[0001] The present invention relates generally to electrophotographic printing systems.
In particular, the invention is an image density process control system for a full
color electrophotographic proofing system.
[0002] Electrophotographic proofing systems are generally known and described, for example,
in the U.S.-A- 4,728,983, U.S.-A- 4,708,459 and U.S.-A- 4,780,744. Systems of these
types include a computer-based control system, and an organic photoconductor (OPC)
which is sequentially driven past charging, exposing (imaging), developing and transfer
stations during multiple imaging cycle (toning pass) proofing runs. A separate imaging
cycle is performed for each component color used to create the image.
[0003] During each imaging cycle the OPC is first charged to an initial voltage by a charging
device such as a scorotron at the charge station. The charged OPC is then exposed
or imaged to produce a charge pattern representative of the image to be printed. Exposed
portions of the OPC are thereby discharged to a final voltage. A bias voltage is applied
to the development station to create a development voltage differential between the
toning station and OPC. Charged toner is drawn to the imaged OPC as a function of
the development voltage and OPC charge profile to develop or tone the imaged OPC as
it passes the development station. This imaging cycle procedure is repeated for each
component color to produce a composite image assembly in registration on the OPC.
The proofing run is completed when the composite image assembly is transferred to
a backing by the transfer station.
[0004] The amount, and therefore density, of toner applied to the OPC at the developing
station is controlled to impart desired color characteristics to the proof. Unfortunately,
elements of the electrophotographic process described above have characteristics which
change over time and produce unpredictable variations in system dynamics. Two of the
most serious process variables are changing charge characteristics of the OPC and
changes in the dynamics of the developing system (both toner and mechanism).
[0005] Both US-A-4,708,459 and US-A-4,780,744 describe a half-tone separation proofing system
which includes compensation techniques for reducing toner density dependance on process
variables. This compensation technique includes the use of four empirically derived
mathematical models: a charger model, an exposure model, a decay model and a developer
(toning) model. The charger model mathematically predicts the initial or unexposed
voltage placed onto the OPC by the scorotron. The exposure model estimates the post-exposure
OPC voltages on exposed test areas of the film. The decay model estimates the voltage
decay experienced by the OPC as it travels to the developing station. The developer
model estimates the density of the toned image given the development voltage. These
models are used to predict actual system performance occurring during any toning pass
and provide appropriate values of the controlled parameters (grid voltage, bias voltage
and exposure setting) to maximize system performance during the next successive toning
pass. Actual measurement data is used to update the models at the conclusion of any
toning pass. The cycle of performance prediction/parameter estimation followed by
model updating is repeated for each successive toning pass.
[0006] The control process used in US-A- 4,708,459 system executes two basic phases: calibration
and toning. In operation, the calibration phase is run when required. During this
phase, the system obtains OPC voltage measurements and estimates certain parameters
indicative of the performance of the electrophotographic charging, exposure and decay
processes that actually occur in the system. The calibration phase consists of only
one pass during which no toning occurs. The result of the calibration phase is a set
of parameter values for use during the subsequent toning phase. The calibration phase
is run in specific instances before the toning phase begins in order for the system
to establish a set of valid initial conditions.
[0007] Once the calibration phase, when used, is completed, the toning phase begins. During
each successive toning pass, the system first predicts system performance and calculates
the values of various controlled process parameters, by inverting the models using
updated values from the previous pass or proof, in order to set the controlled process
parameters (grid and bias voltages and exposure setting) correctly. Actual process
data (toner densities, OPC voltages under conditions of varying exposure and at varying
times) occurring during that pass are measured. These measurements are then used to
update all the models for use during subsequent toning passes. The performance prediction/parameter
estimation and updating processes are again repeated during each successive toning
pass.
[0008] Electrophotographic systems also generally include systems for replenishing toner
consumed during the development process. For example, U.S.-A- 4,847,659 discloses
a replenishment control system actuated as a function of a toner depletion signal.
The toner depletion signal is indicative of the number of character prints, and is
proportionally converted to a replenishment control signal with the proportionality
constant being adjusted in response to the difference between a process control parameter
such as development bias, and a predetermined target value.
[0009] U.S.-A- 4,886,730 discloses an electrostatic liquid development process in which
the replenisher has a different composition of colorant, binder and charge control
agent than that of the starting composition. This different composition causes the
supplemented developer to hold a state of charge at a predetermined rate.
[0010] U.S.-A- 4,860,924 discloses a liquid developer charge director control for a copier.
Liquid carrier is added to maintain the volume of the working developer at a constant
level. Toner concentrate is added to maintain optical transmissivity at a predetermined
value. Conductivity of the developer is also measured, and charge director added to
the working developer to maintain conductivity at a constant value.
[0011] There remains, however, a continuing need for improved density process control procedures
for electrophotographic systems.
[0012] It is the object of the present invention to provide density process control procedures
for an electrophotographic system which are capable of accurately and efficiently
compensating for process variables to repeatably produce proofs having desired color
characteristics. No operator interaction should be required to implement the process
control procedures. It would also be advantageous if the process control procedures
could support a range of operator selected color characteristics.
[0013] This object is solved by a method of claim 1 or 10, and a system of claim 13.
[0014] The present invention is an improved process control procedure for an electrophotographic
system used to print images from image information during imaging cycles. The efficient
procedure facilitates accurate and repeatable control over printed color characteristics
and includes: i) storing charge model information representative of photoconductor
charge characteristics as a function of a charge control parameter; ii) storing development
model information representative of developed toner characteristics as a function
of a development control parameter; iii) storing toner replenishment model information
characterizing toner replenishment amounts as a function of development control parameters;
iv) measuring actual photoconductor charge characteristics during a first imaging
cycle; v) measuring actual toner characteristics of toner developed during the first
imaging cycle; vi) charging the photoconductor during a second and subsequent imaging
cycle as a function of the charge model and the charge characteristics measured during
the first imaging cycle; vii) toning the photoconductor during the second imaging
cycle as a function of the development model and the developed toner characteristics
measured from toner developed during the first imaging cycle; and viii) replenishing
working toner as a function of the replenishment model and the development parameter
used to control photoconductor toning during the second imaging cycle.
[0015] In other embodiments the charge model information is updated after the first imaging
cycle as a function of the charge characteristics measured during the first imaging
cycle. The development model information is updated after the first imaging cycle
as a function of the developed toner characteristics measured from toner developed
during the first imaging cycle.
[0016] In another embodiment the working toner is replenished with replenishment toner having
a lower charge control agent to colorant ratio than the working toner. The steps of
measuring actual photoconductor charge characteristics, measuring actual developed
toner characteristics, charging the photoconductor, toning the photoconductor and
replenishing working toner are also repeated for third and subsequent imaging cycles.
[0017] The present invention is also an improved method for generating the charge and development
models used by an electrographic system for printing images from image information
during a printing run. During an imaging cycle of the printing run a photoconductor
is charged as a function of a charge model representative of a measured photoconductor
charge characteristic as a function of a charge control parameter, exposed as a function
of the image information, and toned as a function of a development model representative
of a measured developed toner characteristic as a function of a development parameter.
The calibration procedure quickly and efficiently generates the charge and development
models during one printing run without any operator interation, and includes: i) charging
a first color test patch on the photoconductor as a function of a known charge control
parameter; ii) exposing the first color test patch on the photoconductor; iii) measuring
the charge characteristic of the photoconductor at the first color test patch; iv)
toning the photoconductor at the first color test patch with a first color toner as
a function of a known development parameter; v) measuring the characteristic of the
first color toner deposited on the first color test patch; vi)generating a charge
model for the first color toner; and vii) generating a development model for the first
color toner.
[0018] In other embodiments the electrographic system prints multicolored images from information
representative of a set of half-tone color patterns by performing multiple imaging
cycle printing runs, one imaging cycle for each color of the set. In this embodiment
the calibration procedure also generates charge and development models for each color
of the set during the printing run by: viii) charging a second color test patch on
the photoconductor as a function of a known charge control parameter; ix) exposing
the second color test patch on the photoconductor; x) measuring the charge characteristic
of the photoconductor at the second color test patch; xi) toning the photoconductor
at the second color test patch with a second color toner as a function of a known
development parameter; xii) measuring the characteristic of the second color toner
deposited on the second color test patch; xiii) repeating steps viii-xii for each
color of the set during the printing run; xiv) generating a charge model for each
color of the set; and xv) generating a development model for each color of the set.
[0019] In yet another embodiment the system generates charge and development models for
a range of system characteristics. These models can be used to support a range of
operator selectable color characteristics. In this embodiment the step of charging
the photoconductor for each color of the set includes charging a plurality of test
patches on the photoconductor with a range of different known charge control parameters.
