Claims
- 1. A method for assembling an enclosed fuel tank for a space travel vessel, wherein said fuel tank comprises a plurality of interconnected fuel tank subassemblies, wherein each of said fuel tank subassemblies comprise first and second ends, and wherein a fuel tank subassembly preparing step for a given said fuel tank subassembly comprises:
obtaining a first length measurement between said first and second ends of said given said fuel tank subassembly; recording said first length measurement; executing a first machining operation on said given said fuel tank subassembly at a longitudinally spaced location from said first end of said given said fuel tank subassembly to define a new said second end for said given said fuel tank subassembly, said executing a first machining operation step being executed after said obtaining a first length measurement step; obtaining a second length measurement between said first end and said new said second end of said given said fuel tank subassembly, said obtaining a second length measurement step being executed after said executing a first machining operation step; and recording said second length measurement, said method comprising the steps of:
executing a first said fuel tank assembly preparing step for a first said fuel tank subassembly; and attaching said first said fuel tank subassembly to a second said fuel tank subassembly after said executing a first said fuel tank assembly preparing step.
- 2. A method, as claimed in claim 1, wherein:
at least one of said obtaining a first length measurement step and said obtaining a second length measurement step comprises:
executing a first longitudinally advancing step comprising longitudinally advancing a measuring device in a first direction first, Towards said second end of said given said fuel tank subassembly and then continuing past said second end of said given said fuel tank subassembly such that said second end of said given said fuel tank subassembly is then disposed longitudinally between said first end of said given said fuel tank subassembly and said measuring device; and executing a second longitudinally advancing step after said executing a first longitudinally advancing step, comprising longitudinally advancing said measuring device in a second direction back towards said second end of said given said fuel tank subassembly, said second direction being directly opposite of said first direction; and terminating said executing a second axially advancing step upon engagement of said measuring device with a portion of said second end of said given said fuel tank subassembly.
- 3. A method, as claimed in claim 2, wherein:
said at least one of said obtaining a first length measurement step and said obtaining a second length measurement step comprises disposing said measuring device at a first position which corresponds with said first end of said given said fuel tank subassembly before said executing a first longitudinally advancing step, noting a second position of said measuring device after said terminating step, and basing a corresponding said length measurement on said first and second positions.
- 4. A method, as claimed in claim 3, wherein:
said disposing step comprises executing a third longitudinally advancing step before either of said executing a first longitudinally advancing step and said executing a second longitudinally advancing step, said executing a third longitudinally advancing step comprising longitudinally advancing said measuring device in said second direction towards said first end of said given said fuel tank subassembly.
- 5. A method, as claimed in claim 3, wherein said given said fuel tank subassembly is disposed about and extends along a reference axis and wherein said at least one of said obtaining a first length measurement step and said obtaining a second length measurement step further comprises:
executing a third longitudinally advancing step before either of said executing a first longitudinally advancing step and said executing a second longitudinally advancing step, said executing a third longitudinally advancing step comprising longitudinally advancing said measuring device in said first direction towards said second end of said given said fuel tank subassembly; terminating said executing a third longitudinally advancing step before said measuring device is disposed past said second end of said given said fuel tank subassembly; executing a first laterally step comprising laterally advancing said measuring device towards said given said fuel tank subassembly and said reference axis; terminating said executing a first laterally advancing step when said measuring device engages said given said fuel tank subassembly; noting a position of said measuring device at said terminating said executing a first laterally advancing step; executing a second laterally advancing step comprising laterally advancing said measuring device away from said given said fuel tank subassembly after said noting step; executing said executing a first longitudinally advancing step after said executing a second laterally advancing step; executing a third laterally advancing-step comprising laterally advancing said measuring device toward reference axis and to a lateral position based upon said noting step; and executing said executing a second longitudinally advancing step after said executing a third laterally advancing step, wherein said noting step at least increases a likelihood of said measuring device engaging said second end of said given said fuel tank subassembly during said executing a second longitudinally advancing step.
- 6. A method, as claimed in claim 1, further comprising the step of:
repeating said obtaining a first length measurement step at each of a plurality of radially spaced locations on said given said fuel tank subassembly.
- 7. A method, as claimed in claim 6, further comprising the step of:
identifying both a minimum and a maximum value of a plurality of said first length measurements generated by said repeating step.
- 8. A method, as claimed in claim 6, further comprising the steps of:
having a predetermined length requirement for said given said fuel tank; and determining if a smallest magnitude of a plurality of said first length measurements generated by said repeating step is within a predetermined tolerance associated with said predetermined length requirement.
- 9. A method, as claimed in claim 6, wherein:
said executing a first machining operation step is routering said second end of said given said fuel tank subassembly.
- 10. A method, as claimed in claim 6, further comprising the steps of:
using relative rotational motion between said given said fuel tank subassembly and a measuring device used by said obtaining a first length measuring step to position said measuring device at each of said plurality of radially spaced locations on said given said fuel tank subassembly; stopping said relative rotational motion at each of said plurality of radially spaced locations for a corresponding execution of said obtaining a first length measurement step.
- 11. A method, as claimed in claim 1, further comprising the steps of:
repeating said executing a first said fuel tank assembly preparing step for a plurality of said first said fuel tank subassemblies; and evaluating a supplier of said first said fuel tank subassemblies using each execution of a said recording said first length measurement step.
- 12. A method, as claimed in claim 1, wherein:
said executing a first machining operation step is selected from the group consisting of sawing and routering.
- 13. A method, as claimed in claim 1, wherein:
said executing a first machining operation step comprises first longitudinally advancing at least one machining tool along said given said fuel tank subassembly to a certain longitudinal location and then laterally advancing said at least one machining tool into engagement with said given said fuel tank subassembly.
