Claims
- 1. A hoist apparatus comprising:
a frame; a hoist drum supported by the frame for rotation about a hoist drum axis; a hoist motor coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis; a hoist rope wound around the hoist drum such that the hoist rope winds on to and off of the hoist drum in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively; and at least two of
a three-part bottom block supported by the hoist rope such that the three-part bottom block travels up and down in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively, wherein the three-part bottom block includes a cross shaft and at least one running sheave rotatably supported by the cross shaft, wherein the hoist rope is dead-ended on the cross shaft, a proximity limit switch wherein the proximity limit switch is mounted on the frame adjacent the hoist drum such that the hoist drum moves relative to the proximity limit switch, the proximity limit switch sensing at least one of the presence and the absence of the hoist rope without touching the hoist rope, and the proximity limit switch preventing the hoist motor from rotating the hoist drum in one of the wind-on direction when the switch senses the presence of the hoist rope on the hoist drum at the maximum wind-on point and the wind-off direction when the proximity limit switch senses the absence of the hoist rope on the hoist drum at the maximum wind-off point, a gearbox, a ring gear external to the gearbox, and an adapter plate coupled to the gearbox, wherein the ring gear is coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis in response to the hoist motor, wherein the gearbox is configured to be coupled to the hoist motor and the hoist drum, and the adapter plate permitting coupling of the gearbox to the hoist drum in a plurality of orientations, a gearbox coupled to the hoist motor and the hoist drum, wherein the gearbox includes a gear and a load brake assembly, the load brake assembly having a load shaft supported by the gearbox for rotation, wherein the load shaft includes a first end and a second end, a pinion coupled to the first end of the load shaft, wherein the pinion meshes with the gear, a pressure plate coupled to the first end of the load shaft inboard of the pinion, wherein the pressure plate includes a plurality of lubrication inlet holes, the lubrication inlet holes aligned to receive lubrication propelled by the meshing action of the pinion and the gear, a plate gear coupled to the second end of the load shaft, the plate gear including a first side nearest the first end of the load shaft and a second side nearest the second end of the load shaft, wherein the plate gear includes a plurality of lubrication outlet holes, the lubrication outlet holes being angled radially outwardly from the first side of the plate gear to the second side of the plate gear, and a ratchet disc located between the pressure plate and the plate gear, a gearbox coupled to the hoist motor and the hoist drum, wherein the gearbox includes a gear and a load brake assembly, the load brake assembly having a load brake assembly and a two-stage high performance gear set, a controller configured to analyze operational data and generate an output indicative of a remaining useful life of the hoist apparatus, wherein the controller includes a memory, a microprocessor, and an input and output interface, wherein the input and output interface is adapted to acquire operational data representative of the hoist apparatus and provide the operational data to at least one of the memory for storage and the microprocessor for processing, wherein the operational data includes at least one of a measurement of load weight, a measurement of hoist motor starts, a measurement of hoist motor stops, and a measurement of a lift speed, wherein the microprocessor is adapted to generating a value based on the operational data, wherein the value includes at least one of a percent load lifted, hoist motor total run time, total work done, actual duty cycle of the hoist apparatus, and useful remaining life of the hoist apparatus, and wherein the microprocessor is adapted to communicate with a user interface via the input and output interface, the communication including communication of the output to the user interface, and an inverter, a current sensor, and an inverter controller, wherein the inverter is electrically connected to the hoist motor and configured to generate an inverter signal that drives the hoist motor, wherein the current sensor is configured to sense a current of the inverter signal and to generate a current signal having a relationship to the sensed current, and wherein the inverter controller is configured to receive the current signal, determine a modeled value of the hoist motor based in part on the current signal, compare an actual value of the hoist motor to the modeled value of the hoist motor for determining whether a load coupled to the hoist apparatus is stable, and generate an output that sets a brake device when the load coupled to the hoist apparatus is potentially unstable.
- 2. A hoist apparatus comprising:
a frame; a hoist drum supported by the frame for rotation about a hoist drum axis; a hoist motor coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis; a hoist rope wound around the hoist drum such that the hoist rope winds on to and off of the hoist drum in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively; and a three-part bottom block supported by the hoist rope such that the three-part bottom block travels up and down in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively, wherein the three-part bottom block includes a cross shaft and at least one running sheave rotatably supported by the cross shaft, wherein the hoist rope is dead-ended on the cross shaft.
