Claims
- 1. A battery plate stacker for stacking a plurality of individual battery plates in piles comprising: a first conveyor constructed and arranged to advance along a first path a series of consecutive individual battery plates, at least first and second plate receiving stations spaced from and downstream of said first conveyor, said second station being spaced from and downstream of said first station, a second conveyor constructed and arranged to receive synchronized plates from said first conveyor and to carry and advance synchronized plates into said stations, drive means for at least one of said first and second conveyors, synchronizing means operatively associated with said drive means for controlling and varying the relative lineal speed of said first and second conveyors to synchronize plates received on said first conveyor with said second conveyor for being carried and advanced thereby to said stations, an abort mechanism disposed between said first and second conveyors and constructed and arranged to deflect out of the series of plates being conveyed by said first conveyor and away from said second conveyor individual plates which are not synchronized with said second conveyor, an elevator associated with each station for receiving plates and constructed and arranged to be lowered as each plate is deposited in said station so that the next succeeding plate to be deposited can be received thereon, a first stop mechanism associated with said first station and having operable and inoperable positions, a second stop mechanism associated with said second station and having at least an operable position, each of said stop mechanisms in its operable position being constructed and arranged to engage and rapidly stop each of a plurality of succeeding plates carried into its associated station by said second conveyor to deposit them in a stack on the elevator associated with such station, and control means associated with at least said first stop mechanism and constructed and arranged to actuate said first stop mechanism to its operable position to deposit a plurality of plates in a stack on the elevator associated with said first station, and to its inoperable position to cease depositing plates in said first station and to permit plates to be carried through said first station by said second conveyor and into said second station to be engaged and rapidly stopped by said second stop mechanism in its operable position to deposit plates in a stack on the elevator associated with said second station, whereby a stack of a plurality of plates is deposited sequentially on one and then another of said elevators.
- 2. The battery plate stacker of claim 1 which also comprises a transfer conveyor disposed between said first conveyor and said second conveyor and constructed and arranged to receive synchronized plates from said first conveyor and advance them to said second conveyor, said transfer conveyor having an upper run inclined downwardly to the path of travel of plates on said second conveyor at an acute included angle in the range of about 2.degree. to 15.degree. so that the leading edges of the plates received on the upper run are generally vertically below their respective trailing edges, an adjacent end portion of the upper run of said transfer conveyor and said second conveyor being overlapped, and in said overlapped portion, said second conveyor picks up synchronized plates from said transfer conveyor.
- 3. The battery plate stacker of claim 2 wherein said second conveyor also comprises a plurality of spaced apart pairs of fingers on which synchronized plates are received, the fingers of each pair being laterally spaced apart sufficiently to pass by generally opposite sides of said upper run of said transfer conveyor in said overlapped portion to pick up a plate from said transfer conveyor.
- 4. The battery plate stacker of claim 3 wherein said fingers of each pair when carrying a plate into a plate receiving station are inclined at an acute included angle to their path of travel in the range of 2.degree. to 10.degree. so that the leading edge of the plate received on the fingers is disposed generally vertically above the trailing edge of such plate and such trailing edge of such plate is disposed generally vertically below the leading edge of the immediately succeeding plate.
- 5. The battery plate stacker of claim 1 wherein adjacent end portions of upper runs of said first and second conveyors are overlapped, and said second conveyor also comprises a plurality of spaced apart pairs of fingers on which synchronized plates are received, the fingers of each pair being laterally spaced apart sufficiently to pass by generally opposite sides of the upper run of said first conveyor in said overlapped portion to pick up a plate from said first conveyor.
- 6. The battery plate stacker of claim 5 wherein said fingers of each pair when carrying a plate into a plate receiving station are inclined at an acute included angle to their path of travel in the range of 2.degree. to 10.degree. so that the leading edge of the plate received thereon is disposed generally vertically above the trailing edge of such plate and such trailing edge of such plate is disposed generally vertically below the leading edge of the immediately succeeding plate.
