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(11) | EP 1 005 987 A2 |
(12) | EUROPEAN PATENT APPLICATION |
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(54) | Ink jet head and method of manufacturing ink jet head |
(57) An ink jet head to jet ink from a nozzle hole by applying an electric voltage to
an electrode so as to deform a shape of a space forming an ink chamber, comprises
two piezoelectric base plates given polarization; two non-piezoelectric base plates,
wherein the ink chamber is formed by being enclosed by the two piezoelectric base
plates facing each other and the two non-piezoelectric base plates facing each other;
each of the two piezoelectric base plates comprising at least two lamination layers
made of a piezoelectric material, wherein the two lamination layers are laminated
such that the laminated surface is substantially parallel to the non-piezoelectric
base plates and polarizing directions of the two lamination layers are opposite to
each other; and electrodes provided on surfaces of the piezoelectric base plates and
the non-piezoelectric base plates, wherein the surfaces face the ink chamber. |
BACKGROUND OF THE INVENTION
SUMMARY OF THE INVENTION
(1) In an ink jet head or an ink jet printer which jets ink from nozzle holes by applying
an electric voltage to an electrode to deform the shape of a space forming an ink
chamber, the ink chamber is formed by being surrounded by two piezoelectric base plates
which are given polarization and face each other and two non-piezoelectric base plates
facing each other, and the piezoelectric base plates have a structure such that each
of them is made up of at least two lamination layers of a piezoelectric material and
the lamination layer surface is approximately parallel to the non-piezoelectric base
plates and the polarizing directions of these two lamination layers of the piezoelectric
material are opposite to each other, and an electrode is provided on the surface of
each of the piezoelectric base plates and the non-piezoelectric base plates facing
the ink chamber.
According to the structure (1), since the ink jet head is constructed such that the
ink chamber is formed by being surrounded by two piezoelectric base plates which are
given polarization and face each other and two non-piezoelectric base plates facing
each other, and the piezoelectric base plates have a structure such that each of them
is made up of at least two lamination layers of a piezoelectric material and the lamination
layer surface is approximately parallel to the non-piezoelectric base plates and the
polarizing directions of these two lamination layers of the piezoelectric material
are opposite to each other, and an electrode is provided on the surface of each of
the piezoelectric base plates and the non-piezoelectric base plates facing the ink
chamber; in comparison with the case that an electrode is provided only to the piezoelectric
base plates without being provided to the non-piezoelectric base plates, the work
to provide the electrode is easy so that the ink jet head is of low cost and capable
of driving the piezoelectric base plates at a low voltage, has a high-efficiency driving
performance owing to a large amount of deformation in the piezoelectric base plates,
is capable of coping with multiple nozzles, has the capability of high-frequency driving,
and jets small droplets with multi-gradation so that an image recording can be conducted
at a high-speed with high-quality image.
(2) The ink jet head or the ink jet printer described in (1), wherein an electrode
is provided on the ink chamber facing surface of each of the piezoelectric base plates
which are given polarization and face each other and on the ink chamber facing surface
of either one of the non-piezoelectric base plates facing each other.
According to this structure (2), since an electrode is provided on the ink chamber
facing surface of each of the piezoelectric base plates which are given polarization
and face each other and on the ink chamber facing surface of either one of the non-piezoelectric
base plates facing each other, in comparison with the case that an electrode is provided
only to the piezoelectric base plates without being provided to the non-piezoelectric
base plates, the work to provide the electrode is easy so that the ink jet head is
of low cost and capable of driving the piezoelectric base plates at a low voltage,
has a high-efficiency driving performance owing to a large amount of deformation in
the piezoelectric base plates, is capable of coping with multiple nozzles, has the
capability of high-frequency driving, and jets small droplets with multi-gradation
so that an image recording can be conducted at a high-speed with high-quality image.
(3) The ink jet head or the ink jet printer described in (1) or (2), wherein the ink
chamber is formed in multi-stages.
According to this structure (3), since the ink chanter is formed in multi-stages,
it can carry out a more high-speed and high-quality image recording and can improve
resolution of the image with multiple nozzles of the multi-stage ink chamber.
(4) The ink jet head or the ink jet printer described in (1) or (3), wherein the piezoelectric base plates are shaped in a flat surface or a curved surface.
(5) The ink jet head or the ink jet printer described in (1) or (4), wherein the piezoelectric
base plates have at least two lamination layers which have different lengths in the
layer laminating direction.
According to this structure (5), because the piezoelectric base plates have at least
two layers which have different lengths in the layer laminating direction, the shape
of the space making up the ink chamber can be deformed in a manner corresponding to
the position of a nozzle hole, and ink can be jetted from the nozzle hole more efficiently.
(6) The ink jet head or the ink jet printer described in (1) or (5), wherein the piezoelectric
base plates have at least one layer made of a non-piezoelectric material.
According to this structure (6), because the piezoelectric base plates have at least
one layer made of a non-piezoelectric material, ink can be jetted from a nozzle hole
efficiently by deforming the shape of the space making up the ink chamber variously.
(7) In an ink jet head or the ink jet printer which jets ink from nozzle holes by
applying an electric voltage to an electrode to deform an ink chamber which is partitioned
by partition walls, a plurality of piezoelectric base plates which are given polarization
are disposed side by side on a non-piezoelectric base plate, a plurality of grooves
are provided in each of the piezoelectric base plates, and another non-piezoelectric
base plate is provided on these piezoelectric base plate so that a plurality of ink
chambers partitioned by partition walls are provided.
