Priority is claimed on Japanese Patent Application No. 2018-151729, filed on Aug. 10, 2018, the content of which is incorporated herein by reference.
The present disclosure relates to a liquid jet head and a liquid jet recording device.
A liquid jet recording device for performing a variety of types of printing is generally known. A liquid jet head of such a device is supplied with ink from a liquid container via a liquid supply pipe, and ejects the ink from nozzle holes of the liquid jet head toward the recording target medium. Thus, characters and images are recorded on the recording target medium.
Further, the liquid jet head is generally provided with a nozzle plate provided with the nozzle holes, and an actuator plate having a plurality of channels communicated with the nozzle holes. Each of the channels of the actuator plate is filled with the ink.
In the liquid jet head, when a voltage is applied to the actuator plate, the capacity of the channel varies. The ink is ejected from the nozzle hole using this variation.
The liquid jet head configured in such a manner is attached to a scanning device via a nozzle guard in some cases (see, e.g., JP-A-2018-051937 (PLT1), JP-A-2015-24516 (PLT2)). When attaching such a liquid jet head to the scanning device, the nozzle plate and the nozzle guard am bonded to each other.
Incidentally, in the liquid jet head, the nozzle plate is separated from the actuator plate, or a crack occurs in the actuator plate due to a stress caused by the heat when ejecting the ink in some cases. In such cases, when using the ink having electrical conductivity, there is a possibility that electrical short circuit occurs. As described above, in the related art, there is a problem that it is not easy to increase available ink types such as the ink having electrical conductivity. Therefore, it is desirable to provide the liquid jet head and the liquid jet recording device capable of increasing the available ink types.
The liquid jet head according to an embodiment of the present disclosure is provided with an actuator plate having a plurality of ejection grooves, a nozzle plate having nozzle holes communicated with the ejection grooves, and a nozzle guard having a rib adapted to support the nozzle plate, and a communication hole adapted to communicate each of the first nozzle holes and an outside with each other. The rib has contact with the nozzle plate at a position which fails to be opposed to an opening on the nozzle plate side of each of the ejection grooves.
A liquid jet recording device according to an embodiment of the disclosure is provided with the liquid jet head described above, and a containing section adapted to contain a liquid to be supplied to the liquid jet head.
According to the liquid jet head and the liquid jet recording device related to an embodiment of the disclosure, it is possible to increase the available ink types.
An embodiment of the present disclosure will hereinafter be described in detail with reference to the drawings. It should be noted dial the description will lie presented in the following order.
1. Embodiment (Inkjet Head, Printer)
2. Modified Example (Inkjet Head)
[Overall Configuration of Printer 1]
As shown in
(Carrying Mechanisms 2a, 2b)
The carrying mechanisms 2a, 2b are each a mechanism for carrying the recording paper P along the carrying direction d (an X-axis direction) as shown in
(Ink Tanks 3)
The ink tanks 3 are each a tank for containing the ink 9 to be supplied to the corresponding inkjet head A. The ink 9 corresponds to a specific example of the “liquid” in the present disclosure. The ink tanks 3 are each a tank for containing the ink 9 inside. As the ink tanks 3, there are disposed 4 types of tanks for individually containing 4 colors of ink 9, namely yellow (Y), magenta (M), cyan (C), and black (B), in this example as shown in
(Inkjet Heads 4)
The inkjet heads 4 are each a head for jetting (ejecting) the ink 9 shaped like a droplet from a plurality of nozzle holes (nozzle holes H1, H2) described later to the recording paper P to thereby perform recording of images, characters, and so on. As the ink jet heads 4, there are also disposed 4 types of heads for individually jetting the 4 colors of ink 9 respectively contained by the ink tanks 3Y, 3M, 3C and 3B described above in this example as shown in
It should be noted that the inkjet heads 4Y, 4M, 4C and 4B have the same configuration except the color of the ink 9 used therein, and are therefore collectively referred to as inkjet heads 4 in the following description. Further, the detailed configuration of the inkjet heads 4 will be described later (
(Circulation Mechanism 5)
The circulation mechanism 5 is a mechanism for circulating the ink 9 between the inside of the ink tanks 3 and the inside of the inkjet heads 4.