- 7. The battery plate stacker of claim 1 wherein said abort mechanism comprises a frame, a pair of spaced apart idler rollers journalled for rotation and carried by said frame, at least one flexible endless belt received on said rollers, and an actuator constructed and arranged to move said rollers to an inoperative position wherein there is sufficient clearance between them and the upper run of said first conveyor that plates pass between them without contacting said rollers and flexible belt received thereon, and to a second operable position wherein as each plate approaches the exit of said first conveyor, said belt bears thereon and deflects the plate so that it disengages from said first conveyor and is not received by said second conveyor.
- 8. The battery plate stacker of claim 7 wherein the downstream one of said rollers is journalled for rotation on said frame, and the upstream one of said rollers is pivotally carried by said frame for pivotal movement relative to said frame.
- 9. The battery plate stacker of claim 1 wherein at least said first stop mechanism comprises a stop pad movable to inoperable and operable positions and when in its operable position is disposed in the path of plates being advanced by said second conveyor so as to be struck by and bear on the leading edge of the plates, and a shock absorber operably connected with said stop pad to absorb and dissipate at least some of the energy transmitted to said stop pad by a plate striking it.
- 10. The battery plate stacker of claim 9 wherein said stop pad comprises a somewhat flexible and energy absorbing and dissipating material having a durometer reading in the range of 40 to 70 on the Shore A Scale.
- 11. The battery plate stacker of claim 9 wherein said stop mechanism also comprises a counterweight operably connected to said stop pad and constructed and arranged to yieldably resist movement of said stop pad by a battery plate striking it.
- 12. The battery plate stacker of claim 11 wherein said stop pad comprises a somewhat flexible and energy absorbing and dissipating material having a durometer reading in the range of 40 to 70 on the Shore A Scale.
- 13. The battery plate stacker of claim 1 wherein at least said first stop mechanism comprises, a stop pad movable to inoperable and operable positions and when in its operable position is disposed in the path of plates being advanced by said second conveyor to be struck by and bear on the leading edge of the plates, a shock absorber operably connected with said stop pad to absorb and dissipate at least some of the energy transmitted to said stop pad by a plate striking it, and means yieldably mounting said stop pad so that said stop pad moves within predetermined limits when struck by a battery plate to thereby avoid damaging such battery plate while still permitting it to be rapidly decelerated by said stop mechanism.
- 14. The battery plate stacker of claim 1 which also comprises a third conveyor operably associated with at least one of said elevators for receiving and removing from said elevator a completed stack of plates carried by said elevator.
- 15. The battery plate stacker of claim 14 wherein said third conveyor has an upper run which underlies its associated station and crosses the path of travel of its associated elevator so that after a stack of plates is completed on such elevator, it can be actuated to deposit the stack on the upper run of said third conveyor and thereafter said third conveyor can be cycled to remove such stack of plates from the path of travel of such elevator.
- 16. The battery plate stacker of claim 15 which also comprises an actuator operably connected to said third conveyor to intermittently cycle said third conveyor to remove each completed stack of plates from the path of its associated elevator and advance completed stacks of plates along the upper run of said third conveyor.
- 17. The battery plate stacker of claim 2 wherein at least said first stop mechanism comprises a stop pad movable to inoperable and operable positions and when in its operable position is disposed in the path of plates being advanced by said second conveyor so as to be struck by and bear on the leading edge of the plates, and a shock absorber operably connected with said stop pad to absorb and dissipate at least some of the energy transmitted to said stop pad by a plate striking it.
- 18. The battery plate stacker of claim 4 wherein at least said first stop mechanism comprises a stop pad movable to inoperable and operable positions and when in its operable position is disposed in the path of plates being advanced by said second conveyor so as to be struck by and bear on the leading edge of the plates, and a shock absorber operably connected with said stop pad to absorb and dissipate at least some of the energy transmitted to said stop pad by a plate striking it.
