Self-locking cam washer
10618555 ยท 2020-04-14
Assignee
Inventors
- Song Chen (Troy, MI, US)
- Nathan Kellaway (Linden, MI, US)
- Matthew J O'Leary (Oxford, MI, US)
- Saravanan Ganeshmurthy (Auburn Hills, MI, US)
- Frederick J Zweng (Rochester Hills, MI, US)
Cpc classification
B62D17/00
PERFORMING OPERATIONS; TRANSPORTING
B60G2400/0516
PERFORMING OPERATIONS; TRANSPORTING
B60G7/001
PERFORMING OPERATIONS; TRANSPORTING
B60G2204/43
PERFORMING OPERATIONS; TRANSPORTING
F16B39/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B62D17/00
PERFORMING OPERATIONS; TRANSPORTING
B60G7/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A cam washer for a vehicle suspension system includes a point of rotation about which the washer is configured to rotate, and an outer surface profile where any point along the outer surface profile is configured to provide a friction angle less than a predetermined value to prevent the cam washer bolt from rotating under a load acting on the outer surface profile, the outer surface profile being a function of: i) a shortest distance from the point of rotation to the outer surface profile, ii) a longest distance from the point of rotation to the outer surface profile, iii) a position angle of the outer surface profile, and iv) a coefficient of friction of a material of the washer.
Claims
1. A cam washer bolt for a vehicle suspension system, the cam washer bolt comprising: a head; a stem; and a non-circular cam washer configured to adjust a toe angle of a vehicle wheel, the cam washer including: a point of rotation about which the washer is configured to rotate, and an outer surface profile where any point along the outer surface profile is configured to provide a friction angle less than a predetermined value to prevent the cam washer bolt from rotating under a load acting on the outer surface profile, the outer surface profile being a function of: i) a shortest distance from the point of rotation to the outer surface profile, ii) a longest distance from the point of rotation to the outer surface profile, iii) a position angle of the outer surface profile, and iv) a coefficient of friction of a material of the washer.
2. The cam washer bolt of claim 1, wherein the outer surface profile is defined by the equation:
3. The cam washer bolt of claim 2, wherein A is between 11.0 mm and 11.5 mm.
4. The cam washer bolt of claim 3, wherein A is 11.3 mm.
5. The cam washer bolt of claim 3, wherein p is 0.15.
6. The cam washer bolt of claim 1, wherein the point of rotation is an eccentric point of rotation, and wherein the outer surface profile is non-circular.
7. A vehicle suspension system comprising: a cradle and a knuckle; a link coupled between the cradle and the knuckle, wherein linear movement of the link causes angular adjustment of a wheel of the vehicle; and a cam washer bolt configured to couple the link to the cradle, wherein angular rotation of the cam washer bolt causes the linear movement of the link, wherein the cam washer bolt comprises: a head and a stem; and a non-circular cam washer configured to adjust a toe angle of a vehicle wheel, the cam washer including: a point of rotation about which the washer is configured to rotate, and an outer surface profile where any point along the outer surface profile is configured to provide a friction angle less than a predetermined value to prevent the cam washer bolt from rotating under a load acting on the outer surface profile, the outer surface profile being a function of: i) a shortest distance from the point of rotation to the outer surface profile, ii) a longest distance from the point of rotation to the outer surface profile, iii) a position angle of the outer surface profile, and iv) a coefficient of friction of a material of the washer.
8. The vehicle suspension system of claim 7, wherein the outer surface profile is defined the equation:
9. The vehicle suspension system of claim 8, wherein A is between 11.0 mm and 11.5 mm.
10. The vehicle suspension system of claim 9, wherein A is 11.3 mm.
11. The vehicle suspension system of claim 9, wherein is 0.15.
12. The vehicle suspension system of claim 7, wherein the outer surface profile is non-circular and an outer perimeter of the non-circular cam washer, and wherein the point of rotation is an eccentric point of rotation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) The present application is directed to a cam washer surface profile having a locking angle or friction angle less than a predetermined value, at any point of the surface profile, to prevent the cam washer from rotation under loading. If the curve of the surface profile has a friction angle less than the predetermined value, the cam washer will not rotate, thereby facilitating preventing misalignment of the vehicle wheels. Further, it will be appreciated that the surface profile described herein is not limited to a cam washer and may be utilized for various load-receiving surfaces.