- 14. A method, as claimed in claim 13, wherein:
a measuring device used by said obtaining a first length measurement step and said obtaining a second length measurement step is mounted on a first structure, wherein said at least one machining tool is also mounted on said first structure, and wherein said obtaining a first length measurement step and said obtaining a second length measurement step comprise longitudinally moving said first structure with said at least one machining tool being maintained in spaced relation with said given said fuel tank subassembly.
- 15. A method, as claimed in claim 1, wherein:
at least one of said recording said first length measurement step and said recording said second length measurement step comprises sending a signal from a measuring device used by at least one of said obtaining a first length measurement step and said obtaining a second length measurement step to a computer-readable storage medium.
- 16. A method, as claimed in claim 1, further comprising the steps of:
repeating said executing a first said fuel tank assembly preparing step for a plurality of said first said fuel tank subassemblies; and evaluating a performance of said executing a first machining operation step using each execution of said recording said second length measurement step.
- 17. A system for assembling an enclosed fuel tank for a space travel vehicle, wherein said fuel tank comprises first and second fuel tank subassemblies, and wherein each of said first and second fuel tank subassemblies comprise first and second ends, said system comprising:
first and second longitudinally spaced chucks, wherein said first chuck is engageable with said first end of said first fuel tank subassembly and said second chuck is engageable with said second fuel tank subassembly; a plurality of launch vehicle fuel tank supports spaced longitudinally between said first and second chucks; a longitudinally extending guide assembly disposed at least substantially parallel with said first and second fuel tank subassemblies when engaged by said first and second chucks, respectively; a first mount movably interconnected with said guide assembly; a drive assembly interconnected with said first mount; a first machine tool attached to said first mount; a measuring device attached to said first mount; and a first welding assembly.
- 18. A system, as claimed in claim 17, wherein:
said first machine tool is selected from the group consisting of a saw and a router.
- 19. A system, as claimed in claim 17, further comprising:
a second machine tool attached to said first mount, said first machine tool being a saw and said second machine tool being a router.
- 20. A system, as claimed in claim 17, further comprising:
a computer readable storage medium operatively interconnected with said measuring device.
- 21. A system, as claimed in claim 20, further comprising:
a first data storage structure stored on said computer-readable storage medium, said first data storage structure comprising a plurality of data segments, wherein data segments of information on a particular said launch vehicle fuel tank are associated with each other, wherein a first said data segment comprises length information for sand first fuel tank subassembly of said particular said launch vehicle fuel tank prior to being processed by said first machining tool, and wherein a second said data segment comprises length information for said first fuel tank subassembly of said particular said launch vehicle fuel tank after being processed by said first machining tool.
- 22. A method for assembling an enclosed launch vehicle fuel tank comprising first and second fuel tank subassemblies, wherein each of said first fuel tank subassemblies comprise first and second ends, said method comprising the steps of:
obtaining a first length measurement between said first and second ends of said first fuel tank subassembly; repeating said obtaining a first length measurement step at each of a plurality of radially spaced locations on said first fuel tank subassembly; executing a first machining operation a predetermined distance from said first end of said first fuel tank subassembly to define a new said second end, said executing a first machining operation step being executed after complete execution of said repeating step; and attaching said first end of said second fuel tank subassembly to one of said new said second end of said first fuel tank subassembly.
- 23. A method, as claimed in claim 22, wherein:
said obtaining a first length measurement step comprises:
executing a first longitudinally advancing step comprising longitudinally advancing a measuring device in a first direction first towards said second end of said first fuel tank subassembly and then continuing past said second end of said first fuel tank subassembly such that said second end of said first fuel tank subassembly is then disposed longitudinally between said first end of said first fuel tank subassembly and said measuring device; and executing a second longitudinally advancing step after said executing a first longitudinally advancing step comprising longitudinally advancing said measuring device in a second direction back towards said second end of said first fuel tank subassembly, said second direction being directly opposite of said first direction; and terminating said executing a second longitudinally advancing step upon engagement of said measuring device with a portion of said second end of said first fuel tank subassembly.
- 24. A method, as claimed in claim 23, wherein:
said obtaining a first length measurement step comprises noting a first position of said measuring device before said executing a first longitudinally advancing step, noting a second position of said measuring device after said terminating step, and basing said first length measurement on said first and second positions.
- 25. A method, as claimed in claim 22, further comprising the step of:
identifying both a minimum and a maximum value of a plurality of said first length measurements generated by said repeating step.
- 26. A method, as claimed in claim 22, further comprising the step of:
determining if a smallest magnitude of a plurality of said first length measurements generated by said repeating step is within a predetermined tolerance associated with said predetermined distance.
- 27. A method, as claimed in claim 22, wherein:
said executing a first machining operation step is routering said second end of said first fuel tank subassembly.
- 28. A method, as claimed in claim 22, further comprising the steps of:
using relative rotational motion between said first fuel tank subassembly and a measuring device used by said obtaining a first length measuring step to position said measuring device at each of said plurality of radially spaced locations on said first fuel tank subassembly; stopping said relative rotational motion at each of said plurality of radially spaced locations for a corresponding execution of said obtaining a first length measurement step.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This patent application is a utility patent application based upon U.S. Provisional Patent Application Serial No. 60/099,206, filed Sep. 3, 1998, and entitled “AUTOMATED MEASURING AND ARCHIVING SYSTEM,” the entire disclosure of which is incorporated by reference in its entirety herein.
Provisional Applications (1)
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Number |
Date |
Country |
|
60099206 |
Sep 1998 |
US |
Continuations (1)
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Number |
Date |
Country |
Parent |
09388564 |
Sep 1999 |
US |
Child |
09821610 |
Mar 2001 |
US |