Claims
- 1. Control means for an implement transmission, the transmission being operably coupled to a plurality of driven mechanisms for providing a driving power to the plurality of driven mechanisms, comprising:
a shift assembly having a first and a second actuator means, the first actuator means being operably coupled to the transmission for selectively controlling the transmission of a driving power to at least a first driven mechanism, and the second actuator means being operably coupled to the transmission for selectively controlling the transmission of a driving power to at least a second driven mechanism and having a biasing means for exerting a variable, selective bias on the on the transmission; and a clutch for selectively engaging and disengaging a prime mover and the transmission having a rotatable stop member and an idler-stop assembly, the idler-stop assembly being shiftable between an engaged disposition and a disengaged disposition wherein the clutch is engaged and disengaged, and having a stop engaging member, the stop engaging member intersecting a path of rotation of the stop member to engage the stop member when in the disengaged disposition, said stop engaging member thereby positively disengaging the prime mover from the transmission.
- 2. Control means for an implement transmission as claimed in claim 1 wherein the shift assembly first actuator means is a rod being longitudinally shiftable between an engaged disposition and a disengaged disposition.
- 3. Control means for an implement transmission as claimed in claim 2 wherein the shift assembly first actuator means is biased in the disengaged disposition.
- 4. Control means for an implement transmission as claimed in claim 3 wherein shifting the shift assembly first actuator means longitudinally from the disengaged disposition to the engaged disposition effects a command to the transmission to apply a driving power to at least the first driven mechanism.
- 5. Control means for an implement transmission as claimed in claim 1, the shift assembly further including a speed selector for generating at least one speed selection command, the shift assembly second actuator means having:
a cylindrical actuator being disposed concentric with the shift assembly first actuator means and rotatable with respect thereto and being operably coupled to the transmission for varying a rotational speed thereof; and the biasing means being operably coupled to the speed selector means and the actuation means for receiving said speed selection command from said speed selector means, storing said command as an actuation force, and gradually transmitting said actuation force to said actuation means over a selected period of rotation of said transmission, thereby effecting a gradual rotational speed change in said transmission.
- 6. Control means for an implement transmission as claimed in claim 5 wherein the means operably coupling the speed selector means and the cylindrical actuator includes:
a biasing member having a variable actuating biasing force, wherein the selection of a different speed setting by the speed selector has the effect of altering the actuating biasing force in the biasing member, the altered biasing force acting on the cylindrical actuator and effecting a rotational speed change in the transmission over at least a portion of a rotation of the transmission.
- 7. Control means for an implement transmission as claimed in claim 6 wherein the biasing member includes a coil spring held in rotational tension having an input end operably coupled to the speed selector and an output end operably coupled to the cylindrical actuator.
- 8. Control means for an implement transmission as claimed in claim 7 wherein the cylindrical actuator has a first end including a stop adapted to engage the output end of the biasing member spring and a second end having a connector adapted to transmit the actuation force to the transmission.
- 9. The control means for an implement transmission as claimed in claim 1, the clutch comprising:
a driving sheave assembly being operably coupled to the prime mover for being actuated thereby: a rotatable driven sheave assembly being operably coupled to the driven mechanism for transmitting actuation thereto and having the rotatable stop member fixedly coupled thereto; at least one belt coupling the driving sheave assembly and the driven sheave assembly; and an idler-stop assembly being shiftable between an engaged disposition and a disengaged disposition, having a rotatable member for exerting a tensioning force on the at least one belt when in the engaged disposition and having a stop engaging member, the stop engaging member intersecting a path of rotation of the stop member to engage the stop member when in the disengaged disposition, said stop engaging member thereby arresting the rotation of the driven sheave assembly.
- 10. The control means for an implement transmission of claim 9 wherein the driven sheave assembly has a driven sheave, the driven sheave having a plane of rotation and the rotatable stop member having a plane of rotation parallel to the plane of rotation of the driven sheave.
- 11. The control means for an implement transmission of claim 10 wherein the driven sheave has a rim supported on a hub, the rotatable stop member projecting laterally from a point on the rim and being fixedly coupled thereto.