Measuring the charge characteristic for each color of the set includes measuring the
charge characteristics of the photoconductor at each of the test patches. The test
patches for each color of the set are toned with the toner as a function of known
development parameters. The characteristics of the toner deposited on each of the
test patches is measured. Charge models representative of measured charge characteristics
as a function of the plurality of charge control parameters are generated for each
color of the set. Development models representative of measured toner characteristics
as a function of the associated development parameters are also generated for each
color of the set.
[0020] In yet other embodiments, measuring the toner characteristic includes measuring toner
thickness or optical density. The photoconductor is toned as a function of a development
voltage. The development model includes information representative of the optical
density as a function of the associated development voltage. The test patch is charged
as a function of a known grid voltage, and the charge model includes information representative
of measured charge characteristics as a function of associated grid voltage.
[0021] The invention will be described in more detail in connection with a preferred embodiment
shown in the drawing in which
[0022] Figure 1 is a block and pictorial diagram of an electrophotographic proofing system
in which the density process control procedure of the present invention can be implemented.
[0023] Figure 2 is a pictorial diagram illustrating the electrophotographic process implemented
by the proofing system shown in Figure 1.
[0024] Figure 3 is a graphic representation of a charge model generated and used by the
proofing system.
[0025] Figure 4 is a graphic representation of a development model generated and used by
the proofing system.
[0026] Figure 5 is a flowchart describing the calibration procedure implemented by the proofing
system.
[0027] Figure 6 is a flowchart describing the density process control procedure of the present
invention.
[0028] Figure 7 is a graphic representation of a replenishment lookup table used by the
density process control procedure.
[0029] Figure 8 is a detailed block and pictorial diagram of a toning station included in
the development station shown in Figure 1.
I. SYSTEM OVERVIEW
[0030] Figure 1 is a diagrammatic illustration of a digital electrophotographic proofing
system 10 which utilizes the process control procedures of the present invention.
Proofing system 10 consistently prints hardcopy images or proofs from digital data
representative of color half-tone patterns during multiple imaging cycle printing
or proofing runs. The calibration procedure quickly and efficiently generates charge
and development models which describe current system operating characteristics. The
process control procedure uses the models, and measured proof and system characteristics
from previous proofing runs, to control system response on a proof-to-proof basis
and maintain proof quality over a wide range of fundamental process variables. These
procedures require no operator interaction.
[0031] Proofing system 10 includes a proofing engine 12 controlled by a computer-based control
system 14. In the embodiment shown, proofing engine 12 includes a film of organic
photoconductor or OPC 16 on rotating drum 18, scorotron 20, laser and scanner 22,
development station 24, dry station 26, erase station 27 and transfer station 28.
In addition to computer 36, control system 14 includes voltage sensor 40 and density
sensor 42.
[0032] Development station 24 includes four identical toning stations 30 such as that shown
in Figure 8 (only one station is illustrated), one for each of the primary component
colors used to generate color proofs. Toning stations 30 include a development electrode
200, toner pump 202, toner supply reservoir 204, replenisher pump 206 and replenisher
reservoir 208. Working toner is pumped from supply reservoir 204 to development electrode
200 by pump 202. As toner is depleted from supply reservoir 204 during the development
process, the supply is replenished with replenisher toner pumped from replenisher
reservoir 208 by pump 206.
[0033] The electrophotographic proofing process implemented by system 10 can be described
generally with reference to Figures 1 and 2. Digital continuous tone, high resolution
text, graphics, edge and contour data, and other image information representative
of the image to be printed is stored within memory (not separately shown) of computer
36. From the image information computer 36 generates digital information representative
of a set of binary or half-tone patterns, one pattern for each of the component colors
used by system 10. In the embodiment described below, proofing system 10 uses black,
cyan, magenta and yellow as the set of primary colors. Computer 36 therefore generates
information representing black, cyan, magenta and yellow half-tone patterns for each
proof to be printed.
[0034] Proofing engine 12 is driven through a proofing run to generate each proof. Each
proofing run includes a sequence of imaging cycles, one for each component color,
during which toner, in the half-tone patterns, is developed (toned) onto OPC 16 in
registration with the others to produce a composite toned image assembly. The proofing
run is completed and the hard copy proof produced when the composite image assembly
is transferred to paper backing 46 by transfer station 28. In the embodiment shown,
transfer station 28 implements a two step process. The composite assembly is first
transferred from OPC 16 to a transparent adhesive transfer web 44. The composite image
is then permanently applied to backing 46.
[0035] Component color compensation test patches are also imaged and developed during the
proofing runs, typically near the edges of the printed images. Color characteristics
such as optical densities of the test patches are measured from transfer web 44 during
the image assembly transfer using transmission density sensor 42 in the embodiment
shown. Alternatively, other characteristics such as lightness, chroma or hue of the
developed toner can be measured and used to control system 10. The color characteristics
of the test patches can also be measured at other points in the proofing run, such
as from OPC 16 or backing 46.
[0036] The described embodiment of proofing system 10 implements a discharge area development
(DAD) electrophotographic process. However, the inventive concepts disclosed herein
can also be used in conjunction with other electrophotographic and electrographic
processes. Drum 18 is rotated during the imaging cycles to sequentially drive portions
of OPC 16 past scorotron 20, laser and scanner 22, developing station 24, dry station
26 and erase station 27. Each imaging cycle begins with the application of a grid
voltage, V
g, to scorotron 20. The grid voltage is a charge control parameter which causes scorotron
20 to charge the surface of OPC 16 to a charged or initial voltage, Vi, as shown at
50 in Figure 2. As shown at 52, the charged OPC 16 is then exposed or imaged by a
scanning laser beam as the OPC rotates past laser and scanner 22. The laser beam is
on-off modulated as a function of the component color half-tone pattern to partially
discharge the portions of OPC 16 upon which it is impinged, resulting in a discharged
or final voltage, Vf, on the OPC. As the imaged OPC 16 reaches developing station
24, a developer bias voltage, Vb, is applied to the appropriate development electrode
200 to produce a development voltage contrast or development voltage, V
d, between the OPC and toning station. The toner, which is charged, is thereby drawn
to the imaged OPC 16 in accordance with the half-tone pattern and test patches as
shown at 54. Toner from the appropriate reservoir 208 is pumped into the associated
supply reservoir 204 to replenish toner consumed during the toning operation. With
continued rotation of drum 18 the toned or developed OPC 16 passes dry station 26
and erase station 27 as indicated at 56 in Figure 2. The liquid toner is dried at
station 26. Remaining charge on OPC 16 is dissipated at erase station 27. This imaging
cycle procedure is repeated for each component color and its associated half-tone
pattern to produce the developed image assembly shown at 58. The proofing run is completed
when the developed image assembly is removed from OPC 16 and applied to backing 46
by transfer station 28.
[0037] Density process control is accomplished using three control variables: 1) the grid
voltage, V
g; 2) the development voltage, V
d; and 3) the amount of replenishment toner added. The grid voltage is used as a control
parameter to control background voltage contrast (the difference between the initial
OPC voltage and the bias voltage) and minimize toner density variation. The development
voltage is used to control the color characteristics of the solid primary colors through
relatively short term (e.g., proof-to-proof) control over the development system.
Long-term control over the development system is achieved through the use of toner
replenisher as the control variable to minimize variations in development voltage
and dot gain.
[0038] The density calibration, also known as the development voltage ramp test, is periodically
executed by proofing system 10 to generate system charge and development models. These
models are used in the density process control procedure during proofing runs to determine
the initial setpoint values and subsequent adjustments to the grid and development
voltages. The detailed description of the calibration and density process control
procedures implemented by system 10 uses the parameters defined in Table 1 below.
In general, the convention used throughout the remainder of this description uses
the subscript "t-1" to refer to the parameters measured during the most recently executed
(i.e., previous) imaging cycle. The subscript "t" is used to refer to computed parameters
used to control the electrophotographic process during the next or subsequent image
cycle for the same component color. It is to be understood, however, that the subscript
"t" parameters can be computed during the previous imaging cycle and stored in memory
once the needed parameters have been measured.
