Liquid ejection head and method of manufacturing the same
The side-shooter inkjet head with throttling portions stabilizes meniscus recovery, enhancing ejection stability and speed by increasing fluid resistance, addressing the overshoot issue in existing inkjet heads.
Patent Information
- Application Number
- JP2021138417
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-08-26
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2041-08-26
AI Technical Summary
Existing inkjet heads face challenges in achieving stable ejection characteristics due to ink overshoot and meniscus swell, which hinder high-speed operation and print quality.
A side-shooter, share-mode inkjet head design with pressure chambers and dummy chambers, featuring a throttling portion at the ends of pressure chambers formed by photosensitive resin protrusions to increase fluid resistance and stabilize meniscus recovery.
The design ensures stable ejection characteristics by reducing meniscus rise and improving ejection speed and efficiency, allowing for higher frequency operation without significant impact on subsequent droplets.
Smart Images

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Abstract
Description
[Technical Field]
[0001] FIELD Embodiments of the present invention relate to a liquid ejection head and a method for manufacturing a liquid ejection head. [Background technology]
[0002] In recent years, demand for higher productivity in inkjet heads has led to challenges such as faster speeds and larger droplet volumes. For example, shear-mode, shared-wall inkjet heads offer high power and are suitable for ejecting high-viscosity inks and large droplets. In shear-mode, shared-wall inkjet heads typically share the same drive column with two pressure chambers, driving one-third of the multiple chambers simultaneously as pressure chambers, a so-called three-cycle drive. Independent drive heads have also been developed, in which dummy pressure chambers are used on both sides of the driven pressure chamber, and each pressure chamber is driven by two independent drive columns. For example, a structure has been developed in which multiple grooves are formed in a piezoelectric material, with every other groove blocked, allowing the unblocked grooves to function as pressure chambers and the blocked grooves to function as air chambers, allowing for independent drive.
[0003] In such inkjet heads, after an ink droplet is ejected, ink is replenished from the common liquid chamber to the pressure chamber. At this time, a phenomenon occurs in which the ink overshoots at the nozzle, causing the meniscus to swell. The smaller the fluid resistance in the flow path from the common liquid chamber to the nozzle, the greater the overshoot. Unless this overshoot subsides, ejection cannot be performed with the meniscus in a stable state. Therefore, in order to increase the speed of an inkjet head, it is necessary to quickly converge the meniscus swell and ensure stable ejection characteristics. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-94036 Summary of the Invention [Problem to be solved by the invention]
[0005] The problem to be solved by the present invention is to provide a liquid ejection head that can ensure stable ejection characteristics, and a method for manufacturing the liquid ejection head. [Means for solving the problem]
[0006] The liquid ejection head according to one embodiment includes: The actuator is a side shooter type and has a plurality of pressure chambers that communicate with nozzles that eject liquid, a plurality of grooves that form a plurality of dummy chambers that are arranged between the pressure chambers, and a plurality of side walls that are formed between the pressure chambers and the grooves that form the dummy chambers; a common chamber that communicates with both end portions of the actuator in the extension direction of the pressure chambers; and a throttling portion that is made of photosensitive resin and is arranged at the end portion of the actuator on the common chamber side of the pressure chambers and that closes a part of the communication port of the pressure chamber that communicates with the common chamber, and the throttling portion has a pair of protrusions that are formed on the side surfaces of the side walls on both sides of the pressure chambers in a first direction that is the arrangement direction of the plurality of pressure chambers. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a perspective view showing an inkjet head according to an embodiment. [Figure 2] FIG. 2 is an exploded perspective view showing a configuration of a portion of the inkjet head according to the embodiment. [Figure 3] FIG. 2 is an enlarged cross-sectional view showing a part of the configuration of the inkjet head. [Figure 4] FIG. 2 is an enlarged cross-sectional view showing a part of the configuration of the inkjet head. [Figure 5] 3A to 3C are explanatory diagrams illustrating a method for manufacturing the inkjet head. [Figure 6] FIG. 10 is an explanatory diagram of an inkjet head according to Test Example 1 and Test Example 2. [Figure 7] 10 is a graph showing the ejection speed of the inkjet head according to Test Example 1. [Figure 8] 10 is a graph showing the ejection speed of an inkjet head according to Test Example 2. [Figure 9] 10 is a graph showing meniscus recovery characteristics of inkjet heads according to Test Examples 1 and 2. [Figure 10] FIG. 10 is an explanatory diagram of an inkjet head of an end shooter according to Test Example 1 and Test Example 3. [Figure 11] 10 is a graph showing the driving waveforms of the inkjet heads according to Test Examples 1 and 3. [Figure 12] 10 is a graph showing nozzle flow velocity vibrations of inkjet heads according to Test Examples 1 and 3. [Figure 13] 10 is a graph showing the ejection volume of the inkjet heads according to Test Examples 1 and 3. [Figure 14] 10 is a graph showing meniscus recovery characteristics of inkjet heads according to Test Examples 1 and 3. [Figure 15] FIG. 1 is a schematic diagram showing an inkjet printer according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0008] The configuration of an inkjet head 10, which is a liquid ejection head according to a first embodiment, will be described below with reference to FIGS. 1 to 5. FIG. 1 is a perspective view showing the inkjet head according to the first embodiment, and FIG. 2 is an exploded perspective view of a portion of the inkjet head. FIGS. 3 and 4 are enlarged cross-sectional views showing the configuration of a portion of the inkjet head. FIG. 5 is an explanatory diagram of a manufacturing process for the inkjet head. In the drawings, X, Y, and Z represent a first direction, a second direction, and a third direction, which are orthogonal to one another. In this embodiment, the directions will be described based on an attitude in which the direction in which the nozzles 28 and pressure chambers 31 of the inkjet head 10 are aligned is the X-axis, the extension direction of the pressure chambers 31 is the Y-axis, and the ejection direction of liquid is the Z-axis, but the present invention is not limited to this.