- 12. The control means for an implement transmission of claim 9 wherein the idler-stop assembly has a first link for actuation thereof, a second link for supporting the stop engaging member, and a third link for supporting the rotatable member, the three links each being fixedly coupled to a bushing for rotation about a bushing longitudinal axis.
- 13. The control means for an implement transmission of claim 12 wherein the second link and the third link of the idler-stop assembly are disposed with respect to one another such that when the rotatable member is exerting a tensioning force on the at least one belt, the stop engaging member is not intersecting the path of rotation of the stop member, thereby leaving the driven sheave assembly free to rotate.
- 14. The control means for an implement transmission of claim 13 wherein the second link of the idler-stop assembly has a longitudinal axis and a proximate end that is fixedly coupled to the bushing and a distal end, the stop engaging member being a plate fixedly coupled to the second link proximate the distal end thereof, the plate being disposed in a substantially orthogonal relationship to the longitudinal axis of the second link.
- 15. The control means for an implement transmission of claim 9 further including an actuator assembly being operably coupled to the idler-stop assembly for selectively shifting the idler-stop assembly between the engaged disposition and the disengaged disposition.
- 16. The control means for an implement transmission of claim 15 wherein the actuator assembly is biased to shift the idler-stop assembly to the disengaged disposition from the engaged disposition.
- 17. The control means for an implement transmission of claim 16 wherein the actuator assembly is further biased to exert a force on the idler-stop assembly urging the rotatable member to exert a tensioning force on the at least one belt to accommodate changes in length of the at least one belt.
- 18. The control means for an implement transmission of claim 16 wherein the actuator assembly includes an actuator rod slidably coupling the actuator assembly to the idler-stop assembly.
- 19. The control means for an implement transmission of claim 18 wherein the actuator rod of the actuator assembly includes a first spring concentrically disposed thereon, the first spring acting to bias the idler-stop assembly to shift to the disengaged disposition from the engaged disposition.
- 20. The control means for an implement transmission of claim 19 wherein the actuator rod of the actuator assembly includes a second spring concentrically disposed thereon, the second spring acting to bias the rotatable member to exert a tensioning force on the at least one belt to accommodate changes in length of the at least one belt.
- 21. The control means for an implement transmission of claim 20 wherein the actuator assembly is shiftable between a disengaged disposition and an engaged disposition corresponding to the respective disengaged and the engaged dispositions of the idler-stop assembly, shifting the actuator assembly from the disengaged disposition to the engaged disposition acting to compress both the first and second springs disposed on the actuator rod.
- 22. The control means for an implement transmission of claim 21 wherein the actuator rod of the actuator assembly passes through an on-center position during the transition from the disengaged disposition and the engaged disposition and is held in an over-center disposition when the actuator assembly is in the engaged disposition.
- 23. The control means for an implement transmission of claim 22 wherein the actuator assembly further includes an overtravel stop, the overtravel stop acting to limit the motion of the actuator rod after passing through the on-center position, thereby defining the engaged disposition of the actuator assembly.
- 24. The control means for an implement transmission of claim 22 further including an emergency stop assembly for remotely disengaging the clutch and being operably coupled to the actuator assembly whereby actuation of the emergency stop assembly acts to move the actuator assembly from the engaged disposition past the on-center position.
- 25. The control means for an implement transmission of claim 24 wherein at least the first spring acts to shift the idler-stop assembly to the disengaged disposition after the emergency stop assembly has acted to shift the actuator assembly from the engaged disposition past the on-center position.
- 26. The control means for an implement transmission of claim 25 wherein the emergency stop assembly includes at least one cable having a proximate end fixedly coupled to the actuator assembly for actuation thereof, whereby tensioning the at least one cable acts to shift the actuator assembly from the engaged disposition past the on-center position.