- Vi
- Measured initial OPC voltage, or initial voltage
- Vf
- Measured final OPC voltage, or final voltage
- Vb
- Developer bias voltage, or developer bias
- Vg
- Scorotron voltage, or grid voltage
- (Vi-Vb)T
- Target background voltage contrast, or background voltage
- Vd=Vb-Vf
- Development voltage contrast, or development voltage
- Vc=Vi-Vf
- Total OPC voltage contrast, or OPC voltage contrast
- D
- Optical density, reflection or transmission
- Vdo
- Development voltage contrast computed from the most recent density calibration and
uncorrected for process drift
- Vdo(fresh)
- Development voltage contrast computed from a density calibration using fresh working
toner
- DTarget-D(t-1)
- Process induced density drift which must be corrected for on the next proof
- ΔVd(t)
- Development voltage correction for process drift to be used for the next proof
- Vd(t)
- Development voltage to be used for the next proof
- ΔVd(t-1)
- Development voltage correction for process drift used for the previous proof
- J
- Slope of the development model at Vdo
- Vco
- Target total OPC voltage contrast computed from the most recent density calibration
and uncorrected for process drift
- ΔVc(t)
- Voltage contrast process drift which must be corrected for on the next proof
- H
- Slope of the charge model at Vgo
- Vgo
- Scorotron grid voltage computed from the most recent density calibration and uncorrected
for process drift
- ΔVg(t)
- Scorotron grid voltage correction for process drift to be used for the next proof
- Vg(t)
- Scorotron grid voltage to be used for the next proof
- ΔVg(t-1)
- Grid voltage correction for process drift used for the previous proof
- ∂
- Density difference threshold for development voltage correction
- ℏ
- Voltage contrast threshold for grid voltage correction
II. DENSITY CALIBRATION PROCEDURE
[0039] Charge models are information stored in computer 36 which characterize the relationship
between a range of grid voltages Vg applied to scorotron 20 and the resulting measured
OPC voltage contrasts V
c. The OPC voltage contrast is a parameter which describes the actual measured charge
characteristics of OPC 16. For each grid voltage, the associated OPC voltage contrast
is determined by computer 36 from the initial voltage Vi and the final voltage Vf
measured by sensor 40 after portions of the OPC have been imaged by laser and scanner
22. Figure 3 is a graphic representation of an OPC charge model. A separate charge
model is generated and stored for each component color.
[0040] Development models are information stored in computer 36 which characterize the relationship
between a range of development voltages applied to toning stations 30 and the resulting
measured optical density, D, of toner transferred to OPC 16. The optical density is
a parameter which describes the actual measured color characteristics of the toned
image. Figure 4 is a graphic representation of a development model. A separate development
model is generated and stored for each component color.
[0041] The density calibration procedure used by proofing system 10 is described generally
in Figure 5. The calibration procedure is performed during a calibration proofing
run which is periodically executed, as for example, when working toner in development
station 24 and/or OPC 16 are changed. As shown in Figure 5, the calibration procedure
is used to generate and store the charge and development models for each of the component
colors used by proofing system 10.
[0042] Computer 36 begins the density calibration procedure by establishing an initial grid
voltage for the first component color, as well as the increment between the discrete
grid voltages used during calibration. This step is shown at 70 in Figure 5, and effectively
determines the range of grid voltages over which the response of system 10 will be
measured. The selected range of grid voltages must be large enough to include all
the expected operating points of system 10. In one embodiment the initial grid voltage
and voltage increment to be used after the toner in the supply reservoir 204 of station
30 is replaced, and/or after the installation of a new OPC 16, are determined through
laboratory experimentation and programmed into computer 36. The initial grid voltage
and increment can also vary with different toners and OPCs 16. The initial grid voltage
for subsequent calibration procedures can be set to the grid voltage used during the
most recently run imaging cycle less some predetermined value. These and other operator
specified parameters can be programmed into computer 36 through a terminal (not separately
shown).
[0043] Once the range information has been established, computer 36 causes the initial grid
voltage to be applied to grid 20. A first calibration test patch on OPC 16 is charged
accordingly, and rotated toward laser and scanner 22. These actions are indicated
by steps 72 and 74. The first test patch is then imaged by laser and scanner 22, and
the initial and final voltages on the test patch (and adjacent unimaged areas for
Vi) are measured by sensor 40. The voltage contrast associated with the initial grid
voltage can then be computed and stored by computer 36. These actions are indicated
by steps 78, 80 and 82 in Figure 5.
[0044] During calibration proofing runs, computer 36 sets the bias voltage to maintain a
predetermined and stored target background voltage contrast. The bias voltage is therefore
computed by subtracting the target background voltage contrast from the initial voltage
in accordance with Eq. 1. Alternatively, the background voltage can be set as a function
of the development voltage (e.g., a fraction of the development voltage). As this
bias voltage is applied to the appropriate toning station 30 to develop the first
test patch, the associated development voltage is computed and stored by computer
36. These actions are indicated by steps 84, 86 and 88 in Figure 5.

[0045] After charging the first test patch associated with the initial grid voltage, the
grid voltage is increased by the increment value as indicated at 90. Steps 72-90 are
then repeated with the second grid voltage and associated second test patch. Steps
72-90 are also repeated with third and subsequent grid voltages and associated test
patches until the desired range of grid voltages has been covered as indicated at
92. This process can be performed during one imaging cycle for the component color.
[0046] As shown at 94, steps 70-92 are also repeated for each remaining component color
during subsequent imaging cycles of the proofing run to produce a developed test patch
image assembly. The optical density of the test patches is measured by sensor 42 and
stored in computer 36 (step 98) after the test patch image assembly is transferred
to web 44. This action completes the calibration proofing run and results in two sets
of stored information for each of the component colors. The first set is a series
of scorotron voltages and corresponding OPC voltage contrasts. The second set is a
series of associated development voltages and corresponding printed optical densities.
[0047] Computer 36 uses the sets of calibration information described above to generate
the charge and development models for each component color. These steps are illustrated
generally at 100 and 102 in Figure 5. In one embodiment the models are stored as parameters
of quadratic Equations 2 and 3, below, fit to the sets of data using an ordinary least
squares approach. In other embodiments, the development system model can be fit as
a linear relationship. Alternatively, the models can be stored as lookup tables.


III. DENSITY CONTROL PROCEDURE
[0048] The density process control procedure implemented by proofing system 10 is illustrated
generally in Figure 6. This procedure uses measured system and print characteristics
(voltage contrast and density values) from previous imaging runs to access the stored
charge and development models in an attempt to determine process parameters (grid
and development voltages) for subsequent imaging runs to produce proofs having a desired
or target optical density. The charge and development models are effectively continually
updated to accurately reflect then-current operating characteristics of proofing system
10.
A. Prediction Of Process Parameters For The First Proof After A Density Calibration
[0049] The first imaging cycle for each component color after a density calibration run
begins with the calculation of the initial development voltage V
do. This is done by accessing or solving the development system model (eg., Eq. 3 )
as a function of the target density, as shown by step 110 in Figure 6. The target
density is selected by an operator from within the range supported by the models.
Once the initial development voltage has been determined, the target initial OPC voltage
contrast is computed in accordance with Eq. 4 below (step 112). The charge model is
accessed or solved (eg., Eq. 2) using the initial OPC voltage contrast to determine
the initial grid voltage V
go for the imaging cycle (step 114).

[0050] No compensation for process drift is performed during the first imaging cycle after
a calibration proofing run (i.e., there was no "previous" proofing run or imaging
cycle). Accordingly, parameters associated with this compensation and described below,
eg., ΔV
d(t), and ΔVg
(t), are all set equal to zero for the first imaging run for each component color (i.e.,
during the first proofing run). The grid voltage Vg
(t) used to charge OPC 16 is therefore set equal to the initial grid voltage V
go during calculation step 116. Similarly, the development voltage V
d(t) used to compute the developer bias voltage is set equal to the initial development
voltage V
do during calculation step 118. After the actual initial and final voltages are measured
(step 124), the bias voltage Vb
(t) to be applied to the toning station 30 to achieve the proper development voltage
is computed in accordance with Eq. 5 below and applied to the appropriate toning station
30. This step is indicated at 126. Alternatively, Vb can be determined as a function
of Vi and Vf.

[0051] As these parameters of the electrophotographic process are being determined, proofing
system 10 is driven through the imaging cycle for the first component color. OPC 16
is charged through the application of the grid voltage to grid 20, and imaged by laser
and scanner 22 as a function of the stored half-tone pattern image information (step
122). The initial and final voltages on OPC 16 are measured (step 124) for use as
feedback parameters during subsequent imaging runs and for computing the bias voltage
(Eq. 5). As indicated at 126 and 128, the imaged OPC 16 is developed by applying the
computed bias voltage to the appropriate toning station 30. These steps are repeated
for each component color during subsequent imaging cycles of the first proofing run
as indicated at 130. The composite image is then removed from OPC 16 by transfer station
28 and applied to backing 46 to complete the proofing process.