- 19. A battery plate stacker for stacking a plurality of individual battery plates in piles comprising: a first conveyor constructed and arranged to advance along a first path a series of consecutive individual battery plates, at least first and second plate receiving stations spaced from and downstream of said first conveyor, said second station being spaced from and downstream of said first station, a second conveyor constructed and arranged to receive synchronized plates from said first conveyor and to carry and advance synchronized plates into said stations, adjacent end portions of the upper runs of said first and second conveyors being overlapped, said second conveyor having a plurality of longitudinally spaced apart pairs of fingers on which synchronized plates are received, the fingers of each pair being laterally spaced apart sufficiently to pass by generally opposite sides of said upper run of said first conveyor in said overlapped portion to pick up a plate from said first conveyor, an elevator associated with each station for receiving plates and constructed and arranged to be lowered as each plate is deposited in said station so that the next succeeding plate to be deposited can be received thereon, a first stop mechanism associated with said first station and having operable and inoperable positions, a second stop mechanism associated with said second station and having at least an operable position, each of said stop mechanisms in its operable position being constructed and arranged to engage and rapidly stop each of a plurality of succeeding plates carried into its associated station by said second conveyor to deposit them in a stack on the elevator associated with such station, when a plate is received on a pair of said fingers they underlie and support said plate in a generally horizontal plane and retain the plate thereon only by frictional engagement therewith and when such plate is engaged by one of said stops said pair of fingers pass out from under and beyond such plate to thereby deposit such plate in a stack in the station associated with such stop mechanism, and control means associated with at least said first stop mechanism and constructed and arranged to actuate said first stop mechanism to its operable position to deposit a plurality of plates in a stack on the elevator associated with said first station, and to its inoperable position to cease depositing plates in said first station and to permit plates to be carried through said first station by said second conveyor and into said second station to be engaged and rapidly stopped by said second stop mechanism in its operable position to deposit plates in a stack on the elevator associated with said second station, whereby a stack of a plurality of grids is deposited sequentially on one and then another of said elevators.
- 20. A battery plate stacker for stacking a plurality of individual battery plates in piles comprising: a first conveyor constructed and arranged to advance along a first path a series of consecutive individual battery plates, at least first and second plate receiving stations spaced from and downstream of said first conveyor, said second station being spaced from and downstream of said first station, a second conveyor constructed and arranged to receive synchronized plates from said first conveyor and to carry and advance synchronized plates into said stations, adjacent end portions of the upper runs of said first and second conveyors being overlapped, said second conveyor having a plurality of longitudinally spaced apart pairs of fingers on which synchronized plates are received, the fingers of each pair being laterally spaced apart sufficiently to pass by generally opposite sides of said upper run of said first conveyor in said overlapped portion to pick up a plate from said first conveyor, said fingers of each pair when carrying a plate into a work station underlie such plate and are inclined at an acute included angle to their path to travel in the range of 2.degree. to 10.degree. so that the leading edge of the plate received thereon is disposed generally vertically above the trailing edge of such plate and such trailing edge of such plate is disposed generally vertically below the leading edge of the immediately succeeding plate, an elevator associated with each station for receiving plates and constructed and arranged to be lowered as each plate is deposited in said station so that the next succeeding plate to be deposited can be received thereon, a first stop mechanism associated with said first station and having operable and inoperable positions, a second stop mechanism associated with said second station and having at least an operable position, each of said stop mechanism in its operable position being constructed and arranged to engage and rapidly stop each of a plurality of succeeding plates carried into its associated station by said second conveyor to deposit them in a stack on the elevator associated with such station, and control means associated with at least said first stop mechanism and constructed and arranged to actuate said first stop mechanism to its operable position to deposit a plurality of plates in a stack on the elevator associated with said first station, and to its inoperable position to cease depositing plates in said first station and to permit plates to be carried through said first station by said second conveyor and into said second station to be engaged and rapidly stopped by said second stop mechanism when in its operable position to deposit plates in a stack on the elevator associated with said second station, whereby a stack of a plurality of grids is deposited sequentially on one and then another of said elevators.
- 21. The battery plate stacker of claim 20 wherein said upper run of said first conveyor is inclined downwardly to said upper run of said second conveyor at an acute included angle in the range of about 2.degree. to 15.degree. so that the leading edges of the plates received on such upper run of said first conveyor are generally vertically below their respective trailing edges when the plates are initially presented to said second conveyor.
- 22. The battery plate stacker of claim 19 wherein said fingers of each pair when carrying a plate into a plate receiving station are inclined at an acute included angle to their path of travel in the range of 2.degree. to 10.degree. so that the leading edge of the plate received thereon is disposed generally vertically above the trailing edge of such plate and such trailing edge of such plate is disposed generally vertically below the leading edge of the immediately succeeding plate.
