The present application claims priority from Japanese Patent Application No. 2020-021607 filed on Feb. 12, 2020, the disclosure of which is incorporated herein by reference in its entirety.
The present disclosure relates to a liquid discharge head including individual channels, a first common channel, and a second common channel.
Japanese Patent Application Laid-open No. 2008-290292 (FIGS. 5 to 7) discloses an ink-jet recording head (liquid discharge head) including ejectors (individual channels) arranged in a Y direction, a common supply branch passage (first common channel) extending in the Y direction and communicating with the ejectors, and a common discharge branch passage (second common channel) extending in the Y direction and communicating with the ejectors. Each ejector includes a nozzle, a pressure chamber, a passage (connection channel) connecting the pressure chamber and the nozzle, a supply passage (first communication channel) that allows the pressure chamber to communicate with the common supply branch passage, and a discharge passage (second communication channel) that allows a passage to communicate with the common discharge branch passage.
In Japanese Patent Application Laid-open No. 2008-290292 (FIGS. 6 and 7), the passage (connection channel) connecting the pressure chamber and the nozzle extends perpendicularly to the discharge passage (second communication channel). In this case, a liquid flow orientation (vector orientation of the liquid flow) rapidly changes at a boundary between the connection channel and the second communication channel, causing a flow velocity difference. This easily results in stagnation and retention or accumulation of air bubbles.
An object of the present disclosure is to provide a liquid discharge head that can inhibit stagnation and retention or accumulation of air bubbles at a boundary between a connection channel and a second communication channel.
According to an aspect of the present disclosure, there is provided a liquid discharge head, including a channel unit that includes an individual channel, a first common channel extending in a first direction and communicating with the individual channel, and a second common channel extending in the first direction and communicating with the individual channel,
Explanation is made about a schematic configuration of a printer 100 provided with heads 1 according to a first embodiment of the present disclosure.
An x direction, y direction, and z direction, which are orthogonal to each other, correspond respectively to a “first direction”, “third direction”, and “second direction” of the present disclosure. In this embodiment, the z direction is a vertical direction. A first side in the z direction (a front side of the sheet surface of
As depicted in
The head unit 1x, which is long in the x direction, is a line type in which ink is discharged on a sheet 9 with a position of the head unit 1x being fixed. The four heads 1 are long in the x direction and are arranged zigzag in the x direction.
The platen 3 is a plate-like member disposed at the second side in the z direction with respect to the head unit 1x. The sheet 9 is supported by a surface (i.e., upper surface) at the first side in the z direction of the platen 3.
The conveyor 4 includes two roller pairs 41 and 42 that interpose the head unit 1x and the platen 3 therebetween in the y direction, and a conveyance motor (not depicted) that rotates the roller pairs 41 and 42. When the conveyance motor is driven by control of the controller 5, the roller pairs 41 and 42 nipping the sheet 9 rotate to convey the sheet 9 in a conveyance direction. The conveyance direction is a direction along the y direction. The conveyance direction is a direction from a first side (the upper side in
The controller 5 includes a Central Processing Unit (CPU), a Read Only Memory (ROM), and a Random Access Memory (RAM). The ROM stores programs and data for allowing the CPU to execute a variety of control. The RAM temporarily stores data with which the CPU executes the program(s). When receiving a recording instruction (including image data) input from an external apparatus (personal computer or the like) or an input section (switch or button provided on an external surface of a casing of the printer 100), the CPU controls a driver IC and the conveyance motor (both not depicted) of each head 1 in accordance with the program(s) and data stored in the ROM and the RAM, and records an image on the sheet 9.
Subsequently, a configuration of the head 1 is explained specifically.
As depicted in
The channel unit 11 is formed by 15 plates 11a to 11o adhered to each other. The plates 11a to 11o are stacked on top of each other in the z direction. Through holes and recesses forming channels are formed in the plates 11a to 11o. The channels include individual channels 20, a supply channel 31, and a return channel 32.
As depicted in
The supply channel 31 corresponds to a “first common channel” of the present disclosure, and the return channel 32 corresponds to a “second common channel” of the present disclosure. The supply channel 31 and the return channel 32 extend in the x direction and communicate with the individual channels 20.
In this embodiment, the supply channel 31 and the return channel 32 are arranged in the z direction as depicted in
The supply channel 31 and the return channel 32 communicate with a subtank (not depicted) via an opening 31x and an opening 32x, respectively. The opening 31x is provided at one end (upper end in
The opening 31x corresponds to an “inlet of the first common channel” of the present disclosure. The opening 32x corresponds to an “outlet of the second common channel” of the present disclosure. The coupling portion 33 corresponds to an “outlet of the first common channel” and an “inlet of the second common channel” of the present disclosure. The coupling portion 33 is separated from the openings 31x and 32x in the x direction.
