[0001] The present invention relates to the field of ink transfer printing and, more particularly,
to ink transfer printing which is driven by a viscosity change in ink.
[0002] Over the years, many attempts have been made to develop a printing technique with
a simple mechanical structure. The hope being that such a printing technique would
lead to reliable, low cost products. For one reason or another, known printing techniques
have not been able to fully satisfy these goals.
[0003] Known thermal printing techniques have certain drawbacks. Direct thermal printing,
for example, requires special heat sensitive paper. Thermal transfer printing inefficiently
uses ink ribbons, which leads to higher cost for ribbon usage, especially for color
printing. Another disadvantage of thermal printers is that their printing speed is
too slow for large volume printing.
[0004] Ink jet printing has many advantages, but continues to have some reliability concerns.
A major disadvantage of ink jets, namely bubble-type inkjet devices, is that deposits
form in the nozzles when the organic compounds in the ink breakdown at high temperatures
(e.g., 350°C). The high temperatures are needed to produce the bubbles which cause
a drop to be ejected. As a result, the bubble-type ink jets tend to have a clogging
or crusting problem at the nozzles. Another disadvantage of ink jets is that the ink
used must have a low viscosity (e.g., typically <10 centipoise) which severely limits
the type and variety of inks which may be used. The printing speed of ink jets is
also too slow for large volume printing.
[0005] Additional background information on known printing techniques may be found in "Computer
Graphics - Technology and Applications," Vol. II - "Output Hardcopy Devices," by Robert
C. Durbeck and Sol Sherr, San Diego 1988.
[0006] In Hori, U.S. Patent 4,608,577, an ink jet type thermal printing machine is described.
The printing machine includes a film or belt having a plurality of holes which correspond
to the conventional inkjet nozzle. The holes in the film or belt are filled with ink.
The ink in the holes is then heated (vaporized) until bubble pressure causes the ink
to be jetted out onto paper.
[0007] In Bupara, U.S. Patent 4,675,694, a printer is described. The printer includes a
perforated printing plate, individual heaters, and an ink container. The ink utilized
is a phase-change or hot-melt ink which is a solid at room temperature. The printer
operates on the principle that when a portion of the solid ink contained in the holes
of the printing plate is heated, it undergoes a volume expansion (due to its change
from a solid state to a liquid state) which causes ink to protrude out of the holes
which have been heated. After the ink has been expanded in certain holes, a printing
medium is brought into contact with the liquified ink for transfer thereto. The printing
medium must be brought into contact with the liquified ink before the ink is allowed
to cool. Alternatively, the printing medium may be placed in contact with the printing
plate prior to the volume expansion.
[0008] In Cielo et al., U.S. Patent 4,275,290, a thermally activated liquid ink printer
is described. The printer includes an ink reservoir having a pluralityof orifices.
The driving force of the printer is the application of localized heat to ink in an
orifice which causes at least partial vaporization of the ink and/or reduction in
the surface tension. As a result, ink flows out of the orifices being heated. Preferably,
the heating produces bubbles which cause ink drops to be ejected. Alternatively, the
heating acts only to reduce surface tension which causes ink to flow through the orifices
being heated. This alternative operation uses a hydrostatic pressure which is less
than the surface tension of unheated ink at the ink surface.
[0009] In Cielo et al., U. S. Patent 4,164,745, a method is described for varying the amount
of ink deposited on a sheet of paper moving past an orifice based on the viscosity
of the ink. For example, the width of a line being printed can be controlled. The
method described is unable to completely control the flow of ink. That is, the flow
of ink is continuous. It is only the amount of ink flowing which is variable. In this
regard, Cielo et al. ('745) provides a bypass to prevent the continuous flow of ink
from flowing out of an orifice across a gap onto paper, but only while the viscosity
is above a predetermined value. The ink which does flow out from an orifice must cross
a gap before it reaches the paper.
[0010] As will become more apparent below, the present invention provides a novel and nonobvious
technique for printing which has the potential for a wide range of applicability.
The present invention overcomes many of the disadvantages of known printing techniques
because it has not only a simple and reliable design, but also the ability to use
a wide variety of inks to achieve high resolution printing. The technology associated
with the present invention is applicable to printers, digital copiers, video printers,
facsimile machines, etc. Color and gray scale printing or copying are also available
with this technology.
[0011] Furthermore, the known prior art failed to appreciate the advantages and benefits
of viscosity driven printing. The present invention can easily and accurately control
printing by altering the viscosity of the ink. Such control is superior to that provided
by bubble, phase-change or surface tension driven printing. Cielo et al.('745) assumes
that the ink always flows through the orifices, and attempts to control the amount
of ink deposited on paper using ink viscosity. Bupara operates on volume expansion
solid ink as its phase changes from solid to liquid. The Bupara technique is very
cumbersome and time consuming in that it requires a large number of procedures to
transfer ink to paper. Cielo et al.('290) operates either in a vaporization mode in
which ink is ejected out of orifices across a gap to paper or in a surface tension
and pressure mode in which ink under pressure flows out of orifices when heat is applied
to the orifices. The vaporization mode of Cielo et al. is si mi lar to a bubble-type
inkjet and, therefore, very dissimilar to the present invention. The surface tension
and pressure mode of cielo et al. has questionable operability. Namely, it is unclear
how ink transfer will take place because the paper never contacts the orifice plate.
Furthermore, it would be very difficult, if not impossible, to construct a practical
printer which relies on surface tension to control the printing process.
[0012] Although it is known that surface tension and viscosity vary with temperature, the
magnitude of change between surface tension and viscosity is drastically different.
Table 1 (below) shows that the viscosity change of fluids resembling ink is quite
drastic over an 80°C temperature change in comparison to the slight change in surface
tension. The well known fluids of glycerol and ethylene glycol are used to model characteristics
of inks which would be useful in the present invention.

[0013] As shown in Table 1, the magnitude of change in viscosity far exceeds the change
in surface tension. This large magnitude of viscosity change provides a high level
of control which is necessary to manufacture a reliable, low cost product. In contrast,
a device relying on surface tension would be difficult to control because the magnitude
of change in surface tension over a reasonable temperature change is not significant
from a design or engineering standpoint.
[0014] In sum, the known prior art fails to appreciate the benefits and advantages of a
printer which is driven by a viscosity change in ink.
[0015] In the present invention, an ink transfer printing device includes an ink reservoir
for retaining ink held under pressure. The ink reservoir is associated with an ink
transfer surface which has a plurality of perforations. The operating principle of
the present invention is to drive the ink transfer process by changing the viscosity
of the ink near certain of the perforation. The viscosity of the ink near each of
the perforations can be changed using a number of techniques, including thermal, magnetic
and electric techniques.
[0016] Under ambient conditions, the viscosity of the ink prevents flow of the ink through
the perforations of the ink transfer surface. However, a change in viscosity of the
ink near certain of the perforations causes a controlled amount of the ink near each
of these certain perforations to flow through these certain perforations and onto
the ink transfer surface. That is, the ink flows only after the viscosity of the ink
is changed.