- 27. Control means for an implement transmission, comprising:
a clutch for selectively engaging and disengaging a prime mover and the transmission having a rotatable stop member and an idler-stop assembly, the idler-stop assembly being shiftable between an engaged disposition and a disengaged disposition wherein the clutch is engaged and disengaged, and having a stop engaging member, the stop engaging member intersecting a path of rotation of the stop member to engage the stop member when in the disengaged disposition, said stop engaging member thereby positively disengaging the prime mover from the transmission
- 28. The control means for an implement transmission as claimed in claim 27, the clutch comprising:
a driving sheave assembly being operably coupled to the prime mover for being actuated thereby: a rotatable driven sheave assembly being operably coupled to the transmission for transmitting actuation thereto and having the rotatable stop member fixedly coupled thereto; at least one belt coupling the driving sheave assembly and the driven sheave assembly; and an idler-stop assembly being shiftable between an engaged disposition and a disengaged disposition, having a rotatable member for exerting a tensioning force on the at least one belt when in the engaged disposition and having a stop engaging member, the stop engaging member intersecting a path of rotation of the stop member to engage the stop member when in the disengaged disposition, said stop engaging member thereby arresting the rotation of the driven sheave assembly.
- 29. The control means for an implement transmission of claim 28 wherein the driven sheave assembly has a driven sheave, the driven sheave having a plane of rotation and the rotatable stop member having a plane of rotation parallel to the plane of rotation of the driven sheave.
- 30. The control means for an implement transmission of claim 31 wherein the driven sheave has a rim supported on a hub, the rotatable stop member projecting laterally from a point on the rim and being fixedly coupled thereto.
- 31. The control means for an implement transmission of claim 29 wherein the idler-stop assembly has a first link for actuation thereof, a second link for supporting the stop engaging member, and a third link for supporting the rotatable member, the three links each being fixedly coupled to a bushing for rotation about a bushing longitudinal axis.
- 32. The control means for an implement transmission of claim 31 wherein the second link and the third link of the idler-stop assembly are disposed with respect to one another such that when the rotatable member is exerting a tensioning force on the at least one belt, the stop engaging member is not intersecting the path of rotation of the stop member, thereby leaving the driven sheave assembly free to rotate.
- 33. The control means for an implement transmission of claim 32 wherein the second link of the idler-stop assembly has a longitudinal axis and a proximate end that is fixedly coupled to the bushing and a distal end, the stop engaging member being a plate fixedly coupled to the second link proximate the distal end thereof, the plate being disposed in a substantially orthogonal relationship to the longitudinal axis of the second link.
- 34. The control means for an implement transmission of claim 29 further including an actuator assembly being operably coupled to the idler-stop assembly for selectively shifting the idler-stop assembly between the engaged disposition and the disengaged disposition.
- 35. The control means for an implement transmission of claim 34 wherein the actuator assembly is biased to shift the idler-stop assembly to the disengaged disposition from the engaged disposition.
- 36. The control means for an implement transmission of claim 35 wherein the actuator assembly is further biased to exert a force on the idler-stop assembly urging the rotatable member to exert a tensioning force on the at least one belt to accommodate changes in length of the at least one belt.
- 37. The control means for an implement transmission of claim 35 wherein the actuator assembly includes an actuator rod slidably coupling the actuator assembly to the idler-stop assembly.
- 38. The control means for an implement transmission of claim 37 wherein the actuator rod of the actuator assembly includes a first spring concentrically disposed thereon, the first spring acting to bias the idler-stop assembly to shift to the disengaged disposition from the engaged disposition.
- 39. The control means for an implement transmission of claim 38 wherein the actuator rod of the actuator assembly includes a second spring concentrically disposed thereon, the second spring acting to bias the rotatable member to exert a tensioning force on the at least one belt to accommodate changes in length of the at least one belt.
- 40. The control means for an implement transmission of claim 39 wherein the actuator assembly is shiftable between a disengaged disposition and an engaged disposition corresponding to the respective disengaged and the engaged dispositions of the idler-stop assembly, shifting the actuator assembly from the disengaged disposition to the engaged disposition acting to compress both the first and second springs disposed on the actuator rod.
- 41. The control means for an implement transmission of claim 40 wherein the actuator rod of the actuator assembly passes through an on-center position during the transition from the disengaged disposition and the engaged disposition and is held in an over-center disposition when the actuator assembly is in the engaged disposition.