- 3. A hoist apparatus as set forth in claim 2, and further comprises at least one hoist rope clip, wherein the hoist rope is removably coupled to the hoist drum by the at least one hoist rope clip.
- 4. A hoist apparatus as set forth in claim 3, wherein the hoist rope is equalized when removably coupled to the hoist drum by the at least one hoist rope clip.
- 5. A hoist apparatus as set forth in claim 2, wherein the hoist rope employs a double reeving configuration for supporting the three-part bottom block.
- 6. A hoist apparatus as set forth in claim 5, wherein the three-part bottom block is a three-part double reeved bottom block.
- 7. A hoist apparatus as set forth in claim 2, wherein the hoist apparatus includes a lifting capacity, wherein the lifting capacity of the hoist apparatus is substantially similar to a lifting capacity of a hoist apparatus that utilizes a three-part bottom block having an integral equalizer sheave nest, wherein the three-part bottom block that includes the integral equalizer sheave nest further includes at least one running sheave, wherein the at least one running sheave of the three-part bottom block that includes the integral equalizer sheave nest is sized substantially similar to the at least one running sheave of the three-part running block.
- 8. A hoist apparatus as set forth in claim 2, wherein the three-part bottom block has a height profile substantially similar to a height profile of a two part bottom block, wherein the two part bottom block includes at least one running sheave that is sized substantially similar to the at least one running sheave of the three-part bottom block.
- 9. A method of equalizing a hoist rope on a hoist apparatus, wherein the hoist apparatus includes a frame, a hoist drum supported by the frame for rotation about a hoist drum axis, and a hoist motor coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis, wherein the hoist rope is wound around the hoist drum such that the hoist rope winds on to and off of the hoist drum in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively, the method comprising:
supporting a three-part bottom block by the hoist rope such that the three-part bottom block travels up and down in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively, wherein the three-part bottom block includes a cross shaft and at least one running sheave rotatably supported by the cross shaft; dead-ending a first end of the hoist rope on the cross shaft; selectively placing a second end of the hoist rope on the hoist drum such that the cross shaft of the three-part bottom block is horizontally orientated; and coupling the hoist rope to the hoist drum in a removable fashion using at least one hoist rope clip.
- 10. A hoist apparatus comprising:
a frame; a hoist drum supported by the frame for rotation about a hoist drum axis; a hoist motor coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis; a hoist rope wound around the hoist drum such that the hoist rope winds on to and off of the hoist drum in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively; a gearbox configured to be coupled to the hoist motor and the hoist drum; a ring gear external to the gearbox, wherein the ring gear is coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis in response to the hoist motor; and an adapter plate coupled to the gearbox, the adapter plate permitting coupling of the gearbox to the hoist drum in a plurality of orientations.
- 11. A hoist apparatus as set forth in claim 10, and further comprising a support pin, wherein the support pin is coupled to the adapter plate, and wherein the support pin is configured to support one end of the hoist drum.
- 12. A hoist apparatus as set forth in claim 10, wherein the ring gear is configured to mesh with an output pinion coupled to an output shaft of the gearbox for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis in response to the hoist motor.
- 13. A hoist apparatus as set forth in claim 10, wherein the frame includes at least two mounting holes adapted to accept at least two fasteners coupled to the adapter plate.
- 14. A hoist apparatus as set forth in claim 13, wherein the adapter plate includes a plurality of sets of fastener holes, wherein each set of fastener holes corresponds to the at least two mounting holes, wherein each set of fastener holes is configured for use in mounting the adapter plate to the frame.
- 15. A hoist apparatus as set forth in claim 13, wherein the at least two mounting holes includes four mounting holes.
- 16. A hoist apparatus as set forth in claim 10, wherein the frame includes at least one cutout to accept a profile of the hoist motor when mounted in at least one of the plurality of orientations.
- 17. A hoist apparatus as set forth in claim 10, wherein the plurality of orientations includes four orientations.
- 18. A hoist apparatus as set forth in claim 10, wherein the adapter plate includes a plurality of sets of fastener holes, wherein each set of fastener holes corresponds to the at least two mounting holes.