[0017] The ink which has flowed onto the ink transfer surface forms ink dots on the ink
transfer surface above these certain perforations. The ink dots can then be transferred
to a printing media, thereby printing an image. The ink dots may be transferred by
contacting the printing media with the ink transfer surface. Alternatively, it may
be preferable to initially transfer the ink dots to an intermediate surface and, thereafter,
transfer the ink dots from the intermediate surface to the printing media.
[0018] Moreover, if the spread of the ink dots on the ink transfer surface is controlled,
then improved printing results. By providing the ink transfer printing device with
at least one concentric region on the ink transfer surface about each of the perforations,
the spread of the ink can be accurately controlled. The concentric regions form flow
barriers which impede the spread of the ink at each orifice. The improved dot size
control provided by the present invention enables the printing device to improve print
quality.
[0019] The present invention offers a number of benefits, including the following. The printing
technique of the present invention is capable of high speed and high resolution printing.
In addition, the printing technique can perform gray scale toning, continuous toning
and full color printing when printing an image. The printing technique of the present
invention can also achieve excellent print quality on a variety of printing media
using a wide range of inks. Moreover, the printing technique can be engineered to
print a character, a line, or a page at a time.
[0020] The present invention will be readily understood by the following description in
conjunction with the accompanying drawings, wherein like reference numerals designate
like structural elements, and in which:
FIG. 1 is a three-dimensional diagram of a perforated ink transfer device which includes
an ink reservoir and a perforated sheet according to the present invention;
FIG. 2 is a three-dimensional diagram illustrating a small printhead in comparison
to a page to be printed;
FIG. 3 is a three-dimensional diagram illustrating a line printhead in comparison
to a page to be printed;
FIG. 4 is a cross-sectional diagram of a perforated ink transfer device in a non-printing
state;
FIG. 5A is a cross-sectional diagram of a perforated ink transfer device in a printing
state;
FIG. 5B is a detailed cross-sectional diagram of an orifice of the ink transfer device
illustrated in FIG. 5A;
FIGS. 6A-6D are schematic diagrams illustrating various techniques for supplying thermal
energy to selective orifices;
FIG. 7 is a top view diagram illustrating a matrix of wires connected to resistors
which are coupled to each of the orifices;
FIGS. 8A and 8B are cross-sectional diagrams illustrating embodiments for applying
an electrical field to selective orifices;
FIG. 9 is a cross-sectional diagram illustrating an embodiment for applying a magnetic
field to selective orifices;
FIG. 10A is a top view diagram illustrating an ink channel formed under a perforated
sheet;
FIG. 10B is a side view diagram illustrating the ink channel shown in FIG. 10A;
FIG. 11 is a top view diagram illustrating an ink channel formed under a circular
printhead;
FIG. 12 is a three-dimensional diagram illustrating an ink transfer system which includes
an ink transfer area and a post treatment area;
FIGS. 13A-13E are three-dimensional diagrams illustrating structural implementations
for a color ink transfer device;
FIG. 14 is a three-dimensional diagram illustrating an ink transfer system which uses
an intermediate transfer surface;
FIG. 15 is a cross-sectional diagram illustrating a rectangular ink reservoir which
includes a pressurized chamber and a piston to pressurize the ink;
FIG. 16A is a three-dimensional diagram illustrating a cylindrical-shaped ink reservoir
which includes an inner cylinder, a pressurized chamber and a piston to pressurize
the ink;
FIG. 16B is a cross-sectional diagram of the cylindrical-shaped ink reservoir illustrated
in FIG. 16A;
FIG. 17 is a detailed top view diagram of the ink transfer device illustrated in FIG.
1 showing concentric rings disposed about each orifice; and
FIG. 18 is a detailed cross-sectional diagram of an orifice of the ink transfer device
having etched rings.
[0021] FIG. 1 illustrates a perforated ink transfer device 1 which includes an ink reservoir
2 and an ink transfer surface 4 (contact surface). The ink reservoir 2 retains ink
which is used for printing. The ink transfer surface 4 has a plurality of orifices
6. Each orifice 6 of the ink transfer surface 4 corresponds to an ink dot which may
be printed on a printing media.
[0022] Before explaining the detailed operation of the ink transfer device 1, it is useful
to discuss the physical features of the ink reservoir 2 and the ink transfer surface
4. Generally speaking, the size, shape and construction of both the ink reservoir
2 and the ink transfer surface 4 are very flexible.
[0023] More particularly, in FIG. 1, the ink transfer surface 4 is a flat perforated sheet.
However, various other perforated surfaces may be used (see e.g., FIGS. 11, 13A-13E).
Hence, the size and shape of the ink transfer surface 4 is not critical. For example,
the ink transfer surface 4 may be cylindrically shaped with a circumference which
is less than, equal to, or greater than, the length of a page.
[0024] It may be preferable to size the ink transfer surface 4 so that it slightly exceeds
the size of a page of paper (i.e., page size ink transfer surface). A page size ink
transfer surface 4 would increase printing speed by transferring ink a page at a time.
Printing a page at a time is typically faster than printing a character or line at
a time because the printing media need only contact the ink transfer surface 4 once
every page. On the other hand, as illustrated in FIG. 2, the ink transfer device 1
may form a printhead 8 in which the length and width of the ink transfer surface 4
may be relatively small compared to the size of a page. In such case, the printhead
8 must contact a printing media 10 several times for each page to be printed (see
dashed lines in FIG. 2). The printhead 8 can also have a variety of sizes and shapes.
For example, as illustrated in FIG. 3, the printhead could be a line printhead 12
which would print a line at a time.
[0025] Thus, the physical features of the ink transfer device 1 are not critical. Hence,
the size, shape and configuration of the ink transfer device 1 (ink reservoir 2 and
ink transfer surface 4) can be designed for specific applications.
[0026] The present invention is able to achieve a wide range of resolutions, namely, from
a low resolution of 10 dpi (dots per inch) to a very high resolution in excess of
1000 dpi. Each dot corresponds to an orifice 6 in the ink transfer surface 4. Consequently,
an ink transfer device having 600 dpi will have 36,000 orifices per square inch.
[0027] Although the shape of the orifices 6 shown in FIG. 1 is circular, the shape of the
orifices 6 is not critical. For example, the orifices 6 could be oval or square. The
size of the orifices 6 in the ink transfer surface 4 ranges from 10 f..lm to 200 µm
depending on the printing resolution desired. The thickness of the orifices 6 ranges
from 10 to 500 µm, depending on the resolution and applications desired. The orifices
6 are formed by micromachining processes, such as laser ablation, wet etching or plasma
etching, which are generally known in the semiconductor processing art.
[0028] The ink transfer surface 4 (e.g., perforated sheet) can be made from a wide variety
of materials. More particularly, the perforated sheet 4 can be formed from a stainless
steel mesh screen, electroformed of nickel, or made from processed polyimide (e.g.,
KAPTON or UPILEX from E.I. DuPont Company and Ube Company of Japan, respectively).