[0009] As shown in Figures 1 to 4, the inkjet head 10 is a so-called side-shooter, share-mode, share-wall inkjet head. The inkjet head 10 is a device for ejecting ink and is mounted inside, for example, an inkjet printer. For example, the inkjet head 10 is an independently driven inkjet head in which pressure chambers 31 and dummy chambers 32 are arranged alternately. The dummy chambers 32 are air chambers to which ink is not supplied and do not have nozzles 28.
[0010] The inkjet head 10 includes an actuator base 11, a nozzle plate 12, and a frame 13. The actuator base 11 is an example of a substrate. An ink chamber 27 is formed inside the inkjet head 10 to which ink, which is an example of a liquid, is supplied.
[0011] Furthermore, the inkjet head 10 includes components such as a circuit board 17 that controls the inkjet head 10 and a manifold 18 that forms part of the path between the inkjet head 10 and an ink tank.
[0012] As shown in FIG. 2, the actuator base 11 includes a substrate 21 and a pair of actuators 22.
[0013] The substrate 21 is formed in a rectangular plate shape from ceramics such as alumina. The substrate 21 has a flat mounting surface. A pair of actuators 22 are bonded to the mounting surface of the substrate. A plurality of supply holes 25 and discharge holes 26 are formed in the substrate 21.
[0014] 2, a pattern wiring 211 is formed on the substrate 21 of the actuator base 11. The pattern wiring 211 is formed of, for example, a nickel thin film. The pattern wiring 211 has a common pattern and an individual pattern, and is configured in a predetermined pattern shape that is connected to the electrode layer 34 formed on the actuator 22.
[0015] The supply holes 25 are provided in the center of the substrate 21, between the pair of actuators 22, and aligned in the longitudinal direction of the actuators 22. The supply holes 25 communicate with the ink supply portion of the manifold 18. The supply holes 25 are connected to an ink tank via the ink supply portion. The supply holes 25 supply ink from the ink tank to the ink chambers 27.
[0016] The discharge holes 26 are arranged in two rows, sandwiching the supply holes 25 and the pair of actuators 22. The discharge holes 26 communicate with the ink discharge portion of the manifold 18. The discharge holes 26 are connected to the ink tank via the ink discharge portion. The discharge holes 26 discharge ink from the ink chambers 27 into the ink tank.
[0017] A pair of actuators 22 is bonded to the mounting surface of the substrate 21. The pair of actuators 22 is arranged in two rows on the substrate 21 with a supply hole 25 sandwiched between them. Each actuator 22 is formed of two plate-shaped piezoelectric elements made of, for example, lead zirconate titanate (PZT). The two piezoelectric elements are bonded together so that their polarization directions are opposite to each other in the thickness direction. The actuators 22 are bonded to the mounting surface of the substrate 21 with, for example, a thermosetting epoxy adhesive. As shown in FIG. 2, the actuators 22 are arranged parallel to each other in the ink chamber 27, corresponding to the two rows of nozzles 28. The actuators 22 divide the ink chamber 27 into a first common chamber 271 to which the supply hole 25 opens and two second common chambers 272 to which the discharge holes 26 open.
[0018] The actuator 22 is formed to have a trapezoidal cross section. A side surface portion 221 of the actuator 22 has an inclined surface that is inclined with respect to the second direction and the third direction. That is, the cross section of the actuator 22 that is perpendicular to the second direction is configured to have a trapezoidal shape. The top portion of the actuator 22 is bonded to the nozzle plate 12. The actuator 22 includes a plurality of pressure chambers 31 and a plurality of dummy chambers 32. The actuator 22 has a plurality of side wall portions 33, and has grooves that form the pressure chambers 31 and dummy chambers 32 between the side wall portions 33. In other words, the side wall portions 33 are formed as drive elements between the grooves that form the pressure chambers 31 and dummy chambers 32.
[0019] 1 to 6, the bottom surface of the groove and the main surface of the substrate 21 are connected by inclined side surfaces 221. The pressure chambers 31 and dummy chambers 32 are arranged alternately. The pressure chambers 31 and dummy chambers 32 each extend in a direction intersecting the longitudinal direction of the actuator 22, and multiple pressure chambers 31 and dummy chambers 32 are arranged side by side in a first direction (X-axis in the drawings), which is the longitudinal direction of the actuator 22.
[0020] The shape of the pressure chamber 31 may be different from the shape of the dummy chamber 32. The side wall portion 33 is formed between the pressure chamber 31 and the dummy chamber 32, and changes the volume of the pressure chamber 31 by deforming in response to a drive signal.
[0021] The multiple pressure chambers 31 communicate with multiple nozzles 28 of the nozzle plate 12 joined to the top. Both ends of the pressure chamber 31 in the second direction communicate with the ink chamber 27. That is, one end opens to a first common chamber 271 of the ink chamber 27, and the other end opens to a second common chamber 272 of the ink chamber 27. For this reason, ink flows in from one end of the pressure chamber 31 and flows out from the other end. At both ends of the pressure chamber 31, throttle sections 240 are formed, which are configured to have greater fluid resistance than the interior of the pressure chamber 31.