The subtank communicates with a main tank that stores ink. The subtank stores ink supplied from the main tank. Ink in the subtank flows into the supply channel 31 from the opening 31x by driving a pump (not depicted) through the control of the controller 5. Ink flowing into the supply channel 31 is supplied to each individual channel 20 while flowing through the supply channel 31 from the one end in the x direction (upper end in
As depicted in
As depicted in
The nozzle 21 is formed by a through hole formed in the plate 11o. The nozzle 21 is opened in a surface at the second side in the z direction (i.e., lower surface) of the channel unit 11. The lower surface 11x corresponds to a “nozzle surface” of the present disclosure. The lower surface 11x is a surface orthogonal to the z direction and along the x direction and the y direction. The nozzles 21 are formed in the lower surface 11x.
The pressure chamber 22 is formed by a through hole formed in the plate 11a. The pressure chamber 22 is opened in a surface at the first side in the z direction (i.e., upper surface) of the channel unit 11.
The connection channel 23 is a cylindrical channel extending downward from one end in the y direction of the pressure chamber 22. The connection channel 23 is formed by through holes formed in the plates 11b to 11n. The nozzle 21 is arranged immediately below the connection channel 23.
The connection channel 23 has one end 23a connected to the pressure chamber 22 and the other end 23b connected to the nozzle 21. The one end 23a is connected to a lower surface of the pressure chamber 22. The other end 23b is connected to an upper surface of the nozzle 21.
The inflow channel 24 has one end 24a connected to the supply channel 31 and the other end 24b connected to the pressure chamber 22. The one end 24a is connected to an upper surface of the supply channel 31. The other end 24b is connected to the lower surface of the pressure chamber 22.
The outflow channel 25 has one end 25a connected to the connection channel 23 and the other end 25b connected to the return channel 32. The one end 25a is connected to a side surface of the connection channel 23. The other end 25b is connected to a lower surface of the return channel 32.
In addition to the coupling portion 33 (see
As indicated by arrows in
Circulating ink between the subtank and the channel unit 11 as described above discharges air bubbles and inhibits the increase in viscosity of ink in the individual channels 20, the supply channel 31, and the return channel 32 formed in the channel unit 11.
As depicted in
First vector V1: a vector of which starting point is located on the connection channel 23 and of which ending point is the other end 23b of the connection channel 23.
Second vector V2: a vector of which starting point is the one end 25a of the outflow channel 25 and of which ending point is located on the outflow channel 25, and which is orthogonal to the z direction.
The starting point of the first vector V1 is a predefined position in the connection channel 23. In this embodiment, the predefined position in the connection channel 23 that is the starting point of the first vector V1 is the one end 23a of the connection channel 23. Further, the ending point of the second vector V2 is a predefined position in the outflow channel 25. The predefined position in the outflow channel 25 that is the ending point of the second vector V2 is, for example, a second end 25B in the y direction of the outflow channel 25. The outflow channel 25 has a first end (one end 25a) and the second end 25B in the y direction. The second end 25B is farther from the connection channel 23 than the first end (one end 25a).
The first vector V1 and the second vector V2 are projected on yz plane (a “first plane” of the present disclosure). As depicted in
In the connection channel 23, ink flows in the orientation of the first vector V1. In the part of the outflow channel 25, which is orthogonal to the z direction, ink flows in the orientation of the second vector V2. Further, the first angle θ1 is indicated by arrows V1 and V2 in
As depicted in
The first vector V1 is projected on xy plane (a “second plane” of the present disclosure). The second vector V2 is parallel to the xy plane. As depicted in
Similar to the outflow channel 25, the inflow channel 24 does not extend in the direction parallel to the y direction. The inflow channel 24 extends in a direction inclined to the y direction (in a direction intersecting with the x direction and the y direction). The inflow channel 24 is parallel to the outflow channel 25.
