[0001] The invention relates to a method of producing an electrostatographic color proof
having substantially the same appearance as color prints printed by offset or gravure
processes with regard to transparency and gloss of image areas relative to image-free
areas, wherein said electrostatographic color proof comprises a receptor sheet containing
on its surface image-free areas and image areas, said image areas consisting of color
deposits in the form of at least one color layer and wherein said color deposits are
first formed by electroscopic marking particles of appropriate color on an electrostatographic
recording member and then transferred therefrom onto said receptor sheet, followed
by fixation of said color deposits on said recording member.
[0002] It is known to produce color prints by electrophotographic processes, such prints
being commonly used as lithographic or gravure pre-press proofs, containing in general
four colors, such as yellow, magenta, cyan and black. Such pre-press proofing processes
are disclosed for instance in United States Patent Nos. 3,337,340; 3,419,411; and
3,862,848.
[0003] It is customary to produce such electrophotographic pre-press proofs by charging
a photoconductive recording member followed by exposure through a separation transparency
corresponding to one color, followed by inregister transfer of the color toned image
deposit to a receiving member surface, such as paper. These process steps are then
repeated with separation transparencies of the other three or more colors and appropriate
color toners to produce a multicolor print as required.
[0004] After all of the required color toner deposits have been transferred to the receiving
member paper sheet, it is coated with a clear resin layer to transparentize the color
toner deposits and fuse them to the paper sheet. Such coating may be carried out by
spraying, curtain, roller or dip coating and the like.
[0005] Said known processes have as a disadvantage that due to the overall glazing technique
not only the appearance of the image parts is imparted but also the appearance of
the image free parts.
[0006] In the image-parts further the dot-gain is increased, as will be discussed hereinafter.
The present invention has as an objective to provide a method of the type described
in which the said disadvantages have been eliminated to which end said method is characterized
by the steps of:
- providing electroscopic marking particles of appropriate color consisting of colorant
and a polymeric binder for same to form said color deposit on said electrostatographic
recording member, said marking particles being dispersed in a carrier liquid and said
binder being insoluble in said carrier liquid;
- applying a solvent to the surface of said receptor sheet, after transfer of said deposits
of all appropriate colors from said electrostatographic recording member onto the
receptor sheet, said solvent being capable of solvating said binder in said electroscopic
marking particles forming said color deposit thereon thereby to transparentize and
increase the gloss of said color deposit as well as to render same adherent to said
receptor sheet surface without affecting the gloss thereof in the image-free areas;
and
- removing said solvent from said receptor sheet.
[0007] The primary purpose of pre-press proofs is to assess color balance and strength which
can be expected from the final press run and accordingly to correct the separation
transparencies before the printing plates are made therefrom. In many instances, it
is also required to produce so-called customer proofs for approval of subject, composition
and general appearance of the print prior to press run. Thus, it is essential that
the pre-press proof should have the same appearance as the press print, that is to
say in addition to matching the colors and dot gain of the press print, the pre-press
proof should be on the same paper as the press print, the image gloss should be identical
to that of the image produced on the press with printing inks and the paper surface
in the image-free areas should remain unaffected.
[0008] Color image deposits formed on paper by the previously described electrophotographic
process differ from color image deposits formed by printing inks in that the latter
contains very much more binder material of the resinous or varnish type than the deposits
formed by liquid toners in electrophotography; typically printing inks contain about
73% by weight of binder material, whereas prior art liquid toners contain only about
33% or less binder material by weight. Such relatively large quantity of varnish or
resin in the printing ink deposit firstly fuses the image deposit to the paper and
secondly transparentizes the color ink layers, which is necessary for the underlying
colors to become visible and thereby to give the desired color combination effect.
[0009] Thus, the previously referred to step of glazing the pre-press proof prepared by
the electrophotographic process is essential firstly to fuse the image deposits to
the paper and secondly to saturate the image deposits with resin to transparentize
them to the extent where their appearance with regards color combination effect and
gloss are the same as that of printing ink deposits.
[0010] Prior art glazing processes have three major disadvantages. Firstly, the application
of a resin coating normally alters considerably the surface appearance of the paper
sheet by imparting additional gloss thereto and/or even rendering transparent the
paper itself particularly in those instances where it comprises publication type stock
such as newsprint. Secondly, the resin layer increases the apparent optical density
of color toner deposits, the extent of such increase being different for different
colors, and also varying in accordance with the uniformity of the overcoated resin
layer. Thirdly, as we have now found, the resin coating in print-free areas of the
paper surface very considerably increases dot gain.