- 42. The control means for an implement transmission of claim 41 wherein the actuator assembly further includes an overtravel stop, the overtravel stop acting to limit the motion of the actuator rod after passing through the on-center position, thereby defining the engaged disposition of the actuator assembly.
- 43. The control means for an implement transmission of claim 41 further including an emergency stop assembly for remotely disengaging the clutch and being operably coupled to the actuator assembly whereby actuation of the emergency stop assembly acts to move the actuator assembly from the engaged disposition past the on-center position.
- 44. The control means for an implement transmission of claim 43 wherein at least the first spring acts to shift the idler-stop assembly to the disengaged disposition after the emergency stop assembly has acted to shift the actuator assembly from the engaged disposition past the on-center position.
- 45. The control means for an implement transmission of claim 44 wherein the emergency stop assembly includes at least one cable having a proximate end fixedly coupled to the actuator assembly for actuation thereof, whereby tensioning the at least one cable acts to shift the actuator assembly from the engaged disposition past the on-center position.
- 46. An emergency stop assembly for use with a clutch for selectively disengaging a prime mover from a driven mechanism, t he clutch having a driving sheave assembly being operably coupled to the prime mover for being actuated thereby, a rotatable driven sheave assembly being operably coupled to the driven mechanism for transmitting actuation thereto, at least one belt coupling the driving sheave assembly and the driven sheave assembly, an idler-stop assembly being shiftable between an engaged disposition and a disengaged disposition, the idler-stop assembly having a rotatable member for exerting a tensioning force on the at least one belt when in the engaged disposition, and an actuator assembly for shifting the idler-stop assembly between the engaged disposition and the disengaged disposition, the emergency stop assembly comprising:
a cable having a proximate end and a distal end, the proximate end being operably coupled to the actuator assembly whereby applying a tensional force to the cable imparts actuational motion to the actuator assembly, thereby initializing shifting the idler-stop assembly between the engaged disposition and the disengaged disposition.
- 47. An emergency stop assembly of claim 46 wherein the actuator assembly is in an over-center condition when in the engaged disposition, the actuational motion imparted thereto by applying a tensional force to the cable acting to shift the actuator assembly from the engaged disposition past an on-center position.
- 48. An emergency stop assembly of claim 47 further including a rotatable stop being fixedly coupled to the driven sheave and a stop engaging member being a portion of the idler-stop assembly, the stop engaging member intersecting a path of rotation of the stop to engage the stop when in the disengaged disposition, said stop engaging member thereby arresting the rotation of the driven sheave assembly.
- 49. An emergency stop assembly of claim 47 further including a rotatable hand actuator, the distal end of the cable being operably coupled thereto, whereby rotation of the hand actuator applies a tensional force to the cable acting to shift the actuator assembly from the engaged disposition.
- 50. An emergency stop assembly of claim 49 further including a secondary cable having a proximate end and a distal end, the proximate end being operably coupled to the hand actuator, whereby rotation of the hand actuator acts to rotationally shift the hand actuator, thereby applying a tensional force to the cable acting to shift the actuator assembly from the engaged disposition.
- 51. Control means for an implement transmission, the transmission being operably coupled to a plurality of driven mechanisms for providing a driving power to the plurality of driven mechanisms, comprising:
speed selection means for initiating a speed selection command for selecting the speed of the transmission between an unpowered condition and a plurality of differing rotational speeds thereof, actuation means operably coupled to the transmission for varying the rotational speed thereof; biasing means operably coupled to the transmission for exerting a force that biases the transmission in the first speed configuration, means operably coupling the speed selection means and the actuation means for receiving said speed selection command from said speed selection means, storing said command as an actuation force, and gradually transmitting said actuation force to said actuation means over a selected period of rotation of said transmission applying the actuation force to the force exerted by the biasing means, thereby effecting a gradual rotational speed change in said transmission.
- 52. Control means for an implement transmission as claimed in claim 51 wherein the speed selection means includes:
a biasing member having a variable biasing force and being operably coupled to the variable speed transmission, wherein the selection of a greater speed setting by the speed selection means has the effect of increasing the biasing force in the biasing member, the increased biasing force acting on the actuation means and effecting a rotational speed change in the variable speed drive over at least a portion of a rotation of the transmission.
