Claims
- 1. A fluid-powered broken-link mechanism for an internal combustion engine, said engine having a housing, a source of fluid which is adapted to be pressurized only during engine operation, a fuel quantity control member movable in both a fuel-increasing direction to increase the quantity of fuel supplied to the engine during each combustion cycle and in a fuel-decreasing direction to decrease the quantity of fuel supplied to the engine during each combustion cycle, a governor controlling the position of the fuel quantity control member, and an override means for selectively overriding the governor during engine operation to prevent movement of the fuel quantity control member in the fuel-increasing direction when the ratio of air-to-fuel supplied to the engine for combustion falls below a preselected value, said fluid-powered broken-link mechanism adapted to be operatively linked between the override means and the fuel quantity control member and comprising:
- a first lever having a shaft portion adapted to be rotatively mounted within the housing and an arm adapted to swing into contact with the fuel quantity control member;
- a second lever adapted to be pivotally connected to said override means and being rotatively mounted on the shaft portion and also being axially movable thereon between a disengaged axial position at which the second lever is completely free of drivable engagement with the first lever and an engaged axial position at which the second lever drivably engages the first lever in one angular direction;
- axial biasing means for axially biasing the second lever towards the disengaged axial position;
- angular motive means for rotating the first lever relative to the second lever so that the axially engageable portions of the levers are substantially angularly aligned to facilitate drivable engagement;
- fluid power means for moving the second lever to the engaged axial position against the bias of the axial biasing means when pressurized fluid is communicated thereto; and
- valve means for selectively blocking fluid communication between the source of fluid and the fluid power means when the first lever is rotated to a first predetermined angular position and for selectively opening fluid communication between the source of fluid and the fluid power means to axially move the second lever under pressurized fluid power to the engaged axial position when the first lever is rotated to a second predetermined angular position.
- 2. The fluid-powered broken-link mechanism, as set forth in claim 1, wherein said valve means is jointly defined by the shaft portion and the second lever.
- 3. The fluid-powered broken-link mechanism, as set forth in claim 2, wherein said valve means includes a radial port defined in the shaft portion and an axial slot defined in the second lever and interfacing with the shaft portion, said radial port of the shaft portion adapted to be in continuous communication with the source of fluid and also lying in a radial plane which always intersects the axial slot of the second lever, said axial slot of the second lever being in continuous communication with the fluid power means, said radial port of the shaft portion not registering with the axial slot of the second lever when the first lever is at the first predetermined angular position, said radial port of the shaft portion registering with the axial slot of the second lever when the first lever is at the second predetermined angular position.
- 4. The fluid-powered broken-link mechanism, as set forth in claim 1, wherein said fluid-power means includes a fluid pressure chamber jointly defined by the second lever and the shaft portion.
- 5. The fluid-powered broken-link mechanism, as set forth in claim 4, wherein said fluid pressure chamber expands in volume as the second lever moves axially toward the engaged axial position and which contracts in volume as the second lever moves axially toward the disengaged axial position.
- 6. The fluid-powered broken-link mechanism, as set forth in claim 5, wherein said fluid pressure chamber is further defined by an axial counterbore wall of the second lever and an annular stop mounted radially between the shaft portion and the second lever, said annular stop having a radial peripheral surface on which the axial counterbore wall is guided as the second lever moves toward the disengaged axial position.
- 7. The fluid-powered broken-link mechanism, as set forth in claim 1, wherein said first lever is adapted to be rotated to the first predetermined angular position by the fuel quantity control member moving in the fuel-increasing direction to a first predetermined position prior to engine startup and wherein the first lever is adapted to be rotated by the angular motive means to the second predetermined angular position as the governor initially moves the fuel quantity control member in the fuel-decreasing direction to a second predetermined position after engine startup.
- 8. The fluid-powered broken-link mechanism, as set forth in claim 1, wherein said axial biasing means and said angular motive means are a combination helical compression and torsion spring positioned around the shaft portion and located axially between the second lever and the first lever.
- 9. The fluid-powered broken-link mechanism, as set forth in claim 1, wherein said axial biasing means is a helical compression spring positioned around the shaft portion and located axially between the second lever and the first lever.
- 10. The fluid-powered broken-link mechanism, as set forth in claim 1, wherein said angular motive means includes a permanent magnet connected to one of said first lever arm or said fuel quantity control member and adapted to magnetically attract the other of said first lever arm or said fuel quantity control member.
- 11. The fluid-powered broken-link mechanism, as set forth in claim 10, wherein said permanent magnet is connected to the first lever arm and is positioned so that the magnet is adapted to be magnetically coupled with the fuel quantity control member for combined movement when the first lever is rotated to the first predetermined angular position and so that the magnetic force effectively acting on the fuel quantity control member is gradually reduced when the first lever is thereafter rotated to the second predetermined angular position.