[0022] The throttle portion 240 is configured in a shape that narrows the opening of the communication port more than the interior of the pressure chamber. As an example, the throttle portion 240 has a pair of protrusions 241 formed on both side surfaces in the first direction at the end of the pressure chamber 31 in the second direction. The pair of protrusions 241 may each be formed over the entire length in the third direction, which is the depth direction of the groove of the pressure chamber 31, or may be formed on a part of the length in the third direction. The protrusions 241 are formed on both side surfaces of the pressure chamber 31, for example. For example, the pair of protrusions 241 are each configured in a rectangular shape that is long in the third direction.
[0023] The grooves that form the pressure chambers 31 are not completely covered by the protrusions 241, and a throttle port 242 that communicates between the pressure chambers 31 and the first common chamber 271 and second common chamber 272 is formed between the pair of protrusions 241. The throttle port 242 has a slit shape that extends in the third direction, which is the depth direction of the pressure chambers 31, and the opening width in the first direction is configured to be smaller than the width in the first direction inside the pressure chambers 31, and is therefore configured to be smaller than the flow path cross-sectional area of the pressure chambers 31. In other words, the protrusions 241 partially block the communication ports on both ends in the second direction, forming throttle portions 240 that increase the flow path resistance. The throttle portions 240 are formed by forming a film of photosensitive resin and then exposing and developing it, or by forming a film of photosensitive resin and then exposing, developing, and machining it. For example, the restrictor portion 240 is formed into a predetermined shape by a development process in which a photosensitive resin is applied to the entrances on both sides of the pressure chamber 31, the target portions that form the protrusions 241 are hardened by exposure to light, and unnecessary unexposed resin is washed away with a developer. Alternatively, the pressure chamber 31 may be coated with a photosensitive resin, the photosensitive resin is hardened at predetermined locations of the communication ports on both sides by exposure and development, and then the restrictor port 242 may be formed by machining such as dicing.
[0024] If the fluid resistance of the throttle portion 240 is made too large, the supply of ink to the pressure chamber 31 after the ink droplet is ejected will be slow, hindering higher speeds. The rise of the meniscus will differ depending on the ink viscosity, ejection volume, drive frequency, etc. Therefore, the shape of the protrusion 241 and the dimensions and position of the throttle opening 242 of the throttle portion 240 are set to provide a flow path resistance that corresponds to the ink supply conditions and the characteristics of the rise of the meniscus.
[0025] One side of the dummy chamber 32 in the third direction is blocked by the nozzle plate 12 joined to the top portion 222. Furthermore, both ends of the multiple dummy chambers 32 in the second direction are blocked by the cover portion 23, for example. That is, a cover portion 23 is disposed between the first common chamber 271 of the ink chamber 27 and the inlet of the dummy chamber 32, and between the outlet of the dummy chamber 32 and the second common chamber 272, and both ends of the dummy chamber 32 are separated from the ink chamber 27. For this reason, the dummy chamber 32 forms an air chamber into which ink does not flow.
[0026] For example, the cover portion 23 is formed by applying a photosensitive resin to both ends of the dummy chamber 32 and then curing the target portion. Note that the protrusion portion 241 and the cover portion 23 may be formed simultaneously from the same photosensitive resin material, for example.
[0027] An electrode layer 34 is provided in each of the pressure chambers 31 and the dummy chambers 32 of the actuator base 11. The electrode layer 34 is formed, for example, from a nickel thin film. The electrode layer 34 extends from the inner surface of the groove onto the substrate 21 and is connected to the pattern wiring 211. The electrode layer 34 is formed on the inner wall of the groove. For example, the electrode layer 34 is formed on the side surface and bottom surface of the side wall portion 33.
[0028] The nozzle plate 12 is formed of, for example, a rectangular film made of polyimide. The nozzle plate 12 faces the mounting surface of the actuator base 11. The nozzle plate 12 has a plurality of nozzles 28 formed therein, which penetrate the nozzle plate 12 in the thickness direction.
[0029] The nozzles 28 are provided in the same number as the pressure chambers 31 and are arranged opposite each pressure chamber 31. The nozzles 28 are aligned along the first direction and arranged in two rows corresponding to the pair of actuators 22. Each nozzle 28 is configured in a cylindrical shape with its axis extending in the third direction. For example, the nozzles 28 may have a constant diameter or may have a shape that narrows toward the center or tip. The nozzles 28 are arranged opposite to the midpoints of the pressure chambers 31 formed in the pair of actuators 22 in the extension direction and are each connected to the pressure chambers 31. One nozzle 28 is arranged in the longitudinal center of each pressure chamber 31.
[0030] The frame 13 is formed into a rectangular frame shape from, for example, a nickel alloy. The frame 13 is interposed between the mounting surface of the actuator base 11 and the nozzle plate 12. The frame 13 is bonded to both the mounting surface of the actuator base 11 and the nozzle plate 12. In other words, the nozzle plate 12 is attached to the actuator base 11 via the frame 13.
[0031] The manifold 18 is joined to the actuator base 11 on the side opposite to the nozzle plate 12. Inside the manifold 18, an ink supply portion, which is a flow path communicating with the supply hole 25, and an ink discharge portion, which is a flow path communicating with the discharge hole 26, are formed.