[0029] The operation of the ink transfer device 1 is explained in detail below.
[0030] In FIG. 4, a cross-sectional view of an ink transfer device 1 in a non-printing state
is illustrated. The ink reservoir 2 contains ink 14. The viscosity of the ink 14 at
room temperature is preferably greater than 20 centipoise (cps). A wide variety of
inks including inexpensive commercial ones are able to (or can be easily made to)
satisfy the viscosity requirement of the present invention. A pressure inlet 16 to
the ink reservoir 2 places a positive pressure on the ink 14. The amount of pressure
on the ink 14 is dependent on the viscosity of the ink 14 and the geometry of the
orifices 6. For example, in experiments using glyercol with 50 µm orifice diameter
and 125 µm thickness, the inventors successfully used an applied pressure on the order
of 8-20 Torrs. Preferably, the applied pressure is constant so that the volume of
ink within each ink drop is constant.
[0031] The viscosity of the ink 14 at room temperature is normally high so that the ink
transfer device 1 is normally in the non-printing state. That is, due to the high
viscosity of the ink 14 within the ink reservoir2, the pressurized ink 14 will not
flow through the orifices 6 of the ink transfer surface 4. In a technical sense, over
several years some flow within the orifices 6 may be observed, but the flow would
not be noticeable to the eye.
[0032] Accordingly, in the non-printing state, ink does not flow or protrude out of the
orifices 6 of the ink transfer surface 4 even though a positive pressure is applied
via the pressure inlet 16. That is, for a particular ink 14 being utilized, the applied
pressure is not so great as to cause the ink to flow through the orifices 6 while
at room temperature. Thus, regardless of whether the printing media 10 is brought
into contact with the ink transfer surface 4, no ink can be transferred to the printing
media 10 while the ink transfer device 1 is in the non-printing state.
[0033] On the other hand, the ink transfer device 1 can be switched to a printing state
wherein ink can be selectively transferred to the printing media 10. The device 1
switches from a non-printing state to a printing state on an orifice-by-orifice basis
by locally changing the viscosity of the ink associated with each orifice 6.
[0034] When the normally high viscosity of the ink 14 is reduced, the ink 14 having the
lowered viscosity flows through the orifices 6 onto the ink transfer surface 4 to
form an ink dot. Although the ink 14 with the reduced viscosity may flow onto the
ink transfer surface 4 by capillary action, the ink 14 within the ink reservoir 2
should be pressurized with a small positive pressure via the pressure inlet 16. The
pressure applied to the ink reservoir 2 is set such that it is sufficient to push
the ink with the reduced viscosity through the orifices 6, but not so high as to cause
the non-reduced viscosity ink to flow through the orifices 6. The ink transfer process
is explained in more detail with reference to FIG. 5A,
[0035] FIG. 5A is a cross-sectional diagram of an ink transfer device 1 in a printing state.
FIGS. 4 and 5A as basically the same structurally except that the device in FIG. 5A
includes divergent orifice walls as well as thermal barriers 17 which are discussed
in more detail below. Although the orifice walls shown in FIG. 5Aare divergent, the
orifice wall could also be convergent or straight as shown in FIG. 4. The orifices
6 could also be divergent.
[0036] In FIG. 5A, three orifices 6 of the ink transfer surface 4 are illustrated. However,
as shown in FIG. 5A, ink has flowed to the ink transfer surface 4 only through the
middle orifice 6. The ink which has flowed onto the ink transfer surface 4 via the
middle orifice 6 is transferred to the printing media 10 by bringing the printing
media 10 into contact with the ink transfer surface 4 of the ink transfer device 1.
The ink transfer surface 4 is then devoid of any ink (although some microscopic residue
will exist) and may be reused immediately.
[0037] In FIG. 5A, only the viscosity of the ink 14 near the middle orifice 6 has been reduced.
As a result, the ink 14 near the middle orifice 6 was able to flow through the middle
orifice 6 onto the ink transfer surface 4 primarily due to the pressure applied via
the pressure inlet 16. On the other hand, the viscosity of the ink 14 near the left
and right orifices 6 has not been reduced and, therefore, remains high enough to prevent
the applied pressure from pushing the ink through the left and right orifices 6. Thus,
as shown in FIG. 5A, the ink 14 near the left and right orifices 6 has not flowed
to the ink transfer surface 4.
[0038] FIG. 5B is a detailed view of an orifice 6 of the ink transfer device 1 shown in
FIG. 5A. FIG. 5B is provided to explain what is meant by lowering the viscosity of
the ink which is near (or in close proximity to) a particular orifice. In FIG. 5B,
an orifice 6 is shown partially filled with ink and directly coupled to the ink reservoir
2 below the orifice 6. The dot-dash line (a) provided in FIG. 5B indicates the portion
of the ink 14 in which the viscosity is reduced, that is, the ink which may be deemed
near the orifice 6. However, in practice, other portions of the ink which are further
from the orifice 6 will also undergo a viscosity change but to a lesser extent. Nevertheless,
the idea is to reduce the viscosity of the ink beginning with the ink closest to the
orifice 6 so that a predetermined amount of ink will flow through the orifice 6 to
the outer surface of the ink reservoir 2 to produce an ink dot having a particular
size. Depending on the technique used, orifice size, viscosity of ink at ambient conditions,
pressure, size of ink dot desired, etc., the actual operating parameters can easily
be determined experimentally.
[0039] It is important that the viscosity of the ink 14 be reduced only near the orifices
6 from which ink 14 is to flow. By selectively reducing the viscosity of the ink 14
near the orifices 6 from which an ink dot or pixel is desired, an image can be printed.
That is, each orifice 6 represents an ink dot on the printed image. If the viscosity
of the ink 14 near a particular orifice has been reduced, an ink dot will be produced
on the printed image at a location corresponding to the particular orifice. On the
other hand, if the viscosity of the ink 14 near the particular orifice has not been
reduced, no ink dot will be produced on the printed image at the location corresponding
to the particular orifice.
[0040] The ink, which has flowed to the ink transfer surface 4, remains on the ink transfer
surface 4 until transferred to the printing media 10. That is, the reduced viscosity
ink which has flowed to the ink transfer surface will not retreat back into the orifices
from which it came, regardless of whether the viscosity of the ink returns to its
normal viscosity level.
[0041] Consequently, the ink transfer process performed by the present invention is viscosity
driven. Specifically, the viscosity of the ink is utilized as a switch. Normally,
at ambient conditions, the viscosity of the ink is sufficiently high with respect
to the applied pressure to prevent flow of the ink (i.e., switched off). On the other
hand, at operating conditions, an ink dot is produced on a printed image (i.e., switched
on) when the viscosity of ink near the orifice corresponding to the dot is lowered.
[0042] The viscosity of ink has the following functional relationships:

where T is temperature, E is electric field, and H is magnetic field. Hence, the viscosity
of the ink near certain orifices 6 can be lowered a number of different ways, including
increasing temperature, applying an electric or magnetic field, lowering pH, and increasing
hv. Temperature and hv are closely related in that increasing light intensity is one
method of increasing temperature. Although it is critical that the viscosity of the
ink be lowered, the method or technique used to lower the viscosity is not critical.