- 19. A hoist apparatus comprising:
a frame; a hoist drum supported by the frame for rotation about a hoist drum axis; a hoist motor coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis; a hoist rope wound around the hoist drum such that the hoist rope winds on to and off of the hoist drum in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively; and a gearbox coupled to the hoist motor and the hoist drum, wherein the gearbox includes a gear and a load brake assembly, the load brake assembly having
a load shaft supported by the gearbox for rotation, wherein the load shaft includes a first end and a second end, a pinion coupled to the first end of the load shaft, wherein the pinion meshes with the gear, a pressure plate coupled to the first end of the load shaft inboard of the pinion, wherein the pressure plate includes a plurality of lubrication inlet holes, the lubrication inlet holes aligned to receive lubrication propelled by the meshing action of the pinion and the gear, a plate gear coupled to the second end of the load shaft, the plate gear including a first side nearest the first end of the load shaft and a second side nearest the second end of the load shaft, wherein the plate gear includes a plurality of lubrication outlet holes, the lubrication outlet holes being angled radially outwardly from the first side of the plate gear to the second side of the plate gear, and a ratchet disc located between the pressure plate and the plate gear.
- 20. A hoist apparatus as set forth in claim 19, wherein the plurality of lubrication inlet holes includes six lubrication inlet holes.
- 21. A hoist apparatus as set forth in claim 19, wherein the load shaft rotates about an axis, wherein at least two of the plurality of lubrication inlet holes are positioned on the pressure plate in a radial location from the axis which is equidistant to a radial location from the axis of the meshing action of the pinion and the gear.
- 22. A hoist apparatus as set forth in claim 19, wherein the plurality of lubrication outlet holes includes six lubrication outlet holes.
- 23. A hoist apparatus as set forth in claim 19, wherein the plurality of lubrication outlet holes are configured to enhance movement of lubrication out of the load brake assembly when compared with the movement of lubrication out of a load brake assembly provided by outlet holes that are not radially outwardly angled.
- 24. A hoist apparatus as set forth in claim 19, and further comprising at least one friction pad.
- 25. A hoist apparatus as set forth in claim 24, wherein the friction pad is coupled to the ratchet disc.
- 26. A hoist apparatus as set forth in claim 24, wherein the friction pad includes at least one lubrication groove configured to enhance movement of lubrication throughout the load brake assembly when compared with movement of lubrication provided by a friction pad that does not include lubrication grooves.
- 27. A load brake assembly comprising;
a load shaft supported by at least one bearing for rotation, wherein the load shaft includes a first end and a second end; a pinion coupled to the first end of the load shaft; a pressure plate coupled to the first end of the load shaft inboard of the pinion, wherein the pressure plate includes a plurality of lubrication inlet holes, the lubrication inlet holes aligned to receive lubrication propelled by a meshing action of the pinion and a gear coupled to a shaft of the gearbox; a plate gear coupled to the second end of the load shaft, the plate gear including a first side nearest the first end of the load shaft and a second side nearest the second end of the load shaft, wherein the plate gear includes a plurality of lubrication outlet holes, the lubrication outlet holes being angled radially outwardly from the first side of the plate gear to the second side of the plate gear; and a ratchet disc coupled to the load shaft between the pressure plate and the plate gear.
- 28. A hoist apparatus comprising:
a frame; a hoist drum supported by the frame for rotation about a hoist drum axis; a hoist motor coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis; a hoist rope wound around the hoist drum such that the hoist rope winds on to and off of the hoist drum in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively; and a gearbox coupled to the hoist motor and the hoist drum, wherein the gearbox includes a two-stage high gear ratio gear set and a load brake assembly.
- 29. A method of analyzing operational data of a hoist apparatus, wherein the hoist apparatus includes a frame, a hoist drum supported by the frame for rotation about a hoist drum axis, a hoist motor coupled to the hoist drum for selectively rotating the hoist drum in opposite wind-on and wind-off directions about the hoist drum axis, and a hoist rope wound around the hoist drum such that the hoist rope winds on to and off of the hoist drum in response to rotation of the hoist drum in the wind-on and wind-off directions, respectively, the method comprising:
acquiring operational data representative of the hoist apparatus, wherein the operational data includes at least one of a measurement of load weight, a measurement of hoist motor starts, a measurement of hoist motor stops, a measurement of a lift speed; generating a value based on the operational data, wherein the value includes at least one of a percent load lifted, hoist motor total run time, total work done, actual duty cycle of the hoist apparatus, and useful remaining life of the hoist apparatus; and generating an output indicative of a remaining useful life of the hoist apparatus.
RELATED APPLICATIONS
[0001] This application claims the benefit of prior filed co-pending U.S. provisional patent application No. 60/241,530, entitled Hoist Improvements, filed on Oct. 18, 2000.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/32612 |
10/18/2001 |
WO |
|