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EP 1 717 035 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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01.12.2010 Bulletin 2010/48 |
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Date of filing: 20.04.2006 |
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International Patent Classification (IPC):
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Printing method and printer suitable for applying said method
Druckverfahren und Drucker geeignet zur Durchführung des Verfahrens
Procédé d'impression et imprimante adaptée à la réalisation de ce procédé
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LT LU LV MC NL PL PT RO SE
SI SK TR |
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Priority: |
28.04.2005 EP 05103516
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Date of publication of application: |
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02.11.2006 Bulletin 2006/44 |
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Proprietor: Océ-Technologies B.V. |
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5914 CC Venlo (NL) |
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Inventor: |
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- Wijshoff, Hermanus M.A.
6127 ED, GREVENBICHT (NL)
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Representative: Janssen, Paulus J. P. et al |
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Océ-Technologies B.V.
Corporate Patents,
P.O. Box 101 5900 MA Venlo 5900 MA Venlo (NL) |
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References cited: :
US-B1- 6 513 894
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US-B1- 6 629 741
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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[0001] The present invention pertains to a method for transferring ink to a receiving material
using an inkjet printer having an ink chamber with a nozzle and an electromechanical
transducer in cooperative connection with the ink chamber, comprising actuating the
transducer to generate a pressure wave in the ink chamber to expel a volume of ink
from the nozzle, the pressure wave being such that it induces splitting of the said
volume in a first and second ink droplet. Next to that, the invention pertains to
a printhead that is suitable for applying this method, as well as a printer that is
provided with this printhead.
[0002] Such a method is known from the United States patent
US 6,406,116. In this patent an inkjet printer is disclosed of the piezo type. Such a printer
comprises an ejection printhead having multiple substantially closed ink cambers,
each having an inlet for feeding liquid ink into the chamber and a nozzle for ejecting
ink droplets from this chamber. Each of the ink chambers is in operative connection
with a piezoelectric element. In the known printer, each of these piezoelectric elements
is in contact with a corresponding ink chamber. The element is capable of deforming
by the application of a voltage (called actuating) and this way implements an extremely
high-speed conversion of electrical energy into mechanical energy. Such deformation,
being an expansion, shrinkage or a combination of both, serves to suddenly change
the volume of the ink chamber, thus inducing a pressure wave in this chamber. As is
commonly known, such a pressure wave can serve to expel a volume of ink from the nozzle.
From the above-mentioned patent it is known to generate a pressure wave such that
the volume of ink is provided with local speed differences. This is applied to create
a so-called split ink droplet. Ejection of a volume of ink with a local speed difference
changes the shape of the volume of ink according to the degree of the speed difference
and thus enables creation of droplets in various states. This ejection method enables
creation of ink dots on the receiving material having different areas of coverage.
This enables on its turn a plurality of different densities to be expressed with regard
to each picture element (pixel), thus ensuring smooth tone expression and improving
overall image quality, especially in the low tone image areas.
[0003] However, the known method has an important disadvantage. The quantity of ink that
is expelled per ink ejection is substantially the same as compared to the prior art.
Thus, even if the volume of ink is split into to or more droplets, each droplet will
hit the receiving material at substantially the same location. This means, that the
ultimate densities of the picture elements do not differ that much from the densities
would the volume of ink not have been splitted. Next to this, the problem of low duty
restrictions of many receiving materials (i.e. a low upper limit in the quantity of
ink absorbable per unit area), which might be mitigated by expelling smaller ink droplets,
is not solved by the known printing method. Namely, the same amount of ink is still
jetted onto the receiving material per ink ejection. Lastly, the advantage of varying
ink droplet sizes, which in principle enables a richer colour expression of the printed
images, cannot be harvested to the full extent because each small droplet is automatically
accompanied by a big droplet or multiple smaller droplets. Thus, the same amount of
ink is used per picture element or at least per area that comprises the picture element.
[0004] It is an object of the present invention to overcome or at least mitigate the above-mentioned
problems. To this end, a method according to claim 1 and an inkjet printhead according
to claim 5 are provided.
