Claims
- 1. For use in a printing device having a document input means for inputting discrete documents to the printing device, a printing means for printing the documents, and document transport means for transporting documents from the document input means to the printing means, said input means, transport means, and printing means defining a document path, said printing means being adjustable according to a physical parameter relating to thickness of the discrete documents, the thickness of each document unrelated to the thickness of the document preceding it along the document path, a print parameter optimizer, comprising:
- thickness measuring means associated with the document transport means for measuring the thickness of a document prior to the transport of the document to the printing means, the location of the thickness measuring means along the document path being such that the distance along the document path from the thickness measuring means to the printing means is long enough to accommodate a plurality of documents, said thickness measuring means generating a thickness signal indicative of the thickness thereof;
- adjustment means associated with the printing means for adjusting said parameter; and
- control means responsive to said thickness signal and to the progress of individual documents along the document path, for storing a thickness signal value associated with each one of individual documents along the document path between the thickness measuring means and the printing means, and for controlling said adjustment means so as to adjust said parameter in respect to a particular one of the individual documents prior to the actuation of the said printing means upon the particular one of the individual documents.
- 2. The print parameter optimizer of claim 1, wherein the printing means has a character formation means and hammer means, said character formation means and said hammer means defining a gap, and said printing means actuable for printing on a document within said gap, and wherein said physical parameter comprises said gap size.
- 3. The print parameter optimizer of claim 2 wherein the document follows a previous document, and wherein the control means adjusts the said gap only after actuation of the printing means associated with the previous document.
- 4. The print parameter optimizer of claim 1 wherein the thickness measuring means comprises leaf spring means contacting said documents, and said thickness signal is a first analog electrical signal related monotonically to the leaf spring means position.
- 5. The print parameter optimizer of claim 4 wherein the thickness measuring means further comprises a first photodetector and light source, said leaf spring means variably blocks a path between said first photodetector and said light source, and said first analog electrical signal is an output of said first photodetector.
- 6. The print parameter optimizer of claim 5 wherein the first photodetector is a photocell.
- 7. The print parameter optimizer of claim 5 wherein the first photodetector is a phototransistor.
- 8. The print parameter optimizer of claim 7 wherein the first photodetector is a photodarlington transistor.
- 9. The print parameter optimizer of claim 5 wherein the photodetector is a photodiode.
- 10. The print parameter optimizer of claim 2 wherein the adjustment means comprises motor means, cam means, and cam follower means, said motor means responding to control from said control means for rotating said cam means, and said cam follower means is engaged with said character formation means to adjust said gap.
- 11. The print parameter optimizer of claim 2 wherein the character formation means further comprises at least one print wheel on an eccentric print wheel shaft, and wherein the said cam follower means rotates said eccentric print wheel shaft, whereby the said gap is adjusted.
- 12. The print parameter optimizer of claim 10 wherein the motor means comprises a stepper motor.
- 13. The print parameter optimizer of claim 12 wherein the said stepper motor is rotatable to any of a discrete number of gap-adjusting positions.
- 14. The print parameter optimizer of claim 10 wherein the motor means comprises a DC motor.
- 15. The print parameter optimizer of claim 10 wherein the character formation means comprises at least one print wheel, each print wheel with a plurality of characters on the face thereof, and the hammer means comprises a hammer, whereby characters are formed on the document by moving the hammer toward the print wheels to strike characters.
- 16. The print parameter optimizer of claim 12 wherein the cam means is in fixed positional relationship with said hammer, and said cam follower means is engaged with said print wheels, whereby the gap is adjusted.
- 17. The print parameter optimizer of claim 5 wherein the thickness measuring means further comprises a second photodetector disposed nearby to the first photodetector and such that the leaf spring means does not block the path between the second photodetector and the light source.
- 18. The print parameter optimizer of claim 17 wherein a second analog signal output from said second photodetector is a reference input to an analog-to-digital convertor means, and wherein said first analog electrical signal is a measurement input to the analog-to-digital convertor means.
- 19. The print parameter optimizer of claim 1, further characterized in that the control means further comprises storage means for storing the thickness signal during the time between measurement of the thickness of the document and arrival of the document at the printing means.
- 20. In a printer having a plurality of printwheels on a common shaft, the wheels on the shaft together defining a printing line over a hammer, the printing line and hammer defining a print gap, the improvement comprising print gap adjustment means, said print gap adjustment means comprising motor means, cam means, and cam follower means, said motor means rotating said cam means, said cam follower means following said cam means, wherein said cam follower means is engaged with said shaft to adjust said gap.
- 21. The print gap adjustment means of claim 20 wherein the motor means comprises a stepper motor.
- 22. The print gap adjustment means of claim 21 wherein the stepper motor is rotatable to any of a discrete number of gap-adjusting positions.
- 23. The print gap adjustment means of claim 20 wherein the motor means comprises a DC motor.
- 24. The print gap adjustment means of claim 20 wherein the cam means is in fixed positional relationship with said hammer, and said cam follower means is engaged with said shaft, whereby the gap between said print wheels and said hammer is adjusted.
- 25. The print gap adjustment means of claim 20 wherein the shaft is eccentric, and wherein the said cam follower means rotates said eccentric print wheel shaft, whereby the said gap is adjusted.
Parent Case Info
This application is a continuation of application Ser. No. 07/502,338, filed on Mar. 30, 1990, and now abandoned.
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Continuations (1)
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Number |
Date |
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Parent |
502338 |
Mar 1990 |
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