Socket assembly and method of making a socket assembly
11209043 · 2021-12-28
Assignee
Inventors
- Glen C. Parker (St. Peters, MO, US)
- Kurt R. Bretz (Albers, IL, US)
- Brennan Sugg (St. Louis, MO, US)
- Eric M. Kopsie (Bethalto, IL, US)
Cpc classification
F16C11/0628
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/0671
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/0685
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/0647
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/0623
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/0652
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C11/068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C25/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The socket assembly has a housing with an inner bore which extends from a first end to a second end. A ball portion of a ball stud is received in the inner bore. A backing bearing is disposed in the inner bore and presents a curved bearing surface in surface-to-surface contact with the ball portion. A first spring biases the backing bearing against the ball portion. The socket assembly also includes an exit bearing with a cylindrical portion that is in contact with an equator of the ball portion and a semi-spherical portion that is in surface-to-surface contact with an opposite hemisphere from the first bearing surface. A second spring biases the exit bearing into a predetermined location established by the housing. The exit bearing is movable from the predetermined location in a direction towards the second end of the housing against a biasing force of the second spring.
Claims
1. A socket assembly, comprising: a housing with an inner bore that extends along an axis from a wall at a generally closed first end to an open second end; a ball stud having a ball portion which is received in said inner bore of said housing and having a shank portion which projects out of said inner bore through said open second end; a backing bearing disposed in said inner bore and presenting a curved first bearing surface in surface-to-surface contact with an outer surface of said ball portion of said ball stud; a first spring disposed in said inner bore and biasing said first bearing surface of said backing bearing against said ball portion of said ball stud; an exit bearing disposed in said inner bore of said housing and presenting a second bearing surface with a cylindrical portion in contact with an equator of said ball portion of said ball stud and with a semi-spherical portion in surface-to-surface contact with an opposite hemisphere of said ball portion of said ball stud from said first bearing surface of said backing bearing; a second spring biasing said exit bearing into a predetermined location established by said housing; said exit bearing being movable from said predetermined location in a direction towards said open second end of said housing against a biasing force of said second spring; wherein said exit bearing has an outer surface that is frustum of a cone shaped with a first diameter nearest said open second end of said housing and a second diameter nearest said first closed end of said housing and wherein said first diameter is greater than said second diameter and wherein said outer surface is seated against a tapered inner surface of said housing when said exit bearing is in said predetermined location; wherein said exit bearing is in an interference fit connection with said housing; further including a dust boot sealed with said housing and sealed with said ball stud for retaining a lubricant within said inner bore of said housing and for keeping contaminants out of said inner bore of said housing; and wherein said second spring is at least partially embedded in an elastic body of said dust boot.
2. The socket assembly as set forth in claim 1 wherein said first spring is a Belleville washer.
3. The socket assembly as set forth in claim 1 wherein said wall at said closed first end of said housing presents a lubricant opening for receiving the lubricant into said inner bore of said housing.
4. The socket assembly as set forth in claim 3 wherein said first bearing surface of said backing bearing presents at least one lubricant channel for conveying the lubricant from said lubricant opening in said housing into a gap between said backing and exit bearings.
5. The socket assembly as set forth in claim 4 wherein said second bearing surface of said exit bearing presents at least one lubricant channel.
6. The socket assembly as set forth in claim 1 wherein said second spring is a Belleville washer.
7. The socket assembly as set forth in claim 1 wherein said housing presents a shoulder which faces towards said open second end of said housing and wherein said exit bearing abuts said shoulder when in said predetermined location.
8. The socket assembly as set forth in claim 1 further including a cover plate disposed in said inner bore of said housing adjacent said open second end.
9. The socket assembly as set forth in claim 8 wherein said housing at said second open end is bent inwardly to trap said cover plate in said inner bore of said housing.
10. The socket assembly as set forth in claim 1 wherein said outer surface of said exit bearing presents a plurality of axially extending ridges that are spaced circumferentially from one another.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other features and advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
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DESCRIPTION OF THE ENABLING EMBODIMENT
(16) Referring to the Figures, wherein like numerals indicate corresponding parts throughout the several views, a first exemplary embodiment of an improved socket assembly 20 (specifically, a ball joint assembly) is generally shown in
(17) The socket assembly 20 includes a housing 22 with an inner bore that extends along an axis A from a closed first end 24 to an open second end 26. At the closed first end 24, the housing 22 presents a lower wall 28 with a lubricant opening 30 that receives a grease fitting 32 (also known as a zerk fitting) for conveying a lubricant, such as grease, into the inner bore to initially lubricate the components of the socket assembly 20 and to re-lubricate the socket assembly 20 as part of routine maintenance. The housing 22 is preferably made of a metal, such as steel or a steel alloy, and may be shaped through any suitable process or combination of processes including, for example, forging, casting, machining from a billet, etc. In the exemplary embodiment, the housing 22 is a cartridge for press-fitting into an opening in the control arm. However, the housing could alternately be integrally formed with another component, e.g., a control arm or a tie rod end.