[0005] This method makes use of the recognition that the part of the ink volume that is,
or is going to become the second droplet (i.e. the droplet being closest to the nozzle
itself) can be retracted back into the ink chamber by adequately reducing the pressure
at the nozzle. This pressure reduction should not be imposed too early in order to
prevent that the first droplet is also retracted back into the ink chamber, nor should
it be imposed too late, i.e. at a time where the second droplet can no longer be retracted.
The method according to the present invention has the important advantage that the
first droplet can be selected to be the only droplet (of this particular ink ejection)
that is actually ejected in order to become part of the image on the receiving medium.
This way, the advantages of drop size modulation can be fully harvested, even with
an ink jet head that is originally developed for creating ink droplets of only one
(relatively big) size. With the present method ink droplets of various sizes can be
created without each droplet being accompanied by one or more droplets, together still
having a volume that is equivalent to one big droplet as known from the prior art
methods. For example, from the above-mentioned US patent it is known how to create
first droplets with varying sizes. By applying the pressure reduction according to
the present invention, the accompanying trailing droplet(s) can be effectively retracted
in the ink chamber, thus leaving only the first droplet to become part of the image
to be formed on the receiving material. This enables image formation with a very smooth
tone expression.
[0006] The invention further relies on the feature that the pressure wave is such that the
volume of ink experiences a supercritical acceleration in the direction of the receiving
material. The initial volume of ink that is induced to be expelled from the ink chamber
is accelerated such that the surface tension of the ink is no longer capable of keeping
the volume completely together. A supercritical acceleration provides for relatively
large speed differences within the volume of ink, the speed differences being such
that the forces to split the volume are no longer balanced by the surface tension
forces. The advantage of a supercritical acceleration is that the speed differences
are relatively high when the volume of ink is still in or at least near the nozzle.
This means that the step of retracting the second droplet is relatively easy. The
second droplet (i.e. at least that part of the volume of ink that is induced to become
the second droplet) namely is often still almost completely present at the nozzle
when the requirements for separation of the volume of ink into two individual droplets
already have been fulfilled. Note that at this stage the individual droplets need
not have been formed yet, it is sufficient that the local speed differences within
the volume have become so high that (without any further action) two individual droplets
will arise. A supercritical acceleration thus virtually guarantees that the retraction
process is 100% reliable, thus further improving the image quality. Another advantage
of such a supercritical acceleration is that the method can be applied also with ink
having a relatively large viscosity, thus enabling for example the use at relatively
low operating temperatures. Next to this, it appears that application of a supercritical
acceleration enables the splitting of a very small volume of ink, so that extreme
small ink droplets can be provided for.
[0007] It is noted that application of a supercritical acceleration can be imposed by various
methods as is known from the prior art. This kind of acceleration for example takes
place when satellite ink drops are formed. This process is known from the prior art
but is generally regarded as undesirable. For example, it is known that when the pressure
increase at the nozzle becomes too high (or increases too fast) because of a too small
nozzle cross section when compared to the ink chamber cross section, this gives rise
to leading satellite ink drops in front of the main ink droplet. Also, when the meniscus
of the ink in the ink chamber is retracted too fast before a sudden pressure increase
in the ink chamber, this can give rise to satellite ink drops. In this case namely
almost all acceleration energy is put into a very small volume of ink that thus experiences
a super critical acceleration. Satellite drops can also appear when the pressure increase
at the nozzle is very high as the result of specific reflections of the pressure wave
at the nozzle location. It is for example known that if the piezoelectric element
is located somewhat distant from the nozzle, this can give rise to such reflections.
[0008] It is noted that from
US 6,513,894 it is known that a pressure wave can be generated in the ink chamber that induces
splitting of the volume of ink to be expelled in a first and second ink droplet, and
that the second droplet can be retracted back into the ink chamber. However, this
method relies on the generation of oscillations in the volume of ink to provide for
the splitting effect. This method has the disadvantage that it is less reliable and
can only be applied with inks that have a very low viscosity (typically water and
solvent based inks). Moreover, adequate oscillations can only be generated in relatively
large volumes of ink. The known method therefore has several disadvantages that have
been overcome or at least mitigated by the present invention.
