Claims
- 1. An arrangement for welding first and second shaft termination elements at respective first and second ends of a cylindrical shaft, and in alignment with a predetermined axis, the arrangement comprising:
a shaft receiver for receiving the cylindrical shaft; a first chuck assembly having a plurality of first gripping elements for gripping the cylindrical shaft at the first end thereof and maintaining the cylindrical shaft in alignment with the predetermined axis; a rotatory drive coupled to said first chuck assembly; a second chuck assembly having a plurality of gripping elements for gripping the cylindrical shaft at the second end thereof in alignment with the predetermined axis; a chuck assembly drive for translating said second chuck assembly between first and second axial positions; a first shaft termination element receiver for receiving the first shaft termination element and axially translating same to a first installation position in alignment with the predetermined axis; a first installation drive arrangement for urging the first shaft termination element axially toward the cylindrical shaft as the cylindrical shaft is rotated in response to said rotatory drive; a second shaft termination element receiver for receiving the second shaft termination element and axially translating same to a second installation position in alignment with the predetermined axis; and a second installation drive arrangement for urging the second shaft termination element axially toward the cylindrical shaft as the cylindrical shaft is rotated in response to said rotatory drive.
- 2. The arrangement of claim 1, wherein there is further provided a shaft receiver drive arrangement for translating said shaft receiver between a first shaft receiver position where the cylindrical shaft is supported by said shaft receiver at a transaxial location that is substantially in axial alignment with said first chuck assembly, and a second shaft receiver position distal from the first shaft receiver position.
- 3. The arrangement of claim 1, wherein the cylindrical shaft is axially displaceable with respect to said shaft receiver.
- 4. The arrangement of claim 1, wherein said chuck assembly drive comprises a pneumatic drive.
- 5. The arrangement of claim 1, wherein said rotatory drive urges said first chuck assembly to rotate at approximately between 500 to 6000 rpm.
- 6. The arrangement of claim 5, wherein the cylindrical shaft is a drive shaft for a vehicle, and said rotatory drive urges said first chuck assembly to rotate preferably at approximately between 500 to 6000 rpm.
- 7. The arrangement of claim 1, wherein said plurality of first gripping elements of said first chuck assembly comprises first and second sets of jaws.
- 8. The arrangement of claim 7, wherein said first set of jaws is arranged to communicate with the cylindrical shaft prior to said second set of jaws. (regulated by mechanical cam)
- 9. The arrangement of claim 8, wherein said first set of jaws comprises a precision alignment arrangement for locking the cylindrical shaft at a predetermined axial location.
- 10. The arrangement of claim 9, wherein said precision alignment arrangement comprises a plurality of angulated guideways associated with respective jaws of said first set of jaws, said angulated guideways having a precise angular orientation with respect to one another.
- 11. The arrangement of claim 10, wherein said plurality of angulated guideways are equiangularly distributed about the predetermined axis.
- 12. The arrangement of claim 9, wherein said second set of jaws comprises a clamping arrangement for locking the cylindrical shaft at the predetermined axial location determined by said first set of jaws.
- 13. The arrangement of claim 12, wherein said first and second sets of jaws are hydraulically actuated.
- 14. The arrangement of claim 13, wherein said second set of jaws are operated in response to a first hydraulic pressure applied to said first set of jaws exceeding a predetermined break-over first hydraulic pressure value.
- 15. The arrangement of claim 14, wherein said break-over first hydraulic pressure has a magnitude sufficient to cause said first set of jaws to lock the cylindrical shaft at the predetermined axial location.
- 16. The arrangement of claim 1, wherein there is further provided a non-rotating housing about which said first chuck assembly is rotated by said rotatory drive.
- 17. The arrangement of claim 16, wherein said first chuck assembly is installed on a rotatable housing, and there is further provided a fluid delivery arrangement disposed at the interface of said non-rotating and said rotatable housings.