[0032] The circuit board 17 is a film carrier package (FCP). The circuit board 17 has a flexible resin film 51 on which a plurality of wirings are formed, and an IC 52 connected to the plurality of wirings of the film 51. The IC 52 is electrically connected to the electrode layer 34 via the wirings of the film 51 and the pattern wiring 211.
[0033] An ink chamber 27 is formed inside the inkjet head 10 configured as described above and is surrounded by the actuator base 11, the nozzle plate 12, and the frame 13. That is, the ink chamber 27 is formed between the actuator base 11 and the nozzle plate 12. For example, the ink chamber 27 is divided into three sections in the second direction by the two actuators 22, and has two second common chambers 272 as common chambers into which the discharge holes 26 open, and a first common chamber 271 as common chamber into which the supply hole 25 opens. The first common chamber 271 and the second common chamber 272 are in communication with a plurality of pressure chambers 31.
[0034] In the inkjet head 10 configured as described above, ink circulates between the ink tank and the ink chamber 27 through the supply hole, pressure chamber, and discharge hole. For example, in response to a signal input from the control unit of the inkjet printer, the drive IC 52 applies a drive voltage to the electrode layer 34 of the pressure chamber 31 via the wiring of the film 51, thereby generating a potential difference between the electrode layer 34 of the pressure chamber 31 and the electrode layer 34 of the dummy chamber 32, thereby selectively deforming the side wall 33 in a shear mode. The volume of the pressure chamber 31 is changed by deforming the side wall 33 formed between the pressure chamber 31 and the dummy chamber 32 in response to the drive signal.
[0035] When the side wall portion 33 undergoes shear mode deformation, the volume of the pressure chamber 31 in which the electrode layer 34 is provided increases, and the pressure decreases. As a result, ink in the ink chamber 27 flows into the pressure chamber 31.
[0036] With the volume of the pressure chamber 31 increased, the IC 52 applies a drive voltage of reverse potential to the electrode layer 34 of the pressure chamber 31. This causes the side wall portion 33 to deform in a shear mode, reducing the volume of the pressure chamber 31 in which the electrode layer 34 is provided, and increasing the pressure. As a result, the ink in the pressure chamber 31 is pressurized and ejected from the nozzle 28.
[0037] The method for manufacturing the inkjet head 10 will now be described. First, a piezoelectric member having a plurality of grooves is attached to a plate-shaped substrate 21 with adhesive or the like, and then machined using a dicing saw, slicer, or the like to form an actuator base 11 having a predetermined outer shape. Note that, for example, a block-shaped base member having a thickness equivalent to that of multiple sheets may be formed in advance and then divided to manufacture multiple actuator bases 11 of the predetermined shape.
[0038] Next, an electrode layer 34 and pattern wiring 211 are formed on the inner surfaces of the grooves that form the pressure chambers 31 and dummy chambers 32 and on the surface of the substrate 21. As a result of the above, the electrode layer 34 and pattern wiring 211 are formed in predetermined locations on the surface of the actuator base 11. Next, as shown in Fig. 5, the protrusions 241 and the cover portion 23 are simultaneously formed using a photosensitive resin. For example, the protrusions 241 and the cover portion 23 are formed by a filling process Act 1 in which photosensitive resin material 243 is filled into communication openings that are entrances and exits on both sides of the grooves that form the dummy chambers 32 and the pressure chambers 31 and the photosensitive resin material 243, and the communication openings on both ends are sealed with the photosensitive resin, and a molding process Act 2 in which the photosensitive resin is molded into a predetermined shape. As an example, after photosensitive resin material 243 is filled into the communication ports on both sides of the grooves that form dummy chamber 32 and pressure chamber 31, an exposure mask having an exposure pattern that leaves uncured the portion that forms the opening that becomes aperture 242 is overlaid, and exposure is performed to cure the portions other than the uncured target portion that becomes aperture 242, and a development process is performed in which the uncured portion is washed away with a developer to open aperture 242 of a predetermined shape. In this way, photosensitive resin material 243 is molded into a predetermined shape, and aperture portion 240 is formed. In other words, a pair of protrusions 241 between which aperture 242 is formed, and cover portion 23 are formed simultaneously.
[0039] As another example, if sufficient resolution cannot be obtained by forming a squeezed pattern of photosensitive resin by exposure under certain conditions, the squeezed openings 242 may be formed by machining to form the protrusions 241. For example, as shown in Fig. 5, in the filling process Act 1, a photosensitive resin material 243 is applied to both ends of the dummy chambers 32 and the pressure chambers 31 and filled therein, and the filled photosensitive resin material 243 is hardened by exposure and development processes to close the communication openings of the dummy chambers 32 and the pressure chambers 31 with walls of photosensitive resin. Then, in the molding process Act 2, the squeezed openings 242 are formed by machining using a dicer having a desired width. In this way, the protrusions 241 and the cover portion 23 having the predetermined shape are formed.
[0040] Furthermore, the actuator base 11 is assembled to the manifold 18, and the frame 13 is attached to one surface of the substrate 21 of the actuator base 11 with an adhesive sheet made of thermoplastic resin.
[0041] The assembled frame 13, the top 222 of the side wall 33 of the actuator 22, and the surface of the protrusion 241 facing the nozzle plate 12 are polished to be flush with each other. The nozzle plate 12 is then attached by bonding to the polished top 222 of the side wall 33, the frame 13, and the surface facing the protrusion 241. At this time, the nozzles 28 are positioned so that they face the pressure chambers 31. Furthermore, as shown in FIG. 1, the driving IC chip 52 and the circuit board 17 are connected to the pattern wiring 211 formed on the main surface of the substrate 21 via a flexible printed circuit board, thereby completing the inkjet head 10.