[0043] Regardless of the technique utilized, for reliable viscosity control, it may be preferable
that the localized viscosity reduction be at least 50%. At room temperature (ambient
conditions), the ink can be a solid ink or any viscous ink whose viscosity is greater
than 10 cps. Preferably, the viscosity of the ink is greater than 100 cps. However,
at operating conditions, the ink becomes a low viscosity liquid. Typically, the viscosity
of the ink at operating conditions ranges from 1-100 cps. However, higher viscosities
may be used if a corresponding higher pressure is applied.
[0044] Ambient conditions are defined as conditions in which the ink transfer device 1 is
in a non-printing state. For example, at ambient conditions, no external exciting
energy (thermal, electrical or magnetic) is applied to the device 1. As a result,
all the ink within the ink transfer device 1 would be at room temperature or some
actively controlled temperature. Operating conditions, on the other hand, are defined
as conditions in which the ink transfer device 1 is in a printing state. For example,
at operating conditions, external energy (thermal, electrical or magnetic) is applied
to the device 1. The ink may or may not be at room temperature depending on the type
of energy applied.
[0045] The ink composition is selected based on the method used to change the viscosity
of the ink. For example, in an embodiment which uses a magnetic field to induce the
change in viscosity, the ink contains magnetic toner like materials. Likewise, in
an embodiment which uses an electric field to induce the change in viscosity, the
ink is an electrorheological fluid such as described in "Design of Devices Using Electrorheological
Fluids," SAE Technical Paper Series, #881134, by T. Ducios of Lord Corporation (1988).
[0046] In an embodiment which thermally induces a reduction in viscosity, the ink may be
composed of: colorant 2-10% (by weight); carriers(s) 93-60%; additives 5-30%. The
colorant can be either dye or pigments. The carrier or vehicle materials can be waxes,
monomers, oligomers or polymers. The waxy materials, for example, include natural
waxes such as carnauba wax and synthetic waxes such as stearic acid derivatives. The
monomeric, oligemic and polymeric carrier materials include acrylic, vinyl derivatives,
ester type of monomers and copolymers. The carrier materials also include glucose
derivatives and rosin derivatives. The vehicle or carrier can also be a mixture of
a solvent such as water and a viscous liquid such as glycol series (ethylene glycol,
diethylene glycol, propylene glycol, butanediol, glycerol, etc.) and polyethylene
glycol series. The ink vehicle or carrier can also include commercial lithographic,
screen printing, gravure ink. The additives include, for example, various types of
surfactant and viscosity reducers, hardening and toughening agents, optical property
(transparency) and solubility improver of dyes. Additives may not be a critical requirement.
Nevertheless, the purpose of the additives is to modify the viscosity and surface
tension of the ink so as to improve print quality and system reliability.
[0047] One way to control the viscosity of the ink 14 is with temperature. At room temperature,
the ink 14 preferably has a viscosity of at least 20 cps. However, as the temperature
of ink 14 increases, the viscosity of the ink 14 decreases. Table 1 shows the magnitude
of viscosity change over 80°C temperature change for several fluids representative
of inks. Namely, the viscosity of glycerol was reduced by about 95%, and the viscosity
of ethylene glycol was reduced about 70%.
[0048] Thus, the application of localized heat will act to induce the flow of ink 14 from
the ink reservoir 2 to the ink transfer surface 4 via the orifices 6. More particularly,
the application of heat to certain orifices causes the ink near these orifices to
be heated. The heating of the ink lowers the viscosity of the ink. When the viscosity
of the ink falls below a critical level, the applied pressure causes the heated ink
to flow through the corresponding orifices to the ink transfer surface 4.
[0049] FIGS. 6A-6D illustrate various structures which may be used to locally heat the ink
14 near certain of the orifices 6 to thereby lower its viscosity.
[0050] In FIG. 6A, a thermal printhead 8 is shown having a heating element 18. The heating
element 18 is placed near (preferably over) each of the orifices 6 from which an ink
dot is desired. When so placed, the heating element 18 acts to heat the ink near the
orifice 6 over which the printhead 8 is placed by providing a heat flux to the ink
contained in the orifice 6. The heated ink then flows to the surface of the ink transfer
surface 4 (perforated sheet) where it remains until transferred to the printing media
10. Therefore, a printed image can be produced by moving the thermal printhead 8 over
each of the orifices 6 from which an ink dot is desired.
[0051] One significant advantage of the present invention is that the printhead 8 may heat
each of the orifices 6 for an entire page before transferring any of the ink produced
thereby to the printing media 10. This is because once the ink has flowed onto the
ink transfer surface 4 via a particular orifice 6, the ink which has so flowed need
not remain heated. That is, the ink may cool once it reaches the ink transfer surface
4 because it will not drain back into the orifice 6 from which it came. Thus, the
ink will remain on the ink transfer surface 4 until it is transferred to the printing
media 10. This advantage occurs regardless of the method used to induce the viscosity
reduction (e.g., T, E, H, pH, hv). As a result, the size of the printhead 8 can vary
from very small such that only the ink near a single orifice would be heated at a
time (see FIG. 6A) to very large such that all of the orifices could be heated at
the same time. A reasonable compromise of speed and cost would lead to a printhead
8 somewhere in between the two extremes, perhaps a line printhead such as illustrated
in FIG. 3.
[0052] In FIG. 6B, heaters 20 (resistors) and thermal conductors 22 are used to provide
the thermal energy necessary to selectively lower the viscosity of the ink 14 near
certain orifices 6. Although the heaters 20 are shown as being attached to the under
side of the ink transfer surface 4 at each orifice 6, the heaters 20 may be positioned
in any manner provided each is closely associated with an orifice 6. For example,
the heaters 20 may be recessed within the perforated sheet 4 itself.
[0053] Preferably, each heater 20 has a thermal conductor 22 coupled thereto to facilitate
the transfer of heat from the heater 20 to the ink 14 in the corresponding orifice.
It is preferable to symmetrically heat the ink near an orifice 6 to obtain uniform
heating. For example, the heater 20 could have either a ring shape or four small heaters
could be equally spaced around each orifice.
[0054] FIG. 7 illustrates a layer of an ink transfer surface 4 having coaxial resistors
20' at each orifice 6 connected together in matrix fashion by wires 24. FIG. 7 also
illustrates a control unit/energy source 25 for controlling the supply of electrical
energy to the resistors 20'.
[0055] The ink transfer surface 4 is made from a wide variety of materials such as ceramics,
glass, plastic, etc. The wires 24 enable each coaxial resistor 20' to be individually
addressed so that electrical energy can be supplied to those coaxial resistors 20'which
correspond to orifices 6 from which an ink dot is desired. The heaters 20 and 20'
as well as the wires 24 can be formed by thick film or thick film processes which
are well known techniques.