According to this structure (7), since a plurality of piezoelectric base plates which
are given polarization are disposed side by side on a non-piezoelectric base plate,
a plurality of grooves are provided in each of the piezoelectric base plates, and
another non-piezoelectric base plate is provided on these piezoelectric base plate
so that a plurality of ink chambers partitioned by partition walls are provided, an
ink chamber can be formed without lowering positional precision and it is possible
to obtain a long-sized line head which is of low cost, has a high precision, and is
long in its lengthwise direction; thus, a high-speed and high-quality image recording
can be carried out.
(8) The ink jet head or the ink jet printer described in (7), wherein the grooves
are formed at the connecting portions of the plurality of piezoelectric base plates.
According to this structure (8), because grooves are formed at the connecting portions
of the plurality of piezoelectric base plates, the positional precision of the ink
chamber can be improved further more.
(9) In an ink jet head or the ink jet printer which jets ink from nozzle holes by
applying an electric voltage to an electrode to deform an ink chamber which is partitioned
by partition walls, a piezoelectric base plate comprising at least two layers of piezoelectric
material whose polarizing directions are opposite to each other are disposed on a
non-piezoelectric base plate, a plurality of grooves are provided with a predetermined
interval in each of the piezoelectric base plates, and another non-piezoelectric base
plate is provided on these piezoelectric base plate so that a plurality of ink chambers
partitioned by partition walls are provided.
According to this structure (9), since a piezoelectric base plate comprising at least
two layers of piezoelectric material whose polarizing directions are opposite to each
other are disposed on a non-piezoelectric base plate, a plurality of grooves are provided
with a predetermined interval in each of the piezoelectric base plates, and another
non-piezoelectric base plate is provided on these piezoelectric base plate so that
a plurality of ink chambers partitioned by partition walls are provided, the ink chambers
are formed in the piezoelectric base plates without the deviation of grooves, it is
possible to obtain a low-cost and high-precision line head, and a high-speed and high-quality
image recording can be carried out.
(10) The ink jet head or the ink jet printer described in (9), wherein grooves are
formed at the connecting portions of the plurality of piezoelectric base plates.
According to this structure (10), because grooves are formed at the connecting portions
of the plurality of piezoelectric base plates, ink chambers are formed without lowering
of the positional precision more reliably.
(11) The ink jet head or the ink jet printer described in one of (1) through (10),
wherein the piezoelectric base plates is made of a non-metallic material.
According to this structure (11), since the piezoelectric base plates is made of a
non-metallic material, the partition walls of the ink chamber can be deformed more
reliably.
(12) The ink jet head or the ink jet printer described in one of (1) through (10),
wherein the material of the non-metallic material is at least one selected from alumina,
aluminum nitride, zirconia, silicon, silicon nitride, silicon carbide, and quartz.
According to this structure (12), since the material of the non-metallic material
is at least one selected from alumina, aluminum nitride, zirconia, silicon, silicon
nitride, silicon carbide, and quartz, the piezoelectric base plates can be reliably
supported even if the partition walls of an ink chamber are deformed.
(13) The ink jet head or the ink jet printer described in one of (7) through (12),
wherein a surface roughness of the bonded surfaces between the non-piezoelectric base
plate and the piezoelectric base plates is not larger than 1.0 µm.
According to this structure (14), since a surface roughness of the bonded surfaces
between the non-piezoelectric base plate and the piezoelectric base plates is not
larger than 1.0 µm, it is possible to prevent a soft high molecular adhesive (for
example, epoxy resin) from entering into the concave portions on the bonded surfaces,
the film thickness of the adhesive is practically limited to a minimum, and it is
possible to avoid the lowering of sensitivity and the rise of the electric voltage
owing to the lowering of the driving force of the piezoelectric base plates.
(14) The ink jet head or the ink jet printer described in one of (9) through (13),
wherein a surface roughness of the bonded surfaces between piezoelectric materials
of the piezoelectric base plates having at least two layers of the piezoelectric materials
is not larger than 1.0 µm.
According to this structure (14), since a surface roughness of the bonded surfaces
between piezoelectric materials of the piezoelectric base plates having at least two
layers of the piezoelectric materials is not larger than 1.0 µm, it is possible to
prevent a soft high molecular adhesive (for example, epoxy resin) from entering into
the concave portions on the bonded surfaces, the film thickness of the adhesive is
practically limited to a minimum, and it is possible to avoid the lowering of sensitivity
and the rise of the electric voltage owing to the lowering of the driving force of
the piezoelectric base plates.
(15) The ink jet head or the ink jet printer described in one of (7) through (14),
wherein the bonded surfaces between the non-piezoelectric base plate and the piezoelectric
base plates are subjected to a plasma treatment or a U.V. treatment.
According to this structure (15), since the bonded surfaces between the non-piezoelectric
base plate and the piezoelectric base plates are subjected to plasma treatment or
UV treatment, organic contaminants can be cleaned and removed and wetting ability
of the surfaces for the adhesive is improved over the whole surface to eliminate poor
bonding such as minute bubble remains, and owing to it, poor driving for the piezoelectric
base plates can be eliminated.
(16) The ink jet head or the ink jet printer described in one of (8) through (14),
wherein the bonded surfaces between piezoelectric material layers of the piezoelectric
base plates having at least two layers of the piezoelectric material are subjected
to plasma treatment or UV treatment.
