SLIDING CAGE OF UNIVERSAL JOINT FOR VEHICLE
20170268574 ยท 2017-09-21
Inventors
Cpc classification
F16C3/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2326/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2361/41
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C29/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a sliding cage of universal joint for vehicle, and more particularly, to a sliding cage of universal joint for vehicle for making a shaft joint and a pipe joint smoothly slide as well as operating an elastically contacted needle bearing, installed to the sliding cage, when a universal joint is slipped or delivers rotating torque.
The present invention provides a sliding cage of universal joint for vehicle, comprising: a sleeve; a plurality of mountings positioned to keep distance along the longitudinal direction of the outer side of the sleeve; and a needle bearing and a ball bearing which are installed to the mountings, wherein the sliding cage is provided to the universal joint constructing a steering apparatus for vehicle, thereby being assembled to deliver torque while being slipped toward axial direction.
Claims
1. A sliding cage of universal joint for vehicle, comprising: a sleeve; a plurality of mountings positioned to keep distance along the longitudinal direction of the outer side of the sleeve; and a needle bearing and a ball bearing which are installed to the mountings, wherein the sliding cage is provided to the universal joint constructing a steering apparatus for vehicle, thereby being assembled to deliver torque while being slipped toward axial direction.
2. The sliding cage according to claim 1, wherein the ball bearing and the needle bearing are installed to same mountings, or separately installed to each mounting.
3. The sliding cage according to claim 2, wherein the needle bearing is installed to a central part of mountings and the ball bearing is installed to both ends of the needle bearing respectively when the ball bearing and the needle bearing are installed to same mountings.
4. The sliding cage according to claim 1, wherein the needle bearing, shaped like a cylindrical stick, comprises a body, which forms supporting grooves along the circumferential side, and resilient members, assembled to the supporting grooves formed in the body.
5. The sliding cage according to claim 4, wherein a bottom surface of the supporting grooves forms a straight line and both ends, extended from the bottom surface, form outwardly slanted surfaces.
6. The sliding cage according to claim 4, wherein the supporting grooves are formed like spirals and the resilient members are shaped like coil springs.
7. The sliding cage according to claim 4, wherein the resilient members are installed at a certain interval from the bottom surface and both ends of the supporting grooves.
8. The sliding cage according to claim 4, wherein a cross-sectional diameter of both ends of the needle bearing body is smaller than that of the body.
9. The sliding cage according to claim 4, wherein the needle bearing body has curved surfaces.
Description
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0035] The configuration of the present invention will be described in detail with the accompanying drawings.
[0036]
[0037] As illustrated in drawings, a universal joint for vehicle comprises a shaft joint(S), a pipe joint(P), which is a counter component assembled to the shaft joint(S), and a sliding cage(500) assembled to the shaft joint(S).
[0038] The shaft joint(S) consists of a shaft part(100) and a yoke part(200), wherein a plurality of serrations(110) are formed in the outer side of the shaft part(100) toward the circumferential direction, and a connection hole(210) is formed in the yoke part(200) for connecting other joint, like spider.
[0039] The sliding cage(500) is fixed to the outer side of the end of the shaft joint(S), and a snap ring fixing groove(120) is formed to the end of the shaft part(100) for fixing the sliding cage(500) by using a snap ring, not illustrated.
[0040] The pipe joint(P), which is a counter component assembled to the shaft joint(S), consists of a pipe part(300) and a yoke part(400), wherein a spline(310) corresponding to the serrations(110) of the shaft joint(S), is formed to the inside of the pipe part(300), and a connection hole(410) is formed in the yoke part(400) for connecting other joint, like spider.
[0041] It may be possible for the spline(310) of the pipe joint(P) to form the pipe part(300) while the spline(310) is formed in the inside of the pipe part(300).
[0042] Fixing grooves(320) are formed in the perimeter of the end of the pipe part(300) in the pipe joint(P), thereby being attached to a fixed body.