The circulation channels 50 are each a flow channel of circulating between the inside of the inkjet head 4 and the outside (the inside of the ink tank 3) of the inkjet head 4, and are arranged that the ink 9 circularly flows through the circulation channel 50. The circulation channels 50 each have, for example, a flow channel 50a as a part extending from the ink tank 3 to the inkjet head 4, and a flow channel 50b extending from the inkjet head 4 to the ink tank 3. In other words, the flow channel 50a is a flow channel through which the ink 9 flows from the ink tank 3 toward the inkjet head 4. Further, the flow channel 50b is a flow channel through which the ink 9 flows from the inkjet head 4 toward the ink tank 3.
The liquid feeding pump 52a is disposed on the flow channel 50a between the ink tank 3 and the inkjet head 4. The liquid feeding pump 52a is a pump for feeding the ink 9 contained inside the ink tank 3 to the inside of the inkjet head 4 via the flow channel 50a. The liquid feeding pump 52b is disposed on the flow channel 50b between the inkjet head 4 and the ink tank 3. The liquid feeding pump 52b is a pump for feeding the ink 9 contained inside the inkjet head 4 to the inside of the ink tank 3 via the flow channel 50b.
(Scanning Mechanism 6)
The scanning mechanism 6 is a mechanism for making the inkjet heads 4 perform a scanning operation along the width direction (the Y-axis direction) of the recording paper P. As shown in
The pulleys 631a, 631b are respectively disposed in areas corresponding to the vicinities of both ends in each of the guide rails 61a, 61b along the Y-axis direction. To the endless belt 632, there is coupled the carriage 62. On the carriage 62, the four types of inkjet heads 4Y, 4M, 4C and 4B described above are disposed so as to be arranged side by side along the Y-axis direction. It should be noted that such a scanning mechanism 6 and the carrying mechanisms 2a, 2b described above constitute a moving mechanism for moving the inkjet heads 4 relatively to the recording paper P.
[Detailed Configuration of Inkjet Heads 4]
Then, the detailed configuration example of the inkjet heads 4 will be described with reference to
The inkjet heads 4 according to the present embodiment are each an inkjet head of a so-called side-shoot type for ejecting the ink 9 from a central part in the extending direction (the Y-axis direction) of each of a plurality of channels (channels C1, C2) described later. Further, the inkjet heads 4 are each an inkjet head of a circulation type which uses the circulation mechanism 5 (the circulation channel 50) described above to thereby use the ink 9 while circulating the ink 9 between the inkjet head 4 and the ink tank 3.
As shown in
(Nozzle Plate 41)
The nozzle plate 41 is a plate used in the inkjet head 4. The nozzle plate 41 has a resin substrate or a metal substrate having a thickness of, for example, about 50 μm, and is bonded to a lower surface of the actuator plate 42 as shown in
The nozzle column 411 has a plurality of nozzle holes H1 formed in alignment with each other at predetermined intervals along the X-axis direction. The nozzle holes H1 each correspond to a specific example of a “first nozzle hole” in the present disclosure. These nozzle holes H1 are provided one-to-one to the ejection channels C1e described later. These nozzle holes H1 each penetrate the nozzle plate 41 along the thickness direction (the Z-axis direction) of the nozzle plate 41, and are communicated with the respective ejection channels C1e in the actuator plate 42 described later as shown in, for example,
The nozzle column 412 similarly has a plurality of nozzle holes H2 formed in alignment with each other at predetermined intervals along the X-axis direction. The nozzle holes H2 each correspond to a specific example of a “second nozzle hole” in the present disclosure. These nozzle holes H2 are provided one-to-one to the ejection channels C2e described later. Each of these nozzle holes R2 also penetrates the nozzle plate 41 along the thickness direction of the nozzle plate 41, and is communicated with the ejection channel C2e in the actuator plate 42 described later as shown in, for example,
(Actuator Plate 42)
The actuator plate 42 is a plate formed of a piezoelectric material such as lead zirconate titanate (PZT). The actuator plate 42 is formed by, for example, a so-called chevron type actuator formed by stacking two piezoelectric substrates different in polarization direction in the thickness direction (the Z-axis direction) on one another. It should be noted that it is also possible for the actuator plate 42 to be a so-called cantilever type actuator formed of a single piezoelectric substrate having the polarization direction set to one direction along the thickness direction (the Z-axis direction). Further, as shown in