[0056] The back side of the ink transfer surface 4 (perforated sheet) may include a thin-film
structure consisting, for example, of a glass substrate, a resistor layer, metallic
electrical conductors, and a passivation layer. The thin-film structure is similar
to that of a ThinkJefl& printhead which is well known in the art and described in
detail in Volume 36, No. 5 of Hewlett-Packard Journal, particularly the article entitled
"Development of the Thin-Film Structure for the ThinkJet Printhead" beginning on page
27 of that journal. However, since ink bubble generation is not required, the thin-film
structure for the present invention is more simplified. Unlike an ink jet device which
positions the resistor layer on the substrate and below the orifices, the present
invention positions the resistor layer so that the heat produced thereby is very close
to the orifices 6. For example, in FIG. 6B, the heaters 20 are coaxial with the orifices
and affixed to the inner surface of the ink transfer surface 4. Alternatively, the
heaters 20 could be placed either in the orifices themselves or on the outer surface
of the ink transfer surface 4. This embodiment can sufficiently lower the viscosity
of the ink in the orifices in about 100 microseconds. Further, the thermal conductors
22 may be utilized to assist in heating the ink within the orifices.
[0057] The electrical energy supplied to the heaters is dependent on a number of parameters,
e.g., the composition of the ink, resistance, voltage, pulse width, and period. These
parameters can be readily determined for specific designs. Even so, it is believed
that a thermal embodiment (FIG. 6B) which uses a glycerol based ink could be successfully
operated using heaters with a resistance between 5 and 200 ohms, and applied pulses
with a voltage between 0.5 and 50 volts and a pulse width between 5 µsec and 4 msec.
[0058] FIGS. 6C and 6D illustrate that the thermal energy may be supplied to the ink near
the orifices 6 using light (hv). The light can, for example, be provided by a laser
beam, an infrared lamp, a flash lamp, an ultraviolet lamp, or an incandescent lamp.
In FIG. 6C, a laser 26 produces a laser beam which is reflected from a mirror 30 to
a given orifice 6 of the ink transfer surface 4. This type of set-up can easily and
rapidly address each of the orifices 6 of the ink transfer surface 4 so that the ink
may be locally heated by the laser beam. In FIG. 6D, an infrared light (IR) source
32 and a reflective housing 34 are used to focus infrared light to the orifices 6
of the ink transfer surface 4. Other types of light sources may be utilized to heat
the ink in the orifices.
[0059] Alternative ways to control the viscosity of the ink 14 involve applying an electric
field (E), applying a magnetic field (M) field, or lowering pH. Since lowering pH
is closely related to applying an electric field (i.e., the application of an electric
field operates to lower pH), this way will not be separately discussed.
[0060] FIGS. 8A and 8B illustrate embodiments of the present invention in which an electric
field is produced to induce the reduction in viscosity. In FIG. 8A, electrodes 38-1,
38-2 are provided on the underside of the ink transfer surface 4. The electrodes 38-1,
38-2 are connected by conductors 40 to an AC generator 42. The AC generator42 operates,
under the control of a control unit (not shown), to induce an electric field E in
the orifice 6 of the ink transfer surface 4 to thereby reduce the viscosity of the
ink 14 near the orifice 6. In FIG. 8B, the electrodes 38-1, 38-2 are orientated differently.
In particular, the electrode 38-1 is an upper electrode and electrode 38-2 is a lower
electrode 40. In addition, thermal barriers 17 (described below) are provided in this
embodiment. Many other electrode configurations can be used to produce the necessary
electric field. For example, a roller or platen which provides the printing media
10 to the ink transfer device 1 could even be used as an upper electrode.
[0061] FIG. 9 illustrates an embodiment of the present invention which provides a magnetic
field (H) to selective orifices to induce a reduction in viscosity. This embodiment
is structurally similar to FIG. 8A except that coils 46-1,46-2 are used instead of
electrodes 38-1, 38-2. The coils 46-1, 46-2 can be fabricated using techniques which
are used in producing magnetic recording thin film heads. When the coils 46-2, 46-2
are activated by the AC generator 42, a magnetic field H is produced in the orifice
6. The magnetic field H causes a reduction in the viscosity of the ink near the orifice
6. Many other configurations are possible so long as a magnetic field is produced
near the orifice.
[0062] An optional feature of the present invention is to thermally isolate the ink 14 at
each of the perforations. Thermal isolation improves the performance of the ink transfer
device by decreasing heat loss to surrounding ink and guarding against cross-talk
between the orifices 6.
[0063] The ink transfer device 1 illustrated in FIG. 5A includes thermal barriers 17 which
serve to provide thermal isolation between nearby orifices 6. More particularly, the
barriers 17 function to decrease heat loss to the surrounding ink within the ink reservoir
2 and to guard against cross-talk between neighboring orifices. The barrier 17 shown
in FIG. 5A is coaxial with the middle orifice 6 so as to thermally isolate the ink
14 near the middle orifice 6 from the ink near other orifices. The barrier 17 extends
from the inner surface of the inktrans- fer surface 4 downward about 50 f..lm into
the ink reservoir 2. The barriers 17 can be made using a number of conventional techniques,
such as etching, deposition, or a photo-imagable dry film resist (e.g., RISTON or
VACREL, which are trade names for polymer materials of the E.I. DuPont Company of
Wilmington, Del.). The depth and configuration of the barriers 17 discussed above
are not critical.
[0064] The structural design of ink channels within an ink reservoir can also provide thermal
isolation between orifices. Namely, by isolating portions of the ink in ink channels
which feed ink to certain orifices, some thermal isolation of the ink occurs. FIGS.
10A, 10B and 11 illustrate examples of ink channels 48 which may be used to provide
thermal isolation between orifices 6. In such cases, the ink reservoir 2 is a main
supply for the ink and the ink channels 48 receive ink from the main supply.
[0065] In FIG. 1 OA, the ink channels 48 supply ink 14 to orifices 6. As a result, the ink
associated with a particular orifice is thermally isolated from other orifices 6.
FIG. 10B illustrates a side view of the ink channel 48 shown in FIG. 10A. The ink
14 within the ink reservoir 2 is supplied to an orifice 6 via the channel 48. Within
the ink channel 48, ink initially flows up from the reservoir 2 and then over to an
orifice 6. Hence, the ink 14 is supplied to the orifice 6 in a direction which is
perpendicular to the direction in which ink 14 flows out of the orifice 6 during a
printing state.
[0066] FIG. 11 illustrates a top view of a circular printhead 4, 8 in which the orifices
6 are arranged in a circular pattern. The ink channel 48, shown in FIG. 11, supplies
ink 14 to all of the orifices 6 of the printhead 4, 8. Again, like FIGS. 10A and 10B,
the ink 14 is applied to the orifices 6 in a direction which is perpendicular to the
direction in which ink 14 flows out of the orifice 6 during a printing state. The
construction of the ink chamber 48 shown in FIG. 11 is further advantageous in that
the pressure of the ink 14ateach orifice 6 is the same. On the other hand, using the
construction of the ink chamber 48 shown in FIGS. 10A and 10B the pressure of the
ink 14 at the orifices 6 is not as evenly distributed because a plurality of channels
48 are used and the ink path to each orifice 6 is not always the same length. Further,
although the channels 48 reduce cross-talk, they also require a greater pressure than
embodiments shown in FIGS. 4 and 5 which lack such channels.