[0052] During each imaging cycle of the proofing run at least one compensation test patch
for the associated component color is also imaged and developed. The compensation
test patches are typically located near the edge of the image being printed. The actual
densities of the component colors are measured from the compensation test patches
by sensor 42 (step 134) during the transfer process, and used as feedback parameters
during subsequent proofing runs.
B. Compensation For Development System Fluctuations From Proof To Proof
[0053] The development voltage contrast required to obtain a desired developed toner density
can vary on a relatively short-term basis because of unpredictable fluctuations in
the characteristics of the development system. To compensate for these fluctuations,
the calibration procedure of the present invention generates a development voltage
correction ΔV
d(t) which is added to the initial development voltage during the imaging runs of the
second and all subsequent proofing runs in an attempt to minimize the difference between
the expected (i.e., operator selected target) and actual toner densities during the
imaging cycle.
[0054] The development voltage correction is determined as a function of the difference
between the desired or target density and the actual measured density of the compensation
test patches on one or more previous proofs. In the embodiment shown in Figure 6,
the measured density value used for this difference computation is a weighted density
average, D
w, of the measured densities from up to five previous proofs, i.e., D
(t-1) to D
(t-5). The step of calculating the weighted density average is indicated at 142 in Figure
6. Computer 36 stores the density weighing coefficients C
1-C
6, and computes the weighted density average in accordance with Eq. 6. In other embodiments,
the density average is an average of measured densities from several spaced test patches
on the immediately proceeding proof.

[0056] The value J is the slope of the development system model at the initially determined
development voltage. From Eqs. 8 and 9 it is evident that the development voltage
correction is a value which uses the development model to approximate density-caused
changes to the development voltage assuming linear behavior near the operating point.
[0057] As indicated at 118, the development voltage used for the second and subsequent proofs
following a calibration run is computed in accordance with Eq. 10. Sensitivity of
the development voltage to the development voltage correction is reduced by the factor
K, which can be a value such as 2. Although not shown in Eq. 10, the maximum development
voltage correction added during any given imaging cycle can also be limited to a percentage
of the previous development voltage, such as 4%. This development voltage compensation
procedure is repeated during each imaging cycle using the models and measured values
for the corresponding component color.

C. Compensation For OPC Fluctuations From Proof To Proof
[0058] The density calibration procedure of the present invention also compensates for fluctuations
in the charging, sensitivity and dark decay characteristics of OPC 16. These charge
compensation procedures are made by computing a grid voltage correction ΔVg
(t) which is added to the initial grid voltage during the second and all subsequent proofs
in an attempt to minimize the difference between the expected and actual total voltage
contrast imparted to OPC 16.
[0059] The grid voltage correction is determined as a function of the initial and final
voltages measured from OPC 16 during the imaging run for the corresponding color on
the immediately preceding proofing run (step 124 in Figure 6) as well as the target
voltage contrast, Vc
(t-1)target, for that imaging run. From the measured initial and final voltages the actual OPC
voltage contrast Vc
(t-1)actual can be determined by computer 36 using Eq. 11. The target voltage contrast is computed
from the development voltage used for the corresponding color during the previous
proofing run and the target background voltage contrast in accordance with Eq. 12.
The voltage contrast error ΔVc
(t) is then computed as the difference between the target OPC voltage contrast and the
actual OPC voltage contrast in accordance with Eq. 13. Step 140 in Figure 6 represents
the calculations of Equations 11-13.



The voltage contrast adjustment to be made for the next proof is compared to the
voltage contrast threshold ℏ to determine if a change should be made to the grid voltage.
This determination and the appropriate calculations are indicated at 146 in Figure
6, and made by computer 36 in accordance with Eqs. 14-16 below



The value of H is the slope of the charge model at the initial grid voltage Vg
o. The grid voltage correction is a value which uses the charge model to approximate
voltage contrast-caused changes to the grid voltage assuming linear behavior in the
region near the operating point.
[0060] Once the grid voltage correction has been calculated, it is added to the initial
grid voltage by computer 36 in accordance with Eq. 17 (step 116) to determine the
grid voltage to be used for the next imaging cycle. Sensitivity of the grid voltage
to the grid voltage correction is reduced by the factor L, which can be a value such
as 2. Although not shown in Eq. 17, the maximum grid voltage correction added during
any given imaging cycle can also be limited to a predetermined maximum such as a percentage
of the previous grid voltage for the same component color.

[0061] The procedure described above is repeated for each component color imaging cycle
for each proof following a calibration procedure.
D. Toner Replenishment Control
[0062] Computer 36 also causes toner replenisher to be added to supply reservoirs 204 of
toning station 30 (Fig. 8) after each proofing run as a function of the development
voltages. Toner replenishment in this manner minimizes development voltage drift as
the toner is depleted during the development process. The amount of toner replenisher
to be added for each component color is determined by first computing the ratio of
development voltage for the next proof (computed in the manner described above in
section B), to the fresh toner development voltage computed after a density calibration
with fresh working toner, i.e., V
d(t)/V
do. The toner replenisher is added to the appropriate supply reservoir 204 by actuating
the associated pump 206 as a function of the computed ratio before the next proofing
run.
[0063] In one embodiment of system 10, computer 36 includes a replenishment lookup table
of data characterizing development voltage ratios and associated pump strokes for
each component color. The number of pump strokes determines the amount of toner replenisher
that will be added. A representation of one such replenishment lookup table, with
replenisher volume illustrated for reference only, is illustrated in Figure 7. Computer
36 accesses the appropriate replenishment lookup table as a function of the development
voltage ratio to determine the proper number of pump strokes, and actuates the corresponding
pump 206 accordingly for each component color.
[0064] The toner replenisher added to replenishment reservoir 208, like the fresh toner
initially used in supply reservoirs 204, includes a colorant, binder and charge control
agent in a carrier. To minimize the changes to the properties of toner in reservoirs
204 as replenisher is added, the toner replenisher is formulated with a lesser amount
of charge control agent than the fresh toner. This formulation minimizes charge carrier
buildup in the replenished toner in reservoir 204, thereby reducing changes which
would otherwise have to be made to the development voltage to maintain image quality.
[0065] The black, magenta and cyan toner composition and processing examples described below
represent the best fresh or working toners contemplated for use in proofing system
10. These compositions can also be optimized for particular proofing systems 10 by
blending different lots of mill bases to obtain an intermediate value of the charge
level in the toner. These and other toner examples are disclosed in commonly assigned
copending application Serial No. 07/652,572 filed February 8, 1991 and entitled Liquid
Electrophotographic Toner (US-A- 5 302 482)
[0066] The following samples were milled on an Igarashi mill. Black was milled for 1 hour
at 1000 rpm, cyan and magenta were milled for 90 minutes at 2000 rpm. After milling
the toner was diluted; black diluted to 0.5% solids, magenta and cyan to 0.4% solids.
Example 1
[0067]
| Mill base |
Components |
| Black 1 |
Mix together first: |
| |
49.15 |
grams Zr Ten Cem (40% solids - solvent is VMP naptha) |
| |
1.23 |
grams Na Stearate |
| Then add: |
| |
76.8 |
grams Regal 300 carbon black |
| |
1956.69 |
grams organosol (15.7% solids - solvent is Isopartm G) |
| |
153.6 |
grams Foraltm 85
1012.91 grams Isopartm G |
| Magenta 1 |
Mix together first: |
| |
21.10 |
grams Zr Ten Cem (40% solids - solvent is VMP naptha) |
| |
0.53 |
grams Na Stearate |
| Then add: |
| |
36.13 |
grams Sun Red pigment 234-0077 |
| |
856.30 |
grams organosol (15.7% solids - solvent is Isopartm G) |
| |
507.57 |
grams Isopartm G |
Example 2
[0068]
| Mill base |
Components |
| Magenta 2 |
Mix Together: |
| |
1.90 |
grams Zr Ten Cem (40% solids - solvent is VMP natha) |
| |
0.10 |
grams Sodium Stearate |
| Then add: |
| |
3.74 |
grams Sun Red pigment 234-0077 |
| |
2.50 |
grams Quindo Magenta pigment |
| |
162.08 |
grams organosol (15.7% solids - solvent is Isopartm G) |
| |
89.69 |
grams Isopartm G |
Example 3
[0069]
| Mill base |
Components |
| Cyan 1 |
Mix together: |
| |
44.6 |
grams Zr Ten Cem (40% solids - solvent is VMP naptha) |
| |
0.28 |
grams Sodium Stearate |
| |
Then add: |
| |
68.37 |
grams G. S. Cyan (Sun Chemical) |
| |
1.3 |
grams carbon black pigment |
| |
2262.53 |
grams organosol (15.4% solids - solvent is Isopartm G) |
| |
1512.13 |
grams Isopartm G |
[0070] For these prepared toner compositions, the best toner replenisher compositions have
similar proportions (as compared to the fresh toner) of all components except for
the metal soap. The concentration allowed for the metal soap in the toner replenisher
(concentrate less metal soap) varies with the particular metal soap used. For the
two preferred metal soaps, Zr and Na, the concentration of metal soap in the replenisher
solids can be 30-80% by total weight of the concentration in the initial (starter)
toner for Zr soap, and 40-100% of total weight of the concentration in the initial
(starter) toner for the Na soap. For purposes of this percentage calculation, the
replenisher is the weight of concentrate without the metal soap being included.