[0011] The term "dot gain" is well known in the graphic arts. For a complete description
of this phenomenon, reference should be made for instance to the article "The Effect
of the Spread-Function of Paper on Half-Tone Reproduction," by J.A.C. Yule et al.,
TAPPI/July 1967, Vol. 50, No. 7. For better understanding of this invention a brief
description of the dot gain phenomenon will now be given in relation to offset printing
employing half-tone imagery, as is well known in the art.
[0012] A given percentage dot area of the film transparency employed to produce a printing
plate can be exactly reproduced on the printed sheet provided the settings of the
press, blanket pressure, ink/water balance, etc. are correct. It is found however,
that even in such instances where no microscopically measurable dot distortion or
spread occurs on the press, the density of the printed dot area is higher than would
be expected by calculating the percentage dot area on the basis of the solid ink density
on the printed sheet, that is to say, the measured density of the printed dot area
of a given percentage is always equal to the density of a higher percentage dot area
calculated on the basis of solid ink density. Such apparent increase in percentage
dot over a given percentage dot in a known area is called dot gain.
[0013] It has been found that the extent of such dot gain depends mainly on the optical
properties of the paper. The dots produce a shadow in the paper, which, the deeper
it is in the paper, the more diffused and blurred it becomes. The more incident light
between the dots is permitted by the optical nature of the paper to penetrate into
the paper and scatter sideways towards and under the dot shadows, and the greater
the depth of light penetration and hence higher incidence of diffused and blurred
shadows, the more of the incident light will be absorbed and consequently less of
the incident light will re-emerge from the dot-free areas and be reflected therefrom.
The thus caused absorption of incident light results in a higher than expected density
measurement of a given percentage dot area. Highly scattering paper surfaces, where
the incident light is immediately reflected off the surface produce therefore less
dot gain than papers having a relatively transparent surface to incident light, such
as uncoated papers with exposed fibers or highly reflective or glossy papers.
[0014] The half-tone screen ruling also affects dot gain to some extent because the above
described effect of dot shadows on the incident light is amplified as the number of
dots per unit area increases: thus, finer screen rulings produce higher dot gain than
coarser screen rulings.
[0015] In 50% dot area a dot gain of 12 to 15% caused by the above factors on coated good
quality paper is the accepted standard in normal printing. Higher dot gain indicates
poor printing conditions and is generally unacceptable because it causes distortion
of half-tone balance in the print.
[0016] It will be thus realized that the above referred to prior art methods of glazing
electrophotographic pre press proofs resulting in changes to the surface appearance
of the paper, density increase of color deposits depending on glaze uniformity and
increase in dot gain introduce very significant differences between such pre-press
proofs and the printed paper, which limits considerably the usefulness of such proofs
for the purposes of transparency correction approval.
[0017] Accordingly the invention provides an electrostatographic color proof characterized
by a receptor member 18 containing on at least one side thereof, image areas 12 formed
by electroscopic marking particles 14 consisting of colorants 16 and polymeric binder
transferred to the surface of said receptor member 18 and affixed thereto by solvating
said binder and image free areas 22 formed by the surface of said receptor member
18, the appearance and gloss thereof being unaffected by the transfer and affixing
of said electroscopic marking particles to the image areas 12.
[0018] With respect to the invention reference is made to DE-A-2923165.
[0019] In said publication is described a process for fixing an image constituted by dry
electroscopic marking particles onto a substrate to which said image has been transferred.
The fixing is carried out by spraying a solvent to the image and drying the image
subsequently.
[0020] Said known method does not concern the fixation of a multi color image of a color-proof
and is silent of using a liquid toner whereby the electroscopic marking particles
are dispersed in a carrier liquid in which the binder of said particles is insoluble.
[0021] Neither any measure is described to control the dot-gain in the image upon fixation;
in the present invention the fixation results in no appreciable dot gain.
[0022] Figure 1 is a diagrammatic sectional view taken through a color proof formed in accordance
with the method of the invention.
[0023] Applicant has now found that the color toner deposits on electrophotographic pre-press
proofs of the type referred to in the foregoing are exact reproductions of known percentage
dots and before glazing or resin coating surprisingly do not show any increase in
dot gain whatsoever. Applicant has transferred such color toner deposits onto a variety
of printing stocks and in all cases before glazing, the dot gain has been found to
be appropriate to the type of paper and to be acceptable in accordance with printing
standards as described in the foregoing.
[0024] When the thus produced prints have been overall glazed or resin coated to various
degrees of gloss and in all cases that dot gain has significantly increased and that
such increase in dot gain is proportional, although not linearly, to increase in gloss
level.