The orientation of the second vector V2 contains a component of an ink flow orientation in the return channel 32. The ink flow orientation in the return channel 32 is an orientation along the x direction from a side of an inlet of the return channel 32 (the coupling portion 33 and the other end 25b of the outflow channel 25) toward a side of an outlet of the return channel 32 (the opening 32x). A third vector V3 is defined such that the third vector V3 is parallel to the x direction and contains a component directing from the inlet of the return channel 32 toward the outlet of the return channel 32. In the return channel 32, ink flows in an orientation of the third vector V3. The second vector V2 contains a component of the third vector V3. (The orientation of the second vector V2 contains a component of the orientation of the third vector V3). In other words, a third angle θ3 formed by the second vector V2 and the third vector V3 is less than 90°. In the xy plane, the third angle θ3 formed by the second vector V2 and the third vector V3 may be not less than 15° and not more than 45° (approximately 30° in this embodiment).
A fourth vector V4 is defined such that the fourth vector V4 is parallel to an extending direction of the inflow channel 24 orthogonal to the z direction, and contains a component directed from the one end of the inflow channel 24 toward the other end of the inflow channel 24. An orientation of the fourth vector V4 contains a component of an ink flow orientation in the supply channel 31. The ink flow orientation in the supply channel 31 is an orientation along the x direction from an inlet of the supply channel 31 (the opening 31x) toward an outlet of the supply channel 31 (the coupling portion 33 and the one end 24a of the inflow channel 24). A fifth vector V5 is defined such that the fifth vector V5 is parallel to the x direction and contains a component directing from the inlet of the supply channel 31 toward the outlet of the supply channel 31. In the inflow channel 24, ink flows in the orientation of the fourth vector V4. In the supply channel 31, ink flows in an orientation of the fifth vector V5. The fourth vector V4 contains a component of the fifth vector V5 (The orientation of the fourth vector V4 contains a component of the orientation of the fifth vector V5). In other words, a fourth angle θ4 formed by the fourth vector V4 and the fifth vector V5 is less than 90°. Further, in the xy plane, the fourth angle θ4 formed by the fourth vector V4 and the fifth vector V5 may be not less than 15° and not more than 45° (approximately 30° in this embodiment).
Although the line III-III in
The actuator unit 12 includes a vibration plate 12a, a common electrode 12b, piezoelectric bodies 12c, and individual electrodes 12d in this order from below.
The vibration plate 12a and the common electrode 12b are arranged on an upper surface of the channel unit 11 (upper surface of the plate 11a) to cover all the pressure chambers 22 formed in the plate 11a. The piezoelectric bodies 12c and the individual electrodes 12d are provided corresponding to the respective pressure chambers 22 to overlap in the vertical direction with the respective pressure chambers 22.
The common electrode 12b and the individual electrodes 12d are electrically connected to a driver IC (not depicted). The driver IC maintains the electric potential of the common electrode 12b at the ground potential and changes the electric potential of the individual electrode(s) 12d. In particular, the driver IC generates a driving signal based on a control signal from the controller 5 and applies the driving signal to the individual electrode(s) 12d. This changes the electric potential of the individual electrode(s) 12d between a predefined driving potential and the ground potential. In this situation, the vibration plate 12a and a portion (actuator 12x) of the piezoelectric body 12c interposed between the individual electrode 12d and the pressure chamber 22 are deformed to be convex toward the pressure chamber 22, thus changing the volume of the pressure chamber 22. This applies pressure to ink in the pressure chamber 22 to discharge ink from the nozzle 21. The actuator unit 12 includes the actuators 12x corresponding to the respective pressure chambers 22.
As described above, in this embodiment, as depicted in
The second angle θ2 may be not more than 30° (0° in this embodiment, see
The orientation of the second vector V2 contains the component of the ink flow orientation in the return channel 32 (i.e., the orientation of the third vector V3, see
In the xy plane, the third angle θ3 formed by the second vector V2 and the third vector V3 may be not less than 15° and not more than 45° (approximately 30° in this embodiment, see
The orientation of the fourth vector V4 contains the component of the ink flow orientation in the supply channel 31 (i.e., the orientation of the fifth vector V5) (see
In the xy plane, the fourth angle θ4 formed by the fourth vector V4 and the fifth vector V5 is not less than 15° and not more than 45° (approximately 30° in this embodiment, see
The supply channel 31 and the return channel 32 are arranged in the z direction. The inflow channel 24 is parallel to the outflow channel 25 in the xy plane (see
Referring to
In the first embodiment (
In the xy plane, the projection vector V21 of the first vector V1 onto the xy plane is parallel to the second vector V2 similar to the first embodiment (i.e., the second angle θ2 formed by the projection vector V21 and the vector V2 is 0°).