- 53. A speed selection mechanism as claimed in claim 52 wherein the biasing member includes a spring having an input end operably coupled to the speed selection means and an output end operably coupled to the actuation means and exerting a rotational force thereon.
- 54. A speed selection mechanism as claimed in claim 53 wherein the actuation means includes an elongated cylinder having a first end including a stop adapted to engage the output end of the biasing member spring and a second end having a connector adapted to transmit the actuation force to the transmission.
- 55. A speed selection mechanism as claimed in claim 54 wherein the speed selector means includes a sleeve having a first end operably engaged with a handle, the handle adapted to generate a rotational moment about the longitudinal axis of the tube, the tube having a second end including a stop adapted to engage the input end of the biasing member spring, the spring being formed in a coil the speed selection mechanism further including a central rod coaxial with and internal to the actuation means cylinder , the spring, and the speed selector means sleeve.
- 56. A speed selection mechanism for varying the rotational speed of a variable speed transmission, the variable speed transmission having a driven sheave and a slave sheave, the slave sheave being powered by an endless belt rotationally coupling the slave sheave to the driven sheave, the driven sheave disposed on a central axial drive shaft and comprised of a fixed disc operably fixed on the drive shaft and a movable disc in operable sliding engagement with the drive shaft, the slave sheave disposed on a central axial slave shaft and comprised of a fixed disc fixed on the slave shaft and a movable disc in sliding engagement with the slave shaft and having a biasing device held in compression and exerting a force that urges the movable disc of the slave sheave into contact with fixed disc of the slave sheave on the slave shaft , the belt riding in a groove formed between the fixed disc and the movable disc that comprise the driven sheave and a complementary groove formed between the fixed disc and the movable disc that comprise the slave sheave, the speed selection means comprising:
speed selection means for manually inputting a speed selection command; actuation means operably coupled to the movable disc of the driven sheave for positioning the movable disc on the drive shaft with respect to the fixed disc of the driven sheave; variable biasing means operably connecting the selector means and to the actuation means for transmitting an increased speed selection command from the speed selector means to the actuation means, the variable biasing means having a preloaded rotational force and being biased to return to such preloaded force condition and wherein an increased speed selection command acts to increase the force of the variable biasing means from the preloaded force condition, the increased force of the variable biasing means acting on the actuation means to overcome the compressive biasing force of the biasing device and urging the movable disc of the slave sheave into contact with fixed disc of the slave sheave and to effect a gradual speed change of the variable speed transmission thereby as the force of the variable biasing means returns to the preloaded condition.
- 57. A speed selection mechanism as claimed in claim 56 wherein the biasing member includes a coil spring having an input end operably coupled to the speed selection means and an output end operably coupled to the actuation means.
- 58. A speed selection mechanism as claimed in claim 57 wherein the actuation means includes an elongated cylinder having a first end including a stop adapted to engage the output end of the biasing member spring and a second end having a connector adapted to transmit the actuation force to the transmission.
- 59. A speed selection mechanism as claimed in claim 58 wherein the speed selector means includes a sleeve having a first end operably engaged with a handle, the handle adapted to generate a rotational moment about the longitudinal axis of the tube, the tube having a second end including a stop adapted to engage the input end of the biasing member spring, the spring being formed in a coil the speed selection mechanism further including a central rod coaxial with and internal to the actuation means cylinder, the spring, and the speed selector means sleeve.
- 60. Speed selection means adapted for use with a variable speed, rotatable transmission that is variable between a selected first speed configuration and a selected second speed configuration and having a biasing spring that biases the transmission to the first speed configuration, comprising:
actuation means operably coupled to the transmission for varying the rotational speed thereof; speed selector means for generating a speed selection command; means operably coupling the speed selector means and the actuation means for receiving said speed selection command from said speed selector means, storing said command as an actuation force, and gradually transmitting said actuation force to said actuation means over a selected period of rotation of said transmission applying the actuation force to the bias of the biasing spring, thereby effecting a gradual rotational speed change in said transmission.