[0025] Subsequently, various types of printing paper have been glazed to progressively increasing
gloss levels and transferred color toner deposits onto such glazed papers. Again,
exact reproduction of known percentage dots were found, however, in this instance
also found was surprisingly significant dot gain increase, substantially of the same
extent as in the preceding experiment, that is, in proportion, although not linearly,
to increase in gloss level. It should be noted that in this case no final glaze was
applied to the prints.
[0026] From these experiments it can be concluded that electrophotographic pre-press type
color toner deposits per se produce correct and acceptable dot gain, but show significant
increase in dot gain upon overall glazing of the printing paper, irrespective whether
such overall glazing is applied prior or after the transfer of such toner deposits
onto the paper.
[0027] It has been stated in the foregoing that electrophotographic pre-press proofs must
be glazed for image fusion and transparentization because prior art color toners for
proof making contain very much less binder or resinous material in relation to pigment
than conventional printing inks. The reason for this is that in color toners it is
necessary to maintain the pigments in very finely dispersed state in order to produce
correct hues without excessive greyness, but it is also necessary to produce high
density images in many instances on photoconductors having relatively low surface
voltages, which means that such color toners have to be made more sensitive electrophoretically
than for instance copier type toners which produce high image densities generally
by having weakly charged relatively large toner particles. While it is readily possible
to incorporate into such large toner particles a high proportion of binder or resinous
material for fixing purposes, prior art color toners for pre-press proofing contain
only a small proportion of binder or resinous material, usually just sufficient to
act as a dispersing agent, otherwise their electrophorectic sensitivity is significantly
reduced.
[0028] Novel methods of preparing liquid color toners for pre-press proofing with novel
materials and composition of matter have been found whereby the binder or resinous
content in relation to the pigment can be increased to the correct level required
for fixing and transparentizing the color image deposits without reducing the electrophoretic
sensitivity of such toners. Pre-press proofs produced with toners of this invention
do not require therefore overall glazing. Instead of glazing, the pre-press proof
is exposed for a short time to a solvent for the binder or polymeric material contained
within the color image deposits themselves whereby such polymeric material is temporarily
dissolved or solvated or softened to a degree where it forms a substantially continuous
phase or film within such color image deposits and effects thereby fixing and transparentization
thereof upon evaporation of said solvent, that is upon drying. Thus pre-press proofs
produced in this manner with the toners of this invention exhibit no increase in dot
gain and the surface appearance of the paper is not affected in any way.
[0029] The toners of the present invention differ markedly from prior art color toners in
that the means for glazing is combined with the depositing particle by way of a polymer
particle which is insoluble in the selected carrier liquid for the toner and which
co-deposits with the color or pigment containing particles. By the toner system of
this invention very fine particles of the electrophoretic sensitivity required to
deposit on low voltage photoconductors can be prepared and such toner deposits can
be transferred to paper or other receptor materials with sufficient polymeric material
to effect fixing to the substrate, to transparentize the deposits and to develop image
gloss comparable to conventionally printed matter when such deposits are exposed to
a solvent selected to dissolve or solvate the particular polymer employed.
[0030] The types of materials useful as polymers in accordance with this invention depend
on the properties of the carrier liquid selected for the color toners, and more particularly
they depend on the solvent power of the carrier liquid. As is well known in the art
the range of isoparaffinic hydrocarbons called Isopars™ manufactured by the Exxon
Corporation and similar materials which are safe in handling, have low toxicity, low
aromatics content and high volume resistivity are suitable carrier liquids. Carrier
liquids in this category are characterized by a quite low solvent power such as 26
to 28 KB, for which suitable polymers are for instance ketone formadehyde condensates,
epoxy resins, polyester resins, vinyl resins, styrene resins, hydrocarbon resins and
the like, such resins being selected to be insoluble in such carrier liquids, and
generally to have melting points within the range of 50 to 150°C.
[0031] The preferred method of forming toner particles for use with this invention is firstly
to disintegrate the selected polymer into particles of appropriate size by emulsifying
the molten polymer, followed by cooling the emulsion to obtain discrete polymer particles.
The coloring matter can be incorporated with the polymer particles before or during
emulsification or can be admixed thereafter with the polymer particles.
[0032] Preparation of polymer emulsions is carried out by heating the polymer to a temperature
above its melting point and introducing the molten polymer into a dispersant which
also is heated to a temperature above the melting point of the polymer such dispersant
being selected to be a non-solvent for the polymer. The mixture is charged into a
high shear mixer such as a Waring blender or Ross Mixer or the like, together with
a surfactant which is substantive to the polymer and the dispersant. The dispersant
may be a high boiling point isoparaffinic hydrocarbon such as Isopar™ M by Exxon,
or a paraffin oil or other similar high boiling point non-polar liquid. The surfactant,
as previously stated, is selected to be substantive to the polymer and the dispersant,
and may be for instance an alkylated polyvinyl pyrrolidone, or other preferably non-polar
suspension and grinding aid conforming to the previously stated requirements.