In the first embodiment (
In the second embodiment (
The starting point of the first vector is the predefined position in the connection channel 23, and the ending point of the first vector is the other end 23b of the connection channel 23. In the first embodiment (
The first angle θ1 formed by the projection vector V11 of the first vector V1 onto the yz plane and the projection vector V12 of the second vector V2 onto the yz plane according to the second embodiment is smaller than the first embodiment (
Although the line V-V in
As described above, in the second embodiment, the first angle θ1 is not less than 45° and not more than 75° (see
Further, the connection channel 23 includes the orthogonal portion 23x and the inclined portion 23y (see
Referring to
In the first embodiment (
The supply channel 31 communicates with the subtank (not depicted) via the opening 31x provided at the one end in the x direction (upper end in
In the third embodiment, the opening 31x of the supply channel 31 corresponds to the “inlet of the first common channel” of the present disclosure, the one end 24a of the inflow channel 24 corresponds to the “outlet of the first common channel” of the present disclosure, the other end 25b of the outflow channel 25 corresponds to the “inlet of the second common channel” of the present disclosure, and the opening 32x corresponds to the “outlet of the second common channel” of the present disclosure. The opening 31x is separated from the one end 24a of each individual channel 320 in the x direction. The opening 32x is separated from the other end 25b of each individual channel 320 in the x direction.
The orientation of the third vector V3, which is directed, along the x direction, from the inlet of the return channel 32 (the other end 25b of the outflow channel 25) toward the outlet of the return channel 32 (the opening 32x) is an orientation directed from the upper side toward the lower side in
As depicted in
In this embodiment, as depicted in
As described above, in this embodiment, the supply channel 31 and the return channel 32 are arranged in the y direction. When seen from the z direction, in the xy plane, the inflow channel 24 and the outflow channel 25 are arranged on the virtual straight line L intersecting with the x direction and the y direction. In this case, ink flowing from the supply channel 31 into the inflow channel 24, passing through the pressure chamber 22, and flowing from the outflow channel 25 toward the return channel 32 flows smoothly.
Referring to
The fourth embodiment (
The fourth embodiment is the same as the third embodiment, for example, in that, in the xy plane, the projection vector V21 of the first vector V1 onto the xy plane is parallel to the second vector V2 (i.e., the second angle θ2 formed by the projection vector V21 and the vector V2 is 0°).
Similar to the third embodiment, in each individual channel 420, when seen from the z direction, in the xy plane, the pressure chamber 22, the connection channel 23, the inflow channel 24, and the outflow channel 25 extend in a direction inclined to the y direction (direction intersecting with the x direction and the y direction). When seen from the z direction, in the xy plane, the pressure chamber 22, the connection channel 23, the inflow channel 24, and the outflow channel 25 extend parallelly to each other. When seen from the z direction, in the xy plane, the pressure chamber 22, the connection channel 23, the inflow channel 24, and the outflow channel 25 are arranged on a virtual straight line L′ along the direction intersecting with the x direction and the y direction.
As described above, the angles θ3 and θ4 in the fourth embodiment are different from the third embodiment. However, since any other configurations than the above are similar to the third embodiment, it is possible to obtain the effect similar to the third embodiment.
The preferred embodiments of the present disclosure are described above. However, the present disclosure is not limited to the above embodiments. Various changes or modifications in the design may be made without departing from the claims.
In the above embodiments (
In the above embodiments (
In the first embodiment (
In the third embodiment (
The liquid discharge head is not limited to the line type head. The liquid discharge head may be a serial type head in which liquid is discharged from nozzles on a medium (an object to which liquid is to be discharged) during its movement in a scanning direction parallel to the nozzle surface.
The medium is not limited to the sheet or paper, and may be a cloth, a substrate, and the like.
The liquid discharged from the nozzles is not limited to the ink, and may be any liquid (e.g., a treatment liquid that agglutinates or precipitates constituents of ink).
The present disclosure is applicable to facsimiles, copy machines, multifunction peripherals, and the like without limited to printers. The present disclosure is also applicable to a liquid discharge apparatus used for any other application than the image recording (e.g., a liquid discharge apparatus that forms an electroconductive pattern by discharging an electroconductive liquid on a substrate).
Number | Date | Country | Kind |
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JP2020-021607 | Feb 2020 | JP | national |
Number | Name | Date | Kind |
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20110027132 | Nukumi et al. | Feb 2011 | A1 |
20150360467 | Gejima | Dec 2015 | A1 |
Number | Date | Country |
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3199354 | Aug 2017 | EP |
2008-290292 | Dec 2008 | JP |
2009-227704 | Oct 2009 | JP |
Number | Date | Country | |
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20210245507 A1 | Aug 2021 | US |