Claims
- 1. Apparatus for optimizing the operation of an electrophotographic printing machine, said apparatus including a corona device for applying a charge to the machine photoreceptor, a scan-illumination optical system for illuminating a document to be copied on a platen surface a projection lens for projecting a reflected image of the document along an optical path onto the photoreceptor to form a latent image thereof, a developer unit for applying toner to the belt surface, said apparatus further including in combination: a digital controller,
- memory means within said controller, having stored therein a digital representation of the photo-induced discharge curve (PIDC) for the machine photoreceptor,
- optical test patch generation means comprising part of said scan-illumination system, said patch generation means adapted to form at least a dark development V.sub.DDP patch, a second, full illumination V.sub.BG patch and a third intermediate development patch on said photoreceptor,
- a voltmeter for sensing photoreceptor voltage at said test patch areas and for sending representative signals to said memory means,
- first logic means within said controller for analyzing the voltmeter input signals representing the values V.sub.DDP and V.sub.BG levels, comparing the difference (constant contrast voltage V.sub.C), between these signals and a preset optimum value of V.sub.C stored within the memory means and selectively regulating the corona device and the developer unit in an iterative process until convergence is obtained between said difference and said preset value,
- said logic means further adapted to analyze the voltmeter input signals representing said intermediate development patch, comparing said signal with a preset optimum value stored within the memory means and selectively regulating the illumination output level of said scan-illumination optical system in an iterative process until convergence is obtained between said measured and stored values.
- 2. The apparatus of claim 1 further including discrete patch generator erase means positioned adjacent the photoreceptor and adapted to selectively erase said development patches during said iterative process.
- 3. The apparatus of claim 1 further including a densitometer positioned adjacent the photoreceptor downstream from the development station, and wherein said optical test patch generation means is adapted to produce a second intermediate development patch on said photoreceptor, said logic means further adapted to analyze the voltmeter input representing said second intermediate level and the V.sub.DDP level, comparing the difference between these signals, and, if a difference is detected, selectively regulating the discrete patch generator output in an iterative process until the two measured values are equal.
- 4. The apparatus of claim 1 wherein said optical test patch generation means includes a scan carriage comprising an elongated illumination assembly and a scan mirror, said platen surface having a first opaque occluder affixed to the bottom surface at a first test patch generation position, a second intermediate density occluder affixed to the bottom surface at a second test patch generation position and a third intermediate density occluder affixed to the bottom surface at a third position, said digital controller adapted to vary the output of said illuminator assembly at each of the test patch generation positions.
- 5. The process of automatically adjusting the basic xerographic parameters of an electrophotographic printing machine evaluating charging current, I.sub.C, developer bias V.sub.BIAS and system exposure E.sub.O, comprising the steps of:
- (a) driving the machine document scanning optics in a test patch generation mode to lay down a plurality of test patches of different densities on the machine photoreceptor, including a first test patch representing dark decay potential V.sub.DDP, a second patch representing background voltage level V.sub.BG and a third patch representing an intermediate voltage level V.sub.0.30,
- (b) measuring the voltage levels at said test patches and generating signals indicative thereof,
- (c) analyzing said voltage level signals and comparing preset values representative of values lying along the PIDC curve of the particular photoreceptor,
- (d) adjusting the machine parameters I.sub.C, V.sub.BIAS, and E.sub.O until these comparison values find convergence with these points on the PIDC curve established for the machine photoreceptor.
- 6. The process of claim 4 including the step of selectively erasing said test patches using a discrete light source.
- 7. The process of claim 6 including the additional step of calibrating said discrete light source to the final machine parameters.
- 8. An electrophotographic printing machine comprising:
- charging means for applying charge to a photoreceptor surface, said charging means including means to vary the charge output level,
- an optical assembly adapted to incrementally scan a document lying in an object plane, said optical assembly including means to vary the illumination output of a scan lamp,
- a projection lens to project a reflected image of the scanned document along an optical path onto the photoreceptor surface to form a latent image of the document thereon, and
- developer means for developing the latent image, said developer means including means to vary a bias signal applied to said developer means,
- said apparatus further including a control means for automatically adjusting the xerographic parameters of charging current l.sub.c, developer bias V.sub.BIAS, and system exposure E.sub.0, said control means comprising:
- a digital controller,
- memory means within said controller containing a digital representation of the photo-induced discharge curve (PIDC) for the machine photoreceptor,
- optical test patch generation means comprising part of said optical assembly, said patch generation means adapted to form at least a dark development V.sub.DDP patch, a second full illumination V.sub.BG patch and a third intermediate development patch on said photoreceptor,
- a voltmeter for sensing photoreceptor voltage at said test patches and for sending representative signals thereof to said memory means, and
- logic means within said controller for analyzing the voltmeters input signals representing the values V.sub.DDP and V.sub.GB levels, comparing the difference (constant contrast voltage V.sub.C) between these signals and a preset optimum value of VC stored within the memory means and sending a signal to said charge level varying means and said developer bias varying means in an iterative process until convergence is obtained between said difference and said preset value.
- 9. The printing machine of claim 8, said logic means further including means to analyze the voltmeter input signals representing said intermediate development patch, comparing said signal with a preset optimum value stored within the memory means and sending a signal to said scan lamp output varying means to selectively regulate the illumination output of said optical system in an iterative process until convergence is obtained between said measured and stored values.
Parent Case Info
This is a continuation of application Ser. No. 713,371, filed Mar. 18, 1985, now abandoned.
US Referenced Citations (15)
Non-Patent Literature Citations (1)
Entry |
Article entitled "Automated Setup for Xerographic Copiers", by Robert L. Thompson, Xerox Disclosure Journal, vol. 9, No. 3, May/Jun. 1984, p. 179. |
Continuations (1)
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Number |
Date |
Country |
Parent |
713371 |
Mar 1985 |
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