- 12. The fluid-powered broken-link mechanism, as set forth in claim 1, wherein said angular motive means includes a counterweight connected to the first lever and positioned such that the counterweight biases the first lever for rotation from the first predetermined angular position to the second predetermined angular position.
- 13. The fluid-powered broken-link mechanism, as set forth in claim 1, wherein said first and second levers each have tang portions which laterally face each other and which are complementarily shaped to ramp upon one another in overlapping relation as the second lever axially engages the first lever.
- 14. A fluid-powered broken-link mechanism for an internal combustion engine, said engine having a housing, a source of fluid which is adapted to be pressurized only during engine operation, a fuel quantity control member movable in both a fuel-increasing direction to increase the quantity of fuel supplied to the engine during each combustion cycle and in a fuel-decreasing direction to decrease the quantity of fuel supplied to the engine during each combustion cycle, a governor controlling the position of the fuel quantity control member, and an override means for selectively overriding the governor during engine operation to prevent movement of the fuel quantity control member in the fuel-increasing direction when the ratio of air-to-fuel supplied to the engine for combustion falls below a preselected value, said fluid-powered broken-link mechanism adapted to be operatively linked between the override means and the fuel quantity control member and comprising:
- a first lever having a shaft portion adapted to be rotatively mounted within the housing and a pair of relatively fixed arms radially extending from the shaft portion wherein one of the arms is adapted to swing into contact with the fuel quantity control member;
- a second lever adapted to be pivotally connected to said override means and being rotatively mounted on the shaft portion and also being axially movable thereon between a disengaged axial position at which the second lever is completely free of drivable engagement with the first lever and an engaged axial position at which the second lever drivably engages the other arm of the first lever in one angular direction, said second lever and the shaft portion jointly defining an expandable and contractable fluid pressure chamber which expands in volume as the second lever moves axially toward the engaged axial position and which contracts in volume as the second lever moves axially toward the disengaged axial position;
- resilient biasing means for both axially resiliently biasing the second lever towards the disengaged axial position and for angularly resiliently biasing the other arm of the first lever relative to the second lever so that the axially engageable portions of the levers are substantially angularly aligned with one another to facilitate drivable engagement; and
- valve means defined in said shaft portion and the second lever for selectively blocking and opening fluid communication between the fluid pressure chamber and the source of fluid, said valve means blocking fluid communication to the fluid pressure chamber when the first lever is rotated in opposition to the resilient biasing means to a first predetermined angular position by the fuel quantity control member moving in the fuel-increasing direction to a first predetermined position prior to engine startup, said valve means opening fluid communication to the fluid pressure chamber to axially move the second lever under pressurized fluid power to the engaged axial position when the first lever is rotated by the resilient biasing means to a second predetermined angular position as the governor initially moves the fuel quantity control member in the fuel-decreasing direction to a second predetermined position after engine startup.
- 15. The fluid-powered broken-link mechanism, as set forth in claim 14, wherein said valve means includes a radial port defined in the shaft portion and an axial slot defined in the second lever and interfacing with the shaft portion, said radial port of the shaft portion adapted to be in continuous communication with the source of fluid and also lying in a radial plane which always intersects the axial slot of the second lever, said axial slot of the second lever being in continuous communication with the fluid pressure chamber, said radial port of the shaft portion not registering with the axial slot of the second lever when the first lever is at the first predetermined angular position, said radial port of the shaft portion registering with the axial slot of the second lever when the first lever is at the second predetermined angular position.
- 16. An air-fuel ratio control system for an internal combustion engine having a housing and a source of fluid which is adapted to be pressurized only during engine operation, said air-fuel ratio control system comprising:
- a fuel quantity control member movable in both a fuel-increasing direction to increase the quantity of fuel supplied to the engine during each combustion cycle and in a fuel-decreasing direction to decrease the quantity of fuel supplied to the engine during each combustion cycle;
- a governor controlling the position of the fuel quantity control member in response to sensed engine speed;
- an override means for selectively overriding the governor during engine operation to prevent movement of the fuel quantity control member in the fuel-increasing direction when the ratio of air-to-fuel supplied to the engine for combustion falls below a preselected value;
- a fluid-powered broken-link mechanism operatively linked between the override means and the fuel quantity control member, said mechanism including a first lever having a shaft portion adapted to be rotatively mounted within the housing and an arm adapted to swing into contact with the fuel quantity control member, a second lever pivotally connected to the override means and being rotatively mounted on the shaft portion and also being axially movable thereon between a disengaged axial position at which the second lever is completely free of drivable engagement with the first lever and an engaged axial position at which the second lever drivably engages the first lever in one angular direction, axial biasing means for axially biasing the second lever towards the disengaged axial position, angular motive means for rotating the first lever relative to the second lever so that the axially engageable portions of the levers are substantially angularly aligned to facilitate drivable engagement, fluid power means for moving the second lever to the engaged axial position against the bias of the axial biasing means when pressurized fluid is communicated thereto, and valve means for selectively blocking fluid communication between the source of fluid and the fluid power means when the first lever is rotated to a first predetermined angular position and for selectively opening fluid communication between the source of fluid and the fluid power means to axially move the second lever under pressurized fluid power to the engaged axial position when the first lever is rotated to a second predetermined angular position.