[0033] The above described composition is mixed in the high shear mixer until the polymer
particle size has been reduced to the required fineness, normally 2-5 microns, and
the mixture is cooled to solidify the polymer particles and form a stable emulsion
of such particles in the dispersant. Colorants, such as pigments or dyes, may be melt
blended with the polymer prior to emulsification, or may be added during or after
emulsion formation, as desired.
[0034] A further property of the surfactant is to be conducive to good pigment dispersion
in the selected dispersant, in which case the pigment can be dispersed directly into
the preformed polymer emulsion by techniques normally employed by ink, paint, and
toner makers such as ball milling, sand grinding, attrition milling, roll milling,
or the like. This soluble surfactant also should be substantive to the surface of
the particular pigment or coloring matter used to effect particle comminution by wetting
the surface of the pigment particles to form a fine dispersion thereof by dispersion
techniques as listed above. It is also believed that such soluble surfactant forms
a link between the emulsified polymer particles and the dispersed pigment or coloring
matter, thereby creating the composite particle necessary for the formation of a homogeneous
layer upon deposition by attraction to latent electrostatic image areas.
[0035] Materials which can be used to impart color to the polymer include both pigments
and dyestuffs. Dyestuffs for this purpose may include basic dyes such as Rhodamine
GG, Bismark brown R, both produced by Imperial Chemical Industries, Victoia blue FB,
Auramine FA, both produced by BASF, azo dyes such as Neozapon black RE, produced by
BASF, Oracet yellow GN and Orasol red 2B, both produced by Ciba-Geigy. Pigments may
include carbon blacks, such as Vulcan XC-72, produced by Cabot Color Corporation phthalocyanine
blues, such as Irgalite blue GLSM, produced by Ciba-Geigy, azo yellows, such as Permanent
yellows NCG, produced by Farbwerke Hoechst, and quinacridone reds, such as Quindro
Magenta RV-6832, produced by Bayer.
[0036] The preferred colored polymer emulsion may be directly diluted with low KB solvent
for use as an electrostatographic liquid toner, however, the addition of materials
variously known to those skilled in the art of toner making as control agents, charge
directors or image enhancers, may be desirable. Such materials comprise, for example,
metallic salts of low KB solvent soluble acids such as cobalt, iron, manganese, copper
and zirconium, salts of oleic, linoleic, naphthenic and octoic acids. Other such materials
include soya bean lecithin, sodium deodecyl benzene sulphonate, neutral calcium sulphonate
and alkylated mono and disuccinimides.
[0037] With regard to proportioning of the pigments or dyestuffs in or on the emulsified
polymer, it has been found that with emulsions prepared in accordance with the present
invention transparentization and solvent fixation can be achieved whilst maintaining
purity of color at the correct hues with coloring matter to polymer ratios of between
1 to 0.5 - 3.0 with a preferred range of 1 to 0.7 - 1.2.
[0038] The proportion of final emulsified polymer in the carrier liquid has been found to
be exceptionally wide. Polymer emulsions with contents of 1 to 80% by weight polymer
have been prepared, and it has been found that the preferred range in the context
of this invention is between 25 to 50% by weight of total emulsion including pigment
or dye, polymer and surfactant.
[0039] The proportion of the surfactant is determined by its functional requirements, that
is stabilization of the emulsion and wetting or dispersing the pigment or other coloring
matter. Any excess over such functional quantity is not desirable as it may reduce
the volume resistivity of the carrier liquid and the sensitivity of the toner, as
well as render the toner self-fixing to greater or lesser extent, which can impair
its transfer efficiency and cause filming on the photoconductor thereby affecting
its reusability.
[0040] Depending on the concentration of the polymer in the emulsion, such emulsion can
be used without further dilution as an electrostatographic liquid toner, or further
diluted with suitable low KB solvent. In the context of the present invention where
the preferred concentration of polymer in the emulsion is 25 to 50% by total weight,
dilution to a working strength to levels of between 0.01 and 10% by weight can be
made advantageously with a preferred concentration range of between 0.1 and 5% by
weight. Such amounts vary depending on conditions such as the type of developing device
employed, speed of development, nature of the photoconductor or latent image bearing
substrate and type of image receiving member and such like factors well known in the
art. Such dilution of the polymer emulsion with a suitable low KB solvent can be effected
by simple addition of the required quantity with stirring to achieve homogenity. The
nature of the emulsion prepared in accordance with the present invention is such that
little additional energy is required to produce dilute concentrations of the finely
dispersed polymer.