[0009] In an embodiment the ink that is being used is substantially free of solvent. Such
an ink comprises for example less than 5% of solvent, preferably even less than 2%.
This provides for the advantage that substantially all jetted ink is incorporated
in the ultimate image. Inks comprising solvents such as water based inks, suffer from
the need to evaporate the solvent. Inks that are substantially free of solvent, such
as hot melt inks or many UV-curable inks do not require the evaporation of solvent.
However, such inks typically have a relatively high viscosity (typical 10 mPa.s at
operating temperature) which severely reduces the amount of freedom in applying adequate
pressure waves to expel droplets of these inks. In particular, commonly known strategies
to provide for drop size modulation (that is, being able to provide for ink droplets
of various sizes) are only effective for inks having very low viscosities (less than
5 mPa.s). It appears that the present method is extremely suitable to render true
drop size modulation for inks that have a relatively high viscosity at operating temperature.
Creating the effect of droplet splitting namely appears to be relatively simple for
these high viscosity inks, which also is the case for the creation of a sufficient
pressure reduction to retract the second droplet.
[0010] The present invention also pertains to an inkjet printhead for transferring ink to
a receiving material, the head comprising an ink chamber with a nozzle and an electromechanical
transducer in cooperative connection with the said ink chamber, and a driving unit
for controlling the actuation of the transducer, said driving unit being programmed
such that it is capable of actuating the transducer to generate a pressure wave in
the ink chamber to expel a volume of ink from the nozzle, the pressure wave being
such that it induces splitting of the said volume in a first and second ink droplet,
characterised in that the driving unit is further capable of actuating the transducer
such that the volume of ink that is forced to be expelled from the ink chamber experiences
a supercritical acceleration in the direction of the receiving material, and after
that to actuate the transducer to retract the second droplet back into the ink chamber.
A printer that is provided with such a printhead is also part of the present invention.
[0011] The invention will be further explained with reference to the examples given herebeneath.
Fig. 1 is a schematic representation of an inkjet printer.
Fig. 2 schematically shows a portion of a piezo-electrically driven inkjet printhead.
Fig. 3 diagrammatically shows a pressure variation at the nozzle of an ink chamber.
Fig. 4 shows a droplet forming process.
Figure 1
[0012] Fig. 1 diagrammatically illustrates an inkjet printer. In this embodiment, the printer
comprises a roller 1 for supporting a receiving material 2, for example a sheet of
paper or a transparent sheet, and to move it along the scanning carriage 3. This carriage
comprises a support member 5 on which the four printheads 4a, 4b, 4c and 4d are fixed.
Each printhead is provided with ink of its own colour, in this case respectively cyan
(C), magenta (M), yellow (Y) and black (K). The printheads are specially designed
for jetting solvent free ink. For this to be possible, the heads are heated by a heater
that comprises heating means 9 disposed at the back of each printhead 4 and on the
support member 5. These heating means ensure that the temperature of the printheads
is high enough to provide for an adequate (low) viscosity of the ink in the ink chambers.
The printhead itself is at least partly made of materials with excellent heat conduction
such that it is possible for the heater to substantially uniformly heat the ink in
the ink chambers (not shown). Temperature sensors (not shown) are also provided for.
The printheads are kept at the correct temperature via a control unit that is incorporated
in controller 10, by means of which the heating means can be individually actuated
in dependence on the temperature measured by the sensors. Since the printheads are
subjected to many heating and cooling cycles, the materials of which the printheads
are made are well matched with respect to their thermal expansion coefficients. Next
to this, all mechanical connections are designed to be able and resist the tensions
that are due to the temperature changes.