[0042] An example of an inkjet printer 100 equipped with an inkjet head 10 will be described below with reference to Fig. 15. The inkjet printer 100 includes a housing 111, a medium supply unit 112, an image forming unit 113, a medium discharge unit 114, a conveying device 115, and a control unit 116.
[0043] The inkjet printer 100 is a liquid ejection device that performs an image formation process on a sheet of paper P by ejecting a liquid such as ink while transporting the sheet of paper P as a recording medium, which is the object of ejection, along a predetermined transport path A that runs from a medium supply section 112 through an image forming section 113 to a medium ejection section 114.
[0044] The housing 111 forms the outer shell of the inkjet printer 100. The housing 111 has an outlet at a predetermined location for discharging the paper P to the outside.
[0045] The medium supply unit 112 includes a plurality of paper feed cassettes, and is configured to be able to hold a stack of multiple sheets of paper P of various sizes.
[0046] The medium discharge unit 114 includes a paper discharge tray configured to be able to hold the paper P discharged from the discharge port.
[0047] The image forming section 113 includes a support section 117 that supports the paper P, and a plurality of head units 130 that are disposed above the support section 117 and face each other.
[0048] The support section 117 includes a conveyor belt 118 that is looped in a predetermined area where image formation is performed, a support plate 119 that supports the conveyor belt 118 from the back side, and a plurality of belt rollers 120 that are provided on the back side of the conveyor belt 118.
[0049] During image formation, the support unit 117 supports the paper P on a holding surface, which is the upper surface of the conveyor belt 118, and conveys the paper P downstream by moving the conveyor belt 118 at a predetermined timing by the rotation of the belt roller 120.
[0050] The head unit 130 includes a plurality of inkjet heads 10 (four colors), ink tanks 132 as liquid tanks mounted on each inkjet head 10, a connection flow path 133 connecting the inkjet heads 10 and the ink tanks 132, and a circulation pump 134 as a circulation unit. The head unit 130 is a circulation type head unit that constantly circulates liquid in the ink tanks 132 and the pressure chambers 31, dummy chambers 32, and ink chambers 27 built inside the inkjet heads 10.
[0051] In this embodiment, the system includes inkjet heads 10 of four colors, cyan, magenta, yellow, and black, and ink tanks 132 that store ink of each color. The ink tanks 132 are connected to the inkjet heads 10 by connection flow paths 133. The connection flow paths 133 include a supply flow path that is connected to the supply port of the inkjet head 10, and a recovery flow path that is connected to the discharge port of the inkjet head 10.
[0052] A negative pressure control device such as a pump (not shown) is connected to the ink tank 132. The negative pressure control device controls the negative pressure inside the ink tank 132 in accordance with the head value between the inkjet head 10 and the ink tank 132, thereby causing the ink supplied to each nozzle 28 of the inkjet head 10 to form a meniscus of a predetermined shape.
[0053] The circulation pump 134 is a liquid feed pump configured, for example, as a piezoelectric pump. The circulation pump 134 is provided in the supply flow path. The circulation pump 134 is connected to a drive circuit of the control unit 116 by wiring, and is configured to be controllable by a CPU (Central Processing Unit). The circulation pump 134 circulates the liquid in the circulation flow path including the inkjet head 10 and the ink tank 132.
[0054] The conveying device 115 conveys the paper P along a conveying path A that runs from the medium supply unit 112 through the image forming unit 113 to the medium discharge unit 114. The conveying device 115 includes a plurality of guide plate pairs 121 and a plurality of conveying rollers 122 that are arranged along the conveying path A.
[0055] Each of the guide plate pairs 121 includes a pair of plate members arranged opposite each other with the paper P being conveyed therebetween, and guides the paper P along the conveying path A.
[0056] The conveying rollers 122 are driven to rotate under the control of the control unit 116, thereby sending the paper P downstream along the conveying path A. Sensors for detecting the conveying status of the paper are arranged at various points along the conveying path A.
[0057] The control unit 116 includes a control circuit such as a CPU which is a controller, a ROM (Read Only Memory) which stores various programs, a RAM (Random Access Memory) which temporarily stores various variable data and image data, and an interface unit which inputs data from the outside and outputs data to the outside.
[0058] In the inkjet printer 100 configured as described above, when the control unit 116 detects a print instruction entered by a user operating the operation input unit via an interface, for example, the control unit 116 drives the transport device 115 to transport the paper P and outputs a print signal to the head unit 130 at a predetermined timing, thereby driving the inkjet head 10. In a liquid ejection operation, the inkjet head 10 sends a drive signal to the IC in response to an image signal corresponding to image data, applies a drive voltage to the electrode layer 34 of the pressure chamber 31 via wiring, and selectively drives the side wall portion 33 of the actuator 22 to eject ink from the nozzles 28, thereby forming an image on the paper P held on the transport belt 118. In addition, in a liquid ejection operation, the control unit 116 drives the circulation pump 134 to circulate liquid through a circulation flow path that passes through the ink tank 132 and the inkjet head 10. By the circulation operation, the ink in the ink tank 132 is supplied from the supply hole 25 to the first common chamber 271 of the ink chamber 27 through the ink supply portion of the manifold 18 by driving the circulation pump 134. This ink is supplied to the multiple pressure chambers 31 and multiple dummy chambers 32 of the pair of actuators 22. The ink flows into the second common chamber 272 of the ink chamber 27 through the pressure chambers 31 and dummy chambers 32. This ink is discharged from the discharge hole 26 to the ink tank 132 through the ink discharge portion of the manifold 18.