According to this structure (16), since the bonded surfaces between piezoelectric
material layers of the piezoelectric base plates having at least two layers of the
piezoelectric material are subjected to plasma treatment or UV treatment, organic
contaminants can be cleaned and removed and wetting ability of the surfaces for the
adhesive is improved over the whole surface to eliminate poor bonding such as minute
bubble remains, and owing to it, poor driving for the piezoelectric base plates can
be eliminated.
(17) A method of manufacturing an ink jet head or an ink jet head printer which jets
ink from nozzle holes by applying an electric voltage to an electrode to deform a
shape of a space forming an ink chamber, comprising steps of forming the ink chamber
by surrounding by two piezoelectric base plates which are given polarization and face
each other and two non-piezoelectric base plates facing each other and providing an
electrode on each of the piezoelectric base plates, wherein the piezoelectric base
plates have a structure such that each of them is made up of at least two layers of
piezoelectric material, the layer surfaces are approximately parallel to the non-piezoelectric
base plates and the polarizing directions of these two adjacent layers made of piezoelectric
material are opposite to each other.
According to this method (17), since the ink chamber is formed by surrounding by two
piezoelectric base plates which are given polarization and face each other and two
non-piezoelectric base plates facing each other, an electrode is provided on each
of the piezoelectric base plates, and the piezoelectric base plates have a structure
such that each of them is made up of at least two layers of piezoelectric material,
the layer surfaces are approximately parallel to the non-piezoelectric base plates
and the polarizing directions of these two adjacent layers made of piezoelectric material
are opposite to each other, it can be manufactured an ink jet head which is of low
cost, can drive the piezoelectric base plates at a low voltage, has a high-efficiency
driving performance owing to a large amount of deformation in the piezoelectric base
plates, is capable of coping with multiple nozzles, has the capability of high-frequency
driving, can jet small droplets with multi-gradation so that an image recording can
be conducted at a high-speed with high-quality image.
(18) The method of manufacturing an ink jet head or an ink jet printer described in
(17), wherein the ink chamber is formed by pasting the piezoelectric base plate composed
of at least two layers on the non-piezoelectric base plate, machining the pasted piezoelectric
base plate so as to provide grooves, and pasting another non-piezoelectric base plate
onto the piezoelectric base plate.
According to this method (18), since the ink chamber is formed by pasting the piezoelectric
base plate composed of at least two layers on the non-piezoelectric base plate, machining
the pasted piezoelectric base plate so as to provide grooves, and pasting another
non-piezoelectric base plate onto the piezoelectric base plate, an ink chamber can
be formed at a low cost and with a high precision owing to the ease of the positional
adjustment of the ink chamber.
(19) The method of manufacturing an ink jet head or an ink jet described in (17),
wherein the ink chamber is formed by pasting the piezoelectric base plate, which has
been machined to have a groove, on the non-piezoelectric base plate, and pasting another
non-piezoelectric base plate onto the piezoelectric base plate.
According to this method (19), since the ink chamber is formed by pasting the piezoelectric
base plate, which has been machined to have a groove, on the non-piezoelectric base
plate, and pasting another non-piezoelectric base plate onto the piezoelectric base
plate, an ink chamber can be formed at a low cost and with a high precision owing
to the ease of the positional adjustment of the ink chamber.
(20) The method of manufacturing an ink jet head or an ink jet described in one of
(17) to (19), further comprising a step of providing an electrode on the non-piezoelectric
base plate.
According to this method (21), by providing an electrode on the non-piezoelectric
base plate, the electrical connection to an electrode on the piezoelectric base plates
can be carried out through the electrode on the non-piezoelectric base plate, the
electrical connection with the external power source can be done easily and the efficiency
of operation is also improved.
(21) The method of manufacturing an ink jet head or an ink jet described in one of
(17) to (20), wherein the ink chamber is formed in multi-stages.
According to this method (21), since the ink chamber is formed in multi-stages, it
can carry out a more high-speed and high-quality image recording and can improve resolution
of the image with multiple nozzles of the multi-stage ink chamber.
(22) The method of manufacturing an ink jet head or an ink jet described in one of
(17) to (21), wherein the piezoelectric base plates are shaped in a flat surface or
a curved surface.
According to this method (22), the ink jet head is of low cost owing to the flat surface
piezoelectric base plates, or since the amount of deformation of the space forming
the ink chamber can be made large by the curved surface, a high-quality image recording
can be conducted at a high-speed.
(23) The method of manufacturing an ink jet head or an ink jet described in one of
(17) to (22), wherein the piezoelectric base plates have at least two lamination layers
which have different lengths in the layer laminating direction.
According to this method (23), because the piezoelectric base plates have at least
two layers which have different lengths in the layer laminating direction, the shape
of the space making up the ink chamber can be deformed in a manner corresponding to
the position of a nozzle hole, and ink can be jetted from the nozzle hole more efficiently.
(24) The method of manufacturing an ink jet head or an ink jet described in one of
(17) to (23), wherein the piezoelectric base plates have at least one layer made of
a non-piezoelectric material.
According to this method (24), because the piezoelectric base plates have at least
one layer made of a non-piezoelectric material, ink can be jetted from a nozzle hole
efficiently by deforming the shape of the space making up the ink chamber variously.