[0013] The roller 1 is rotatable about its axis as indicated by arrow A. In this way, the
receiving material can be moved in the sub-scanning direction (X-direction) with respect
to the support member 5 and hence also with respect to the printheads 4. The carriage
3 can be moved in reciprocation by suitable drive means (not shown) in a direction
indicated by the double arrow B, parallel to the roller 1. For this purpose, the support
member 5 is moved over the guide rods 6 and 7. This direction is termed the main scanning
direction or Y-direction. In this way the receiving material can be completely scanned
with the printheads 4. In the embodiment as shown in the Figure, each printhead 4
comprises a number of print elements each provided with an ink chamber (not shown)
having their own nozzle 8. In this embodiment, the nozzles form for each printhead
one row which extends perpendicularly to the axis of roller 1 (sub-scanning direction).
In a practical embodiment of an inkjet printer, the number of ink chambers per printhead
will be many times larger and the nozzles distributed over two or more rows. Each
ink chamber is provided with an electromechanical transducer (not shown) whereby the
pressure in the ink duct can be suddenly increased so that an ink drop is ejected
through the nozzle of the associated chamber in the direction of the receiving material.
A means of this kind comprises, for example, a piezo-electric element. These means
can be energised image-wise via an associated electric drive circuit (not shown).
In this way an image built up from ink drops can be formed on receiving material 2.
[0014] When a receiving material is printed with a printer of this kind, wherein ink drops
are ejected by the print elements, said receiving material or a part thereof is (imaginarily)
divided up into fixed locations which form a regular field of pixel rows and pixel
columns. In one embodiment, the pixel rows are perpendicular to the pixel columns.
The resulting separate locations can each be provided with one or more ink drops.
The number of locations per unit length in the directions parallel to the pixel rows
and pixel columns is termed the resolution of the printed image, for example indicated
as 400 x 600 d.p.i. ("dots per inch"). By actuating a row of nozzles of a printhead
of the inkjet printer image-wise when the row moves with respect to the receiving
material with displacement of the support member 5, a (part-)image built up from ink
drops forms on the receiving material, at least on a strip of a width of the length
of the nozzle row.
Figure 2
[0015] Figure 2 schematically shows a portion of the piezo-electrically driven inkjet printhead
3. The portion depicted in figure 2 comprises four ink chambers 11 that under operating
conditions contain the printing ink, in this case an adequately liquified hot melt
ink. At one end of the ink chamber an outlet 17 is provided, which extends between
the ink chamber and a nozzle 8 provided for in front end 13 of the ink jet head. At
the other end, the ink chamber 11 is connected to an ink supply reservoir 14 which
serves to supply the ink chambers with new ink. The individual ink chambers are connected
to the ink supply reservoir via an inlet 15. Each of the ink chambers 11 is connected
to a piezoelectric transducer. This transducer can be actuated whereupon it shrinks
or expands. This way, by transferring that movement to the ink in the corresponding
ink chamber, pressure waves can be generated in the ink as is commonly known in the
art, e.g. from
US patent 4,688,048 (reference is hereby made to all figures and corresponding description of that US
patent). As a result of these pressure waves, a droplet of ink can be jetted out of
the nozzle. The actuation itself, i.e. how the piezoelectric element is deformed,
is controlled by a driving unit comprising a pulse generator and controlling hard-
and software, which unit is incorporated in controller 10 (see figure 1). After the
ejection of an ink droplet, the same amount of ink is fed from ink reservoir 14 to
the corresponding ink chamber. The small opening 12 of inlet 15 almost completely
prevents the generated pressure waves to propagate to neighbouring ink chambers via
the common ink supply reservoir.
Figure 3
[0016] Figure 3 diagrammatically shows a pressure variation at the nozzle of an ink chamber.
Graph 20 shows the pressure P in the nozzle (Y-axis, arbitrary units) as a function
of the time t (X-axis, arbitrary units). Segment A of graph 20 reflects the minimal
negative pressure P in an ink chamber which is at rest. This minimal negative pressure
prevents ink from dripping out of the nozzle. In segment B, the pressure is suddenly
decreased by shrinking the corresponding piezo-electric transducer. After that, it
can be seen that the pressure is increased in section C. This relatively strong and
sudden pressure increase induces a supercritical acceleration of a volume of ink that
is present in the nozzle. This pressure increase is followed by a big decrease of
the pressure in segment D. This decrease takes care of retraction of the trailing
part the accelerated ink volume. Lastly, the pressure is brought back again to its
initial value in segment E.