[0041] Liquids used for the fixation of the pre-press proof imagery, that is to say, of
deposits formed with the toners of this invention on a photoconductive or dieletric
recording member and transferred therefrom onto a receiving member such as printing
stock paper, must be solvents or at least partial solvents for the polymer formed
by emulsification technique previously described. Such liquids have been found to
vary considerably in their nature depending upon the type of polymer deposited in
the image areas. In the most preferred situation where the deposited polymer is of
the epoxy type, a combination of aromatic and oxygenated hydrocarbons has been found
to be most effective. The presence of a high boiling point oxygenated solvent such
as Cellosolve acetate, butyl Cellosolve acetate, Carbitol acetate of butyl Carbitol
acetate, all products of Union Carbide, has been found to be particularly advantageous
in assisting the coalascence of pigment/polymer particles and migration of solvated
polymer between overlayed color deposits and forming a continuous film or phase between
color particles and thereby enhancing transparency and consequent visual interpretation
of color combinations in that the thus fused or fixed image deposits very closely
resemble press printed ink deposits with regards to structure and composition.
[0042] The liquids which can be used for the fixation of the image deposits formed from
electrostatographic liquid toners prepared in accordance with the present invention
may be applied to the image deposits by mechanical means such as spraying, immersion,
doctor blade, curtain coating or by diffusion where the solvent is vaporized by heat
and subsequently condensed on the image bearing member. The preferred method is by
spraying where the solvent or solvent combination is applied to the image bearing
member of atomization of the solvent in a suitable nozzle by means of air, or pressure,
as produced in an airless spray equipment and projection of the atomized solvent particles
to impinge on the image bearing member.
[0043] It has been found in some cases to be advantageous to apply heat to the solvent wetted
image bearing member, especially when the solvent combination used contains a high
boiling point solvent for the second polymer. While not necessary to achieve fixation,
heat has the advantage of facilitating coalescence of the dissolved polymer in the
image areas as well as expediting the disposal of said solvent from the image and
image bearing member.
[0044] In those instances in which image deposit gloss is inadequate after image fixation,
which may be the case for instance where the pre-press proof is produced on inexpensive
strongly absorbant and irregular surface newsprint or magazine publication type printing
stock paper or where special high gloss printing effects are to be simulated, we have
found that a burnishing or polishing treatment can be applied after evaporation of
the fixing solvent to increase image gloss. Such polishing treatment does not cause
any image deposit shift or distortion but appears to improve levelling of the top
surface of the image deposit and in addition to remove bloom caused by solvent evaporation,
thereby increasing image gloss. Such polishing can be carried out typically by means
of a roller of the paint applicator type having its surface covered with a natural
or synthetic long fiber material, cotton, velvet, fur, velour, felt or the like. Such
roller may be pressed under relatively light pressure against the paper sheet carrying
the image deposit, such paper sheet being supported preferably on a rotating cylindrical
member. The polishing roller may be rotated or stationary as desired. If so desired
burnishing or polishing can also be carried out by supporting the paper sheet on a
flat member and having the rotating polishing roller traversing the paper surface
under light pressure. Alternatively, polishing can be effected by passing the paper
sheet through the nip of a set of rollers wherein one of such rollers acts as a guide
or feed roll whereas the other roller facing the image bearing surface of the paper
sheet acts as the polishing roller. In the simplest form polishing can be effected
by lightly rubbing the image bearing surface of the paper sheet with a pad made of
the above listed materials.
[0045] Referring to the drawing, the electrostatographic color proof resulting by practice
of the methods disclosed herein is designated generally by reference character 10
and consists of image areas 12 formed by electroscopic marking particles 14. The particles
14 consist of a colorant 16 dispersed in a polymer binder, the binder being solvated
by a solvent to fix the marking particle 14 to one surface 20 of the receptor member
18. The image free areas 22 remain unaffected with regard to appearance and gloss
by the transfer and fixing steps in forming the image areas 12. The solution of the
binder leaves a residue or polymer/continuum 24 which surrounds the colorant and fixes
the particle to the surface of the receptor sheet 18.
[0046] There have been described novel methods for the production of electrostatographic
color proofs and particularly of electrostatographic pre-press proofs on printing
stock paper or other receptor member wherein the surface appearance of such paper
is not affected in any way over its original state and wherein image gloss and dot
gain are substantially the same as on press prints. The materials and their proportioning
as disclosed herein are intended to be construed in illustrative sense only without
restricting the scope of this invention.