As shown in
As shown in
Here, as shown in
Similarly, the channels C2 are configured including the ejection channels C2e for ejecting the ink 9, and non-ejection channels C2d not ejecting the ink 9. The ejection channels C2e each correspond to a specific example of a “second ejection groove” in the present disclosure. The non-ejection channels C2d each correspond to a specific example of a “second non-ejection groove” in the present disclosure. In the channel column 422, the ejection channels C2e and the non-ejection channels C2d are alternately disposed along the X-axis direction. Each of the ejection channels C2e is an ejection groove communicated with the nozzle hole H2 in the nozzle plate 41. In other words, each of the ejection channels C2e forms the groove section penetrating the actuator plate 42. In contrast, each of the non-ejection channels C2d is a non-ejection groove which is not communicated with the nozzle hole H2, and is covered with an upper surface of the nozzle plate 41 from below. Each of the non-ejection channels C2d can form the groove section penetrating the actuator plate 42, or can form the groove section having a recessed shape not penetrating the actuator plate 42.
Further, as shown in
Each of the ejection channels C1e, C2e and each of the non-ejection channels C1d, C2d are formed by cutting the piezoelectric substrate using, for example, a dicing blade (also called a diamond blade) obtained by embedding cutting abrasive grains made of diamond or the like on the outer circumference of a disk. Each of the ejection channels C1e, C2e is formed by cutting the piezoelectric substrate from an upper surface (a surface corresponding to the upper side in the actuator plate 42) toward a lower surface (a surface corresponding to the lower side in the actuator plate 42) using, for example, the dicing blade. Each of the non-ejection channels C1d, C2d is formed by cutting the piezoelectric substrate from the lower surface toward the upper surface using, for example, the dicing blade.
On this occasion, the cross-sectional shape in the longitudinal direction of each of the ejection channels C1e, C2e is an inverted trapezoidal shape as shown in, for example,
The opening h5 of each of the ejection channels C1e formed on the lower surface side of the actuator plate 42 is made smaller than the opening h1 of the ejection channel C1e formed on the upper surface side of the actuator plate 42 as shown in, for example,
The opening h7 of each of the ejection channels C2e formed on the lower surface side of the actuator plate 42 is made smaller than the opening h4 of the ejection channel C2e formed on the upper surface side of the actuator plate 42 as shown in, for example,
The opening h6 of each of the non-ejection channels C1d formed on the lower surface side of the actuator plate 42 is made larger than the opening h2 of the non-ejection channel C1d formed on the upper surface side of the actuator plate 42 as shown in, for example,
The opening h8 of each of the non-ejection channels C2d formed on the lower surface side of the actuator plate 42 is made larger than the opening h3 of the non-ejection channel C2d formed on the upper surface side of the actuator plate 42 as shown in, for example,
The ejection channels C1e of the channel column 421 and the non-ejection channels C2d of the channel column 422 are respectively arranged along the Y-axis direction as shown in, for example,
Further, the non-ejection channels C1d of the channel column 421 and the ejection channels C2e of the channel column 422 are respectively arranged along the Y-axis direction as shown in, for example,
Here, as shown in
Further, the inkjet heads 4 each have a bonding layer 46A for fixing the nozzle plate 41 and the actuator plate 42 to each other between the nozzle plate 41 and the actuator plate 42. The bonding layer 46A is formed of an adhesive. In the case in which the nozzle plate 41 is formed of metal, the bonding layer 46A prevents the electrical short circuit between the drive electrodes Ed and the nozzle plate 41. Further, the inkjet heads 4 each have a bonding layer 46B for fixing the actuator plate 42 and the cover plate 43 to each other between the actuator plate 42 and the cover plate 43. The bonding layer 46B is formed of an adhesive. In the case in which the cover plate 43 is formed of metal, the bonding layer 46B prevents the electrical short circuit between the drive electrodes Ed and the cover plate 43. It should be noted that in the case in which the cantilever type described above is used as the actuator plate 42, each of the drive electrodes Ed (the common electrodes Edc and the active electrodes Eda) is not formed beyond an intermediate position in the depth direction (the Z-axis direction) in the inner side surface of the drive wall Wd.
