Claims
- 1. A rear wheel suspension for a vehicle comprising:
a chassis; a pair of trailing arms for rotatably mounting a pair of road wheels; a chassis cross-member coupled to said chassis; and a composite beam having outer attachment members and inner attachment members, said outer attachment members rotatably coupled to each of said pair of trailing arms and said inner attachment members rotatably coupled to said chassis cross-member.
- 2. The rear wheel suspension for a vehicle as recited in claim 1, wherein said chassis is a unitized body.
- 3. The rear wheel suspension for a vehicle as recited in claim 1, wherein said chassis is a vehicle frame.
- 4. The rear wheel suspension for a vehicle as recited in claim 1, further comprising a pair of upper control arms, each of said upper control arms having an inner control arm end and an outer control arm end, wherein said inner control arm ends are rotatably coupled to said chassis cross-member and wherein said outer control arm ends are each rotatably coupled to a respective one of said pair of trailing arms.
- 5. The rear wheel suspension for a vehicle as recited in claim 1, further comprising a pair of lower toe links, each of said lower toe links having an inner lower link arm end and an outer toe link arm end, wherein each of said inner toe link arm ends are rotatably coupled to said chassis cross-member and wherein each of said outer toe link arm ends are rotatably coupled to a respective one of said pair of trailing arms.
- 6. The rear wheel suspension for a vehicle as recited in claim 1, wherein said composite beam has a rectangular cross section.
- 7. The rear wheel suspension for a vehicle as recited in claim 1, wherein said composite beam has a cross section whose bending axis is angled in the XZ plane.
- 8. The rear wheel suspension for a vehicle as recited in claim 1, wherein said composite beam has a trapezoidal cross section.
- 9. The rear wheel suspension for a vehicle as recited in claim 1, wherein a location of said outer attachment members and inner attachment members on said composite beam are adjusted such that a bending trajectory of said composite beam approximately matches a target arc.
- 10. A method for decreasing part count and complexity in a suspension system while improving NVH and reducing weight, the method comprising the steps of:
rotatably coupling each of a pair of outer attachment members of a composite beam to a respective one of a pair of trailing arms; and coupling each of a pair of inner attachment members of said composite beam to a chassis cross-member.
- 11. The method of claim 10 further comprising the steps of
rotatably coupling an inner control arm end of each of a pair of upper control arms to said chassis cross-member; and rotatably coupling an outer control arm end of each of said pair of upper control arms to a respective one of said pair of trailing arms.
- 12. The method of claim 10 further comprising the steps of:
rotatably an inner toe link arm end of each of a pair of toe links to said chassis cross-member; and rotatably coupling an outer toe link arm end of each of said pair of toe links to a respective one of said pair of trailing arms.
- 13. The method of claim 11 further comprising the steps of:
rotatably an inner toe link arm end of each of a pair of toe links to said chassis cross-member; and rotatably coupling an outer toe link arm end of each of said pair of toe links to a respective one of said pair of trailing arms.
- 14. A method of forming a composite beam for use in a vehicle suspension system, the method comprising the steps of:
weaving a preform using a three dimensional weaving process having a plurality of preform slits, said preform having a plurality of fibers and a curable resin; cutting said preform to a first length; inserting a sacrificial insert into each of said plurality of preform slits to form a plurality of holes, each of said plurality of holes corresponding to a first attachment feature on the composite beam; and placing said first shape having a plurality of holes in a mold with a quantity of resin; molding said first shape to form the composite beam having said plurality of first attachment features using a first process.
- 15. The method of claim 14, wherein the step of molding said first shape to form the composite beam comprises the step of molding said first shape to form the composite beam having said plurality of first attachment features using a first process, said plurality of first attachment features comprising a pair of inner attachment members and a pair of outer attachment members.
- 16. The method of claim 14, wherein the step of molding said first shape to form the composite beam having said plurality of first attachment features using a first process comprises the step of molding said first shape to form the composite beam having said plurality of first attachment features using an RTM process.
- 17. The method of claim 14, wherein the step of molding said first shape to form the composite beam having said plurality of first attachment features using a first process comprises the step of molding said first shape to form the composite beam having said plurality of first attachment features using a VARTM process.
- 18. The method of claim 14, wherein the ride and roll stiffness of the composite beam is a function of the thickness of said preform, the fiber orientation of said plurality of fibers within said preform, and the fiber distribution of said plurality of fibers within said preform.
- 19. The method of claim 14, wherein said curable resin is an epoxy resin and said plurality of fibers are selected from the group consisting of a plurality of glass fibers and a plurality of carbon fibers.
- 20. The method of claim 15, wherein the step of molding said first shape to form the composite beam comprises the step of the step of molding said first shape to form the composite beam having said plurality of first attachment features using a first process, said plurality of first attachment features comprising a pair of inner attachment members and a pair of outer attachment members, wherein the location of said outer attachment members and inner attachment members on said composite beam are adjusted such that a bending trajectory of said composite beam approximately matches a target arc.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] The present invention claims priority from co-pending U.S. Provisional Application Serial No. 60/215,422, filed Jun. 30, 2000 and entitled “Method of Manufacturing Cross-Car Leaf Spring and Article Produced Thereby.”
Provisional Applications (1)
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Number |
Date |
Country |
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60215422 |
Jun 2000 |
US |