(25) A method of manufacturing an ink jet head or an ink jet which jets ink from nozzle
holes by applying an electric voltage to an electrode to deform an ink chamber partitioned
by partition walls, comprising steps by providing a plurality of piezoelectric base
plates which have been given polarization side by side on a non-piezoelectric base
plate, machining the piezoelectric base plate so as to form grooves, and thereafter
providing another non-piezoelectric base plate on the piezoelectric base plates so
that a plurality of ink chambers which are partitioned by partition walls are provided.
According to this method (25), since a plurality of piezoelectric base plates which
have been given polarization are provided side by side on a non-piezoelectric base
plate, the piezoelectric base plate is machined so as to form grooves, and thereafter
another non-piezoelectric base plate is provided on the piezoelectric base plates
so that a plurality of ink chambers which are partitioned by partition walls are provided,
ink chambers can be formed without lowering positional precision; hence, a high-precision
long-sized line head can be obtained at a low cost.
(26) The method of manufacturing an ink jet head or an ink jet described in (25),
wherein the grooves are formed at the connecting portions of the plurality of piezoelectric
base plates.
According to this structure (26), because the grooves are formed at the connecting
portions of the plurality of piezoelectric base plates, the positional precision of
the ink chamber can be improved further more.
(27) A method of manufacturing an ink jet head or an ink jet which jets ink from nozzle
holes by applying an electric voltage to an electrode to deform an ink chanter partitioned
by partition walls, comprising steps by laminating a piezoelectric base plate comprising
at least two layers of a piezoelectric material which have different polarizing directions
opposite to each other on a non-piezoelectric base plate, machining the piezoelectric
base plate so as to form grooves, and thereafter providing another non-piezoelectric
base plate on the piezoelectric base plates so that a plurality of ink chambers which
are partitioned by partition walls are provided.
According to this method (27), since a piezoelectric base plate comprising at least
two layers of a piezoelectric material which have different polarizing directions
opposite to each other is laminated on a non-piezoelectric base plate, the piezoelectric
base plate is machined so as to form grooves, and thereafter another non-piezoelectric
base plate is provided on the piezoelectric base plates so that a plurality of ink
chambers which are partitioned by partition walls are provided, ink chambers can be
formed without deviation of grooves in the piezoelectric base plates, a high-precision
line head can be obtained at a low cost.
(28) A method of manufacturing an ink jet head or an ink jet which jets ink from nozzle
holes by applying an electric voltage to an electrode to deform an ink chamber partitioned
by partition walls, comprising steps by laminating a piezoelectric base plate comprising
at least two layers of a piezoelectric material which have different polarizing directions
opposite to each other on a non-piezoelectric base plate, machining the piezoelectric
base plate so as to form grooves, and thereafter providing another non-piezoelectric
base plate on the piezoelectric base plates so that a plurality of ink chambers which
are partitioned by partition walls are provided.
According to this method (28), since a piezoelectric base plate comprising at least
two layers of a piezoelectric material which have different polarizing directions
opposite to each other is laminated on a non-piezoelectric base plate, the piezoelectric
base plate is machined so as to form grooves, and thereafter another non-piezoelectric
base plate is provided on the piezoelectric base plates so that a plurality of ink
chambers which are partitioned by partition walls are provided, ink chambers can be
formed without deviation of grooves in the piezoelectric base plates, a high-precision
long-sized line head can be obtained at a low cost.
(29) The method of manufacturing an ink jet head or an ink jet described in (28),
wherein the grooves are formed at the connecting portions of the piezoelectric base
plates.
According to this method (29), because the grooves are formed at the connecting portions
of the plurality of piezoelectric base plates, the ink jet head in which the positional
precision of the ink chamber can be improved further more, can be manufactured.
(30) The method of manufacturing an ink jet head or an ink jet described in one of
(17) through (29), wherein the piezoelectric base plates is made of a non-metallic
material.
According to this method (30), since the piezoelectric base plates is made of a non-metallic
material, the ink jet head in which the partition walls of the ink chamber can be
deformed more reliably, can be manufactured.
(31) The method of producing an ink jet head or an ink jet described in one of (17)
through (29), wherein the material of the non-metallic material is at least one selected
from alumina, aluminum nitride, zirconia, silicon, silicon nitride, silicon carbide,
and quartz.
According to this method (12), since the material of the non-metallic material is
at least one selected from alumina, aluminum nitride, zirconia, silicon, silicon nitride,
silicon carbide, and quartz, the ink jet head in which the piezoelectric base plates
can be reliably supported even if the partition walls of an ink chamber are deformed,
can be manufactured.
(32) The method of producing an ink jet head or an ink jet described in one of (17)
through (31), wherein a surface roughness of the bonded surfaces between the non-piezoelectric
base plate and the piezoelectric base plates is not larger than 1.0 µm.
According to this method (32), since a surface roughness of the bonded surfaces between
the non-piezoelectric base plate and the piezoelectric base plates is not larger than
1.0 µm, the ink jet head in which it is possible to prevent a soft high molecular
adhesive (for example, epoxy resin) from entering into the concave portions on the
bonded surfaces, the film thickness of the adhesive is practically limited to a minimum,
and it is possible to avoid the lowering of sensitivity and the rise of the electric
voltage owing to the lowering of the driving force of the piezoelectric base plates,
can be manufactured.
(33) The method of producing an ink jet head or an ink jet described in one of (17)
through (31), wherein a surface roughness of the bonded surfaces between piezoelectric
materials of the piezoelectric base plates having at least two layers of the piezoelectric
materials is not larger than 1.0 µm.
