation of the steering shaft 5 is converted into linear motion of the rack shaft 8 in the axial direction W by the pinion 7a and the rack 8a. Consequently, the steered wheels 3 are steered. The steering device 1 includes the rack guide device 20. The rack guide device 20 is disposed on the opposite side of the rack shaft 8 from the pinion 7a. The rack guide device 20 functions to guide movement of the rack shaft 8 in the axial direction W while urging the rack shaft 8 toward the pinion 7a.
The rack guide device 20 includes a housing 30, a plug 40, a rack guide 50, an urging member 60, and a plug member 70. The housing 30 is provided integrally with the pinion housing 11. The housing 30 is disposed on the opposite side of the rack shaft 8 from the pinion 7a. A housing hole 31 constituted of a circular hole, for example, is formed in the housing 30. The rack shaft 8 is inserted through the housing hole 31.
An outer opening end portion 32 is formed in the housing hole 31 on the opposite side of the rack shaft 8. The plug 40 is screwed to the outer opening end portion 32 of the housing hole 31. Internal threads 33 are formed in an inner peripheral surface 31a of the housing hole 31 at the outer opening end portion 32. External threads 44 to be screwed to the internal threads 33 are formed on an outer peripheral surface 43 of the plug 40. The rack guide 50 is housed in the housing hole 31 so as to be movable (advanceable/retractable) in a first direction X1 (advancing direction) toward the rack shaft 8 and a second direction X2 (retracting direction) toward the plug 40 which is opposite to the first direction X1. In the following, the first direction X1 and the second direction X2 are collectively referred to as an “advancing/retracting direction X”. The rack guide 50 slidably supports a back surface 8b of the rack 8a of the rack shaft 8.
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The rack guide 50 includes a first end surface 51 on the first direction X1 side, a second end surface 52 on the second direction X2 side, and an outer peripheral surface 53. The first end surface 51 faces the rack shaft 8. A recessed surface 54 shaped so as to generally coincide with the shape of the back surface 8b of the rack shaft 8 is formed in the first end surface 51 of the rack guide 50. A sliding contact plate 55 that has a curved shape along the recessed surface 54 is fixed to the recessed surface 54. The sliding contact plate 55 is in sliding contact with the back surface 8b of the rack shaft 8. A plate with a small friction coefficient is preferably used as the sliding contact plate 55. A metal plate or a metal plate coated with a fluorine resin, for example, can be used as the sliding contact plate 55.
The outer peripheral surface 53 of the rack guide 50 is constituted of a cylindrical surface centered on a center axis Cl of the rack guide 50. A recessed portion 56 constituted of a circular hole that is concentric with the cylindrical surface of the outer peripheral surface 53 is formed in the second end surface 52 of the rack guide 50. The urging member 60 is a compression coil spring interposed between the root of the recessed portion 56 of the second end surface 52 of the rack guide 50 and the first end surface 41 of the plug 40. The urging member 60 includes a first end portion 61 received by the root of the recessed portion 56 of the rack guide 50, and a second end portion 62 received by the first end surface 41 of the plug 40. The urging member 60 urges the rack guide 50 toward the first direction X1 side (toward the rack shaft 8).
An outer peripheral groove 57 is formed in the outer peripheral surface 53 of the rack guide 50. An annular elastic member 58 such as an O-ring, for example, is housed and held in the outer peripheral groove 57. The outside diameter of the rack guide 50 is slightly smaller than the bore diameter of the housing hole 31. The elastic member 58 slides on an inner peripheral surface 31a of the housing hole 31. Consequently, the rack guide 50 is moved in the advancing/retracting direction X in the housing hole 31.
In the present embodiment, during assembly, the plug 40 is screwed into the outer opening end portion 32 of the housing hole 31 of the housing 30, the plug 40 (the first end surface 41 thereof) abuts against the rack guide 50 (the second end surface 52 thereof), and thereafter the plug 40 is unscrewed by a predetermined amount. Consequently, a clearance S (see
The plug 40 is a cast article. Therefore, the interference portions 83 are formed on the root 82a of the root portion 82 of the external threads 44 at the same time as the plug 40 is cast, which facilitates manufacture. The interference portions 83 can be formed by cutting away a crest portion of a root portion forming projecting portion (not illustrated), for forming the root portion 82 of the external threads 44, of a casting die for casting a plug for a case where the interference portions 83 are not formed. Manufacture is facilitated also from this point of view.
A plurality of interference portions 83 are disposed at equal intervals in the circumferential direction Y of the outer peripheral surface 43 of the plug 40. Therefore, the plug 40 is not easily decentered with respect to the internal threads 33, which allows the plug 40 to be screwed and unscrewed stably.
In the present embodiment, the amount of interference (in the radial direction R) of the interference portion 83P with the crest portion 91T (not illustrated) of the internal threads 33 is gradually increased or gradually decreased in accordance with the position in the circumferential direction Y of the outer peripheral surface 43 of the plug 40P. Therefore, a force required for screwing work and unscrewing work is gradually increased or gradually decreased, which facilitates work. The present invention is not limited to the embodiments described above. For example, the plug may be a forged article, and the external threads of the plug may be a cut portion. Besides that, the present invention may be modified in various ways without departing from the scope and spirit of the claims.
Number | Date | Country | Kind |
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2017-042925 | Mar 2017 | JP | national |