Claims
- 1. A power transfer system for use in a four-wheel drive vehicle having a power source and first and second drivelines, comprising:
a transfer case having an input shaft receiving drive torque from the power source, a first output shaft connected to the first driveline, a second output shaft connected to the second driveline, a gearset having a first gear driven by said input shaft, a second gear, and a third gear rotatably mounted on a carrier and which is meshed with said first and second gears, an interaxle differential having an input driven by said carrier, a first output driving said first output shaft, and a second output driving a transfer mechanism coupled to said second output shaft, a range clutch assembly including a first clutch disposed between a stationary member and said second gear, a second clutch disposed between said input shaft and said carrier, and a range actuator operable in a first position to release said first clutch and lock said second clutch and further operable in a second position to lock said first clutch and release said second clutch, and a mode clutch assembly including a third clutch disposed between said differential input and said transfer mechanism and a mode actuator operable in a first position to release said third clutch and further operable in a second position to lock said third clutch; sensors for detecting operational characteristics of the vehicle and generating sensor signals in response thereto; a mode select mechanism permitting selection of an adaptive four-wheel high-range drive mode and a locked four-wheel low-range drive mode, said mode select mechanism generating a mode signal indicative of the particular drive mode selected; and a control system for moving said range and mode actuators in response to said sensor and mode signals, said control system is operable for moving said range actuator to its first position and modulating the position of said mode actuator between its first and second position as a function of said sensor signals when said adaptive four-wheel high-range drive mode is selected, and said control system is operable for moving said range actuator to its second position and said mode actuator to its second position when said locked four-wheel low-range drive mode is selected.
- 2. The power transfer system of claim 1 wherein said sensors determine a speed differential between said first and second output shafts, and wherein said control system modulates the position of said mode actuator in response to changes in the magnitude of said speed differential.
- 3. The power transfer system of claim 1 wherein said mode select mechanism further permits selection of a locked four-wheel high-range drive mode such that said control system causes said range actuator to move to its first position and said mode actuator to move to its second position.
- 4. The power transfer system of claim 1 wherein said range actuator includes a range piston supported in a pressure chamber, said range piston having a first segment acting on said first clutch and a second segment acting on said second clutch, and wherein said control system includes a source of hydraulic fluid, a pump, a control valve controlling the flow of fluid between said pump and said pressure chamber, and a controller for controlling actuation of said control valve, said control valve is operable in a first mode to vent fluid from said pressure chamber for causing said range piston to move to its first position, and said control valve is operable in a second mode to supply high pressure fluid from said pump to said pressure chamber for moving said range piston to its second position.
- 5. The power transfer system of claim 1 wherein said first gear is a sun gear, said second gear is a ring gear, and said third gear is a pinion gear meshed with said sun gear and ring gear and which is rotatably supported from said carrier, said range actuator is operable in its first position to cause said first clutch to release said ring gear for rotation relative to said stationary member while causing said second clutch to lock said carrier for rotation with said input shaft, and said range actuator is operable in its second position to cause said first clutch to lock said ring gear to said stationary member while causing said second clutch to release said carrier for rotation relative to said input shaft.
- 6. The power transfer system of claim 5 wherein said first clutch is a clutch pack mounted between said ring gear and said stationary member, and said second clutch is a cone clutch having a first cone member fixed to said carrier and a second cone member supported for sliding movement on said input shaft, and wherein said range actuator acts on said clutch pack and said second cone member such that when said range actuator is moved to its first position, said clutch pack is released and said second cone member is moved into taper-locked engagement with said first cone member, and when said range actuator is moved to its second position it applies a clamping load on said clutch pack while said second cone member is moved out of taper-locked engagement with said first cone member.