According to this method (33), since a surface roughness of the bonded surfaces between
piezoelectric materials of the piezoelectric base plates having at least two layers
of the piezoelectric materials is not larger than 1.0 µm, the ink jet head in which
it is possible to prevent a soft high molecular adhesive (for example, epoxy resin)
from entering into the concave portions on the bonded surfaces, the film thickness
of the adhesive is practically limited to a minimum, and it is possible to avoid the
lowering of sensitivity and the rise of the electric voltage owing to the lowering
of the driving force of the piezoelectric base plates, can be manufactured.
(34) The method of producing an ink jet head or an ink jet described in one of (17)
through (33), wherein the bonded surfaces between the non-piezoelectric base plate
and the piezoelectric base plates are subjected to plasma treatment or UV treatment.
According to this method (34), since the bonded surfaces between the non-piezoelectric
base plate and the piezoelectric base plates are subjected to plasma treatment or
UV treatment, the ink jet head in which organic contaminants can be cleaned and removed
and wetting ability of the surfaces for the adhesive is improved over the whole surface
to eliminate poor bonding such as minute bubble remains, and owing to it, poor driving
for the piezoelectric base plates can be eliminated, can be manufactured.
(35) The method of producing an ink jet head or an ink jet described in one of (17)
through (33), wherein the bonded surfaces between piezoelectric material layers of
the piezoelectric base plates having at least two layers of the piezoelectric material
are subjected to plasma treatment or UV treatment.
According to this structure (35), since the bonded surfaces between piezoelectric
material layers of the piezoelectric base plates having at least two layers of the
piezoelectric material are subjected to plasma treatment or UV treatment, the ink
jet head in which organic contaminants can be cleaned and removed and wetting ability
of the surfaces for the adhesive is improved over the whole surface to eliminate poor
bonding such as minute bubble remains, and owing to it, poor driving for the piezoelectric
base plates can be eliminated, can be manufactured.
BRIEF DESCRIPTION OF THE DRAWINGS
Fig. 1 is a perspective view of an ink jet head of the chevron type;
Fig. 2 is the front view of an ink jet head of the chevron type;
Fig. 3 is a cross-sectional view of an ink jet head of the chevron type;
Figs. 4(a) to 4(c) are drawings showing the manufacture process of an ink jet head of the chevron type;
Figs. 5(a) and 5(b) are drawing showing the manufacture process of an ink jet head of the chevron type in another embodiment;
Figs. 6(a) and 6(b) are the front view of an ink jet head of the chevron type in another embodiment;
Figs. 7(a) and 7(b) are the front view of an ink jet head of the chevron type in further another embodiment;
Figs. 8(a) and 8(b) are the front view of an ink jet
head of the chevron type in another embodiment;
Figs. 9(a) and 9(b) are the front view of an ink jet head of the chevron type in another embodiment;
Figs. 10(a) and 10(b) are the front view of an ink jet head of the chevron type in another embodiment;
Figs. 11(a) and 11(b) are the front view of an ink jet head of the chevron type in another embodiment;
Figs. 12(a) to 12(c) are drawings showing an ink jet head of the chevron type;
Fig. 13 is a cross-sectional view showing an ink jet head of the chevron type;
Figs. 14(a) and 14(b) are drawings showing the driven state of an ink jet head of the chevron type;
Figs. 15(a) to 15(c) are drawings showing the manufacturing process of an ink jet head.
Figs. 16(a) and 16(b) are drawing showing the mode of polarization in opposite directions in a plate composed of two layers of piezoelectric material; and
Figs. 17(a) and 17(b) are drawings showing the mode of polarization in opposite directions in a plate composed of two layers of piezoelectric material.
Fig. 18 is a perspective view of an ink jet head.
Figs. 19(a) and 19(b) are lateral sectional view of an ink jet head.
Fig. 20 is a longitudinal sectional views of an ink jet head.
Figs. 21(a) and 21(b) are diagrams showing the structure of an ink chamber of an ink jet head.
Figs. 22(a) and 22(b) are sectional views of an ink jet head.
Figs. 23(a) to 23(c) are diagrams showing how an electrode of an ink jet head is formed.
Fig. 24 is a diagram showing how an electrode of an ink jet head is formed.
Figs. 25(a) and 25(b) are diagrams showing how a piezoelectric element is deformed.
Fig. 26 is a perspective view of an ink jet head constituted by connecting plural head units.
Fig. 27 is a longitudinal sectional view of a conventional ink jet head.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
Ra of piezoelectric ceramic plate [µm] | Ra of non-piezoelectric ceramic plate [µm]. | ||||
2.0 | 1.0 | 0.5 | 0.3 | 0.1 | |
2.0 | 27V | 25V | 23V | ||
C | C | C | C | ||
1.0 | 25V | 20V | |||
C | A | ||||
0.5 | 19V | ||||
A | |||||
0.3 | 23V | 18V | |||
C | AA | ||||
0.1 | 17V | ||||
C | AA |
(B-1) An ink jet head in which plural ink chambers and air chambers are formed alternately
on a head main body of polarized piezoelectric element by dividing with walls, and
voltage is impressed on an electrode on the head main body to make the walls forming
the ink chamber to be subjected to shear deformation so that ink may be jetted from
an orifice, wherein the head main body has an orifice to jet ink on the outlet side
of the ink chamber and has an ink guiding inlet at the position opposing the orifice
on the inlet side of the ink chamber, an ink flow path through which ink is supplied
from the ink guiding inlet to the orifice is formed, and electrodes provided on both
walls forming the ink chamber are connected to signal lines by connecting with connection
electrodes, while, electrodes provided on both walls forming the air chamber are grounded
by connecting with connection electrodes.