[0059] The above-described embodiment can provide a liquid ejection head and a method for manufacturing a liquid ejection head that can ensure stable ejection characteristics. That is, in the inkjet head 10 according to the above embodiment, by providing the cover member 24 on the pressure chamber 31, the inlet and outlet of the pressure chamber 31 have higher flow path resistance than the interior of the pressure chamber 31, the first common chamber 271, and the second common chamber 272. As a specific example, the openings that open to the first common chamber 271 and the second common chamber 272, which are common chambers of the pressure chamber 31, are smaller than the flow path cross-sectional area of the pressure chamber 31. This reduces the rise of the meniscus when liquid is ejected from the inkjet head 10. This speeds up the meniscus' return, reducing its impact on the next droplet and improving ejection stability.
[0060] Fig. 6 shows Test Example 1 for inkjet head 110 equipped with a diaphragm (throttle section 240), and Test Example 2 for inkjet head 1010 equipped with no diaphragm. Fig. 7 shows the frequency characteristics of inkjet head 110 equipped with a diaphragm according to Test Example 1, and Fig. 8 shows the frequency characteristics of inkjet head 1010 equipped with no diaphragm as Comparative Example 2. Figs. 7 and 8 each show the relationship between nozzle ejection speed and frequency for 1 drop and 3 drops, respectively.
[0061] The inkjet head 110 according to Test Example 1 is a side shooter type in which both sides in the second direction, which is the extension direction of the pressure chamber 31, communicate with a common chamber and the nozzle 28 opens midway in the extension direction of the pressure chamber 31.
[0062] As shown in FIG. 8, the inkjet head 1010 according to Test Example 2 has a flat ejection speed in the low-frequency range but tends to decrease as the frequency increases, resulting in a difference in ejection speed between the low-frequency range and the high-frequency range. For the inkjet head 1010 according to Test Example 2, the ejection speed is flat up to 25 kHz, but tends to decrease as the frequency increases above 25 kHz. For the inkjet head 1010 according to Test Example 2, the ejection speed is flat up to 15 kHz, but tends to decrease as the frequency increases above 15 kHz. Therefore, the impact position varies depending on the print pattern. Such a large difference in ejection speed makes it difficult to drive at high speeds because it takes time for the meniscus to settle, resulting in a decrease in print quality.
[0063] On the other hand, as shown in Figure 7, in the inkjet head 110 with a throttle portion, the ejection speed for both 1 drop and 3 drops tends to be flat. This is because the fluid resistance between the nozzles increases due to the common liquid, and the rise of the meniscus becomes smaller.
[0064] FIG. 9 also shows the results of a simulation of meniscus recovery for Test Example 1, in which a pressure chamber is provided with a throttle, and Test Example 2, in which a throttle is not provided. As shown in FIG. 9, when the nozzle meniscus is low-frequency, there is sufficient time between the ejection of an ink droplet and the ejection of the next droplet, allowing stable ejection after waiting for the meniscus to recover, regardless of whether a throttle is provided. On the other hand, when the nozzle is high-frequency, the time between the ejection of a dot (ink droplet) and the ejection of the next droplet is short, so the ejection of the next droplet begins before the meniscus recovers. Therefore, in the inkjet head 1010 without a throttle, the meniscus rises significantly after ejection, preventing it from recovering in time for the next droplet to be ejected, resulting in a slower ejection speed. In contrast, when a throttle is provided, the meniscus rises less, allowing the meniscus to recover more quickly, reducing the impact on the next droplet. Therefore, these simulation results suggest that providing a throttle between the pressure chamber 31 and the common chamber improves the ejection stability of the inkjet head 110.
[0065] FIG. 10 is an explanatory diagram of a side shooter type inkjet head 110 as test example 1 and a shared mode shared wall end shooter type inkjet head 2010 as test example 3, in which an ink inlet / outlet port is formed at one end and a nozzle at the other end.
[0066] 11 to 14 are graphs comparing the simulation characteristics when a throttle is provided in the end-shooter inkjet head 2010 of Test Example 3 and the side-shooter inkjet head 110 of Test Example 1. Fig. 11 shows the drive waveform, Fig. 12 shows the nozzle flow velocity vibration, Fig. 13 shows the ejection volume, and Fig. 14 shows the meniscus recovery characteristics.
[0067] The inkjet head 2010 according to Test Example 3 was an end shooter type in which one end in the second direction, which is the extension direction of the pressure chambers 31, communicates with the common chamber, the other end is closed, and a nozzle opens at the end of the flow path. In other words, the inkjet head 2010 forms a flow path in which ink flows from one side in the second direction toward the nozzle 28.
[0068] In the case of the end-shooter inkjet head 2010 supplying ink from one side as Test Example 3 and the side-shooter inkjet head 110 supplying ink from both sides as Test Example 1, the side-shooter inkjet head with supplying ink from both sides has the lowest drive voltage when the ejection volume, nozzle flow velocity oscillation, and meniscus recovery characteristics are all the same, so it can be said that the side-shooter inkjet head with supplying ink from both sides is superior in terms of drive efficiency to the single-side inkjet head. In other words, the so-called side-shooter inkjet head 110, which has a nozzle in the center of the pressure chamber and ink inlets and outlets at both ends, has better ejection efficiency than the end-shooter inkjet head 2010.