[0043] The shaft part(110) of the shaft joint(S) is inserted to the inside of the pipe part(300) of the pipe joint(P), thereby constructing the universal joint. Further, the sliding cage(500) may be further assembled in the shaft part(100) so that the universal joint is smoothly slipped toward axial direction when the universal joint is installed in vehicles.
[0044] The sliding cage(500) comprises a sleeve(510) insertedly fixed to the outside of the shaft part(100) of the shaft joint(S), a plurality of mountings(520) protruded while maintaining distance along the longitudinal direction of the outer side of the sleeve(510), a needle bearing(600) for being fixedly installed to the mountings(520) and line contacting to the inside of the pipe joint(P), and a ball bearing(700) assembled to both ends of the needle bearing(600).
[0045] The sleeve(510) is shaped like a cylinder; the mountings(520) are shaped like a circular cylinder; and supporting grooves are formed in the mountings(520), thereby enabling to install the needle bearing(600) and the ball bearing(700) to the supporting grooves in a manner of interference fit.
[0046] Further, grooves(530) are formed along the longitudinal direction in the mountings(520) for flowing or storing lubricants such as grease or oil.
[0047] The needle bearing(600) includes a needle bearing body(610), and resilient members(620) which are installed to the outer side of the needle bearing body(610).
[0048] The needle bearing body(610) is shaped like a cylindrical stick; there are supporting grooves(630) along the circumferential side; and the resilient members(620) are insertedly installed to the supporting grooves(630). The supporting grooves(630) are formed like spirals and the resilient members(620) are shaped like coil springs which are the same as the spiral supporting grooves(630).
[0049] The supporting grooves(630) are composed of a bottom surface(640), and sides(650) from which either ends of the bottom surface(640) are extended to the upper part, wherein the bottom surface(640) forms a straight line and the sides(650) form outwardly slanted surfaces.
[0050] By forming the outwardly slanted sides(650) in the supporting grooves(630), there is a space for the resilient members(620) of the needle bearing to be slightly moved in case that the shaft joint(S) and the pipe joint(P) of the universal joint are slipped or torque works.
[0051] Further, the resilient members(620) may be installed with slight intervals from the bottom surface(640) and the both sides(650) of the supporting grooves(630) and thus, it is possible for the resilient members(620) of the needle bearing to move elastically when the shaft joint(S) and the pipe joint(P) are slipped toward axial direction or deliver torque by rotation.
[0052] Substantially, it is shown in the present invention that the resilient members(620) and the ball bearing(700) in the needle bearing are elastically touched to the inner side of the pipe joint(P) when the shaft joint(S) and the pipe joint(P) perform are slipped or deliver torque.
[0053] Accordingly, when the shaft joint(S) and the pipe joint(P) of the universal joint are slipped or deliver rotating torque, the resilient members(620) of the needle bearing are always subject to outward elasticity and then, the whole outer side of the resilient members(620) is elastically line contacted to the inner side of the pipe joint(P), thereby causing slip movement and rotating torque delivery. Thus, gaps between the needle bearing(600) and the inside of the pipe joint(P) are not generated by minimizing friction coefficients.
[0054] Then, it enables to prevent performance degradation of steering apparatus since gaps between the needle bearing(600) and the inner side of the pipe joint(P) are not generated, and it enables to maintain steering feel in good condition as the same as the initial state in spite of accumulated duration of use.
[0055] Further, when the resilient members(620), assembled to the needle bearing(600), are slided by compensating for gaps in the inner side of the pipe joint(P) while torque is applied to the shaft joint(S) and the pipe joint(P), the compressed resilient members(620) and the ball bearing(700) may be slided together along with being elastically contacted to the spline(310), formed in the pipe joint(P).