1. Method of producing an electrostatographic color proof having substantially the same
appearance as color prints printed by offset or gravure processes with regard to transparency
and gloss of image-free areas (22), wherein said electrostatographic color proof comprises
a receptor sheet (18) containing on its surface image-free areas (22) (22) and image
areas (12), said image areas (12) consisting of color deposits in the form of at least
one color layer and wherein said color deposits are first formed by electroscopic
marking particles of appropriate color on an electrostatographic recording member
and then transferred therefrom onto said receptor sheet (18), followed by fixation
of said color deposits on said recording member, said method characterized by the
steps of:
- providing electroscopic marking particles of appropriate color consisting of colorant
and a polymeric binder for same to form said color deposit on said electrostatographic
recording member, said marking particles being dispersed in a carrier liquid and said
binder being insoluble in said carrier liquid;
- applying a solvent to the surface of said receptor sheet (28), after transfer of
said deposits of all appropriate colors from said electrostatographic recording member
onto the receptor sheet (28), said solvent being capable of solvating said binder
in said electroscopic marking particles forming said color deposit thereon thereby
to transparentize and increase the gloss of said color deposit as well as to render
same adherent to said receptor sheet (18) surface without affecting the gloss thereof
in the image-free areas (22); and
- removing said solvent from said receptor sheet (18).
2. The method of producing an electrostatographic color proof according to claim 1, characterized
in that said solvent dissolves at least part of said polymeric binder sufficient to
cause said dissolved binder to fuse, a polymeric continuum surrounding said colorant
being formed both to render said color layers transparent and impart gloss thereto.
3. The method of producing an electrostatographic color proof according to claim 2, characterized
in that said solvent dissolves at least part of said polymeric binder sufficient to
render said binder adhesive.
4. The method of producing an electrostatographic color proof according to any one of
claims 1, 2 or 3, characterized in that said solvent is sprayed on said receptor sheet.
5. The method of producing an electrostatographic color proof according to any one of
claims 1 to 5 characterized in that the step of removing said solvent from said receptor
sheet is effected by heat assisted evaporation.
6. The method of producing an electrostatographic color proof according to any one of
claims 1 to 5, characterized by the step of polishing the said receptor sheet subsequent
to removal of the solvent.
7. The method of producing an electrostatographic color proof according to claim 6, characterized
in that the step of polishing said receptor sheet subsequent to removal of the solvent
includes providing a fibrous covered polishing member and effecting relative movement
between the receptor sheet and the fibrous member while same are in surface contact.
8. An electrostatographic color proof characterized by a receptor member (18) containing,
on at least one side thereof, image areas (12) formed by electroscopic marking particles
(14) consisting of colorants (16) and polymeric binder, the particles being transferred
to the surface of said receptor member (18) dispersed in a carrier liquid in which
the binder is insoluble and affixed thereto by a solvent solvating said binder, and
image free areas (22) formed by the surface of said receptor member (18), the appearance
and gloss thereof being unaffected by the transfer and affixing of said electroscopic
marking particles (14) to the image areas (12).
9. The color proof according to claim 8 characterized in that said image areas (12) and
image free areas (22) have a polished outer surface.
10. The color proof according to claim 8 characterized in that the colorant (16) of the
marking particles (14) at the image areas (12) are surrounded by a polymer continuum
(24) adhered fixedly to the receptor member (18) surface.
1. Verfahren zur Herstellung eines elektrostatographischen Farbabzugs mit im wesentlichen
dem gleichen Aussehen bezüglich Transparenz und Glanz der Bildbereiche (12), relativ
zu bildfreien Bereichen (22), wie Farbdrucke, gedruckt durch Offset- oder Tiefdruckverfahren,
worin der elektrostatographische Farbabzug eine Aufnahmeschicht (18) umfaßt, enthaltend
auf ihrer Oberfläche bildfreie Bereiche (22) und Bildbereiche (12), wobei die Bildbereiche
(12) aus Farbabscheidungen in Form wenigstens einer Farbschicht bestehen und worin
die Farbscheidungen zuerst durch elektroskopische Markierung von Teilchen geeigneter
Farbe auf einem elektrostatischen Aufzeichnungsteil gebildet werden und dann davon
auf die Aufnahmeschicht (18) übertragen werden, gefolgt von Fixieren der Farbabscheidungen
auf dem Aufzeichnungsteil, wobei das Verfahren durch die folgenden Stufen charakterisiert
ist:
Zurverfügungstellen von elektroskopischen Markierungsteilchen geeigneter Farbe, die
aus Färbungsmittel und einem Polymerbindemittel dafür bestehen, zur Bildung der Farbabscheidung
auf dem elektrostatographischen Aufzeichnungsteil, wobei die Markierungsteilchen in
einer Trägerflüssigkeit dispergiert sind und das Bindemittel in der Trägerflüssigkeit
unlöslich ist;
Aufbringen eines Lösungsmittels auf die Oberfläche der Aufnahmeschicht (18) nach der
Übertragung der Abscheidungen aller geeigneten Farben von dem elektrostatographischen
Aufzeichnungsteil auf die Aufnahmeschicht (18), wobei das Lösungsmittel das Bindemittel
in den elektroskopischen Markierungsteilchen, die die Farbabscheidung darauf bilden,
solvatisiert, wodurch die Farbabscheidung durchlässig gemacht und ihr Glanz erhöht
wird als auch auf der Oberfläche der Aufnahmeschicht (18) klebend gemacht wird ohne
den Glanz in den bildfreien Bereichen (22) zu beeinträchtigen; und
Entfernen des Lösungsmittels von der Aufnahmeschicht (18).