Figure 4
[0017] Figure 4 shows the droplet forming process when applying the pressure variations
as depicted in figure 3. With respect to segment A in graph 20, it can be seen that
the meniscus 30 of the ink in the nozzle 17 of ink chamber 11 is somewhat concave
due to the slight negative pressure in the ink chamber. In segment B, this meniscus
is retracted into the ink chamber due to the sudden pressure decrease. This affects
mainly the ink volume 35 at the nozzle 17. This pressure decrease is followed by a
supercritical acceleration in segment C. Due to this supercritical acceleration, ink
volume 35 is expelled out of nozzle 17 and splitting of the volume 35 in two parts
36 and 37 is induced. The first part 36 has a somewhat lower speed than the second
part 37. Would there be no further pressure change, then the parts 36 and 37 would
split completely and form individual ink droplets. However, in segment D, a very large
pressure decrease is provided for which retracts part 36 almost completely back into
the ink chamber. Part 37 has gained already so much speed that the surface tension
of the ink can not overcome the moment of inertia of this part 37 which thus becomes
an individual ink droplet 37. In segment E, the pressure is brought back to its initial
value which enables the meniscus of the ink to take its starting position again. The
result of this process is that a relatively small droplet of hot melt ink is jetted
out of the nozzle.
1. Method for transferring ink to a receiving material (2) using an inkjet printer having
an ink chamber (11) with a nozzle (8) and an electromechanical transducer (16) in
cooperative connection with the ink chamber, comprising actuating the transducer to
generate a relatively strong and sudden pressure increase in the ink chamber to expel
a volume of ink from the nozzle, characterised in that the transducer is actuated such that the volume of ink that is forced to be expelled
from the ink chamber experiences a supercritical acceleration in the direction of
the receiving material, meaning that relatively large speed differences within the
volume of ink are provided, thereby inducing splitting of the said volume in a first
part (37) and a second part (36) giving rise to the first part (37) becoming a leading
satellite ink drop in front of the second part (36), which would become a main ink
droplet,, after which the transducer is actuated to induce a very large pressure decrease
in the ink chamber thereby retracting the second part into the ink chamber which second
part would have become the main droplet if the very large pressure decrease would
not have been induced.
2. Method according to claim 1, characterised in that the ink is substantially free of solvent.
3. Method according to any one of the preceding claims, wherein the generated relatively
strong and sudden pressure increase provides a pressure increase at the nozzle that
is too high or that increases too fast because of a too small nozzle cross section
when compared to the ink chamber cross section that the first part (37) of the said
volume becomes a leading satellite droplet.
4. Method according to any one of the preceding claims, wherein a meniscus of the ink
in the ink chamber is retracted too fast before generating the sudden pressure increase
such that the first part (37) of the said volume becomes a satellite droplet.
5. Inkjet printhead (4a-4d) for transferring ink to a receiving material (2), the head
comprising an ink chamber (11) with a nozzle (8) and an electromechanical transducer
(16) in cooperative connection with the said ink chamber, and a driving unit for controlling
the actuation of the transducer, said driving unit being programmed such that it is
capable of actuating the transducer to generate a relatively strong and sudden pressure
increase in the ink chamber to expel a volume of ink from the nozzle, characterised in that the driving unit is further capable of actuating the transducer such that the volume
of ink that is forced to be expelled from the ink chamber experiences a supercritical
acceleration in the direction of the receiving material, meaning that relatively large
speed differences within the volume of ink are provided, thereby inducing splitting
of the said volume in a first (37) and second part (36) giving rise to the first part
(37) becoming a leading satellite ink drop in front of the second part (36), which
would become a main ink droplet, and after that of actuating the transducer to induce
a very large pressure decrease in the ink chamber thereby retracting the second part
back into the ink chamber which second part would have become the main droplet if
the very large pressure decrease would not have been induced.