[0067] Another optional feature of the present invention is a post treatment area where
the ink which has transferred to the printing media 10 would be rapidly fixed. FIG.
12 illustrates an ink transfer system which includes an ink transfer area and a post
treatment area. The ink transfer area contains the ink transfer device 1 which has
been described in detail above. The printing media 10 is supplied to the ink transfer
area where the ink transfer device 1 acts to transfer ink to the printing media 10.
At this point, the printing media 10 contains a printed image but the ink may be wet
or tacky. Moreover, the image may not be durable and is often embossed. Hence, fixing
or curing the images on the printing media 10 may be necessary. Next, the printing
media 10 having the ink is delivered to the post treatment area where a thermal ink
fixing unit 50 is provided. The thermal ink fixing unit 50 uses heat to fix and/or
fuse the ink to the printing media 10. Awide range of thermal ink fixing units 50
may be employed. For example, the heat of the thermal ink fixing unit 50 could be
provided by a laser beam, a light source, a heated roller or platen, or an oven. An
additional advantage of using the heated roller or platen is that by slightly pressurizing
the rollers the images may be flatted out.
[0068] A further optional feature of the present invention is use of colored ink. More particularly,
the present invention can be easily adapted to color printing. Since the present invention
can use such a wide variety of inks, all that is really needed is to change the color
of the ink within the ink reservoir. For example, on a basic level, the ink transfer
device 1 can print in any color ink which is placed in the ink reservoir 2. However,
to obtain full color printing, inks corresponding to the three primary colors of cyan,
magenta and yellow as well as black must be simultaneously provided. Hence, full color
printing can be provided by pre-aligning four ink transfer devices 1 relative to one
another, each device having a different color ink. The construction of such a device
would be relatively simple compared to existing color printers. Further, the numerous
advantages of the present invention would remain, namely high resolution, inexpensive
production and simple construction.
[0069] FIGS. 13A-13E illustrate several structural implementations for a color ink transfer
device 52. However, it is important to note that the color ink transfer device 52
can have many different sizes and shapes. FIG. 13A illustrates a page-width linear
array embodiment in which the device 52 can print the width of the printing media
10 in each of four colors. The pagewidth linear array includes a cyan chamber 1a,
a magenta chamber 1 b, a yellow chamber 1c and a black chamber 1d. Each chamber 1a-1d
supplies colored ink to a distinct group of orifices 6 which correspond to the particular
chamber. That is, the cyan chamber la supplies cyan colored ink to the orifices 6a,
the magenta chamber 1b supplies magenta colored ink to the orifices 6b, the yellow
chamber 1c supplies yellow colored ink to the orifices 6c, and the black chamber Id
supplies black ink to the orifices 6d. Thus, by combining the ink from the various
chambers, full color printing is achieved.
[0070] FIG. 13B illustrates a full-page array embodiment in which ink chambers 1 e-1 enable
the color ink trans- ferdevice 52 to print one page at a time in each of the three
primary colors as well as black. In this embodiment, each of the ink chambers 1 e-1
h is slightly larger than a page to be printed. FIG. 13C illustrates a cubic array
in which each side surface is an ink transfer device 1 with an ink chamber 1 i-11
having a different colored ink. FIG. 13D illustrates a curved cubic array having colored
ink chambers 1m-1 p. FIG. 13E illustrates a cylinder array having colored ink chambers
1q-1t. The size and shape of the ink chambers 1a-1t is flexible, but dependent on
the configuration of the color ink transfer device 52 desired.
[0071] Another optional feature of the present invention is the use of an intermediate transfer
surface. FIG. 14 illustrates an ink transfer device 1 which uses an intermediate transfer
surface 54 to assist in transferring the ink from the surface of the ink reservoir
2 to the printing media 10. As discussed above, an advantage of the present invention
is that a wide variety of printing media 10 may be used, including plain paper and
transparencies. However, since the present invention is able to operate with a wide
variety of printing media, the paper quality and absorptivity could vary significantly.
As a result, it may be desirable to first transfer the ink on the outer surface of
the ink reservoir 2 to the intermediate transfer surface 54.
[0072] For example, FIG. 14 shows a cylindrical-shape ink reservoir 2 contacting a cylindrical-shape
intermediate transfer surface 54. The intermediate transfer surface 54 will have a
known quality and absorptivity such that the ink will cleanly transfer to the intermediate
transfer surface 54. That is, virtually none of the ink will remain on the outer surface
of the ink reservoir 2. As an example, the outer surface of the intermediate transfer
surface 54 can be made of a polymer material such as mylar or rubber. Further, the
size of the intermediate transfer surface 54 need not be similar to that of the ink
reservoir 2.
[0073] Once the ink is on the intermediate transfer surface 54, the ink can be transferred
to the printing media 10 by contacting the printing media 10 with the intermediate
transfer surface 54 using any of a number of techniques. FIG. 14 shows the ink being
transferred to the printing media 10 using a roller 56 which presses the printing
media 10 against the intermediate transfer surface 54. After the ink is transferred
to the printing media 10, the intermediate transfer surface 54 is cleaned off to remove
any residue inkwhich did not transfer. Arubber doctor blade (not shown) may be used
to perform the cleaning off process.
[0074] Still another optional feature of the present invention is perhaps a preferred way
to pressurize the ink reservoir 2. According to this feature, the ink reservoir 2
is itself pressurized without any need for a pressure inlet 16 (see FIG. 4). FIGs.
15, 16Aand 16B illustrate implementations of this feature. The ink reservoir 2 further
includes a piston 58, a pressurized inner chamber 60 and an ink chamber 61, but no
longer includes a pressure inlet 16. The piston 58 is fitted with an o-ring 62 so
that the ink chamber 61 is isolated from the pressurized inner chamber 60. The pressure
applied by the pressurized inner chamber 60 causes the piston 58 to move toward the
ink transfer surface 4 as the ink flows out from the orifices 6 during printing.
[0075] FIG. 15 illustrates this feature in a rectangular ink reservoir, while FIGS. 16Aand
16B illustrate this feature with respect to a cylindrical-shaped ink reservoir. With
respect to the cylindrical-shaped ink reservoir, an inner cylinder 64 is also needed.
In this case, the piston 58 and o-ring 62 contact the inner cylinder 64 as shown in
FIG. 16B. The inner cylinder 64 is also shorter than the cylindrical-shaped ink reservoir
2. As ink flows from the orifices 6 during printing, the piston 58 will move so as
to expand the pressurized chamber 60 and reduce the volume of the ink chamber 61.