[0069] In general, in a shear-mode, shared-wall inkjet head, the pressure chamber is formed by a fine groove cut in a piezoelectric body using a diamond cutter, making it difficult to reduce the cross section of a portion of the pressure chamber. However, according to the above embodiment, the groove in the actuator 22 is filled with a photosensitive resin and then patterned by exposure to form the throttle portion 240, thereby reducing the number of processes and inexpensively and easily forming the throttle. Furthermore, since the hole shape can be selected relatively freely by exposure and development, it is easy to freely design the fluid resistance of the throttle. Furthermore, in the above embodiment, the side portion 221 of the actuator 22 forms an inclined surface, which reduces restrictions on the exposure direction and facilitates exposure and development. Furthermore, by using machining in combination, finer patterning can be achieved with high precision.
[0070] Furthermore, in the inkjet head 10 according to the above embodiment, a restriction is formed partially at the communication port which serves as the entrance and exit of the pressure chamber 31, making it easier to ensure the volume of the pressure chamber 31 than if the pressure chamber 31 were narrowed overall. Therefore, there are fewer restrictions on the size of the nozzle and droplets compared to a configuration in which the pressure chamber is narrowed overall, making it easier to maintain ejection performance.
[0071] The present invention is not limited to the above-described embodiment, and in the implementation stage, the components can be modified and embodied without departing from the spirit of the invention.
[0072] In the above embodiment, as an example, the first common chamber 271 is arranged on one side of the pressure chamber 31, the second common chamber 272 is arranged on the other side, and the fluid flows in from one side of the pressure chamber and out from the other side. However, the present invention is not limited to this. For example, the common chambers on both sides of the pressure chamber 31 may be configured as supply sides, and the fluid may flow in from both sides. That is, the fluid may flow in from both sides of the pressure chamber 31 and out from the nozzle 28 arranged in the center of the pressure chamber 31. Even in this case, by providing a throttle at the inlet portion on both sides of the pressure chamber 31, the fluid resistance can be increased and the ejection efficiency can be improved.
[0073] Furthermore, in the above embodiment, the throttle section 240 that increases the flow path resistance is configured to have a pair of protrusions 241 formed on the wall surfaces of the side wall sections 33 on both sides of the pressure chamber 31, but the shape of the throttle section 240 is not limited to this. For example, it may be a protrusion formed on a part of the bottom side of the pressure chamber 31 or on a part of the nozzle plate 12 side, or it may be configured in such a way that a region on the bottom side of the pressure chamber 31 is partially filled with photosensitive resin. For example, the throttle port 242 is configured to have a slit shape that extends in the third direction, which is the depth direction of the pressure chamber, but it may extend in another direction or may have another shape, including a circle or an oval.
[0074] Furthermore, the cover portion 23 and the protrusion portion 241 are formed inside the grooves that form the pressure chambers 31 and the dummy chambers 32 and have a shape that fills part of the grooves, but this is not limited to this. For example, on the side surface of the actuator, a photosensitive resin may be disposed outside the grooves that form the pressure chambers 31 and the dummy chambers 32 to form the cover portion 23 that closes the dummy chambers 32, or the restrictor portion 240 such as the protrusion portion 241 that partially closes the communication port of the pressure chamber 31.
[0075] In the above embodiment, an example was shown in which actuators 22 having a plurality of grooves were arranged on the main surface of substrate 21, but this is not limited to this. For example, a configuration in which actuators are provided on the end surface of substrate 21 is also possible. Furthermore, the number of nozzle rows is not limited to that in the above embodiment, and a configuration in which one row, or three or more rows are provided is also possible.
[0076] In the above embodiment, the actuator base 11 is provided with a laminated piezoelectric element made of the piezoelectric member 131 on the substrate 21, but this is not limiting. For example, the actuator base 11 may be formed only with the piezoelectric member without using a substrate. Also, instead of using two piezoelectric members, a single piezoelectric member may be used. The dummy chamber 32 may be connected to the common chambers, namely the first common chamber 271 and the second common chamber 272. The supply side and the discharge side may be reversed, or may be configured to be switchable.
[0077] Furthermore, in the above embodiment, as an example, a circulation-type inkjet head is exemplified, in which one side of the pressure chamber 31 is the supply side and the other side is the discharge side, and fluid flows in from one side of the pressure chamber and flows out from the other side. However, the present invention is not limited to this. For example, a non-circulation-type inkjet head may also be used. Furthermore, for example, a common chamber on both sides of the pressure chamber 31 may be the supply side, and fluid may flow in from both sides. That is, a configuration in which fluid flows in from both sides of the pressure chamber 31 and flows out from the nozzle 28 located in the center of the pressure chamber 31 may also be used. Even in this case, by providing a throttle portion 240 at the communication port that serves as the inlet on both sides of the pressure chamber 31, fluid resistance can be increased and ejection efficiency can be improved.
[0078] For example, the liquid to be ejected is not limited to ink for printing, but may be a device that ejects liquid containing conductive particles for forming a wiring pattern on a printed wiring board.
[0079] Furthermore, in the above embodiment, the inkjet head is used in a liquid ejection device such as an inkjet printer, but the invention is not limited to this and can also be used in, for example, 3D printers, industrial manufacturing machines, and medical applications, allowing for reductions in size, weight, and cost.