1. A method for operating an electrophotographic system for printing images from image
information during imaging cycles, including:
- storing charge model information representative of photoconductor charge characteristics
as a function of a charge control parameter;
- storing development model information representative of developed toner characteristics
as a function of development control parameters;
- storing toner replenishment model information characterizing toner replenishment
amounts as a function of development control parameters;
- measuring actual photoconductor charge characteristics during a first imaging cycle;
- measuring actual toner characteristics of developed toner from a test patch developed
during the first imaging cycle;
- charging the photoconductor during a subsequent second imaging cycle as a function
of the charge model and the charge characteristics measured during the first imaging
cycle;
- toning the photoconductor during the second imaging cycle as a function of the development
model and the developed toner characteristics measured from toner developed during
the first imaging cycle; and
- replenishing working toner as a function of the replenishment model and the development
control parameters used to control photoconductor toning during the second imaging
cycle.
2. The method of claim 1 further including updating the charge model information after
the first imaging cycle as a function of the charge characteristics measured during
the first imaging cycle.
3. The method of claim 1 further including updating the development model information
after the first imaging cycle as a function of developed toner characteristics measured
during the first imaging cycle.
4. The method of claim 1 further including updating the development model information
as a function of developed toner characteristics previously measured during a plurality
of previous imaging cycles.
5. The method of claim 1 wherein replenishing the working toner includes replenishing
the working toner with replenishment toner having a lower charge control agent to
colorant ratio than the working toner.
6. The method of claim 5 wherein replenishing the working toner includes replenishing
the working toner with replenishment toner having 30 % - 90 % by total weight the
amount of charge control agent as that in the starting toner.
7. The method of claim 1 wherein storing charge model information includes storing information
a) representative of photoconductor charge characteristics (Vc) as a function of a range of charge control parameters (Vg), or b) representative of developed toner characteristics (OD) as a function of a
range of development control parameters (Vd).
8. The method of claim 1 wherein replenishing working toner includes the steps of:
- accessing the replenishment model as a function of the development parameter to.
determine replenishment control information; and
- actuating a replenishment mechanism as a function of the replenishment control information.
9. The method of claim 1 and further including repeating the steps of measuring actual
photoconductor charge characteristics, measuring actual developed toner characteristics,
charging the photoconductor, toning the photoconductor and replenishing working toner,
for third and subsequent imaging cycles.
10. A method for operating an electrophotographic proofing system during a multiple imaging
cycle proofing run for generating color images from image information representative
of a plurality of component colors, including the steps of:
- storing, for each component color, charge model information (Vc) representative of photoconductor charge characteristics as a function of a range
of charge control parameters (Vg);
- storing, for each component color, development model information (OD) representative
of developed toner characteristics as a function of a range of development control
parameters (Vd);
- storing, for each component color, toner replenishment model information representative
of toner replenishment amounts as a function of a range of development control parameters;
- measuring actual photoconductor charge characteristics during the imaging cycles
of the proofing runs;
- measuring the actual toner characteristics from component color test patches developed
during imaging cycles;
- charging the photoconductor during imaging cycles as a function of the charge characteristics
measured during a preceding imaging cycle for the same component color and as a function
of the charge model information for the component color;
- toning the photoconductor during imaging cycles as a function of toner characteristics
measured from test patches during a preceding imaging cycle for the same component
color and as a function of the development model information for the component color;
- replenishing working toner after the imaging cycles as a function of the development
parameters used to tone the photoconductor during the imaging cycle for the same component
color and as a function of the replenishment model information for the component color;
- replenishing working toner with replenishing toner of the same component color having
a lower charge control agent to colorant ratio than the working toner;
- updating the charge model information for each, component color after imaging cycles
for the component color as a function of the measured charge characteristics; and
- updating the development model information for each component color after imaging
cycles for the component color as a function of the measured developed toner characteristics.
11. The method of claim 10 further comprising the step of calibrating the electrophotographic
proofing system by performing the steps of:
- charging a first plurality of test patches on the photoconductor as a function of
a known charge control parameter, each test patch corresponding to a respective one
of the component colors;
- exposing the first plurality of test patches on the photoconductor;
- measuring charge characteristics of the photoconductor at each of the first plurality
of test patches;
- toning each of the first plurality of test patches of the photoconductor with a
first color toner as a function of a known development parameter;
- measuring the characteristic of the first color toner deposited on each test patch
of the first plurality of test patches;
- generating a charge model of the photoconductor for each component color; and
- generating a development model for each component color.
12. The method of claim 11, wherein:
- the step of charging the first plurality of test patches on the photoconductor includes
the step of charging a plurality of test patch sets on the photoconductor, each set
of test patches corresponding to a respective one of the component colors with a range
of different known charge control parameter;
- the step of measuring the charge characteristics at each of the first plurality
of test patches includes the step of measuring the charge characteristics of the photoconductor
at each test patch of each test patch set;
- the step of toning each of the first plurality of test patches includes the step
of toning each test patch of each test patch set with the first color toner as a function
of one or more known development parameters;
- the step of measuring toner characteristic includes the step of measuring the characteristic
of the first color toner deposited on each test patch of each test patch set;
- the step of generating the charge model for each component color includes the step
of generating a charge model representative of measured charge characteristics as
a function of the associated charge control parameters; and
- the step of generating the development model for each color includes the step of
generating a development model representative of measured toner characteristic as
a function of the associated development parameters.
13. An electrophotographic system of the type for printing images during proofing runs,
comprising:
- a photoconductor;
- a charging device for charging the photoconductor as a function of a charge control
parameter;
- an exposing mechanism for exposing the photoconductor as a function of an image;
- a developing mechanism for toning the photoconductor with working toner as a function
of development control parameters;
- a charge sensor for measuring charge characteristics of the photoconductor;
- a toner sensor for measuring characteristics of developed toner;
- a replenishment mechanism for replenishing the working toner with replenishment
toner as a function of a replenishment control signal;
- memory for storing:
- charge model information representative of photoconductor charge characteristics
as a function of a charge control parameter;
- development model information representative of developed toner characteristics
as a function of development control parameters; and
- toner replenishment model information representative of toner replenishment amounts
as a function of development control parameters; and
- a controller coupled to the charging device, exposing mechanism, developing mechanism,
replenishment mechanism, charge sensor, toner sensor and memory for controlling the
system, including
- first control means for causing actual photoconductor charge characteristics to
be measured during the printing runs;
- second control means for causing actual toner characteristics of toner developed
during the printing runs to be measured;
- third control means for generating charge control parameters causing the photoconductor
to be charged during the printing runs as a function of the charge characteristics
measured during a preceding printing run and as a function of the charge model information;
- fourth control means for generating development parameters causing the photoconductor
to be developed during the printing runs as a function of the developed toner characteristics
measured during a preceding printing run and as a function of the development model
information; and
- fifth control means for generating replenishment control signals for causing the
working toner to be replenished after printing runs and as a function of the development
parameters used to control the development mechanism during the printing run as a
function of the replenishment model information.
14. The system of claim 13 wherein said charging device includes a grid responsive to
a grid voltage for charging the photoconductor.
15. The system of claim 14 wherein the controller further includes:
- sixth control means for updating the charge model information as a function of the
measured charge characteristics; and
- seventh control means for updating the development model information as a function
of the measured developed toner characteristics.
16. The system of claim 13 wherein the replenishment mechanism includes means for replenishing
the working toner with replenishment toner having a lower charge control agent to
colorant ratio than the working toner.