The pair of common electrodes Edc opposed to each other in the same ejection channel C1e (or the same ejection channel C2e) are electrically connected to each other in a common terminal Tc. Further, the pair of active electrodes Eda opposed to each other in the same non-ejection channel C1d (or the same non-ejection channel C2d) are electrically separated from each other. In contrast, the pair of active electrodes Eda opposed to each other via the ejection channel C1e (or the ejection channel C2e) are electrically connected to each other in an active terminal Ta.
Here, on each of an end edge adjacent to the channel column 421 and an end edge adjacent to the channel column 422 in the actuator plate 42, there is mounted a flexible printed circuit board 44 for electrically connecting the drive electrodes Ed and a control section (a control section 40 described later in the inkjet head 4) to each other. Interconnection patterns (not shown) provided to the flexible printed circuit boards 44 are electrically connected to the common terminals Tc and the active terminals Ta described above. Thus, it is arranged that the drive voltage is applied to each of the drive electrodes Ed from the control circuit 40 described later via the flexible printed circuit board 44.
(Cover Plate 43)
As shown in
As shown in
The entrance side common ink chamber 431 is formed in the vicinity of an inner end part along the Y-axis direction in each of the channels C1, C2, and forms a groove section having a recessed shape. To the entrance side common ink chamber 431, there is coupled a supply side flow channel (not shown) of a flow channel plate, and the ink 9 flows into the entrance side common ink chamber 431 via the supply side flow channel of the flow channel plate. In areas corresponding respectively to the ejection channels C1e, C2e in the entrance side common ink chamber 431, there are respectively formed supply slits (not shown) penetrating the cover plate 43 along the thickness direction (the Z-axis direction) of the cover plate 43.
As shown in
In such a manner, the entrance side common ink chamber 431 and the exit side common ink chambers 432, 433 are each communicated with the ejection channels C1e, C2e via the supply slits and the discharge slits, respectively, on the one hand, but are not communicated with the non-ejection channels C1d, C2d on the other hand. Specifically, the non-ejection channels C1d, C2d are closed by the cover plate 43 on the upper surface of the actuator plate 42.
(Nozzle Guard 47)
As shown in, for example,
The nozzle guard 47 is a plate formed to have a rectangular plate-like shape elongated in the X-axis direction so as to correspond to the shape of the actuator plate 42. The nozzle guard 47 is attached to the lower surface of the nozzle plate 41 via a bonding layer 46D formed of an adhesive. In other words, the bonding layer 46D bonds the nozzle plate 41 and the nozzle guard 47 to each other. The bonding layer 46D corresponds to a specific example of a “first bonding layer” and a “second bonding layer” in the present disclosure. On the upper surface (the surface on the nozzle plate 41 side) of the nozzle guard 47, there is erected a peripheral wall part.
The nozzle guard 47 has communication holes H3, H4 for exposing the nozzle holes H1, H2 of the nozzle columns 411, 412 downward at places corresponding respectively to the nozzle columns 411, 412 of the nozzle plate 41. The communication hole H3 corresponds to a specific example of a “first communication hole” in the present disclosure. The communication hole H4 corresponds to a specific example of a “second communication hole” in the present disclosure. The communication hole H3 communicates the nozzle holes H1 and the outside with each other. The communication hole H4 communicates the nozzle holes H2 and the outside with each other. Each of the communication holes H3, H4 is formed to have, for example, an elliptical shape elongated in the X-axis direction.