This piston movement pushes ink out of the ink chamber 61 and towards the orifices
6 via channels 66 (see FIG. 16B). Hence, the ink is pressurized using the pressurized
chamber 60. Although the pressure applied to the ink will decrease as the quantity
of ink within the ink chamber 61 decreases, the device can be constructed so that
the pressure variation is within an acceptable range of operation.
[0076] Yet another optional feature of the present invention is to control of the size of
the inkdots produced. Image quality can be improved not only by increasing resolution,
but also by using halftone techniques. The information content of a halftone image
goes beyond resolution and includes different dot sizes and maybe even different shapes
of the ink dots. As an example, a 150 dot per inch (dpi) image with 16 dot sizes will
have a quality comparable to a 600 dpi image having a single dot size. Hence, to produce
high quality printed images using an ink transfer printing device 1, it is desirable
to consistently control not only the volume of ink which flows from an orifice 6 onto
the ink transfer surface 4, but also the spread of the ink which has flowed onto the
ink transfer surface 4. By controlling the spread of the ink dots, images produced
using continuous toning and multi-color printing will have excellent print quality.
[0077] The volume of inkwhich flows through an orifice 6 can be regulated by controlling
the quantity and duration of applied viscosity-reducing energy. Basically, the more
energy applied, the greater the volume of ink which flows. The viscosity-reducing
energy is typically supplied by thermal, electrical or magnetic means. For example,
in a thermally activated system, a light source or resistive heater element heats
the ink near a particular orifice 6. To increase the volume of ink which flows through
the particular orifice 6 and onto the ink transfer device 1, the pulse width, voltage
and/or period may be increased. The result is an ink dot with a greater volume of
ink.
[0078] When the volume of the ink dot is increased, the spread of the ink on the ink transfer
surface 4 becomes more of a consideration. If the volume of ink within the ink dot
is small, then the spread of the ink dot is not a major concern. However, as the volume
of the ink dot is increased, the spread of the ink becomes more of a concern. The
spread of the ink dot is particularly important when printing various sizes of dots
to obtain continuous toning or when mixing various colors of ink for multicolor printing.
[0079] Furthermore, when printing in multiple colors, it is advantageous to control both
the spread and volume of the ink at each orifice. Colored inks can be mixed in numerous
ways when both the volume and spread are controlled. For example, if one had a color
ink transfer printing device and wanted to print a magenta pixel with a red center,
the following steps might occur. First, a large volume of magenta ink would be placed
on the ink transfer surface via an orifice. The spread of the magenta ink would also
be controlled to insure that the ink was uniformly spread a relatively large predetermined
radius out from the orifice. The magenta ink dot would then be transferred to an intermediate
surface or a printing media. Next, a small volume of yellow ink would be placed on
the ink transfer surface. The spread of the yellow ink on the ink transfer surface
would be controlled to insure that it spread only a relatively small predetermined
radius out from the orifice. The small yellow dot would then be transferred to the
intermediate surface or printing media at the center of the larger magenta dot. The
yellow ink dot would then mix with the magenta ink so as to produce a red center in
the magenta dot. Thereafter, the ink would be fixed to the printing media.
[0080] Thus, by controlling the spread of ink at each orifice 6 (so called "ink dot spread"),
better and more visually appealing print quality can be obtained. Namely, continuous
gray scale toning can be achieved by controlling the ink dot spread. In addition,
in a color ink transfer printing device, various colored inks can be uniquely mixed
by controlling both the volume and the ink dot spread for each color of ink.
[0081] Two embodiments for controlling ink dot spread are described below. A first embodiment
provides rings of alternating wet and non-wet surfaces on an ink transfer surface
4. A second embodiment provides etched grooves in an ink transfer surface 4.
[0082] According to the first embodiment, alternating rings of wet and non-wet surfaces
are provided around each orifice 6 of the ink transfer surface 4. FIG. 17 illustrates
a top view of an ink transfer surface 4 according to a first embodiment. The ink transfer
surface 4 shown in FIG. 17 contains nine orifices 6. The orifices 6 are 50 f..lm in
diameter and spaced apart from each other by 100 µm center to center. Around each
orifice 6 are three wet rings 72 and two non-wet rings 74. Each of the rings has a
width of 5 µm. The number, size and shape of the rings shown in FIG. 17 are illustrative
and not limitations on the invention. For example, the shape of the rings 72, 74 could
be oval or square.
[0083] The wet and non-wet rings 72, 74 form flow barriers which impede the ink dot spread.
Namely, at each transition from a wet ring 72 to a non-wet ring 74, the ink dot seeking
to spread out from an orifice will encounter a flow barrier. The barrier results from
the transition from a low surface tension region to a high surface tension region.
The barrier impedes the ink dot spread until the volume of ink builds up to overcome
the barrier.
[0084] One way to make the wet and non-wet rings 72, 74 is to coat the portion of the ink
transfer surface 4 corresponding to certain rings with wetting or non-wetting materials.
For example, the wet and non-wet rings can be made by applying a chemical coating
to certain portions of the ink transfer surface 4. With respect to aqueous ink, examples
of wetting chemicals are silicon dioxide and aluminum oxide. Examples of non-wetting
chemicals are fluorocarbon compounds such as fluoraliphatic polymeric esters (e.g.,
FC-430 by 3M Company).
[0085] If the top surface of the outer ink transfer surface 4 is normally a non-wet surface
such as fluorocarbon (e.g., TEFLON) for aqueous inks or polyimide (e.g., KAPTON produced
by E.I. DuPont Company), a coating of a wetting chemical such as silicon dioxide may
be deposited using a plasma enhanced chemical vapor deposition process to form wet
rings 72. In particular, the wetting agent is deposited on concentric regions of the
top surface about each of the orifices 6. The concentric regions of the wetting agent
so deposited form the wet rings 72. Although the concentric regions have a common
center, the concentric regions of the wetting agent which are deposited do not contact
one another. That is, the concentric wet regions formed by the wetting agent are separated
by concentric non-wet regions. Since the top surface is non-wet, no surface treatment
is required to form the non-wet rings 74. Hence, the non-wet rings 74 are identified
when the wet rings 72 are formed.
[0086] Another way to make the wet rings 72 is to modify concentric regions of the ink transfer
surface 4. These surface modifications can be performed using conventional methods.
One conventional method exposes the concentric regions of the ink transfer surface
4 to a gas plasma. For example, assuming the ink transfer surface 4 is a non-wet surface
such as KAPTON, with the exception of the concentric regions of the ink transfer surface
4, the entire surface of the ink transfer surface 4 is shielded with a mask. The ink
transfer surface 4 is then exposed to a gas plasma which changes the unmasked portion
of the surface to wet rings 74. Examples of the gases which may be used are oxygen
plasma, CHJ02 plasma or ion implantation.
[0087] According to the second embodiment, concentric regions are etched into the ink transfer
surface 4. FIG. 18 illustrates a detailed cross-sectional view of an ink transfer
surface 4 according to the second embodiment.