1. Verfahren zum Betreiben eines elektrophotographischen Systems zum Drucken von Bildern
aus Bildinformationen während Abbildungszyklen, mit den Schritten:
- Speichern von Ladungsmodellinformationen, die Photoleiterladungseigenschaften als
Funktion eines Ladungssteuerparameters darstellen;
- Speichern von Entwicklungsmodellinformationen, die Eigenschaften entwickelten Toners
als Funktion von Entwicklungssteuerparametern darstellen;
- Speichern von Tonerauffüllmodellinformationen, die Tonerauffüllmengen als Funktion
von Entwicklungssteuerparametern darstellen;
- Messen tatsächlicher Photoleiterladungseigenschaften während eines ersten Abbildungszyklus;
- Messen tatsächlicher Tonereigenschaften entwickelten Toners an einer während des
ersten Abbildungszyklus entwickelten Testmarkierung;
- Laden des Photoleiters während eines nachfolgenden zweiten Abbildungszyklus als
Funktion des Ladungsmodells und der während des ersten Abbildungszyklus gemessenen
Ladungseigenschaften;
- Auftragen von Toner auf den Photoleiter während des zweiten Abbildungszyklus als
Funktion des Entwicklungsmodells und der während des ersten Abbildungszyklus an entwickeltem
Toner gemessenen Eigenschaften entwickelten Toners; und
- Auffüllen des Betriebstoners als Funktion des Auffüllmodells und des zur Steuerung
des Auftragens von Toner auf den Photoleiter während des zweiten Abbildungszyklus
verwendeten Entwicklungssteuerparameters.
2. Verfahren nach Anspruch 1, ferner mit dem Aktualisieren der Ladungsmodellinformationen
nach dem ersten Abbildungszyklus als Funktion der während des ersten Abbildungszyklus
gemessenen Ladungseigenschaften.
3. Verfahren nach Anspruch 1, ferner mit dem Aktualisieren der Entwicklungsmodellinformationen
nach dem ersten Abbildungszyklus als Funktion der während des ersten Abbildungszyklus
gemessenen Eigenschaften entwickelten Toners.
4. Verfahren nach Anspruch 1, ferner mit dem Aktualisieren der Entwicklungsmodellinformationen
als Funktion der zuvor während mehrerer vorheriger Abbildungszyklen gemessenen Eigenschaften
entwickelten Toners.
5. Verfahren nach Anspruch 1, wobei das Auffüllen des Betriebstoners es umfaßt, den Betriebstoner
mit Auffülltoner aufzufüllen, der ein geringeres Verhältnis von Ladungssteuerungsmittel
zu Färbemittel als der Betriebstoner aufweist.
6. Verfahren nach Anspruch 5, wobei das Auffüllen des Betriebstoners es umfaßt, den Betriebstoner
mit Auffülltoner aufzufüllen, der 30% - 90% des Gesamtgewichts der Menge des Ladungssteuerungsmittels
des anfänglichen Toners aufweist.
7. Verfahren nach Anspruch 1, wobei das Speichern der Ladungsmodellinformationen es umfaßt,
Informationen zu speichern, die a) Photoleiterladungseigenschaften (Vc) als Funktion
einer Reihe von Ladungssteuerparametern (Vg) darstellen, oder b) Eigenschaften (OD)
entwickelten Toners als Funktion einer Reihe von Entwicklungssteuerparametern (Vd)
darstellen.
8. Verfahren nach Anspruch 1, wobei das Auffüllen des Betriebstoners folgende Schritte
umfaßt:
- Zugreifen auf das Auffüllmodell als Funktion der Entwicklungsparameter zum Bestimmen
von Auffüllsteuerinformationen; und
- Aktivieren des Auffüllmodells als Funktion der Auffüllsteuerinformationen.
9. Verfahren nach Anspruch 1, ferner mit den Schritten des Wiederholens des Messens tatsächlicher
Photoleiterladungseigenschaften, des Messens tatsächlicher Eigenschaften entwickelten
Toners, des Ladens des Photoleiters, des Auftragens von Toner auf den Photoleiter
und des Auffüllens des Betriebstoners für dritte und nachfolgende Abbildungszyklen.
10. Verfahren zum Betreiben eines elektrophotographischen Proofing-Systems während eines
Mehrfachabbildungszyklus-Proofing-Durchlaufs zum Erzeugen von Farbbildern von Bildinformationen,
die mehrere Farbkomponenten darstellen, mit den Schritten:
- Speichern von Ladungsmodellinformationen (Vc) für jede Farbkomponente, die Photoleiterladungseigenschaften
als Funktion einer Reihe von Ladungssteuerparametern (Vg) darstellen;
- Speichern von Entwicklungsmodellinformationen (OD) für jede Farbkomponente, die
Eigenschaften entwickelten Toners als Funktion einer Reihe von Entwicklungssteuerparametern
(Vd) darstellen;
- Speichern von Tonerauffüllmodellinformationen für jede Farbkomponente, die Tonerauffüllmengen
als Funktion einer Reihe von Entwicklungssteuerparametern darstellen;
- Messen tatsächlicher Photoleiterladungseigenschaften während der Abbildungszyklen
der Proofing-Durchläufe;
- Messen der tatsächlichen Tonereigenschaften aus während Abbildungszyklen entwikkelten
Komponentfarbtestmarkierungen;
- Laden des Photoleiters während Abbildungszyklen als Funktion der während eines vorhergehenden
Abbildungszyklus gemessenen Ladungseigenschaften für dieselbe Farbkomponente und als
Funktion der Ladungsmodellinformationen für die Farbkomponente;
- Auftragen von Toner auf den Photoleiter während Abbildungszyklen als Funktion der
in einem vorhergehenden Abbildungszyklus gemessenen Tonereigenschaften für dieselbe
Farbkomponente und als Funktion der Entwicklungsmodellinformationen für die Farbkomponente;
- Auffüllen des Betriebstoners nach den Abbildungszyklen als Funktion der während
des Abbildungszyklus zum Auftragen von Toner auf den Photoleiter verwendeten Entwicklungsparameter
und als Funktion der Auffüllmodellinformationen für die Farbkomponente;
- Auffüllen des Betriebstoners mit Auffülltoner derselben Farbkomponente, der ein
geringeres Verhältnis von Ladungssteuerungsmittel zu Färbemittel als der Betriebstoner
aufweist;
- Aktualisieren der Ladungsmodellinformationen für jede Farbkomponente nach Abbildungszyklen
für die Farbkomponente als Funktion der gemessenen Ladungseigenschaften; und
- Aktualisieren der Entwicklungsmodellinformationen für jede Farbkomponente nach Abbildungszyklen
für die Farbkomponente als Funktion der gemessenen Eigenschaften entwickelten Toners.
11. Verfahren nach Anspruch 10, ferner mit dem Schritt des Kalibrierens des elektrophotographischen
Proofing-Systems durch Durchführen folgender Schritte:
- Laden mehrerer erster Testmarkierungen auf den Photoleiter als Funktion eines bekannten
Ladungssteuerparameters, wobei jede Testmarkierung einer entsprechenden Farbkomponente
entspricht;
- Belichten der ersten mehreren Testmarkierungen auf dem Photo leiter;
- Messen von Ladungseigenschaften des Photoleiters an jeder der mehreren ersten Testmarkierungen;
- Auftragen von Toner auf jede der mehreren ersten Testmarkierungen des Photoleiters
mit einem ersten Farbtoner als Funktion eines bekannten Entwicklungsparameters;
- Messen der Eigenschaften des aufjeder Testmarkierung der mehreren ersten Testmarkierungen
abgelagerten ersten Farbtoners;
- Erzeugen eines Ladungsmodells des Photoleiters für jede Farbkomponente; und
- Erzeugen eines Entwicklungsmodells für jede Farbkomponente.
12. Verfahren nach Anspruch 11, wobei:
- der Schritt des Ladens der mehreren ersten Testmarkierungen auf den Photoleiter
den Schritt des Ladens mehrerer Testmarkierungsgruppen auf den Photoleiter umfaßt,
wobei jede Gruppe von Testmarkierungen einer jeweiligen Farbkomponente mit einer Reihe
verschiedener Ladungssteuerparameter entspricht;
- der Schritt des Messens der Ladungseigenschaften an jeder der ersten mehreren Testmarkierungen
den Schritt des Messens der Ladungseigenschaften des Photoleiters an jeder Testmarkierung
der Testmarkierungsgruppe umfaßt;
- der Schritt des Auftragens von Toner auf jede der ersten mehreren Testmarkierungen
den Schritt des Auftragens von Toner auf jede Testmarkierung jeder Testmarkierungsgruppe
mit dem ersten Farbtoner als Funktion eines oder mehrerer bekannter Entwicklungsparameter
umfaßt;
- der Schritt des Messens von Tonereigenschaften den Schritt des Messens der Eigenschaften
des auf jeder Testmarkierung der Testmarkierungsgruppe abgelagerten Farbtoners umfaßt;
- der Schritt des Erzeugens des Ladungsmodells für jede Farbkomponente den Schritt
des Erzeugens eines Ladungsmodells umfaßt, das gemessene Ladungseigenschaften als
Funktion der zugehörigen Ladungssteuerparameter darstellt; und
- der Schritt des Erzeugens des Entwicklungsmodells für jede Farbe den Schritt des
Erzeugens eines Entwicklungsmodells umfaßt, das gemessene Tonereigenschaften als Funktion
der zugehörigen Entwicklungsparameter darstellt.
