Claims
- 1. A variable valve actuating mechanism, comprising:first and second output cams configured for being pivotally disposed upon an input shaft; first and second frame members configured for being pivotally disposed upon the input shaft on respective sides of an input cam lobe of said input shaft; a link arm pivotally coupled at a first end thereof to at least one of said first and second output cams; a rocker arm assembly pivotally coupled at a first end thereof to a second end of said link arm, said rocker arm assembly carrying at least one input cam follower configured for engaging said input cam lobe of the input shaft; biasing means grounded to at least one of said first and second frame members, said biasing means configured for biasing said input cam follower into engagement with the input cam lobe.
- 2. The variable valve actuating mechanism of claim 1, wherein said first and second frame members include grounding means engaging said biasing means.
- 3. The variable valve actuating mechanism of claim 2, wherein said biasing means comprises at least one torsion spring.
- 4. The variable valve actuating mechanism of claim 3, wherein said torsion spring includes first and second arm sections each of which extend from an outer end of a corresponding one of a first and second coil sections, a central arm section extending from and interconnecting said first and second coil sections, said first and second arm sections being grounded to a corresponding one of said first and second frame members, said central arm section configured for biasing said input cam follower into engagement with the input cam lobe.
- 5. The variable valve actuating mechanism of claim 4, further comprising a link-to-rocker pin pivotally coupling said link arm to said rocker arm assembly, said central arm section of said spring engaging said link-to-rocker pin to thereby bias said input cam follower into engagement with the input cam lobe.
- 6. The variable valve actuating mechanism of claim 5, wherein said link-to-rocker pin includes opposing ends, each of said ends being disposed laterally outside of a corresponding side of an interface of said link arm with said rocker arm assembly, a respective groove defined in each of said ends, corresponding portions of said central arm section being disposed within said grooves.
- 7. The variable valve actuating mechanism of claim 6, wherein said central arm section of said spring comprises first and second central leg sections interconnected by a bridge section, a portion of said first and second central leg sections being disposed in a corresponding one of said grooves in said link-to-rocker pin.
- 8. The variable valve actuating mechanism of claim 4, wherein said input cam follower comprises a roller, said roller coupled to said rocker arm assembly by a roller pin, said central arm section of said spring engaging said roller pin to thereby bias said roller into engagement with the input cam lobe.
- 9. The variable valve actuating mechanism of claim 8, wherein said roller pin includes opposing ends, each of said ends being disposed laterally outside of a corresponding side of said rocker arm assembly, a respective groove defined in each of said ends, corresponding portions of said central arm being disposed within said grooves.
- 10. The variable valve actuating mechanism of claim 9, wherein said central arm section of said spring comprises first and second central leg sections interconnected by a bridge section, a portion of said first and second central leg sections being disposed in a corresponding one of said grooves in said roller pin.
- 11. The variable valve actuating mechanism of claim 4, further comprising a groove defined by said rocker arm assembly, said groove disposed on a side of said rocker arm assembly that is furthest from the input shaft, said central arm section of said spring being disposed at least partially within said groove to thereby bias said rocker arm assembly in a direction toward the input cam lobe.
- 12. The variable valve actuating mechanism of claim 11, wherein said central arm section of said spring comprises first and second central leg sections interconnected by a bridge section, at least a portion of said bridge section being disposed within said groove in said rocker arm.
- 13. The variable valve actuating mechanism of claim 4, further comprising respective frame orifices defined by said first and second frame members, said spring further comprises respective ends extending from said first and second arm sections thereof, each of said ends being disposed within a corresponding one of said frame orifices.
- 14. The variable valve actuating mechanism of claim 13, further comprising respective slots defined by said first and second frame members, at least a portion of said first and second arm sections of said spring being received within a corresponding one of said slots.
- 15. An internal combustion engine, comprising:an input shaft having an input cam lobe; a control shaft; and a variable valve actuating mechanism, including: at least one output cam pivotally disposed upon said input shaft; first and second frame members pivotally disposed upon said input shaft on respective sides of an input cam lobe of said input shaft; a link arm pivotally coupled at a first end thereof to at least one of said at least one output cam; a rocker arm assembly pivotally coupled at a first end thereof to a second end of said link arm, said rocker arm assembly carrying at least one input cam follower, said input cam follower engaging said input cam lobe; and biasing means grounded to at least one of said first and second frame members, said biasing means biasing said input cam follower into engagement with said input cam lobe.
- 16. The internal combustion engine of claim 15, wherein said first and second frame members include grounding means engaging said biasing means.
- 17. The internal combustion engine of claim 15, wherein said biasing means is a torsion spring.
- 18. The internal combustion engine of claim 17, wherein said torsion spring includes first and second arm sections each of which extend from an outer end of a corresponding one of a first and second coil sections, a central arm section extending from and interconnecting said first and second coil sections, said first and second arm sections being grounded to a corresponding one of said first and second frame members, said central arm section biasing said input cam follower into engagement with said input cam lobe.
- 19. The internal combustion engine of claim 18, further comprising a link-to-rocker pin pivotally coupling said link arm to said rocker arm assembly, said central arm section of said spring engaging said link-to-rocker pin to thereby bias said input cam follower into engagement with said input cam lobe.
- 20. The internal combustion engine of claim 19, wherein said link-to-rocker pin includes opposing ends, each of said ends being disposed laterally outside of a corresponding side of an interface of said link arm with said rocker arm assembly, a respective groove defined in each of said ends, corresponding portions of said central arm section being disposed within said grooves.
- 21. The internal combustion engine of claim 20, wherein said central arm section of said spring comprises first and second central leg sections interconnected by a bridge section, a portion of said first and second central leg sections being disposed in a corresponding one of said grooves in said link-to-rocker pin.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of U.S. Provisional Patent Application No. 60/383,016, filed May 24, 2002.
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5937809 |
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Provisional Applications (1)
|
Number |
Date |
Country |
|
60/383016 |
May 2002 |
US |