In the invention described in (B-1), the shearing mode ink jet head has a merit that
the structure is simple and suitable for high density, and the ink chamber is hardly
damaged by ink, but it has a drawback that mutual interference is great between adjoining
ink chambers and high frequency jetting is impossible accordingly because ink is jetted
by shear deformation of the walls. However, when an ink chamber and an air chamber
are provided alternately, the mutual interference can be prevented and stable jetting
at high frequency is possible because air having low density absorbs vibration of
ink effectively.
Owing to the air chamber provided in the ink jet head, interference between adjoining
ink chambers is eliminated, thereby, a shallow groove which has so far been provided
at the rear end of an ink flow path for attenuating the residual pressure wave is
not necessarily needed, and it is possible to form a straight ink flow path from the
ink guiding inlet to the orifice, thus, air bubbles are easily ejected out of the
ink chamber, and no air bubble stays in the ink chamber.
Further, the straight ink flow path for supplying ink from the ink guiding inlet to
the orifice is formed in the ink chamber, and even if air bubbles which absorb pressure
impressed on ink for its jetting to make the jetting to be impossible enter the ink
flow path, the bubbles are easily ejected out of the ink flow path, resulting in no
fear that air bubbles stay in the ink flow path, thus, the simple structure eliminates
stay of air bubbles and makes it possible to jet ink stably at high speed.
In addition, the electrodes provided on both walls forming the ink chamber are connected
with signal lines by connecting with connection electrodes, and electrodes provided
on both walls forming the air chamber are grounded by connecting with connection electrodes,
which makes electrode formation and signal connection to be simple, and is advantageous
for high density.
Furthermore, owing to the ink chamber in which a straight ink flow path is formed,
it is possible to stick a resin nozzle plate to the end portion of the ink chamber,
and to make a hole by irradiating an excimer laser beam from the ink chamber side
after the sticking is hardened. Therefore, a merit for production is greater and positional
accuracy of the orifice is more improved, compared with an occasion where the orifice
is made by an excimer laser beam and then is positioned accurately to be stuck to
the ink chamber.
(B-2) The ink jet head described in (B-1) represented by a head unit in which plural
ink chambers and air chambers are formed alternately on a head main body of polarized
piezoelectric element by dividing with walls, and voltage is impressed on an electrode
on the head main body to make the walls forming the ink chamber to be subjected to
shear deformation so that ink may be jetted from an orifice, wherein a plurality of
the head units are connected to be structured.
In the invention according to (B-2) above, a plurality of the head units are connected
to be structured, and thereby, it is possible to obtain, at low cost, a long line
head which is highly accurate, in addition to (B-1), and it is possible to record
images of high image quality at high speed.
(B-3) The ink jet head described in (B-1) or (B-2), wherein the groove forming the
ink chamber has its portion having a fixed depth and a portion whose depth is gradually
reduced toward the orifice side.
In the invention described in (B-3), since the groove which forms the ink chamber
has its portion having a fixed depth and a portion whose depth is gradually reduced
toward the orifice side, no air bubbles stay at the portion on the part of the orifice,
and stable and high speed jetting of ink is possible accordingly.
(B-4) The ink jet head described in (B-1) or (B-2), wherein the ink guiding inlet
is a small hole whose sectional area is smaller than that of the straight ink flow
path.
In the invention described in (B-4), the ink guiding inlet is a small hole whose sectional
area is smaller than that of the straight ink flow path. and thereby, it is lightened
that pressure impressed on ink escapes from the ink guiding inlet, which makes it
possible to prevent that an amount of jetted ink and jetting speed are lowered.
(B-5) The ink jet head described in (B-1) or (B-2), wherein the ink guiding inlet
is a hole whose sectional area is mostly the same as that of the straight ink flow
path.
In the invention described in (B-5), the ink guiding inlet is a hole whose sectional
area is mostly the same as that of the straight ink flow path, and thereby, manufacturing
is easy, and no crooked portion exists, eliminating stay of air bubbles, and stable
and high speed jetting of ink is possible.
(B-6) A manufacturing method of an ink jet head wherein plural grooves are formed
on a head main body of a polarized piezoelectric element, electrodes are provided
on the inside of both walls of the groove, a cover base board is attached on the head
main body to close the top of the groove, the outlet side of the groove is closed
by a nozzle plate after the electrode is insulated, the inlet side thereof is closed
with a supply plate, a plurality of ink chambers and air chambers are formed alternately,
an orifice is formed on the nozzle plate at the position where the ink chamber is
formed, an ink guiding inlet is formed on the supply plate at the position where the
ink chamber is formed, a straight ink flow path for supplying ink from the ink guiding
inlet to the orifice is formed, the electrodes provided on both walls forming the
ink chamber are connected to signal lines by connecting with connection electrodes,
and the electrodes provided on both walls forming the air chamber are grounded by
connecting with connection electrodes.
In the invention described in (B-6), an electrode having the same shape can be used
both in the ink chamber and the air chamber because the electrode is insulated, and
the head structure, an electrode forming method and a signal connection method are
extremely simple because the electrode does not need to be connected between both
air chambers, bypassing the ink chamber, and it is easy to attain high density of
the head and to make a long head. In particular, it is easy to make a line head having
hundreds of ink chambers.