- 18. The arrangement of claim 17, wherein said fluid delivery arrangement comprises:
a first fluid channel system for supplying pressurized clamping fluid for causing said first chuck assembly to grip the cylindrical shaft; and a second fluid channel system for supplying pressurized unclamping fluid for causing said first chuck assembly to release the cylindrical shaft.
- 19. The arrangement of claim 18, wherein said first fluid channel system comprises a first fluid passageway at the interface of said non-rotating and said rotatable housings.
- 20. The arrangement of claim 18, wherein said second fluid channel system comprises a first fluid passageway at the interface of said non-rotating and said rotatable housings.
- 21. The arrangement of claim 18, wherein there is further provided a pressurized fluid supply port installed on said non-rotating housing.
- 22. The arrangement of claim 18, wherein there is further provided a fluid drain port installed on said non-rotating housing.
- 23. The arrangement of claim 17, wherein there is further provided a bearing arrangement interposed between said non-rotating and said rotatable housings.
- 24. The arrangement of claim 23, wherein there is further provided a fluid seal for limiting flow of a pressurized fluid through the bearing arrangement.
- 25. The arrangement of claim 1, wherein said first and second installation drive arrangements urge said first and second shaft termination elements, respectively, axially toward the cylindrical shaft as the cylindrical shaft is rotated by applying respective first and second-axial forces in respective axially opposing directions, the respective first and second axial forces each being exerted at respective magnitudes of axial force for respective determined periods of time.
- 26. The arrangement of claim 25, wherein at least one of the first and second axial forces is applied at a plurality of magnitudes of axial force for respective determined sequential periods of time.
- 27. The arrangement of claim 26, wherein at least one of the first and second axial forces is applied in response to a distance of axial displacement resulting from the application of the respective first and second axial forces.
- 28. The arrangement of claim 26, wherein at least one of the first and second axial forces is applied in response to a temperature resulting from the application of the respective first and second axial forces.
- 29. The arrangement of claim 28, wherein the temperature is controlled in response to the modulation of the weld force between tube ends and their respective yokes while rotating the tube.
- 30. The arrangement of claim 29 wherein the cylindrical shaft is rotated at a fixed preselected speed.
- 31. The arrangement of claim 28, wherein the cylindrical shaft is rotated at a speed determined in response to the diameter of the cylindrical shaft.
- 32. The arrangement of claim 28, wherein the cylindrical shaft is rotated at a speed that achieves a determined rotational surface speed of the cylindrical shaft.
- 33. The arrangement of claim 26, wherein the respective determined sequential periods of time correspond to engagement phases of an installation of the first shaft termination element.
- 34. The arrangement of claim 33, wherein the engagement phases of the installation of the first shaft termination element comprise a heating phase and a forging phase.
- 35. The arrangement of claim 34, wherein, the cylindrical shaft is a drive shaft for a vehicle, and said first installation drive arrangement is operated to apply approximately between 250 to 3000 pounds of axial force for a duration of approximately between 1.5 and 10 seconds during the heating phase, and to apply approximately between 1500 to 12000 pounds of axial force for a duration of approximately between 1 and 15 seconds during the forging phase.
- 36. The arrangement of claim 34, wherein prior to performing the heating and forging phases there is provided the further phase of scrubbing the first shaft termination element against the first end of the cylindrical shaft.
- 37. The arrangement of claim 36, wherein the cylindrical shaft is a drive shaft for a vehicle, and said first installation drive arrangement is operated to apply approximately between 50 to 350 pounds of axial force for a duration of approximately between 0.5 and 10 seconds during the further phase of scrubbing.
- 38. The arrangement of claim 36, wherein the further phase of scrubbing the first shaft termination element against the first end of the cylindrical shaft causes a change in the overall length of the cylindrical shaft and the installed terminations.