- 7. The power transfer system of claim 6 wherein said first cone member has an inner conical surface adapted to mate with an outer conical surface on said second cone member, and wherein said second cone member is movable from a locked position to a released position in response to movement of said range actuator from its first position to its second position such that said outer conical surface of said second cone member is in taper-locked engagement with said inner conical surface of said first cone member when said second cone member is in its locked position, and said outer conical surface is released from taper-locked engagement with said inner conical surface when said second cone member is in its released position.
- 8. The power transfer system of claim 5 wherein said first clutch is a first clutch pack mounted between said ring gear and said stationary member, and said second clutch is a second clutch pack mounted between said carrier and said input shaft, and wherein said range actuator includes a range piston having a first segment engaging said first clutch pack and a second segment engaging a disc spring which engages said second clutch pack such that when said range piston is in its first position said first clutch pack is released and said disc spring exerts a clamping force on said second clutch pack, and when said range piston is in its second position said first segment exerts a clamping force on said first clutch pack and said second segment moves said disc spring to release said clamping force from said second clutch pack.
- 9. The power transfer system of claim 5 wherein said first clutch is a clutch pack interconnected between said ring gear and said stationary member, and said second clutch is an over-running clutch interconnecting said input shaft and said carrier.
- 10. The power transfer system of claim 5 wherein said differential input is a second ring gear fixed to said carrier, said first output is a second sun gear fixed to said first output shaft, and said second output is a second carrier fixed to said transfer mechanism, said second carrier supporting pinion gears that are meshed with said second ring gear and said second sun gear, wherein said mode actuator is operable in its first position to release said third clutch to permit speed differentiation between said second ring gear and said transfer mechanism, and said mode actuator is further operable in its second position to lock said third clutch to prevent speed differentiation therebetween.
- 11. The power transfer system of claim 10 wherein said transfer mechanism includes a drive sprocket journalled on said first output shaft, a driven sprocket fixed to said second output shaft, and a power transfer device coupling said driven sprocket to said drive sprocket, and wherein said third clutch is a clutch pack interconnected between said second ring gear and a drum housing fixed to said drive sprocket, and wherein said mode actuator includes a set of lever arms movable between a first position whereat a minimum clutch engagement force is exerted on said clutch pack and a second position whereat a maximum clutch engagement force is exerted on said clutch pack, a set of thrust pins supported in throughbores formed in said drive sprocket and having a first end contacting a corresponding one of said lever arms, and a mode piston disposed in a pressure chamber and having an end segment contacting a second end of said thrust pins, whereby movement of said mode piston from a retracted position to an extended position causes corresponding movement of said lever arms from said first position to said second position.
- 12. The power transfer system of claim 11 wherein said control system includes a source of hydraulic fluid, a pump, a control valve for controlling the flow of fluid to said pressure chamber, and a controller for controlling actuation of said control valve, said controller operable to modulate the actuated condition of said control valve for moving said mode piston between its retracted and extended positions for modulating the clutch engagement force applied on said clutch pack as a function of said sensor signals.
- 13. The power transfer system of claim 12 further comprising a lever return spring for urging said lever arms toward the first position and a piston return spring for urging said mode piston toward its retracted position.
- 14. The power transfer system of claim 10 wherein said transfer mechanism includes a drive sprocket journalled on said first output shaft, a driven sprocket fixed to said second output shaft, and a power transfer device coupling said driven sprocket to said drive sprocket, wherein said third clutch is a clutch pack interconnected between said second ring gear and said drive sprocket, and wherein said mode actuator includes a mode piston disposed in a pressure chamber formed in said drive sprocket and which is movable between a retracted position whereat a minimum clutch engagement force is exerted on said clutch pack and an extended position whereat a maximum clutch engagement force is exerted on said clutch pack.
- 15. The power transfer system of claim 14 wherein said control system includes a source of hydraulic fluid, a pump, a control valve for controlling the flow of fluid to said pressure chamber, and a controller for controlling actuation of said control valve, said controller operable to modulate the actuated condition of said control valve for moving said mode piston between its retracted and extended positions for modulating the clutch engagement force applied on said clutch pack as a function of said sensor signals.