2. Verfahren zur Herstellung eines elektrostatographischen Farbabzugs gemäß Anspruch
1, dadurch gekennzeichnet, daß das Lösungsmittel wenigstens einen Teil des Polymerbindemittels ausreichend auflöst,
damit das aufgelöste Bindemittel schmelzen kann, und ein Polymerkontinuum, das das
Färbungsmittel umgibt, gebildet werden kann, um die Farbschichten transparent zu machen
und ihnen Glanz zu verleihen.
3. Verfahren zur Herstellung eines elektrostatographischen Farbabzugs nach Anspruch 2,
dadurch gekennzeichnet, daß das Lösungsmittel wenigstens einen Teil des Polymerbindemittels ausreichend auflöst,
um das Bindemittel klebend zu machen.
4. Verfahren zur Herstellung eines elektrostatographischen Farbabzugs nach einem der
Ansprüche 1, 2 oder 3, dadurch gekennzeichnet, daß das Lösungsmittel auf die Aufnahmeschicht gesprüht wird.
5. Verfahren zur Herstellung eines elektrostatographischen Farbabzugs nach einem der
Ansprüche 1 bis 5, dadurch gekennzeichnet, daß die Stufe der Entfernung des Lösungsmittels aus der Aufnahmeschicht durch wärmeunterstützte
Verdampfung bewirkt wird.
6. Verfahren zur Herstellung eines elektrostatographischen Farbabzugs nach einem der
Ansprüche 1 bis 5, gekennzeichnet durch die Stufe des Polierens der Aufnahmeschicht nach Entfernung des Lösungsmittels.
7. Verfahren zur Herstellung eines elektrostatographischen Farbabzugs nach Anspruch 6,
dadurch gekennzeichnet, daß die Stufe des Polierens der Aufnahmeschicht nach Entfernung des Lösungsmittels
das Zurverfügungstellen eines mit Fasern bedeckten Polierteils und das Bewirken einer
relativen Bewegung zwischen der Aufnahmeschicht und dem faserigen Teil, während diese
in Oberflächenkontakt sind, einschließt.
8. Elektrostatographischer Farbabzug, gekennzeichnet durch einen Aufnahmeteil (18), enthaltend auf wenigstens einer seiner Seiten Bildbereiche
(12), gebildet durch elektroskopische Markierungsteilchen (14), bestehend aus Färbungsmitteln
(16) und Polymerbindemittel, wobei die Teilchen auf die Oberfläche des Aufnahmeteils,
dispergiert in einer Trägerflüssigkeit, worin das Bindemittel unlöslich ist, übertragen
und darauf fixiert werden durch ein Lösungsmittel, das das Bindemittel solvatisiert,
und bildfreie Bereiche (22), gebildet durch die Oberfläche des Aufnahmeteils (18),
deren Aussehen und Glanz durch die Übertragung und Fixierung der elektroskopischen
Markierungsteilchen (14) auf den Bildbereichen (12) unbeeinträchtigt bleiben.
9. Farbabzug nach Anspruch 8, dadurch gekennzeichnet, daß die Bildbereiche (12) und die bildfreien Bereiche (22) polierte äußere Oberflächen
besitzen.
10. Farbabzug nach Anspruch 8, dadurch gekennzeichnet, daß das Färbungsmittel (16) der Markierungsteilchen (14) in den Bildbereichen (12)
von einem Polymerkontinuum (24), fest mit der Oberfläche des Aufnahmeteils (18) verbunden,
umgeben ist.