- 61. A speed selection mechanism as claimed in claim 60 wherein the means operably coupling the speed selector means and the actuation means includes:
a biasing member having a variable actuating biasing force and being operably coupled to the variable speed transmission, wherein the selection of a different speed setting by the speed selection means has the effect of altering the actuating biasing force in the biasing member, the altered biasing force acting on the actuation means and effecting a rotational speed change in the variable speed drive over at least a portion of a rotation of the transmission.
- 62. A speed selection mechanism as claimed in claim 61 wherein the biasing member includes a coil spring held in rotational tension having an input end operably coupled to the speed selection means and an output end operably coupled to the actuation means.
- 63. A speed selection mechanism as claimed in claim 62 wherein the actuation means includes an elongated cylinder having a first end including a stop adapted to engage the output end of the biasing member spring and a second end having a connector adapted to transmit the actuation force to the transmission.
- 64. A speed selection mechanism as claimed in claim 63 wherein the speed selector means includes a sleeve having a first end operably engaged with a handle, the handle adapted to generate a rotational moment about the longitudinal axis of the tube, the tube having a second end including a stop adapted to engage the input end of the biasing member spring, the spring being formed in a coil the speed selection mechanism further including a central rod coaxial with and internal to the actuation means cylinder, the spring, and the speed selector means sleeve.
- 65. A speed selection mechanism for varying the rotational speed of a variable speed transmission, the variable speed transmission having a driven sheave defining a belt groove having a variable diameter, a slave sheave defining a belt groove having a variable diameter, and an endless belt rotationally being disposed within said belt grooves, and having a biasing device exerting a force that urges the variable speed transmission into a desired speed configuration, the speed selection mechanism being designed to effect a speed selection command both when the variable speed transmission is in a rotationally driven condition and is in a rest condition, comprising:
speed selection means for manually inputting a speed selection command operably coupled to the variable speed transmission and having variable biasing means for transmitting a speed selection command to the variable speed transmission,
wherein an increased speed selection command that is effected while the variable speed transmission is in the rest condition is fixed in a stored condition without pinching the belt in the variable diameter belt groove of the driven sheave and the slave sheave and is released from the stored condition to effect the speed increase as the variable speed transmission is brought from the being at rest to being rotationally driven.
- 66. A method of effecting a speed change in a continuously variable speed sheave drive, the sheave drive including a first sheave having a first sheave shaft, a first sheave fixed disc and a first sheave movable disc operably carried on said first sheave shaft, and a second sheave having a second sheave fixed disc and a second sheave movable disc, and a drive belt extending between said first sheave and said second sheave, said drive belt being received in said first sheave between said first sheave fixed disc and said first sheave movable disc, the radial position of said drive belt relative to said first sheave axis shiftable between a first radial position and a second radial position, the sheave drive being continuously variable between a first speed configuration with said drive belt in said first radial position and a second speed configuration with said drive belt in said second radial position, comprising the steps of:
biasing the sheave drive into said first speed configuration with a first biasing force urging said drive belt to said first radial position; resiliently storing a speed change command as a second biasing force; rotating the sheave drive; and releasing the second biasing force, as said sheave drive is rotated, to urge said drive belt against the first biasing force into said second radial position, thereby gradually applying the stored speed change command to the sheave drive during rotation of the sheave drive.
- 67. The method of claim 66 wherein the step of resiliently storing a speed command change as a second biasing force is accomplished by varying the tension of a spring.
RELATED APPLICATIONS
[0001] The present application is a continuation-in-part of U.S. patent application Ser. No. 08/252,962, filed Jun. 2, 1994, which application is a continuation-in-part of application Ser. No. 08/163,391, filed Dec. 3, 1993, now abandoned.
Continuations (1)
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Number |
Date |
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Parent |
08780379 |
Jan 1997 |
US |
Child |
09779684 |
Feb 2001 |
US |
Continuation in Parts (2)
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Number |
Date |
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Parent |
08252962 |
Jun 1994 |
US |
Child |
08780379 |
Jan 1997 |
US |
Parent |
08163391 |
Dec 1993 |
US |
Child |
08252962 |
Jun 1994 |
US |