- 39. A method of welding first and second shaft termination elements at respective first and second ends of a cylindrical shaft, and in alignment with a predetermined axis, the method comprising the steps of:
cylindrical shaft loading a cylindrical shaft having first and second ends onto a shaft receiver located at a proximal location, whereby the cylindrical shaft is supported so that its longitudinal axis is substantially coaxial with the predetermined axis; first element loading the first shaft termination element onto a first shaft termination element receiver; second element loading the second shaft termination element onto a second shaft termination element receiver; first translating the first shaft termination element receiver whereby a principal axis of the first shaft termination element is disposed coaxially with the predetermined axis; second translating the second shaft termination element receiver whereby a principal axis of the second shaft termination element is disposed coaxially with the predetermined axis; axially urging the cylindrical shaft toward the first shaft termination element and through a first chuck assembly; first actuating the jaws of the first chuck whereby the cylindrical shaft is clamped in the region of the first end thereof to a transaxial location where the longitudinal axis of the cylindrical shaft is coaxial with the predetermined axis; axially translating the second shaft termination element and a second chuck assembly to a predetermined axial location in the region of the second end of the cylindrical shaft; second actuating the jaws of the second chuck whereby the cylindrical shaft is clamped in the region of the second end thereof to a transaxial location where the longitudinal axis of the cylindrical shaft is coaxial with the predetermined axis; rotating the first chuck at a predetermined rate of rotation; first urging the first shaft termination element axially into communication with the first end of the cylindrical shaft; and second urging the second shaft termination element axially into communication with the second end of the cylindrical shaft.
- 40. The method of claim 39, wherein, prior to performing said step of axially translating there is further provided the step of withdrawing the shaft receiver to a distal location.
- 41. The method of claim 39, wherein there are further provided the steps of:
first releasing a first axial force applied to the first shaft termination element in response to said step of first urging; second releasing a second axial force applied to the second shaft termination element in response to said step of second urging; releasing the jaws of the second chuck; and withdrawing axially the second chuck assembly to a distal axial location.
- 42. The method of claim 41, wherein there are further provided the steps of:
restoring the shaft receiver to the proximal location; releasing the jaws of the first chuck; and reverse axially urging the cylindrical shaft out of the first chuck assembly, whereby the cylindrical shaft is supported by the shaft receiver.
- 43. The method of claim 39, wherein said step of first actuating comprises the further steps of:
first subset actuating a first subset of jaws; controlling the performance of said step of first subset actuation to ensure all of the jaws in said first subset of jaws maintain an equal radial relationship during said step of first subset actuation with respect to the predetermined axis.
- 44. The method of claim 43, wherein said step of first actuating comprises the further step of second subset actuating a second subset of jaws, said step of second subset actuating being performed after said step of first subset actuating.
- 45. The method of claim 44, wherein said step of first actuating is performed in response to a step of applying an hydraulic pressure, and said step of second subset actuating is performed in response to the hydraulic pressure exceeding a predetermined hydraulic pressure magnitude.
- 46. A method of welding a shaft termination element an end of a cylindrical shaft, the method comprising the steps of:
gripping the cylindrical shaft with a plurality of coordinated grippers whereby the cylindrical shaft is retained coaxially with a predetermined axis; further gripping the cylindrical shaft with a plurality of further grippers whereby the cylindrical shaft is retained with additional force coaxially with the predetermined axis; loading the shaft termination element onto a shaft termination element receiver; translating the shaft termination element receiver whereby a principal axis of the shaft termination element is disposed coaxial with the predetermined axis; and axially urging the cylindrical shaft and the shaft termination element toward each other.
- 47. The method of claim 46, wherein there is further provided the step of releasing partially the cylindrical shaft during rotation of same to permit self-centering.
- 48. The method of claim 46, wherein said step of gripping the cylindrical shaft is performed on a cylindrical shaft datum.
- 49. The method of claim 48, wherein said step of loading the shaft termination element comprises the further step of gripping the shaft termination element on a shaft termination datum.
- 50. The method of claim 49, wherein said step of translating comprises the further step of establishing a spatial relationship between the cylindrical shaft datum and the shaft termination datum.