(8) With initial reference to
(9) With further reference to
(10) Cam washer 60 defines an outer surface profile 70, which in the example illustration, is circular. However, a center O of the bolt head is offset from a center O1 of the cam washer 60, as also shown in
(11) With continued reference to
(12) As shown in
fmax=.Math.Fn
then,
(13)
By defining as the friction angle where washer 60 begins to rotate under the compressive force Fn,
=tan.sup.1()
Since the friction angle is only dependent on the friction coefficient , if angle >tan.sup.1(), friction cannot prevent cam washer 60 from rotation. Accordingly, to prevent cam washer 60 from rotation by compressive force Fn, tan.sup.1().
(14) With further reference to
(15) By sine law on O.sub.1OC,
(16)
(17) Accordingly, for the illustrated cam washer 60, a locking or friction zone is defined between 0 and 29.84 and between 150.16 and 180. If the contact point of compressive force Fn is located outside of the friction zone, washer 60 will rotate. If the contact point of compressive force Fn is located inside the friction zone, washer 60 will not rotate. As such the friction angle is variable along the cam washer outer surface profile 70 on the circular design shown in
(18) Accordingly, with reference to
(19) Accordingly, the outer surface profile 170 of washer 160 is defined by the equation:
(20)
where A is the shortest distance from the point of rotation to the outer surface profile, B is a variable that is determined by the longest distance from the point of rotation to the outer surface profile, is a position angle of the outer surface profile, and is the coefficient of friction of a material of the washer, as discussed above.
(21) In an alternative embodiment, the outer surface profile 170 of washer 160 is defined by the equation:
(22)
where A is the shortest distance from the point of rotation to the outer surface profile, is a position angle of the outer surface profile, and is the coefficient of friction of a material of the washer, as discussed above.
(23) In one example outer surface profile configuration, illustrated in
(24) In one example, to determine the variable B in the equations, the maximum washer length (e.g., 20.90 mm) is desired at =180. Accordingly, in the equation x=A.Math.cos .Math.B.sup., x=the maximum washer length (e.g., 20.90 mm), A=the minimum washer length (e.g., 11.30 mm), is the coefficient of friction of the washer material (e.g., 0.15 for steel), and =180 (e.g., in radians). Accordingly, the equation becomes 20.9 mm=(11.30 mm).Math.1.Math.B.sup.0.15, which yields B=3.689 for the desired maximum washer length at =180. The value of the variable B will thus necessarily change as the maximum washer length and/or is varied.
(25) Accordingly, the illustrated cam washer 160 is configured to provide 9.60 mm of linear adjustment to the toe link 35. And this linear adjustment is provided over a 180 turn of the outer surface profile 170, which provides a symmetrical cam washer 160. As shown in
(26) However, the outer surface profile can provide various linear adjustments by varying the desired maximum washer length, , and/or or B. For example, if a linear adjustment less than 9.60 mm is desired, B can be decreased, which will necessarily change the shape of cam washer 160 and the outer surface profile 170. Similarly, if a linear adjustment greater than 9.60 mm is desired, B can be increased, which will also change the shape of cam washer 160 and the outer surface profile 170.
(27) Regardless of shape, utilizing the given equations provides a cam washer outer surface profile configured to maintain a friction angle less than a desired or predetermined friction angle at any point the outer surface profile. Maintaining this friction angle along any point of the cam washer outer surface profile facilitates preventing the cam washer from unintentional rotation due to a compressive force acting on the cam washer via an operably associated link, such as a toe link or spring link. Accordingly, preventing unintentional rotation of the cam washer bolt facilitates preventing misalignment of the vehicle wheels and accelerated or uneven wear thereof.
(28) It should be understood that the mixing and matching of features, elements and/or functions between various examples may be expressly contemplated herein so that one skilled in the art would appreciate from the present teachings that features, elements and/or functions of one example may be incorporated into another example as appropriate, unless described otherwise above.