- 16. A power transfer system for use in a four-wheel drive vehicle having a power source and first and second drivelines, comprising:
a transfer case having an input shaft receiving drive torque from the power source, a first output shaft connected to the first driveline, a second output shaft connected to the second driveline, a gearset having a first gear driven by said input shaft, a second gear, and a third gear rotatably mounted on a carrier which is fixed to said first output shaft, said third gear being in meshed engagement with said first and second gears, a transfer mechanism coupled to said second output shaft, a range clutch assembly including a first clutch disposed between a stationary member and said second gear, a second clutch disposed between said input shaft and said carrier, and a range actuator operable in a first position to release said first clutch and lock said second clutch and further operable in a second position to lock said first clutch and release said second clutch, and a mode clutch assembly including a third clutch disposed between said carrier and said transfer mechanism and a mode actuator operable in a first position to release said third clutch and further operable in a second position to lock said third clutch; sensors for detecting operational characteristics of the vehicle and generating sensor signals in response thereto; a mode select mechanism permitting selection of an on-demand four-wheel high-range drive mode and a part-time four-wheel low-range drive mode, said mode select mechanism generating a mode signal indicative of the particular drive mode selected; and a control system for moving said range actuator and said mode actuator in response to said sensor and mode signals, said control system is operable for moving said range actuator to its first position and modulating the position of said mode actuator between its first and second position as a function of said sensor signals when said on-demand four-wheel high-range drive mode is selected, and said control system is operable for moving said range actuator to its second position and said mode actuator to its second position when said part-time four-wheel low-range drive mode is selected.
- 17. The power transfer system of claim 16 wherein said mode select mechanism further permits selection of a part-time four-wheel high-range drive mode such that said control system causes said range actuator to move to its first position and said mode actuator to move to its second position.
- 18. The power transfer system of claim 16 wherein said mode select mechanism further permits selection of a two-wheel high-range drive mode such that said control system causes said range actuator to move to its first position and said mode actuator to move to its first position.
- 19. The power transfer system of claim 16 wherein said sensors determine a speed differential between said first and second output shafts, and wherein said control system modulates the position of said mode actuator in response to changes in the magnitude of said speed differential.
- 20. The power transfer system of claim 16 wherein said range actuator includes a range piston supported in a pressure chamber, said range piston having a first segment acting on said first clutch and a second segment acting on said second clutch, and wherein said control system includes a source of hydraulic fluid, a pump, a control valve controlling the flow of fluid between said pump and said pressure chamber, and a controller for controlling actuation of said control valve, said control valve is operable in a first mode to vent fluid from said pressure chamber for causing said range piston to move to its first position, and said control valve is operable in a second mode to supply high pressure fluid from said pump to said pressure chamber for moving said range piston to its second position.
- 21. The power transfer system of claim 16 wherein said first gear is a sun gear, said second gear is a ring gear, and said third gear is a pinion gear meshed with said sun gear and ring gear and rotatably supported from said carrier, said range actuator is operable in its first position to cause said first clutch to release said ring gear for rotation relative to said stationary member while causing said second clutch to lock said carrier for rotation with said input shaft, and said range actuator is operable in its second position to cause said first clutch to lock said ring gear to said stationary member while causing said second clutch to release said carrier for rotation relative to said input shaft.
- 22. The power transfer system of claim 21 wherein said first clutch is a clutch pack mounted between said ring gear and said stationary member, and said second clutch is a cone clutch having a first cone member fixed to said carrier and a second cone member supported for sliding movement on said input shaft, and wherein said range actuator acts on said clutch pack and said second cone member such that when said range actuator is moved to its first position, said clutch pack is released and said second cone member is moved into taper-locked engagement with said first cone member, and when said range actuator is moved to its second position it applies a clamping load on said clutch pack while said second cone member is moved out of taper-locked engagement with said first cone member.