13. Elektrophotographisches System des Typs zum Drucken von Bildern während Proofing-Durchläufen,
mit:
- einem Photoleiter;
- einer Ladungsvorrichtung zum Laden des Photoleiters als Funktion eines Ladungssteuerparameters;
- einem Belichtungsmechanismus zum Belichten des Photoleiters als Funktion eines Bildes;
- einem Entwicklungsmechanismus zum Auftragen von Betriebstoner auf den Photoleiter
als Funktion von Entwicklungssteuerparametern;
- einem Ladungssensor zum Messen von Ladungseigenschaften des Photoleiters;
- einem Tonersensor zum Messen von Eigenschaften entwickelten Toners;
- einem Auffüllmechanismus zum Auffüllen des Betriebstoners mit Auffülltoner als Funktion
eines Auffüllsteuersignals;
- einem Speicher zum Speichern von:
- Ladungsmodellinformationen, die Photoleiterladungseigenschaften als Funktion eines
Ladungssteuerparameters darstellen;
- Entwicklungsmodellinformationen, die entwickelte Tonereigenschaften als Funktion
eines Entwicklungssteuerparameters darstellen; und
- Tonerauffüllmodellinformationen, die Tonerauffüllmengen als Funktion von Entwicklungssteuerparametern
darstellen; und
- einer mit der Ladungsvorrichtung, dem Belichtungsmechanismus, dem Entwicklungsmechanismus,
dem Auffüllmechanismus, dem Ladungssensor, dem Tonersensor und dem Speicher verbundenen
Steuervorrichtung zum Steuern des Systems, mit:
- einer ersten Steuereinrichtung, die bewirkt, daß tatsächliche Photoleiterladungseigenschaften
während der Druckdurchläufe gemessen werden;
- einer zweiten Steuereinrichtung, die bewirkt, daß tatsächliche Tonereigenschaften
des während der Druckdurchläufe entwickelten Toners gemessen werden;
- einer dritten Steuereinrichtung zum Erzeugen von Ladungssteuerparametern, die bewirken,
daß der Photoleiter während der Druckdurchläufe als Funktion der während eines vorhergehenden
Druckdurchlaufs gemessenen Ladungseigenschaften und als Funktion der Ladungsmodellinformationen
geladen wird;
- einer vierten Steuereinrichtung zum Erzeugen von Entwicklungsparametern, die bewirken,
daß der Photoleiter während der Druckdurchläufe als Funktion der während eines vorhergehenden
Druckdurchlaufs gemessenen Eigenschaften eines entwickelten Toners und als Funktion
der Entwicklungsmodellinformationen entwikkelt wird; und
- einer fünften Steuereinrichtung zum Erzeugen von Auffüllsteuersignalen, die bewirken,
daß der Betriebstoner nach Druckdurchläufen und als Funktion der Entwicklungsparameter,
die zum Steuern des Entwicklungsmechanismus während des Druckdurchlaufs als Funktion
der Auffüllmodellinformationen verwendet werden, aufgefüllt wird.
14. System nach Anspruch 13, wobei die Ladungsvorrichtung ein Gitter aufweist, das zum
Laden des Photoleiters auf eine Gitterspannung reagiert.
15. System nach Anspruch 14, wobei die Steuervorrichtung ferner folgendes aufweist:
- eine sechste Steuereinrichtung zum Aktualisieren der Ladungsmodellinformationen
als Funktion der gemessenen Ladungseigenschaften; und
- eine siebte Steuereinrichtung zum Aktualisieren der Entwicklungsmodellinformationen
als Funktion der gemessenen Eigenschaften des entwickelten Toners.
16. System nach Anspruch 13, wobei der Auffüllmechanismus eine Einrichtung zum Auffüllen
des Betriebstoners mit Auffülltoner mit einem geringeren Verhältnis von Ladungssteuerungsmittel
zu Färbemittel als der Betriebstoner aufweist.
1. Un procédé de mise en oeuvre d'un système électrophotographique pour imprimer des
images à partir d'une information d'image pendant des cycles d'imagerie, comprenant
les étapes consistant à :
■ mémoriser une information de modèle de charge, représentative de caractéristiques
de charge d'un photoconducteur en fonction de paramètres de commande de charge ;
■ mémoriser une information de modèle de développement, représentative de caractéristiques
de toner développé en fonction de paramètres de commande de développement ;
■ mémoriser une information de modèle de réapprovisionnement en toner qui caractérise
des quantités de réapprovisionnement en toner en fonction de paramètres de commande
de développement ;
■ mesurer des caractéristiques réelles de charge d'un photoconducteur pendant un premier
cycle d'imagerie ;
■ mesurer des caractéristiques réelles de toner d'un toner développé à partir d'une
pastille de test développée pendant le premier cycle d'imagerie ;
■ charger le photoconducteur pendant un deuxième cycle ultérieur d'imagerie en fonction
du modèle de charge et des caractéristiques de charge mesurées pendant le premier
cycle d'imagerie ;
■ appliquer du toner au photoconducteur pendant le deuxième cycle d'imagerie en fonction
du modèle de développement et des caractéristiques du toner développé, mesurées à
partir du toner développé pendant le premier cycle d'imagerie ; et
■ réapprovisionner en toner de travail en fonction du modèle de réapprovisionnement
et des paramètres de commande de développement utilisés pour commander l'application
de tonner au photoconducteur pendant le deuxième cycle d'imagerie.
2. Le procédé selon la revendication 1 qui inclut en outre une mise à jour de l'information
de modèle de charge après le premier cycle d'imagerie en fonction des caractéristiques
de charge, mesurées pendant le premier cycle d'imagerie.
3. Le procédé selon la revendication 1 qui inclut en outre une mise à jour de l'information
de modèle de développement après le premier cycle d'imagerie en fonction de caractéristiques
de toner développé, mesurées pendant le premier cycle d'imagerie.
4. Le procédé selon la revendication 1 qui inclut en outre une mise à jour de l'information
de modèle de développement en fonction de caractéristiques de toner développé, mesurées
précédemment pendant une série de cycles précédents d'imagerie.
5. Le procédé selon la revendication 1 dans lequel le réapprovisionnement en toner de
travail inclut un réapprovisionnement du toner de travail au moyen d'un toner de réapprovisionnement
dans lequel le rapport entre l'agent de commande de charge et le colorant est plus
faible que dans le toner de travail.
6. Le procédé selon la revendication 5 dans lequel un réapprovisionnement en toner de
travail inclut un réapprovisionnement du toner de travail au moyen d'un toner de réapprovisionnement
dans lequel la proportion d'agent de commande de charge est de 30% à 90% en poids
total de celle du toner d'origine.
7. Le procédé selon la revendication 1 dans lequel une mémorisation d'information de
modèle de charge inclut une mémorisation d'une information a) représentative de caractéristiques
(Vc) de charge de photoconducteur en fonction d'une plage de paramètres (Vg) de commande de charge, ou b) représentative de caractéristiques (OD) de toner développé
en fonction d'une plage de paramètres (Vd) de commande de développement.
8. Le procédé selon la revendication 1 dans lequel un réapprovisionnement en toner de
travail inclut les étapes consistant à :
■ accéder au modèle de réapprovisionnement en fonction du paramètre de développement
afin de déterminer une information de commande de réapprovisionnement ; et
■ actionner un mécanisme de réapprovisionnement en fonction de l'information de commande
de réapprovisionnement.
9. Le procédé selon la revendication 1 qui inclut en outre une répétition des étapes
consistant à mesurer des caractéristiques réelles de charge du photoconducteur, à
mesurer des caractéristiques réelles de toner développé, à charger le photoconducteur,
à appliquer le toner sur le photoconducteur et à réapprovisionner en toner de travail,
pendant un troisième cycle d'imagerie et d'autres cycles ultérieurs.