The nozzle guard 47 further has the ribs 47A, 47B for supporting the nozzle plate 41, and at the same time achieving positioning between the nozzle plate 41 and the nozzle guard 47 (the scanning mechanism 6 by extension). The rib 47A corresponds to a specific example of a “first rib” in the present disclosure. The rib 47B corresponds to a specific example of a “second rib” in the present disclosure. The ribs 47A, 47B each have contact with the lower surface of the nozzle plate 41. The rib 47A is formed along an edge of the communication hole H3, and is formed along, for example, a place adjacent to the communication hole H4 in the edge of the communication hole H3. Meanwhile, the rib 47B is formed along an edge of the communication hole H4, and is formed along, for example, a place adjacent to the communication hole H3 in the edge of the communication hole H4. A predetermined gap is disposed between the rib 47A and the rib 47B. The gap between the rib 47A and the rib 47B is made wider than, for example, the width of the rib 47A or the rib 47B.
The bonding layer 46D is disposed between the nozzle plate 41 and the nozzle guard 47, and bonds, for example, the nozzle plate 41 and the rib 47A to each other, and at the same time bonds the nozzle plate 41 and the rib 47B to each other. It should be noted that the bonding layer 46D can have contact with an upper surface of the rib 47A, and is not required to have contact with the upper surface of the rib 47A. Further, the bonding layer 46D can have contact with an upper surface of the rib 47B, and is nor required to have contact with the upper surface of the rib 47B. The bonding layer 46D is disposed in, for example, the gap between the rib 47A and the rib 47B to separate an area on the nozzle hole H1 side and an area on the nozzle hole H2 side from each other on the lower surface of the nozzle plate 41.
Both of the ribs 47A, 47B have contact with the nozzle plate 41 at positions not opposed to the openings h5 on the nozzle plate 41 side of the ejection channels C1e, and positions not opposed to the openings h7 on the nozzle plate 41 side of the ejection channels C2e. Specifically, both of the ribs 47A, 47B have contact with an area between the openings h5 of the ejection channels C1e and the openings h7 of the ejection channels C2e in the lower surface of the nozzle plate 41. The rib 47A has contact with the nozzle plate 41 at positions opposed to the openings h6 on the nozzle plate 41 side of the non-ejection channels C1d, and positions not opposed to the openings h8 on the nozzle plate 41 side of the non-ejection channels C2d. The rib 47B has contact with the nozzle plate 41 at positions not opposed to the openings h6 on the nozzle plate 41 side of the non-ejection channels C1d, and positions opposed to the openings h8 on the nozzle plate 41 side of the non-ejection channels C2d.
(Control Section 40)
Here, each of the inkjet heads 4 according to the present embodiment is also provided with the control section 40 for performing control of a variety of operations in the printer 1 as shown in
[Basic Operation of Printer 1]
In the printer 1, the recording operation (a printing operation) of images, characters, and so on to the recording paper P is performed in the following manner. It should be noted that as an initial state, it is assumed that the four types of ink tanks 3 (3Y, 3M, 3C and 3B) shown in
In such an initial state, when operating the printer 1, the grit rollers 21 in the carrying mechanisms 2a, 2b each rotate to thereby carry the recording paper P along the carrying direction d (the X-axis direction) between the grit rollers 21 and the pinch rollers 22. Further, at the same time as such a carrying operation, the drive motor 633 in the drive mechanism 63 rotates each of the pulleys 631a, 631b to thereby operate the endless belt 632. Thus, the carriage 62 reciprocates along the width direction (the Y-axis direction) of the recording paper P while being guided by the guide rails 61a, 61b. Then, on this occasion, the four colors of ink 9 are appropriately ejected on the recording paper P by the respective inkjet heads 4 (4Y, 4M, 4C and 4B) to thereby perform the recording operation of images, characters, and so on to the recording paper P.