- 23. The power transfer system of claim 22 wherein said first cone member has an inner conical surface adapted to mate with an outer conical surface on said second cone member, and wherein said second cone member is movable from a locked position to a released position in response to movement of said range actuator from its first position to its second position such that said outer conical surface of said second cone member is in taper-locked engagement with said inner conical surface of said first cone member when said second cone member is in its locked position, and said outer conical surface is released from taper-locked engagement with said inner conical surface when said second cone member is in its released position.
- 24. The power transfer system of claim 21 wherein said first clutch is a first clutch pack mounted between said ring gear and said stationary member, and said second clutch is a second clutch pack mounted between said carrier and said input shaft, and wherein said range actuator includes a range piston having a first segment engaging said first clutch pack and a second segment engaging a disc spring which engages said second clutch pack such that when said range piston is in its first position said first clutch pack is released and said disc spring exerts a clamping force on said second clutch pack, and when said range piston is in its second position said first segment exerts a clamping force on said first clutch pack and said second segment moves said disc spring to release said clamping force from said second clutch pack.
- 25. The power transfer system of claim 21 wherein said first clutch is a clutch pack interconnected between said ring gear and said stationary member, and said second clutch is an over-running clutch interconnecting said input shaft and said carrier.
- 26. The power transfer system of claim 20 wherein said transfer mechanism includes a drive sprocket journalled on said first output shaft, a driven sprocket fixed to said second output shaft, and a power transfer device coupling said driven sprocket to said drive sprocket, and wherein said third clutch is a clutch pack interconnected between said carrier and said drive sprocket, and wherein said mode actuator includes a set of lever arms movable between a first position whereat a minimum clutch engagement force is exerted on said clutch pack and a second position whereat a maximum clutch engagement force is exerted on said clutch pack, a set of thrust pins supported in throughbores formed in said drive sprocket and having a first end contacting a corresponding one of said lever arms, and a mode piston disposed in a pressure chamber and having an end segment contacting a second end of said thrust pins, whereby movement of said mode piston from a retracted position to an extended position causes corresponding movement of said lever arms from said first position to said second position.
- 27. The power transfer system of claim 26 wherein said control system includes a source of hydraulic fluid, a pump, a control valve for controlling the flow of fluid to said pressure chamber, and a controller for controlling actuation of said control valve, said controller operable to modulate the actuated condition of said control valve for moving said mode piston between its retracted and extended positions for modulating the clutch engagement force applied on said clutch pack as a function of said sensor signals.
- 28. The power transfer system of claim 27 further comprising a lever return spring for urging said lever arms toward the first position and a piston return spring for urging said mode piston toward its retracted position.
- 29. The power transfer system of claim 20 wherein said transfer mechanism includes a drive sprocket journalled on said first output shaft, a driven sprocket fixed to said second output shaft, and a power transfer device coupling said driven sprocket to said drive sprocket, wherein said third clutch is a clutch pack interconnected between said carrier and said drive sprocket, and wherein said mode actuator includes a mode piston disposed in a pressure chamber formed in said drive sprocket and which is movable between a retracted position whereat a minimum clutch engagement force is exerted on said clutch pack and an extended position whereat a maximum clutch engagement force is exerted on said clutch pack.
- 30. The power transfer system of claim 29 wherein said control system includes a source of hydraulic fluid, a pump, a control valve for controlling the flow of fluid to said pressure chamber, and a controller for controlling actuation of said control valve, said controller operable to modulate the actuated condition of said control valve for moving said mode piston between its retracted and extended positions for modulating the clutch engagement force applied to said clutch pack as a function of said sensor signals.
Parent Case Info
[0001] This application claims the benefit of priority application Ser. No. 60/123,502 filed Mar. 9, 1999.
Provisional Applications (1)
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Number |
Date |
Country |
|
60123502 |
Mar 1999 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09514057 |
Feb 2000 |
US |
Child |
09975589 |
Oct 2001 |
US |