1. Procédé de production d'une épreuve électrostatographique en couleurs ayant sensiblement
le même aspect que des impressions en couleurs imprimées par des techniques d'offset
ou de gravure en ce qui concerne la transparence et la brillance des zones d'image
(12) par rapport aux zones exemptes d'image (22), dans lequel ladite épreuve électrostatographique
en couleurs comprend une feuille réceptrice (18) contenant sur sa surface des zones
exemptes d'image (22) et des zones d'image (12), lesdites zones d'image (12) étant
constituées de dépôts de couleur sous la forme d'au moins une couche de couleur et
dans lequel lesdits dépôts de couleur sont d'abord formés par des particules de marquage
électroscopique de couleur appropriée sur un élément d'enregistrement électrostatographique
et ensuite transférés de celui-ci sur ladite feuille réceptrice (18), puis par la
fixation desdits dépôts de couleur sur ledit élément d'enregistrement, ledit procédé
étant caractérisé par les étapes de :
délivrance de particules de marquage électroscopique de couleur appropriée constituées
de colorant et d'un liant polymère pour celui-ci pour former ledit dépôt de couleur
sur ledit élément d'enregistrement électrostatographique, lesdites particules de marquage
étant dispersées dans un liquide support et ledit liant étant insoluble dans ledit
liquide support ;
application d'un solvant sur la surface de ladite feuille réceptrice (18) après
transfert desdits dépôts de toutes les couleurs appropriées à partir dudit élément
d'enregistrement électrostatographique sur ladite feuille réceptrice (18), ledit solvant
étant capable de produire une solvatation dudit liant dans lesdites particules de
marquage électroscopique formant ledit dépôt de couleur sur celle-ci pour rendre transparent
par ce moyen et pour augmenter la brillance dudit dépôt de couleur de même que pour
le rendre adhérent à ladite surface de feuille réceptrice (18) sans affecter la brillance
de celle-ci dans les zones exemptes d'image (22) ; et
enlèvement dudit solvant de ladite feuille réceptrice (18).
2. Procédé de production d'une épreuve électrostatographique en couleurs selon la revendication
1, caractérisé en ce que ledit solvant dissout au moins une partie dudit liant polymère,
suffisante pour faire en sorte que ledit liant dissout fusionne, un continuum de polymère
entourant ledit colorant étant formé à la fois pour rendre lesdites couches de couleur
transparentes et pour leur imposer de la brillance.
3. Procédé de production d'une épreuve électrostatographique en couleurs selon la revendication
2, caractérisé en ce que ledit solvant dissout au moins une partie dudit liant polymère,
suffisante pour rendre ledit liant adhésif.
4. Procédé de production d'une épreuve électrostatographique en couleurs selon l'une
quelconque des revendications 1, 2 ou 3, caractérisé en ce que ledit solvant est pulvérisé
sur ladite feuille réceptrice.
5. Procédé de production d'une épreuve électrostatographique en couleurs selon l'une
quelconque des revendications 1 à 5, caractérisé en ce que ladite étape d'enlèvement
dudit solvant de ladite feuille réceptrice est effectuée par une évaporation assistée
par la chaleur.
6. Procédé de production d'une épreuve électrostatographique en couleurs selon l'une
quelconque des revendications 1 à 5, caractérisé par l'étape de polissage de ladite
feuille réceptrice à la suite de l'enlèvement du solvant.
7. Procédé de production d'une épreuve électrostatographique en couleurs selon la revendication
6, caractérisé en ce que l'étape de polissage de ladite feuille réceptrice à la suite
de l'enlèvement du solvant comprend l'utilisation d'un élément de polissage recouvert
de fibres et l'exécution d'un déplacement relatif entre la feuille réceptrice et l'élément
fibreux tandis que ceux-ci sont en contact de surface.
8. Epreuve électrostatographique en couleurs caractérisée par un élément récepteur (18)
contenant, sur au moins une de ses faces, des zones d'image (12) formées par des particules
de marquage électroscopique (14) constituées de colorants (16) et d'un liant polymère,
les particules étant transférées sur la surface dudit élément récepteur (18), dispersées
dans un liquide support dans lequel le liant est insoluble et fixées à celui-ci par
un solvant produisant un solvatation dudit liant, et des zones exemptes d'image (22)
formées par la surface dudit élément récepteur (18), 'aspect et la brillance de celles-ci
n'étant pas affectés par le transfert et l'apposition desdites particules de marquage
électroscopique (14) dans les zones d'image (12).
9. Epreuve en couleurs selon la revendication 8, caractérisée en ce que lesdites zones
d'image (12) et lesdites zones exemptes d'image (22) ont une face extérieure polie.
10. Epreuve en couleurs selon la revendication 8, caractérisée en ce que les colorants
(16) des particules de marquage (14) dans les zones d'image (12) sont entourés par
un continuum de polymère (24) fixé par adhérence à la surface de l'élément récepteur
(18).