(B-7) A manufacturing method of an ink jet head wherein plural grooves are formed
on a head main body of a polarized piezoelectric element, electrodes are provided
on the inside of both walls of the groove, a cover base board is attached on the head
main body to close the top of the groove, a resin nozzle plate on which no orifice
is formed is cemented on the outlet side of the groove after the electrode is insulated,
then, an excimer laser beam is irradiated through the ink chamber to make an orifice,
an inlet side is covered with a supply plate, plural ink chambers and air chambers
are formed alternately, an ink guiding inlet is formed on the supply plate at the
position where the ink chamber is formed, a straight ink flow path for supplying ink
from the ink guiding inlet to the orifice is formed, electrodes provided on both walls
forming the ink chamber are connected to signal lines by connecting with connection
electrodes, and electrodes provided on both walls forming the air chamber are grounded
by connecting connection electrodes.
In the invention described in (B-7), since the ink flow path is straight, it is possible
to irradiate the excimer laser beam from the ink chamber side after cementing a nozzle
plate where no orifice is made on the end portion of the ink chamber to make an orifice,
which makes a complicated and precise positioning apparatus for an orifice to be unnecessary,
and improves sharply the productivity and reliability of heads.
Since the electrode is insulated, an electrode having the same shape can be used both
in the ink chamber and the air chamber, and the electrode does not need to be connected
between both air chambers, bypassing the ink chamber. Therefore, the head structure,
an electrode forming method and a signal connection method are extremely simple, and
it is easy to attain high density of the head and to make a long head. In particular,
it is easy to make a line head having hundreds of ink chambers.
(B-8) The manufacturing method of an ink jet head described in (B-6) or (B-7) represented
by a head unit in which plural ink chambers and air chambers are formed alternately
on a head main body of polarized piezoelectric element by dividing with walls, and
voltage is impressed on an electrode on the head main body to make the walls forming
the ink chamber to be subjected to shear deformation so that ink may be jetted from
an orifice, wherein a plurality of the head units are connected.
In the invention described in (B-8), since plural head units are connected to be structured,
it is possible to obtain, at low cost, a long line head which is highly accurate,
in addition to (B-6) or (B-7), and it is possible to record images of high image quality
at high speed.
(B-9) The manufacturing method of an ink jet head described in (B-7), wherein the
resin nozzle plate is made of polyimide, polyetherimide, polysulfone, polyethersulfone,
polyethylene terephthalate, or polycarbonate on which a hole can be made by an excimer
laser beam.
In the invention described in (B-9), the nozzle plate is made of resin such as polyimide,
polyetherimide, polysulfone, polyethersulfone, polyethylene terephthalate, or polycarbonate,
and it is possible to make an orifice at an accurate position on the nozzle plate
with an excimer laser beam.
(B-10) The manufacturing method of an ink jet head described in either one of (B-6)
- (B-9), wherein the groove on the head base board is formed through grinding by a
diamond grinder.
In the invention described in (B-10), the grooves on the head base board are made
through grinding by a diamond grinder, and they are formed to be in the same shape
and to be in parallel with each other, accordingly.
(B-11) A manufacturing method of the ink jet head described in either one of (B-6)
- (B-10) wherein the groove which forms the ink chamber has a portion having the fixed
depth and a portion where the depth is gradually reduced toward the orifice side.
In the invention described in (B-11), no air bubbles stay on the orifice side and
stable and high speed jetting of ink is possible, because the groove which forms the
ink chamber has a portion having the fixed depth and a portion where the depth is
gradually reduced toward the orifice side. The depth of the groove can be controlled
by raising the position of a dicing saw, and it can be formed easily.
(B-12) A manufacturing method of the ink jet head described in either one of (B-6)
- (B-11), wherein a protection film is provided on the top portion of each groove
on the head base board, then, metal which forms an electrode is evaporated from an
evaporation source located on a plane which forms a fixed angle with an extended plane
of the groove wall so that the metal may be deposited up to the fixed depth of the
groove wall, and then, the protection film is removed after the evaporation of the
metal to form an electrode.
In the invention described in (B-12), it is possible to form an electrode simply on
the groove wall, by evaporating metal which forms an electrode from an evaporation
source located on a plane which forms a fixed angle with an extended plane of the
groove wall to deposit the metal up to the fixed depth of the groove wall, and by
removing the protection film after the evaporation of the metal.
(B-13) A manufacturing method of the ink jet head described in either one of (B-6)
- (B-12), wherein a photosensitive resin layer is provided on the end portion at the
ink supply side on the head main body , and on the cover base board, then, at least
a part of the opening at the ink supply side on each groove and a portion where a
surface electrode is provided are masked through patterning, and then, metal which
forms an electrode is evaporated from an evaporation source located on a plane which
forms an acute angle with an extended plane of the groove bottom wall toward the cover
base board so that a connection electrode which communicates with the electrode provided
on each of both walls inside each groove may be formed.
In the invention described in (B-13), it is possible to form simply a connection electrode
which communicates with the electrode provided on each of both walls inside each groove,
by masking at least a part of the opening at the ink supply side on each groove and
a portion where a surface electrode is provided through patterning and by evaporating
metal which forms an electrode from an evaporation source located on a plane which
forms an acute angle with an extended plane of the groove bottom wall toward the cover
base board.