- 51. The method of claim 46, wherein there is further provided the step of welding the cylindrical shaft and the shaft termination element to each other.
- 52. The method of claim 51, wherein said step of welding comprises the further steps of:
rotating the chuck at a predetermined rate of rotation; and urging the shaft termination element axially into communication with a first end of the cylindrical shaft whereupon a friction weld is formed.
- 53. The method of claim 52, wherein said step of urging the shaft termination element axially into communication with a first end of the cylindrical shaft is terminated in response to a step of measuring a thermal emissivity during of the period that said step of urging is performed.
- 54. The method of claim 52, wherein there is further provided the step of measuring a duration of the period during which said step of urging is performed.
- 55. The method of claim 52, wherein there is further provided the step of measuring a thermal emissivity during of the period that said step of urging is performed.
- 56. The method of claim 52, wherein there is further provided the step of measuring an axial displacement of the shaft termination element relative to the first end of the cylindrical shaft during of the period that said step of urging is performed.
- 57. The method of claim 56, wherein there is further provided the step of determining an overall length of the cylindrical shaft and the shaft termination.
- 58. The method of claim 52, wherein there are further provided the steps of:
discontinuing said step of rotating the chuck; and forging the shaft termination element with the first end of the cylindrical shaft.
- 59. The method of claim 58, wherein said step of discontinuing said step of rotating the chuck is performed in response to a step of measuring a thermal emissivity during of the period that said step of urging is performed.
- 60. The method of claim 52, wherein there are further provided the steps of:
further loading a further shaft termination element onto a further shaft termination element receiver; further translating the further shaft termination element receiver whereby a principal axis of the further shaft termination element is disposed coaxial with the predetermined axis; and further axially urging the cylindrical shaft and the further shaft termination element toward each other.
- 61. The method of claim 60, wherein said steps of axially urging and further axially urging are performed simultaneously to achieve a weld at both ends of the cylindrical shaft simultaneously.
- 62. The method of claim 61, wherein at least one of said steps of axially urging and further axially urging are controlled in response to a step of monitoring a thermal emissivity during said at least one of said steps of axially urging and further axially urging.
- 63. The method of claim 62, wherein there is further provided the further step of further monitoring a thermal emissivity, whereby both ends of the cylindrical shaft are thermally monitored.
- 64. The method of claim 61, wherein during said steps axially urging and further axially urging, the shaft termination element, the cylindrical shaft, and the further shaft termination element are maintained coaxially with the predetermined axis.
- 65. The method of claim 60, wherein said steps of axially urging and further axially urging are performed sequentially.
- 66. The method of claim 60, wherein there are further provided the step of:
discontinuing said step of rotating the chuck; forging the shaft termination element with the first end of the cylindrical shaft; and further forging the further shaft termination element with the second end of the cylindrical shaft, said steps of forging and further forging being performed simultaneously.
- 67. The method of claim 66, wherein said step of forging comprises the step of applying an axial force between the shaft termination element and the first end of the cylindrical shaft of approximately between 1500 and 12000 pounds.
- 68. The method of claim 60, wherein there is further provided the step of further welding the cylindrical shaft and the further shaft termination element to each other.
- 69. The method of claim 68, wherein said step of further welding comprises the further step of urging the further shaft termination element axially into communication with a second end of the cylindrical shaft whereupon a further friction weld is formed.
RELATIONSHIP TO OTHER APPLICATION(S)
[0001] This application claims the benefit of the filing date of U.S. Provisional Patent Application Ser. Nos. 60/313,741; 60/313,734; and 60/313,739; all of which were filed on August 20, 2001 in the names of the same inventors as herein.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US02/26562 |
8/20/2002 |
WO |
|
Provisional Applications (3)
|
Number |
Date |
Country |
|
60313739 |
Aug 2001 |
US |
|
60313734 |
Aug 2001 |
US |
|
60313741 |
Aug 2001 |
US |