10. Un procédé de mise en oeuvre d'un systèmes d'épreuves électrophotographique pendant
un tirage d'épreuves à multiples cycles d'imagerie pour engendrer des images en couleurs
à partir d'une information d'image représentative d'une série de couleurs composantes,
incluant les étapes consistant à :
■ mémoriser, pour chaque couleur composante, une information (Vc) de modèle de charge représentative de caractéristiques de charge d'un photoconducteur
en fonction d'une plage de paramètres (Vg) de commande de charge ;
■ mémoriser, pour chaque couleur composante, une information (OD) de modèle de développement,
représentative de caractéristiques de toner développé en fonction d'une plage de paramètres
(Vd) de commande de développement ;
■ mémoriser, pour chaque couleur composante, une information de modèle de réapprovisionnement
en toner représentative de quantités de réapprovisionnement en toner en fonction d'une
plage de paramètres de commande de développement ;
■ mesurer des caractéristiques réelles de charge d'un photoconducteur pendant les
cycles d'imagerie des tirages d'épreuve ;
■ mesurer les caractéristiques réelles de toner à partir de pastilles de test de couleurs
composantes, développées pendant des cycles d'imagerie ;
■ charger le photoconducteur pendant des cycles d'imagerie en fonction des caractéristiques
de charge mesurées pendant un cycle d'imagerie précédent pour la même couleur composante
et en fonction de l'information de modèle de charge pour la couleur composante ;
■ appliquer du toner au photoconducteur pendant des cycles d'imagerie en fonction
de caractéristiques du toner, mesurées à partir de pastilles de test pendant un cycle
d'imagerie précédent pour la même couleur composante, et en fonction de l'information
de modèle de développement pour la couleur composante ;
■ réapprovisionner le toner de travail après les cycles d'imagerie en fonction des
paramètres de développement utilisés pour appliquer du toner au photoconducteur pendant
le cycle d'imagerie pour la même couleur composante, et en fonction de l'information
de modèle de réapprovisionnement pour la couleur composante ;
■ réapprovisionner le toner de travail au moyen d'un toner de réapprovisionnement
de la même couleur composante dans lequel le rapport entre l'agent de commande de
charge et le colorant est moindre que dans le toner de travail.
■ mettre à jour l'information de modèle de charge pour chaque couleur composante après
des cycles d'imagerie pour la couleur composante en fonction des caractéristiques
mesurées de charge ; et
■ mettre à jour l'information de modèle de développement pour chaque couleur composante
après des cycles d'imagerie pour la couleur composante en fonction des caractéristiques
mesurées du toner développé.
11. Le procédé selon la revendication 10 qui comprend en outre l'étape consistant à calibrer
le système d'épreuves électrophotographique en mettant en oeuvre les étapes consistant
à :
■ charger une première série de pastilles de test sur le photoconducteur en fonction
d'un paramètre connu de commande de charge, chaque pastille de test correspondant
à une couleur respective parmi les couleurs composantes ;
■ exposer la première série de pastilles de test sur le photoconducteur ;
■ mesurer des caractéristiques de charge du photoconducteur à chacune des pastilles
de test de première série ;
■ appliquer un toner à chacune des pastilles de test du photoconducteur de la première
série au moyen d'un premier toner de couleur en fonction d'un paramètre connu de développement
;
■ mesurer la caractéristique du premier toner de couleur déposé sur chaque pastille
de test de la première série de pastilles de test ;
■ engendrer un modèle de charge du photoconducteur pour chaque couleur composante
; et
■ engendrer un modèle de développement pour chaque couleur composante.
12. Le procédé selon la revendication 11, dans lequel :
■ l'étape de charge de la première série de pastilles de test sur le photoconducteur
inclut l'étape consistant à charger une série d'ensembles de pastilles de test sur
le photoconducteur, chaque ensemble de pastilles de test correspondant à une couleur
respective parmi les couleurs composantes pour une plage de différents paramètres
connus de commande de charge ;
■ l'étape de mesure des caractéristiques de charge à chacune des pastilles de test
de la première série inclut l'étape consistant à mesurer les caractéristiques de charge
du photoconducteur à chaque pastille de test de chaque ensemble de pastilles de test
;
■ l'étape d'application de toner à chacune des pastilles de test de la première série
inclut l'étape consistant à appliquer du toner à chaque pastille de test de chaque
ensemble de pastilles de test au moyen du premier toner de couleur en fonction d'un
ou plusieurs paramètres connus de développement ;
■ l'étape de mesure de caractéristiques de toner inclut l'étape consistant à mesurer
les caractéristiques du premier toner de couleur déposé sur chaque pastille de test
de chaque ensemble de pastilles de test ;
■ l'étape de génération du modèle de charge pour chaque couleur composante inclut
l'étape consistant à engendrer un modèle de charge représentatif de caractéristiques
mesurées de charge en fonction des paramètres associés de commande de charge ; et
■ l'étape de génération du modèle de développement pour chaque couleur inclut l'étape
consistant à engendrer un modèle de développement représentatif des caractéristiques
mesurées de toner en fonction des paramètres associés de développement.
13. Un système électrophotographique du type destiné à imprimer des images pendant des
tirages d'épreuve, comprenant :
■ un photoconducteur,
■ un dispositif de chargement pour charger le photoconducteur en fonction d'un paramètre
de commande de charge ;
■ un mécanisme d'exposition pour exposer le photoconducteur en fonction d'une image
;
■ un mécanisme de développement pour appliquer un toner de travail au photoconducteur
en fonction de paramètres de commande de développement ;
■ un capteur de charge pour mesurer des caractéristiques de charge du photoconducteur
;
■ un capteur de toner pour mesurer des caractéristiques de toner développé ;
■ un mécanisme de réapprovisionnement pour le réapprovisionnement du toner de travail
à l'aide d'un toner de réapprovisionnement en fonction d'un signal de commande de
réapprovisionnement ;
■ une mémoire destinée à mémoriser :
■ une information de modèle de charge représentative de caractéristiques de charge
de photoconducteur en fonction de paramètres de commande de charge ;
■ une information de modèle de développement représentative de caractéristiques de
toner développé en fonction de paramètres de commande de développement ; et
■ une information de modèle de réapprovisionnement en toner représentative de quantités
de réapprovisionnement en toner en fonction de paramètres de commande de développement
; et
■ un dispositif de commande couplé au dispositif de charge, au mécanisme d'exposition,
au mécanisme de développement, au mécanisme de réapprovisionnement, au capteur de
charge, au capteur de toner et à la mémoire pour commander le système, incluant :
■ un premier moyen de commande pour amener des caractéristiques réelles de charge
de photoconducteur à être mesurées pendant les tirages d'impression ;
■ un deuxième moyen de commande pour amener les caractéristiques réelles de toner,
d'un toner développé pendant les tirages d'impression, à être mesurées ;
■ un troisième moyen de commande pour engendrer des paramètres de commande de charge
qui amènent le photoconducteur à être chargé pendant les tirages d'impression en fonction
des caractéristiques de charge mesurées pendant un tirage d'impression précédent et
en fonction de l'information de modèle de charge ;
■ un quatrième moyen de commande pour engendrer des paramètres de développement qui
amènent le photoconducteur à être développé pendant les tirages d'impression en fonction
des caractéristiques du toner développé mesurées pendant un tirage d'impression précédent
et en fonction de l'information de modèle de développement ; et
■ un cinquième moyen de commande pour engendrer des signaux de commande de réapprovisionnement
pour provoquer un réapprovisionnement du toner de travail après des tirages d'impression
et en fonction des paramètres de développement utilisés pour commander le mécanisme
de développement pendant le tirage d'impression en fonction de l'information de modèle
de réapprovisionnement.
14. Le système selon la revendication 13 dans lequel ledit dispositif de charge inclut
une grille qui répond à une tension de grille pour charger le photoconducteur.
15. Le système selon la revendication 14 dans lequel le dispositif de commande inclut
en outre :
■ un sixième moyen de commande pour mettre à jour l'information de modèle de charge
en fonction des caractéristiques mesurées de charge ; et
■ un septième moyen de commande pour mettre à jour l'information de modèle de développement
en fonction des caractéristiques mesurées de toner développé.
16. Le système selon la revendication 13 dans lequel le mécanisme de réapprovisionnement
inclut un moyen de réapprovisionnement du toner de travail à l'aide d'un toner de
réapprovisionnement dans lequel le rapport entre l'agent de commande de charge et
le colorant est moindre que dans le toner de travail.