[Detailed Operation in Inkjet Heads 4]
Then, the detailed operation (the jet operation of the ink 9) in the inkjet heads 4 will be described with reference to
Firstly, when the reciprocation of the carriage 62 (see
As described above, due to the flexion deformation of the pair of drive walls Wd, the capacity of the ejection channel C1e, C2e increases. Further, due to the increase in the capacity of the ejection channel C1e, C2e, it results in that the ink 9 retained in the entrance side common ink chamber 431 is induced into the ejection channel C1e, C2e (see
Subsequently, the ink 9 having been induced into the ejection channel C1e, C2e in such a manner turns to a pressure wave to propagate to the inside of the ejection channel C1e, C2e. Then, the drive voltage to be applied to the drive electrodes Ed becomes 0 (zero) V at the timing at which the pressure wave has reached the nozzle hole H1, H2 of the nozzle plate 41. Thus, the drive walls Wd are restored from the state of the flexion deformation described above, and as a result, the capacity of the ejection channel C1e, C2e having once increased is restored again (see
When the capacity of the ejection channel C1e, C2e is restored in such a manner, the internal pressure of the ejection channel C1e, C2e increases, and the ink 9 in the ejection channel C1e, C2e is pressurized. As a result, the ink 9 having a droplet shape is ejected (see
[Functions and Advantages]
Then, the functions and the advantages in the inkjet head 4 and the printer 1 according to the embodiment of the present disclosure will be described.
The nozzle plate is required to be positioned with respect to the mechanism (the scanning mechanism) for making the inkjet head perform the scanning operation. Therefore, there is developed a technology of providing the rib which protrudes from the nozzle guard toward the nozzle plate to have contact with the nozzle plate. The nozzle plate is fixed to the nozzle guard via an adhesive while having contact with the rib of the nozzle guard.
Here, if the material of the nozzle guard and the material of the actuator plate are different from each other, the expansion deformation amount and the contraction deformation amount due to the variation in heat are also different therebetween. Due to the difference in deformation amount, a stress is applied to the nozzle plate from the actuator plate and the nozzle guard, and thus, a flexure occurs at a part of the nozzle plate having contact with the rib. As a result, the nozzle plate is separated from the actuator plate in some cases. Further, if a warp occurs in the actuator plate, a crack occurs in the actuator plate in some cases. In the case in which the separation of the nozzle plate or the crack in the actuator plate occurs, there is a possibility that ink leakage occurs. Further, in the case of using the ink having electrical conductivity, there is also a possibility that the electrical short circuit is incurred.
In contrast, in the present embodiment, the rib 47A has contact with the nozzle plate 41 at the positions not opposed to the openings h5 on the nozzle plate 41 side of the ejection channels C1e. Thus, even in the case in which the flexure occurs at the part having contact with the rib 47A of the nozzle plate 41 due to the fact that the stress caused by the heat when performing the ejection is applied to the nozzle plate 41 from the actuator plate 42 and the nozzle guard 47, it is difficult for the ink leakage from the ejection channels C1e to occur. As a result, it is possible to increase the available ink types such as the ink having electrical conductivity.
Further, in the present embodiment, the rib 47A is formed along the edge of the communication hole H3. Thus, it is possible to reduce the possibility of the ink leakage to the gap between the nozzle plate 41 and the nozzle guard 47 using the rib 47A. As a result, it is possible to prevent the ink from being retained in the gap between the nozzle plate 41 and the nozzle guard 47 to thereby reduce the loss of the medium due to dripping of the ink.
Further, in the present embodiment, there is provided the bonding layer 46D for bonding the rib 47A and the nozzle plate 41 to each other. Thus, it is possible to reduce the possibility of the ink leakage to the gap between the nozzle plate 41 and the nozzle guard 47 using the bonding layer 46D. As a result, it is possible to prevent the ink from being retained in the gap between the nozzle plate 41 and the nozzle guard 47 to thereby reduce the loss of the medium due to dripping of the ink.