[0088] In FIG. 18, the concentric regions are etched rings 76, 78. The etched rings 76,
78 have a width of 1 µm and a depth less than 0.2 µm. The number, depth and width
of the etched rings 76, 78 shown in FIG. 18 are illustrative and not limitations of
the invention. The etched rings 76, 78 control the ink dot spread. Although the ink
transfer surface 4 should be non-wet, the etched rings 76, 78 may be either wet or
non-wet. The etched rings 76, 78 can be formed on the ink transfer surface 4 using
conventional methods, such as reactive ion etching, ion beam milling or excimer laser
ablation.
[0089] This embodiment restricts the ink dot spread using the non-wet surface of the ink
transfer surface. Once the etched rings 76, 78 are formed, non-wet rings 80, 82 are
identified. Due to the surface tension of the non-wet rings 80, 82, the ink flowing
from an orifice 6 will not want to flow across non-wet rings 80, 82. However, as additional
ink flows through the orifice 6, the volume of the ink dot such that the surface tension
of the non-wet ring 80 is exceeded. Once the surface tension is exceeded, the ink
will spread out to just before the next non-wet ring 82.
[0090] The etched rings 76, 78 provide an increased flow barrier to the spread of the ink
dot. In particular, for the ink dot to spread out over the non-wet ring 82, the volume
build up of ink must exceed the surface tension of the non-wet ring 82. At this non-wet
ring 82, the surface tension seen by the ink dot is greater than the surface tension
seen when the ink dot sought to spread out over the non-wet ring 80. Namely, the provision
of the etched ring 76 just before the non-wet ring 82 enlarges the barrier which the
ink dot must overcome to spread out to the next ring. Hence, a greater volume of ink
build up will be required to overcome the barrier.
[0091] The etched rings 76, 78 may be etched using conventional methods. For example, the
ink transfer surface 4 may be polyimide (e.g., KAPTON) which is non-wet with respect
to aqueous ink. Amask pattern corresponding to the regions which are not to be etched
is placed on the ink transfer surface 4. The etched rings 76, 78 are then etched in
the ink transfer surface 4 by excimer laser ablation.
[0092] It may be advantageous to clean the ink transfer surface 4 after each use. In particular,
after ink dots on the ink transfer surface 4 have been transferred to the intermediate
surface or printing media, some residue may remain. The residue ink may be cleaned
off using a doctor blade made of rubber or cloth. A doctor blade made of felt material
or other cloth like material might be preferred in an embodiment which uses etched
rings.
[0093] It may also be advantageous to combine the features of the first and second embodiments.
For example, an ink transfer surface might use wet rings, non-wet rings and etched
rings.
[0094] The many features and advantages of the present invention are apparent from the detailed
description and thus it is intended by the appended claims to cover all such features
and advantages of the invention. Further, since numerous modification and changes
will readily occur to those skilled in the art, it is not desired to limit the invention
to the exact construction and operation as illustrated and described. Hence, all suitable
modifications and equivalents may be resorted to as falling within the scope of the
invention.
1. An ink transfer printing device (1) wherein ink is transferred from an ink reservoir
(2) to a printing medium (10) via a perforated surface (4), said perforated surface
(4) having a plurality of orifices (6), said printing device (1) being characerized
by controlling ink transfer by changing the viscosity of the ink near certain of said
orifices (6) thereby enabling a controlled amount of the ink near said certain of
said orifices (6) to flow onto said perforated surface (4) via said certain of said
orifices (6).
2. An ink transfer printing device as recited in claim 1, further characterized in
that the viscosity of the ink at ambient conditions is at least 10 cps.
3. An ink transfer printing device as recited in claim 1, further characterized in
that the ink consists essentially of (by weight) 2-10% colorant, 93-60% carriers(s),
and 5-30% additives.
4. An ink transfer printing device as recited in claims 1, 2 or 3, further characterized
in that said perforated surface (4) includes at least one concentric region (72, 74,
76, 78, 80, 82) about each of said orifices (6) to control the spread of the ink.
5. An ink transfer printing device as recited in claim 4, wherein said concentric
region forms a flow barrier at the junction of a wet surface (72) and a non-wet surface
(74).
6. An ink transfer printing device as recited in claim 4, wherein said concentric
region forms a flow barrier at the junction of an etched pattern (76, 78) and a non-wet
surface (80, 82).
7. An ink transfer printing device as recited in claim 1, 2 or 3, wherein the ink
reservoir (2) is characterized by comprising an ink chamber (61) for containing the
ink, a pressurized chamber (60) for pressurizing the ink within said ink chamber (61),
and a movable piston (58) for separating said pressurized chamber (60) from said ink
chamber (61).
8. An ink transfer printing device as recited in claim 1, 2 or 3, further characterized
in that said perforated surface (4) has a circular shape, and said ink reservoir (2)
comprises a common channel (48) and a plurality of ink channels, each of said ink
channels supplying ink (14) to at least one of said orifices (6), said ink channels
extend radially outward from said common channel (48) which supplies the ink from
said ink reservoir (2) to said ink channels.
9. An ink transfer printing device as recited in claim 1, 2 or 3, further characterized
in that said printing medium (10) contacts an outer surface of said perforated surface
(4) to transfer the ink which has flowed onto said outer surface to said printing
media.
10. An ink transfer printing device as recited in claim 1, 2 or 3, further characterized
in that said ink reservoir (2) comprises first through fourth chambers (6a, 6b, 6c,
6d) each retaining a different color ink, each of said orifices (6) being associated
with one of said first through fourth chambers.
11. An ink transfer printing device as recited in claim 10, further characterized
in that each of said chambers (6a, 6b, 6c, 6d) has a portion of said perforated surface
(4) dedicated thereto, and that a common section of said printing medium (10) contacts
a plurality of the dedicated portions of said perforated surface (4), thereby producing
various colors.
12. An ink transfer method for transferring ink from an ink reservoir (2) to a printing
medium (10), the ink reservoir (2) being associated with a contact (4) surface having
a plurality of perforations (6), said method characterized by the steps of:
(a) applying a positive pressure to the ink;
(b) using the viscosity of the ink at ambient conditions to retain the ink within
the reservoir;
(c) inducing a change in the viscosity of the ink near certain of the perforations
thereby enabling a controlled amount of the ink near each of said certain of the perforations
(6) to flow onto the contact surface (4) via said certain of the perforations (6);
and
(d) transferring the ink, which has flowed onto the contact surface (4), to the printing
medium (10).
13. A method as recited in claim 12, wherein step (d) comprises the steps of: (d1)
transferring the ink on the contact surface (4) to an intermediate transfer surface
(54); and (d2) transferring the ink from the intermediate transfer surface (54) to
the printing medium (10).
14. A method as recited in claim 12, wherein said inducing step (c) is characterized
by one of the following:
(i) locally heating the ink near said certain of the perforations (6) to reduce the
viscosity of the ink near said certain of the perforations (6);
(ii) applying an electric field near each of said certain of the perforations (6)
to change the viscosity of the ink near said certain of the perforations (6); and
(iii) applying a magnetic field near each of said certain of the perforations (6)
to change the viscosity of the ink near said certain of the perforations (6).