6. Printer provided with a printhead according to claim 5.
1. Verfahren zum Übertragen von Tinte auf ein Empfangsmaterial (2) unter Verwendung eines
Tintenstrahldruckers, der eine Tintenkammer (11) mit einer Düse (8) und einen elektromechanischen
Wandler (16) in zusammenwirkender Verbindung mit der Tintenkammer hat, aufweisend
ein Betätigen des Wandlers, um eine relativ starke und plötzliche Druckerhöhung in
der Tintenkammer zu erzeugen, um ein Tintenvolumen aus der Düse auszustoßen, dadurch gekennzeichnet, dass der Wandler derart betätigt wird, dass das Tintenvolumen, welches getrieben wird,
um aus der Tintenkammer ausgestoßen zu werden, eine überkritische Beschleunigung in
der Richtung des Empfangsmaterials erfährt, was bedeutet, dass relativ große Geschwindigkeitsunterschiede
innerhalb des Tintenvolumens zur Verfügung gestellt werden, wobei dabei ein Aufteilen
des besagten Volumens in einem ersten Teil (37) und einen zweiten Teil (36) herbeigeführt
wird, was dazu führt, dass der erste Teil (37) zu einem führenden Satelliten-Tintentropfen
vor dem zweiten Teil (36) wird, welcher zu einem Haupt-Tintentröpfchen werden würde,
wonach der Wandler betätigt wird, um eine sehr große Druckverringerung in der Tintenkammer
herbeizuführen, wobei dabei der zweite Teil in die Tintenkammer zurückgezogen wird,
welcher zweite Teil zu dem Haupttröpfchen geworden wäre, wenn die sehr große Druckverringerung
nicht herbeigeführt worden wäre.
2. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass die Tinte im wesentlichen lösemittelfrei ist.
3. Verfahren nach einem der vorstehenden Ansprüche, wobei die erzeugte relativ starke
und plötzliche Druckerhöhung eine Druckerhöhung an der Düse zur Verfügung stellt,
welche aufgrund eines zu kleinen Düsenquerschnitts im Vergleich zum Querschnitt der
Tintenkammer zu hoch ist oder zu schnell ansteigt, dass der erste Teil (37) des besagten
Volumens zu einem führenden Satellitentröpfchen wird.
4. Verfahren nach einem der vorstehenden Ansprüche, wobei ein Meniskus der Tinte in der
Tintenkammer zu schnell zurückgezogen wird, bevor die plötzliche Druckerhöhung erzeugt
wird, so dass der erste Teil (37) des besagten Volumens zu einem Satellitentröpfchen
wird.
5. Tintenstrahldruckkopf (4a-4d) zum Übertragen von Tinte auf ein Empfangsmaterial (2),
welcher Kopf eine Tintenkammer (11) mit einer Düse (8) und einen elektromechanischem
Wandler (16) in zusammenwirkender Verbindung mit der Tintenkammer und eine Treibereinheit
zum Steuern der Betätigung des Wandlers aufweist, welche Treibereinheit derart programmiert
ist, dass sie in der Lage ist, den Wandler zu betätigen, um eine relativ starke und
plötzliche Druckerhöhung in der Tintenkammer zu erzeugen, um ein Tintenvolumen aus
der Düse auszustoßen, dadurch gekennzeichnet, dass die Treibereinheit weiter in der Lage ist, den Wandler derart zu betätigen, dass
das Tintenvolumen, welches getrieben wird, um aus der Tintenkammer ausgestoßen zu
werden, eine überkritische Beschleunigung in der Richtung des Empfangsmaterials erfährt,
was bedeutet, dass relativ große Geschwindigkeitsunterschiede innerhalb des Tintenvolumens
zur Verfügung gestellt werden, wobei dabei ein Aufteilen des besagten Volumens in
einen ersten (37) und einen zweiten Teil (36) herbeigeführt wird, was dazu führt,
dass der erste Teil (37) ein führender Satelliten-Tintentropfen vor dem zweiten Teil
(36) wird, welcher zu einem Haupt-Tintentröpfchen werden würde, und danach den Wandler
zu betätigen, um eine sehr große Druckverringerung in der Tintenkammer herbeizuführen,
wobei dabei der zweite Teil zurück in die Tintenkammer gezogen wird, welcher zweite
Teil zu dem Haupttröpfchen geworden wäre, wenn die sehr große Druckverringerung nicht
herbeigeführt worden wäre.