Further, in the present embodiment, both of the ribs 47A, 47B have contact with the nozzle plate 41 at the positions not opposed to the openings h5 on the nozzle plate 41 side of the ejection channels C1e, and the positions not opposed to the openings h7 on the nozzle plate 41 side of the ejection channels C2e. Thus, even in the case in which the flexure occurs at the parts having contact with the ribs 47A, 47B of the nozzle plate 41 due to the fact that the stress caused by the heat when performing the ejection is applied to the nozzle plate 41 from the actuator plate 42 and the nozzle guard 47, it is difficult for the ink leakage from the ejection channels C1e and the ejection channels C2e to occur. As a result, it is possible to increase the available ink types such as the ink having electrical conductivity.
Further, in the present embodiment, there is provided the bonding layer 46D for bonding the rib 47B and the nozzle plate 41 to each other. Thus, it is possible to reduce the possibility of the ink leakage to the gap between the nozzle plate 41 and the nozzle guard 47. As a result, it is possible to increase the available ink types such as the ink having electrical conductivity.
Further, in the present embodiment, the opening h6 of each of the non-ejection channels C1d and the opening h8 of each of the non-ejection channels C2d extend along the Y-axis direction longer than the opening h5 of each of the ejection channels C1e and the opening h7 of each of the ejection channels C2e. Thus, since it is possible to increase the capacity of a part closer to the nozzle plate 41 of each of the non-ejection channels C1d and the non-ejection channels C2d, it is possible to more easily perform the ejection operation of the ejection channels C1e and the ejection channels C2e. Further, the rib 47A has contact with the nozzle plate 41 at the positions opposed to the openings h6 on the nozzle plate 41 side of the non-ejection channels C1d, and the positions not opposed to the openings h8 on the nozzle plate 41 side of the non-ejection channels C2d. The rib 47B has contact with the nozzle plate 41 at the positions not opposed to the openings h6 on the nozzle plate 41 side of the non-ejection channels C1d, and the positions opposed to the openings h8 on the nozzle plate 41 side of the non-ejection channels C2d. Thus, even in the case in which the flexure occurs at the parts having contact with the rib 47A and the rib 47B of the nozzle plate 41 due to the fact that the stress caused by the heat when performing the ejection is applied to the nozzle plate 41 from the actuator plate 42 and the nozzle guard 47, the ink leakage from the non-ejection channels C1d and the non-ejection channels C2d not filled with the ink does not occur. Therefore, it is possible to increase the available ink types such as the ink having electrical conductivity without hindering the ejection operation.
Further, in the present embodiment, the gap between the rib 47A and the rib 47B is made wider than the width of the rib 47A or the rib 47B. Thus, it is possible to reduce the influence of the stress caused by the heat when performing the ejection on the nozzle plate 41 compared to the case of using, for example, a single rib having a width roughly equivalent to the sum of the widths of the rib 47A and the rib 47B instead of the rib 47A and the rib 47B. As a result, since it becomes difficult for the ink leakage from the ejection channels C1e and the ejection channels C2e to occur, it is possible to increase the available ink types such as the ink having electrical conductivity.
Further, in the present embodiment, the nozzle plate 41 is lower in rigidity compared to the actuator plate 42 and the nozzle guard 47. In this case, a flexure is apt to occur at a part of the nozzle plate having contact with the rib in the case in which a stress caused by the heat when performing the ejection is applied to the nozzle plate from the actuator plate and the nozzle guard. However, even in such a case, since the first rib has contact at the positions not opposed to the openings on the nozzle plate side of the first ejection grooves, it is difficult for the ink leakage from the actuator plate to occur. As a result, it is possible to increase the available ink types such as the ink having electrical conductivity.
The disclosure is described hereinabove citing the embodiment, but the disclosure is not limited to the embodiment, and a variety of modifications can be adopted.
For example, in the embodiment described above, it is also possible for both of the ribs 47A, 47B to have contact at the positions not opposed to the openings h6 on the nozzle plate 41 side of the non-ejection channels C1d, and the positions not opposed to the openings h8 on the nozzle plate 41 side of the non-ejection channels C2d as shown in, for example,
Further, for example, in the embodiment described above, the description is presented specifically citing the configuration examples (the shapes, the arrangements, the number and so on) of each of the members in the primer 1 and the inkjet head 4, but what is described in the above embodiment is not a limitation, and it is possible to adopt other shapes, arrangements, numbers and so on. Further, the values or the ranges, the magnitude relation and so on of a variety of parameters described in the above embodiment are not limited to those described in the above embodiment, but can also be other values or ranges, other magnitude relation, and so on.