- 23. The battery plate stacker of claim 20 wherein at least said first stop mechanism comprises a stop pad movable to inoperable and operable positions and when in its operable position disposed in the path of plates being advanced by said second conveyor so as to be struck by and bear on the leading edge of the plates, and a shock absorber operably connected with said stop pad to absorb and dissipate at least some of the energy transmitted to said stop pad by a plate striking it.
- 24. The battery plate stacker of claim 23 wherein said stop pad comprises a somewhat flexible and energy absorbing and dissipating material having a durometer reading in the range of 40 to 70 on the Shore A Scale.
- 25. The battery plate stacker of claim 23 wherein said first stop mechanism also comprises a counterweight operably connected to said stop pad and constructed and arranged to yieldably resist movement of said stop pad by a battery plate striking it.
- 26. The battery plate stacker of claim 25 wherein said stop pad comprises a somewhat flexible and energy absorbing and dissipating material having a durometer reading in the range of 40 to 70 on the Shore A Scale.
- 27. A battery plate stacker for stacking a plurality of individual battery plates in piles comprising: a first conveyor constructed and arranged to advance along a first path a series of consecutive individual battery plates, at least first and second plate receiving stations spaced from and downstream of said first conveyor, said second station being spaced from and downstream of said first station, a second conveyor constructed and arranged to receive synchronized plates from said first conveyor and to carry and advance synchronized plates into said stations, an abort mechanism disposed between said first and second conveyors and constructed and arranged to deflect out of the series of plates being conveyed by said first conveyor and away from said second conveyor individual plates which are not synchronized with said second conveyor, an elevator associated with each station for receiving plates and constructed and arranged to be lowered as each plate is deposited in said station so that the next succeeding plate to be deposited can be received thereon, a first stop mechanism associated with said first station and having operable and inoperable positions, a second stop mechanism associated with said second station and having at least an operable position, each of said stop mechanism in its operable position being constructed and arranged to engage and rapidly stop each of a plurality of succeeding plates carried into its associated station by said second conveyor to deposit them in a stack on the elevator associated with such station, and control means associated with at least said first stop mechanism and constructed and arranged to actuate said first stop mechanism to its operable position to deposit a plurality of plates in a stack on the elevator associated with said first station, and to its inoperable position to cease depositing plates in said first station and to permit plates to be carried through said first station by said second conveyor and into said second station to be engaged and rapidly stopped by said second stop mechanism when in its operable position to deposit plates in a stack on the elevator associated with said second station, whereby a stack of a plurality of plates is deposited sequentially on one and then another of said elevators.
- 28. The battery plate stacker of claim 27 which also comprises a transfer conveyor disposed between said first conveyor and said second conveyor and constructed and arranged to receive synchronized plates from said first conveyor and advance them to said second conveyor, said transfer conveyor having an upper run inclined downwardly to the path of travel of plates on said second conveyor at an acute included angle in the range of about 2.degree. to 15.degree. so that the leading edges of the plates received on the upper run are generally vertically below their respective trailing edges, an adjacent end portion of the upper run of said transfer conveyor and said second conveyor being overlapped, and in said overlapped portion, said second conveyor picks up synchronized plates from said transfer conveyor.
- 29. The battery plate stacker of claim 28 wherein said second conveyor comprises a plurality of spaced apart pairs of fingers on which synchronized plates are received, the fingers of each pair being laterally spaced apart sufficiently to pass be generally opposite sides of an upper run of said first conveyor in said overlapped portion to underlie and pick up a plate from said first conveyor.
- 30. The battery plate stacker of claim 29 wherein said fingers of each pair when carrying a plate into a plate receiving station underlie and are inclined at an acute included angle to their path of travel in the range of 2.degree. to 10.degree. so that the leading edge of the plate received thereon is disposed generally vertically above the trailing edge of such plate and such trailing edge of such plate is disposed generally vertically below the leading edge of the immediately succeeding plate.
- 31. The battery plate stacker of claim 27 wherein adjacent end portions of upper runs of said first and second conveyors are overlapped, and said second conveyor comprises a plurality of spaced apart pairs of fingers on which synchronized plates are received, the fingers of each pair being laterally spaced apart sufficiently to pass by generally opposite sides of the upper run of said first conveyor in said overlapped portion to underlie and pick up a plate from said first conveyor.