- 17. The air-fuel ratio control system, as set forth in claim 16, wherein said valve means is jointly defined by the shaft portion and the second lever.
- 18. The air-fuel ratio control system, as set forth in claim 17, wherein said valve means includes a radial port defined in the shaft portion and an axial slot defined in the second lever and interfacing with the shaft portion, said radial port of the shaft portion adapted to be in continuous communication with the source of fluid and also lying in a radial plane which always intersects the axial slot of the second lever, said axial slot of the second lever being in continuous communication with the fluid power means, said radial port of the shaft portion not registering with the axial slot of the second lever when the first lever is at the first predetermined angular position, said radial port of the shaft portion registering with the axial slot of the second lever when the first lever is at the second predetermined angular position.
- 19. The air-fuel ratio control system, as set forth in claim 16, wherein said fluid power means includes a fluid pressure chamber jointly defined by the second lever and the shaft portion.
- 20. The air-fuel ratio control system, as set forth in claim 19, wherein said fluid pressure chamber expands in volume as the second lever moves axially toward the engaged axial position and which contracts in volume as the second lever moves axially toward the disengaged axial position.
- 21. The air-fuel ratio control system, as set forth in claim 20, wherein said fluid pressure chamber is further defined by an axial counterbore wall of the second lever and an annular stop mounted radially between the shaft portion and the second lever, said annular stop having a radial peripheral surface on which the axial counterbore wall is guided as the second lever moves toward the disengaged axial position.
- 22. The air-fuel ratio control system, as set forth in claim 16, wherein said first lever is rotated to the first predetermined angular position by the fuel quantity control member moving in the fuel-increasing direction to a first predetermined position prior to engine startup and wherein the first lever is rotated by the angular motive means to the second predetermined angular position as the governor initially moves the fuel quantity control member in the fuel-decreasing direction to a second predetermined position after engine startup.
- 23. The air-fuel ratio control system, as set forth in claim 16, wherein said axial biasing means and said angular motive means are a combination helical compression and torsion spring positioned around the shaft portion and located axially between the second lever and the first lever.
- 24. The air-fuel ratio control system, as set forth in claim 16, wherein said axial biasing means is a helical compression spring positioned around the shaft portion and located axially between the second lever and the first lever.
- 25. The air-fuel ratio control system, as set forth in claim 16, wherein said angular motive means includes a permanent magnet connected to one of said first lever arm or said fuel quantity control member and adapted to magnetically attract the other of said first lever arm or said fuel quantity control member.
- 26. The air-fuel ratio control system, as set forth in claim 25, wherein said permanent magnet is connected to the first lever arm and is positioned so that the permanent magnet is adapted to be magnetically coupled with the fuel quantity control member for combined movement when the first lever is rotated to the first predetermined angular position and so that the magnetic force effectively acting on the fuel quantity control member is gradually reduced when the first lever is thereafter rotated to the second predetermined angular position.
- 27. The air-fuel ratio control system, as set forth in claim 16, wherein said angular motive means includes a counterweight connected to the first lever and positioned such that the counterweight biases the first lever for rotation from the first predetermined angular position to the second predetermined angular position.
- 28. The air-fuel ratio control system, as set forth in claim 16, wherein said first and second levers each have tang portions which laterally face each other and which are complementarily shaped to ramp upon one another in overlapping relation as the second lever axially engages the first lever.
DESCRIPTION
This is a continuation-in-part of application Ser. No. 698,205 filed Feb. 4, 1985, abandoned.
US Referenced Citations (9)
Foreign Referenced Citations (2)
Number |
Date |
Country |
3246869 |
Jul 1983 |
DEX |
2052094 |
Jan 1981 |
GBX |
Non-Patent Literature Citations (1)
Entry |
Service Manual for 3406B Diesel Truck Engine, Pub. No. SEBR0544, pp. 2-1 to 2-12, by: Caterpillar Tractor Co., published: Oct. 1984. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
698205 |
Feb 1985 |
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