Specifically, for example, in the embodiment described above, the description is presented citing the inkjet head 4 of the two column type (having the two nozzle columns 411, 412), but the example is not a limitation. Specifically, for example, it is also possible to adopt an inkjet head of a single-column type (having a single nozzle column), or an inkjet head of a multi-column type (having three or more nozzle columns) with three or more columns.
Further, for example, in the embodiment described above, there is described the case in which the nozzle columns 411, 412 each extend linearly along the X-axis direction, but this example is not a limitation. It is also possible to arrange that, for example, the nozzle columns 411, 412 each extend in an oblique direction. Further, the shape of each of the nozzle holes H1, H2 is not limited to the circular shape as described in the above embodiment, but can also be, for example, a polygonal shape such as a triangular shape, an elliptical shape, or a start shape.
Further, for example, although the case in which the side shoot type is adopted in the inkjet heads 4 is described in the above embodiment, this example is not a limitation, and it is also possible to, for example, adopt other types in the inkjet heads 4. Further, for example, although the case in which the circulation type is adopted in the inkjet heads 4 is described in the above embodiment, this example is not a limitation, and it is also possible to, for example, adopt other types without the circulation in the inkjet heads 4.
Further, the series of processes described in the above embodiment can be arranged to be performed by hardware (a circuit), or can also be arranged to be performed by software (a program). In the case of arranging that the series of processes is performed by the software, the software is constituted by a program group for making the computer perform the functions. The programs can be incorporated in advance in the computer described above, and are then used, or can also be installed in the computer described above from a network or a recording medium and are then used.
Further, in the above embodiment, the description is presented citing the printer 1 (the inkjet printer) as a specific example of the “liquid jet recording device” in the present disclosure, but this example is not a limitation, and it is also possible to apply the present disclosure to other devices than the inkjet printer. In other words, it is also possible to arrange to apply the “liquid jet head” (the inkjet head 4) and the “jet hole plate” (the nozzle plate 41) of the present disclosure to other devices than the inkjet printer. Specifically, for example, it is also possible to arrange to apply the “liquid jet head” or the “jet hole plate” of the present disclosure to a device such as a facsimile or an on-demand printer.
Further, although the recording object of the printer 1 is the recording paper P in the embodiment and the modified example described above, the recording object of the “liquid jet recording device” according to the present disclosure is not limited to the recording paper P. It is possible to form characters and patterns by jetting the ink to a variety of materials such as cardboard, cloth, plastic or metal. Further, the recording object is not required to have a flat shape, and it is also possible to perform painting or decoration of a variety of 3D objects such as food, architectural materials such as a tile, furniture, or a vehicle. Further, it is possible to print fabric with the “liquid jet recording device” according to the present disclosure, or it is also possible to perform 3D shaping by solidifying the ink after jetted (so-called a 3D printer).
Further, it is also possible to apply the variety of examples described hereinabove in arbitrary combination.
It should be noted that the advantages described in the specification are illustrative only but ate not a limitation, and other advantages can also be provided.
Further, the present disclosure can also take the following configurations.
Number | Date | Country | Kind |
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JP2018-151729 | Aug 2018 | JP | national |
Number | Name | Date | Kind |
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20070006727 | Gysling | Jan 2007 | A1 |
20150029269 | Domae | Jan 2015 | A1 |
20180086065 | Yamazaki | Mar 2018 | A1 |
Number | Date | Country |
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3300895 | Apr 2018 | EP |
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2015-024516 | Feb 2015 | JP |
2018-051937 | Apr 2018 | JP |
Entry |
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Extended European Search Report in Europe Application No. 19190932.4, dated Jan. 7, 2020, 7 pages. |
Number | Date | Country | |
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20200047499 A1 | Feb 2020 | US |