(18) As shown in
(19) Referring now to
(20) The socket assembly 20 further includes a ball stud 50 which is partially received in the inner bore of the housing 22. Specifically, the ball stud 50 includes a ball portion 52 that is fully disposed in the inner bore and a shank portion 54 which projects out of the inner bore through the open second end 26. The shank portion 54 extends from the ball portion 52 to a distal end which is threaded for receiving a nut to connect the shank portion 54 with another component, e.g., a knuckle. The ball portion 52 of the ball stud 50 has a generally semi-spherically curved outer surface which has a similar radius of curvature to the first bearing surface 44 of the backing bearing 42. The outer surface of the ball portion 52 is in sliding contact with the first bearing surface 44 to allow the ball stud 50 to rotate and pivot relative to the backing bearing 42 and the housing 22 during operation of the suspension assembly. The backing bearing 42 is preferably made of metal, such as steel or a steel alloy.
(21) A first spring in the form of a Belleville washer 65 is positioned in the first portion 34 of the inner bore between the backing bearing 42 and the lower wall 28 of the housing 22 for biasing the first bearing surface 44 of the backing bearing 42 against the outer surface of the ball portion 52 of the ball stud 50.
(22) The socket assembly 20 further includes an exit bearing 65 which is positioned in the third portion 38 of the inner bore and abuts the first shoulder 40 of the housing 22. The exit bearing 65 is a separate piece from the backing bearing 42 and is spaced axially therefrom by a gap in the second portion 36 of the inner bore. The exit bearing 65 has a second bearing surface with a cylindrical portion 62 and a semi-spherical portion 66. The cylindrical portion 62 is in sliding contact with an equator or centerline of the ball portion 52 of the ball stud 50. The semi-spherical portion 66 has a radius of curvature that is similar to that of an outer surface of the ball portion 52 of the ball stud 50 and is in sliding contact with an opposite hemisphere of the ball portion 52 from the first bearing surface 44 of the backing bearing 42. In the exemplary embodiment, the second bearing surface 62 is provided with a plurality of second lubrication grooves 64 for distributing lubricant around the surface-to-surface contact area between the second bearing surface and the outer surface of the ball portion 52 of the ball stud 50 and for conveying the lubricant in the inner bore axially across the exit bearing 65. In the second portion 36 of the inner bore, the gap between the backing bearing 42 and the exit bearing 65 acts as a lubrication reservoir, which holds the lubricant.
(23) The exit bearing 65 has a generally flat or planar top surface 87 which faces towards the open second end 26 of the inner bore and a generally flat or planar lower surface 82 that faces towards the closed first end 24 of the inner bore. When the exit bearing 65 is positioned in a predetermined seating location in the inner bore of the housing 22, the flat lower surface 82 abuts the first shoulder 40 of the housing 22.
(24) During operation of the suspension assembly, the cylindrical portion 62 of the second bearing surface transfers all or substantially all of the radial forces between the ball stud 50 and the housing 22 while the backing bearing 42 and the semi-spherical portion 66 of the second bearing surface transfer all or substantially all of the axial forces between the ball stud 50 and the housing 22.
(25) The socket assembly 20 further includes a dust boot 70 which is sealed against the housing 22 and against the shank portion 54 of the ball stud 50 for maintaining the lubricant in the inner bore of the housing 22 and for keeping contaminants outside of the inner bore. The dust boot 70 includes a first boot end which presents a radially outwardly extending flange 72 with a second spring in the form of a Belleville washer 74 that is embedded within a boot body 76 at the radially outwardly extending flange 72. The boot body 76 is made of an elastic and flexible sealing material, such as rubber or a plastic material. The radially outwardly extending flange 72 of the dust boot 70 is positioned in the fourth portion 39 of the inner bore of the housing 22 and is in surface-to-surface contact with the top surface 87 of the exit bearing 65.
(26) A cover plate 78 is positioned at an opposite side of the radially outwardly extending flange 72 of the dust boot 70. The housing 22 has a radially inwardly extending lip 80 which traps the cover plate 78 and the radially outwardly extending flange 72 of the dust boot 70 between the radially inwardly extending lip 80 and the exit bearing 65. This also has the effect of preloading the Belleville washer 74 in the dust boot 70 to impart a preload force against the exit bearing 65 to bias the second bearing surface of the exit bearing 65 against the outer surface of the ball portion 52 of the ball stud 50. The radially inwardly extending lip 80 is preferably formed into the housing 22 by swaging, or spinning, the housing 22 at the open second end 26.
(27) As shown in
(28) As shown in
(29) Referring now to
(30) Another aspect of the present invention is a method of making a socket assembly 20, such as the exemplary socket assembly shown in
(31) It should be appreciated that the use of the terms “upper” and “lower” herein is in reference to the orientation of the socket assembly 20 in the Figures and is not to be interpreted as requiring a particular orientation or in any way be limiting.
(32) Obviously, many modifications and variations of the present invention are possible in light of the above teachings and may be practiced otherwise than as specifically described while within the scope of the appended claims.