- 32. The battery plate stacker of claim 31 wherein said fingers of each pair when carrying a plate into a plate receiving station underlie and are inclined at an acute included angle to their path of travel in the range of 2.degree. to 10.degree. so that the leading edge of the plate received thereon is disposed generally vertically above the trailing edge of such plate and such trailing edge of such plate is disposed generally vertically below the leading edge of the immediately succeeding plate.
- 33. The battery plate stacker of claim 27 wherein said abort mechanism comprises a frame, a pair of spaced apart idler rollers journalled for rotation and carried by said frame, at least one flexible endless belt received on said rollers, and an actuator constructed and arranged to move said rollers to an inoperative position wherein there is sufficient clearance between them and the upper run of said first conveyor that plates pass between them without contacting said rollers and flexible belt received thereon, and to a second operable position wherein as each plate approaches the exit of said first conveyor, said belt bears thereon and deflects the plate so that it disengages from said first conveyor and is not received by said second conveyor.
- 34. The battery plate stacker of claim 33 wherein the downstream one of said rollers is journalled for rotation on said frame, and the upstream one of said rollers is pivotally carried by said frame for pivotal movement relative to said frame.
- 35. A battery plate stacker for stacking a plurality of individual battery plates in piles comprising a conveyor constructed and arranged to receive synchronized plates and advance them along a path, at least first and second plate receiving stations spaced along said path with said conveyor passing through said stations, each of said stations being spaced apart and said second station being spaced from and downstream of said first station, said conveyor having a plurality of longitudinally spaced apart pairs of fingers which underlie and receive plates thereon, an elevator associated with each station for receiving plates and constructed and arranged to be lowered as each plate is deposited in such station so that the next succeeding plate to be deposited therein can be received thereon, a first stop mechanism associated with said first station and having operable and inoperable positions, a second stop mechanism associated with said second station and having at least an operable position, each of said stop mechanism in its operable position being constructed and arranged to engage and rapidly stop each of a plurality of succeeding plates carried into its associated station by said conveyor to deposit them in a stack on the elevator associated with such station, at least said first stop mechanism having a stop pad movable to inoperable and operable positions and when in its operable position, is disposed in the path of plates being advanced by said conveyor so as to be struck by and bear on the leading edge of the plates, a shock absorber operably connected with said stop pad to absorb and dissipate at least some of the energy transmitted to said stop pad by a plate striking it, and control means associated with at least said first stop mechanism and constructed and arranged to actuate said first stop mechanism to its operable position to deposit a plurality of plates in a stack on the elevator associated with said first station, and to its inoperable position to cease depositing plates in said first station and to permit plates to be carried through said first station by said conveyor and into said second station to be engaged and rapidly stopped by said second stop mechanism when in its operable position to deposit plates in a stack on the elevator associated with said second station, whereby a stack of a plurality of plates is deposited sequentially on one and then another of said elevators.
- 36. The battery plate stacker of claim 35 wherein said stop pad comprises a somewhat flexible and energy absorbing and dissipating material having a durometer reading in the range of 40 to 70 on the Shore A Scale.
- 37. The battery plate stacker of claim 35 wherein said stop mechanism also comprises a counterweight operably connected to said stop pad and constructed and arranged to yieldably resist movement of said stop pad by a battery plate striking it.
- 38. The battery plate stacker of claim 37 wherein said stop pad comprises a somewhat flexible and energy absorbing and dissipating material having a durometer reading in the range of 40 to 70 on the Shore A Scale.
- 39. The battery plate stacker of claim 35 wherein said first stop mechanism also comprises means yieldably mounting said stop pad so that said stop pad moves within predetermined limits when struck by a battery plate to thereby avoid damaging such battery plate while still permitting it to be rapidly decelerated by said first stop mechanism.
- 40. The battery plate stacker of claim 35 wherein said second stop mechanism comprises a stop pad which in its operable position is disposed in the path of plates being advanced by said second conveyor so as to be struck by and bear on the leading edge of the plates, and a shock absorber operably connected with said last mentioned stop pad to absorb and dissipate at least some of the energy transmitted to said stop pad by a plate striking it.