[0056] Furthermore, when torque is applied to the shaft joint(S) and the pipe joint(P), each torque is firstly delivered to the resilient members(620) equipped to the needle bearing(600), secondly to the ball bearing(700) positioned to both sides of the needle bearing(600), and thirdly to the body(610) of the needle bearing(600).
[0057] At this time, the ball bearing(700) is not dented due to the body(610) of the needle bearing(600). That is, when torque is applied to the shaft joint(S) and the pipe joint(P), the ball bearing(700) mainly performs smooth sliding and the needle bearing(600) performs dent prevention.
[0058] The external diameter(B) of the body(610) of the needle bearing(600) is smaller than the external diameter(A) of the main body and thus, it enables to reduce fore-end frictional resistance of the needle bearing(600) when the shaft joint(S) is slipped along the pipe joint(P).
[0059] In addition, having curved surfaces, both ends of the body(610) of the needle bearing(600) are more easily configured to install the needle bearing(600) to the mountings(520) in a manner of interference fit.
[0060] As above, the sliding cage(500) equipped with the needle bearing(600) and the ball bearing(700) is insertedly assembled to the ends of the shaft part(100) of the shaft joint(S), and the snap ring fixing groove(120) maintains the assembled condition by using the snap ring, not illustrated.
[0061] The needle bearing(600) and the ball bearing (700) may be installed together to the same mountings(520) as seen in the embodiments of the present invention, or, as seen in
[0062] The sliding cage of universal joint for vehicle, as above, assembles the sliding cage(500) to the ends of the shaft part(100) of the shaft joint(S) and its one end is inserted to the inside of the pipe joint(P).
[0063] The shaft joint(S) and the pipe joint(P), assembled as above, are ready to be slipped toward axial direction while the serrations(110) and the spline(310) may deliver rotating torque through the sliding cage(500).
[0064] Further, the connection hole(210) in the yoke part(200) of the shaft joint(S) is assembled to a steering column, which constructs a steering apparatus in vehicles, by connecting other joint, like spider, and the connection hole(410) in the yoke part(400) of the pipe joint(P) is assembled to a gearbox, which constructs a steering apparatus in vehicles, by connecting other joint, like a spider.
[0065] Here, the needle bearing(600) in the sliding cage(500) includes the resilient members(620), made up of coil springs, in the outside of the needle body(610). Thus, when the shaft joint(S) and the pipe joint(P) are slipped or deliver rotating torque, the whole outer side of the resilient members(620) of the needle bearing is elastically line contacted to the inner side of the pipe joint(P), thereby causing slip movement and rotating torque delivery.
[0066] That is, as illustrated in
[0067] Further, as illustrated in
[0068] Further, when torque stops, the resilient members(620) repeat a process for restoring to an original state by outward elasticity. Thus, even though the universal joint is slipped or torque is applied, the resilient members(620) are not touched to the supporting grooves(630) and are elastically positioned with slight interval.
[0069] Accordingly, the universal joint is always subject to elasticity of the resilient members(620). Thus, it enables to prevent performance degradation of steering apparatus since gaps between the needle bearing(600) and the inner side of the pipe joint(P) are not generated, and it enables to maintain goo steering feel as the same as the initial state in spite of accumulated duration of use.
[0070] During operation, as above, the ball bearing(700) is located at both ends of the needle bearing(600) and thus, the shaft joint(S) and the pipe joint(P) may be more smoothly slipped toward axial direction due to the ball bearing(700).
[0071] Although the preferred embodiments of the present invention have been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims.
EXPLANATIONS OF NUMERAL REFERENCE
[0072]
TABLE-US-00001 S: shaft joint P: pipe joint 100: shaft part 110: serrations 120: snap ring fixing groove 200, 400: yoke part 210, 410: connection hole 300: pipe part 310: spine 320: fixing grooves 500: sliding cage 510: sleeve 520: mountings 530: groove 600: needle bearing 610: body 620: resilient members 630: supporting grooves 640: bottom surface 650: sides 660: curved surface 700: ball bearing