(B-14) A manufacturing method of the ink jet head described in either one of (B-6)
- (B-13), wherein a polyparaxylylene resin film is coated on the plane including the
electrodes provided on both walls inside each groove and the connection electrodes
communicating with the aforesaid electrodes, to insulate the electrodes and the connection
electrodes.
In the invention described in (B-14), it is possible to form a uniform film even on
the complicated head base body and to insulate securely the electrodes and the connection
electrodes, because the polyparaxylylene resin film is formed by a vapor phase polymerization
method.
two piezoelectric base plates given polarization;
two non-piezoelectric base plates, wherein the ink chamber is formed by being enclosed by the two piezoelectric base plates facing each other and the two non-piezoelectric base plates facing each other;
each of the two piezoelectric base plates comprising at least two lamination layers made of a piezoelectric material, wherein the two lamination layers are laminated such that the laminated surface is substantially parallel to the non-piezoelectric base plates and polarizing directions of the two lamination layers are opposite to each other; and
electrodes provided on surfaces of the piezoelectric base plates and the non-piezoelectric base plates, wherein the surfaces face the ink chamber.
a first non-piezoelectric base plate;
plural piezoelectric base plates which are given polarization and placed side by side on the first non-piezoelectric base plate, the plural piezoelectric base plates being provided with plural grooves; and
a second non-piezoelectric base plate mounted on the plural piezoelectric base plates so that the plural grooves form plural ink chambers.
forming the ink chamber by enclosing with two piezoelectric base plates given polarization arranged to face each other and two non-piezoelectric base plates arranged to face each other; and
providing electrodes on surfaces of the two piezoelectric base plates;
wherein each of the two piezoelectric base plates comprises at least two lamination
layers made of a piezoelectric material and the two lamination layers are laminated
such that the laminated surface is substantially parallel to the non-piezoelectric
base plates and polarizing directions of the two lamination layers are opposite to
each other.
pasting a piezoelectric base plate on a first non-piezoelectric base;
making plural grooves on the piezoelectric base plate pasted on the first non-piezoelectric base; and
pasting a second non-piezoelectric base on the piezoelectric base plate so as to cover the plural grooves.
making plural grooves on a piezoelectric base plate;
pasting the piezoelectric base plate having the plural grooves on a first non-piezoelectric base; and
pasting a second non-piezoelectric base on the piezoelectric base plate so as to cover the plural grooves.
providing plural piezoelectric base plates given polarization side by side on a first non-piezoelectric base plate;
making plural grooves on the plural piezoelectric base plates; and
mounting a second non-piezoelectric base plate on the plural piezoelectric base plates so as to cover the plural grooves so that the ink chambers divided by a partition wall are provided.
stacking a piezoelectric base plate comprising at two lamination layers made of piezoelectric materials whose polarizing directions are opposite to each other on a first non-piezoelectric base plate;
making plural grooves on the piezoelectric base plate with a predetermined interval; and
mounting a second non-piezoelectric base plate on the piezoelectric base plates so as to cover the plural grooves so that the ink chambers divided by a partition wall are provided.
(1) an ink jet head to jet ink from a nozzle hole by applying an electric voltage to an electrode so as to deform a shape of a space forming an ink chamber, comprising:
two piezoelectric base plates given polarization;
two non-piezoelectric base plates, wherein the ink chamber is formed by being enclosed by the two piezoelectric base plates facing each other and the two non-piezoelectric base plates facing each other;
each of the two piezoelectric base plates comprising at least two lamination layers made of a piezoelectric material, wherein the two lamination layers are laminated such that the laminated surface is substantially parallel to the non-piezoelectric base plates and polarizing directions of the two lamination layers are opposite to each other; and
electrodes provided on surfaces of the piezoelectric base plates and the non-piezoelectric base plates, wherein the surfaces face the ink chamber; and
(2) a sheet conveyor to convey the recording sheet
relatively to the ink jet head.(1) an ink jet head to jet ink from a nozzle hole by applying an electric voltage to an electrode so as to deform each of ink chambers divided by a partition wall, comprising:
a first non-piezoelectric base plate;
plural piezoelectric base plates which are given polarization and placed side by side on the first non-piezoelectric base plate and the plural piezoelectric base plates provided with plural grooves; and
a second non-piezoelectric base plate mounted on the plural piezoelectric base plates so that the plural grooves form plural ink chambers; and
(2) a sheet conveyor to convey the recording sheet relatively to the ink jet head.
forming the ink chamber by enclosing with two piezoelectric base plates given polarization arranged to face each other and two non-piezoelectric base plates arranged to face each other; and
providing electrodes on surfaces of the two piezoelectric base plates;
wherein each of the two piezoelectric base plates comprises at least two lamination
layers made of a piezoelectric material and the two lamination layers are laminated
such that the laminated surface is substantially parallel to the non-piezoelectric
base plates and polarizing directions of the two lamination layers are opposite to
each other.
providing plural piezoelectric base plates given polarization side by side on a first non-piezoelectric base plate;
making plural grooves on the plural piezoelectric base plates; and
mounting a second non-piezoelectric base plate on the plural piezoelectric base plates so as to cover the plural grooves so that the ink chambers divided by a partition wall are provided.
stacking a piezoelectric base plate comprising at two lamination layers made of piezoelectric materials whose polarizing directions are opposite to each other on a first non-piezoelectric base plate;
making plural grooves on the piezoelectric base plate with a predetermined interval; and
mounting a second non-piezoelectric base plate on the piezoelectric base plates so as to cover the plural grooves so that the ink chambers divided by a partition wall are provided.