- 41. The battery plate stacker of claim 40 wherein said stop pad of said second stop mechanism is constructed and arranged to be movable to inoperable and operable positions, and when in its operable position is disposed in the path of plates being advanced by said second conveyor to be struck by and bear on the leading edge of the plates, and in its inoperable position permits the plates to be advanced by said conveyor through said second station and past said second stop mechanism.
- 42. The battery plate stacker of claim 1 which also comprises a third conveyor constructed and arranged to advance along a path a continuous web of a plurality of battery plates, a cutter constructed and arranged to receive said web from said third conveyor and having at least one blade to sever individual battery plates from said web, said first conveyor receiving said individual battery plates, cutter drive means for rotating said cutter, synchronizing means operatively associated with said cutter drive means for controlling and adjusting the rotary speed and phase of said cutter relative to the lineal speed of said third conveyor to synchronize the blades of said cutter with the web, means for controlling and adjusting the lineal speed of said first and second conveyors relative to the lineal speed of said third conveyor, and another synchronizing means for varying and adjusting the phase of said second conveyor relative to said first conveyor.
- 43. The battery plate stacker of claim 19 which also comprises a third conveyor constructed and arranged to advance along a path a continuous web of a plurality of battery plates, a cutter constructed and arranged to receive said web from said third conveyor and having at least one blade to sever individual battery plates from said web, said first conveyor receiving said individual battery plates, cutter drive means for rotting said cutter, synchronizing means operatively associated with said cutter drive means for controlling and adjusting the rotary speed and phase of said cutter relative to the lineal speed of said third conveyor to synchronize the blades of said cutter with the web, means for controlling and adjusting the lineal speed of said first and second conveyors relative to the lineal speed of said third conveyor, and another synchronizing means for varying and adjusting the phase of said second conveyor relative to said first conveyor.
- 44. The battery plate stacker of claim 20 which also comprises a third conveyor constructed and arranged to advance along a path a continuous web of a plurality of battery plates, a cutter constructed and arranged to receive said web from said third conveyor and having at least one blade to sever individual battery plates from said web, said first conveyor receiving said individual battery plates, cutter drive means for rotating said cutter, synchronizing means operatively associated with said cutter drive means for controlling and adjusting the rotary speed and phase of said cutter relative to the lineal speed of said third conveyor to synchronize the blades of said cutter with the web, means for controlling and adjusting the lineal speed of said first and second conveyors relative to the lineal speed of said third conveyor, and another synchronizing means for varying and adjusting the phase of said second conveyor relative to said first conveyor.
- 45. The battery plate stacker of claim 27 which also comprises a third conveyor constructed and arranged to advance along a path a continuous web of a plurality of battery plates, a cutter constructed and arranged to receive said web from said third conveyor and having at least one blade to sever individual battery plates from said web, said first conveyor receiving said individual battery plates, cutter drive means for rotating said cutter, synchronizing means operatively associated with said cutter drive means for controlling and adjusting the rotary speed and phase of said cutter relative to the lineal speed of said third conveyor to synchronize the blades of said cutter with the web, means for controlling and adjusting the lineal speed of said first and second conveyors relative to the lineal speed of said third conveyor, and another synchronizing means for varying and adjusting the phase of said second conveyor relative to said first conveyor.
- 46. The battery plate stacker of claim 35 which also comprises a third conveyor constructed and arranged to advance along a path a continuous web of a plurality of battery plates, a cutter constructed and arranged to receive said web from said third conveyor and having at least one blade to sever individual battery plates from said web, said first conveyor receiving said individual battery plates, cutter drive means for rotating said cutter, synchronizing means operatively associated with said cutter drive means for controlling and adjusting the rotary speed and phase of said cutter relative to the lineal speed of said third conveyor to synchronize the blades of said cutter with the web, means for controlling and adjusting the lineal speed of said first and second conveyors relative to the lineal speed of said third conveyor, and another synchronizing means for varying and adjusting the phase of said second conveyor relative to said first conveyor.
Parent Case Info
This application is a continuation-in-part of application Ser. No. 07/209,911 filed June 22, 1988.
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
209911 |
Jun 1988 |
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