6. Drucker, ausgestattet mit einem Druckkopf gemäß Anspruch 5.
1. Procédé pour transférer de l'encre sur un matériau de réception (2) en utilisant une
imprimante à jet d'encre ayant une chambre d'encre (11) avec une buse (8) et un capteur
électromécanique (16) en raccordement coopératif avec la chambre d'encre, comportant
l'actionnement du capteur pour générer une augmentation de pression relativement puissante
et soudaine dans la chambre d'encre afin d'expulser un volume d'encre de la buse,
caractérisé en ce que le capteur est actionné de sorte que le volume de l'encre qui doit être expulsée
de la chambre d'encre subit une accélération supercritique dans la direction du matériau
de réception, suscitant des différences de vitesse relativement importantes dans le
volume d'encre, induisant ainsi le partage dudit volume en une première (37) et une
seconde partie (36), ce qui fait que la première partie (37) devient une goutte d'encre
satellite d'attaque en face de la deuxième partie (36) qui peut devenir une gouttelette
d'encre principale, après quoi le capteur est actionné pour induire une diminution
de pression très importante dans la chambre d'encre, rétractant ainsi la deuxième
partie dans la chambre d'encre, laquelle deuxième partie serait devenue la gouttelette
principale si la diminution de pression très importante n'avait pas été induite.
2. Procédé selon la revendication 1, caractérisé en ce que l'encre est sensiblement dépourvue de solvant.
3. Procédé selon l'une quelconque des revendications précédentes, dans lequel l'augmentation
de pression générée relativement puissante et soudaine fournit une augmentation de
pression au niveau de la buse qui est trop élevée ou qui augmente trop vite en raison
d'une section transversale de buse trop petite par rapport à la section transversale
de la chambre d'encre de sorte que la première partie (37) dudit volume devient une
gouttelette satellite d'attaque.
4. Procédé selon l'une quelconque des revendications précédentes, dans lequel un ménisque
de l'encre dans la chambre d'encre est rétracté trop rapidement avant de générer l'augmentation
de pression soudaine de sorte que la première partie (37) dudit volume devient une
gouttelette satellite.
5. Tête d'impression à jet d'encre (4a - 4d) servant à transférer de l'encre sur un matériau
de réception (2), la tête comprenant une chambre d'encre (11) avec une buse (8) et
un capteur électromécanique (16) en raccordement coopératif avec ladite chambre d'encre,
et une unité d'entraînement pour contrôler l'actionnement du capteur, ladite unité
d'entraînement étant programmée de sorte qu'elle peut actionner le capteur pour générer
une augmentation de pression relativement puissante et soudaine dans la chambre d'encre
afin d'expulser un volume d'encre de la buse, caractérisée en ce que l'unité d'entraînement peut en outre actionner le capteur de sorte que le volume
de l'encre qui doit être expulsée de la chambre d'encre subit une accélération supercritique
dans la direction du matériau de réception, suscitant des différences de vitesse relativement
importantes dans le volume d'encre, induisant ainsi le partage dudit premier volume
en une première (37) et une seconde partie (36), ce qui fait que la première partie
(37) devient une goutte d'encre satellite d'attaque en face de la deuxième partie
(36) qui peut devenir une gouttelette d'encre principale, et après cela, actionner
le capteur pour induire une diminution de pression très importante dans la chambre
d'encre, rétractant ainsi la deuxième partie dans la chambre d'encre, laquelle deuxième
partie serait devenue la gouttelette principale si la diminution de pression très
importante n'avait pas été induite.
6. Imprimante dotée d'une tête d'impression selon la revendication 5.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description