[0080] According to at least one of the embodiments described above, it is possible to provide a liquid ejection head and a method for manufacturing a liquid ejection head that can ensure stable ejection characteristics.
[0081] Although several embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These novel embodiments can be embodied in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the invention. These embodiments and their modifications are included within the scope and spirit of the invention, and are also included in the scope of the invention and its equivalents as defined in the claims. The following is a description equivalent to the invention described in the claims of the original application. (1) an actuator having a plurality of pressure chambers communicating with nozzles that eject liquid, a plurality of grooves that form a plurality of dummy chambers arranged between the plurality of pressure chambers, and a plurality of side walls formed between the pressure chambers and the grooves that form the dummy chambers; a common chamber communicating with both ends of the pressure chamber of the actuator; a restrictor portion made of photosensitive resin, disposed at an end of the pressure chamber of the actuator on the common chamber side, and blocking a part of a communication port of the pressure chamber communicating with the common chamber; A side shooter type liquid ejection head comprising: (2) a plurality of the pressure chambers and the dummy chambers are arranged along a first direction, a nozzle plate having a plurality of the nozzles arranged side by side in a first direction and communicating with the pressure chambers; a base on which the actuator is disposed, a bottom surface of the groove is bonded to the base; each of the pressure chambers extends in a second direction intersecting the first direction; The liquid ejection head according to (1), wherein the nozzle is disposed at a position corresponding to a midpoint of the pressure chamber in the second direction. (3) A method for manufacturing a side-shooter type liquid ejection head in an actuator having a plurality of pressure chambers communicating with nozzles that eject liquid, a plurality of grooves that form a plurality of dummy chambers arranged between the plurality of pressure chambers, and a plurality of side walls formed between the pressure chambers and the grooves that form the dummy chambers, the method comprising: supplying photosensitive resin to openings that communicate with common chambers formed at both ends of the pressure chambers; and shaping the resin by exposure and development to form a throttle portion that covers a portion of the pressure chamber. (4) The method for manufacturing a liquid ejection head described in (3), wherein the aperture portion is formed into a shape that narrows the opening more than the inside of the pressure chamber by being exposed and developed after the photosensitive resin is formed, or by being exposed, developed, and machined after the photosensitive resin is formed. (5) A method for manufacturing a liquid ejection head as described in (3), in which the photosensitive resin is supplied to the pressure chamber and the dummy chamber on the side of the actuator, and by exposure and development, or by exposure, development and machining, a throttling portion that blocks part of the opening and a cover portion made of photosensitive resin that covers the dummy chamber are formed. [Explanation of symbols]
[0082] 10...inkjet head, 11...actuator base, 12...nozzle plate, 13...frame, 17...circuit board, 18...manifold, 21...substrate, 22...actuator, 24...cover member (wall portion), 25...supply hole, 26...discharge hole, 27...ink chamber, 31...pressure chamber, 32...dummy chamber, 33...side wall portion, 34...electrode layer, 51...film, 52...driving IC chip, 81...ink supply portion, 82...ink discharge portion, 100...inkjet printer, 111...casing, 112...medium supply portion, 113 ...Image forming unit, 114...medium discharge unit, 115...conveying device, 116...control unit, 117...support unit, 118...conveying belt, 119...support plate, 120...belt roller, 121...pair of guide plates, 122...conveying roller, 130...head unit, 132...ink tank, 133...connecting flow path, 134...circulation pump, 211...pattern wiring, 221...side portion, 222...top, 240...throttling portion, 241...protrusion, 242...throttling port, 243...photosensitive resin material, 271...first common chamber, 272...second common chamber.
Claims
1. an actuator having a plurality of pressure chambers communicating with nozzles that eject liquid, a plurality of grooves that form a plurality of dummy chambers arranged between the plurality of pressure chambers, and a plurality of side walls formed between the pressure chambers and the grooves that form the dummy chambers; a common chamber communicating with both ends of the actuator in the extension direction of the pressure chamber; a restrictor portion made of photosensitive resin, disposed at an end of the pressure chamber of the actuator on the common chamber side, and blocking a part of a communication port of the pressure chamber communicating with the common chamber; Equipped with The liquid ejection head is of a side shooter type, and the throttle portion has a pair of protrusions formed on the side surfaces of the side walls on both sides of the pressure chamber in a first direction, which is the arrangement direction of the multiple pressure chambers.
2. a plurality of the pressure chambers and the dummy chambers are arranged along a first direction; a nozzle plate having a plurality of the nozzles arranged side by side in a first direction and communicating with the pressure chambers; a base on which the actuator is disposed, a bottom surface of the groove is bonded to the base; The pressure chambers each extend in a second direction intersecting the first direction, The liquid ejection head according to claim 1 , wherein the nozzle is disposed at a position corresponding to a midpoint of the pressure chamber in the second direction.
3. A method for manufacturing a side-shooter type liquid ejection head, in an actuator having a plurality of pressure chambers communicating with nozzles that eject liquid, a plurality of grooves that form a plurality of dummy chambers arranged between the plurality of pressure chambers, and a plurality of side walls formed between the pressure chambers and the grooves that form the dummy chambers, the method comprising: supplying a photosensitive resin to openings that communicate with a common chamber formed at both ends of the pressure chambers in an extension direction, and shaping the resin by exposure and development to form a throttle portion that has a pair of protrusions formed on the side surfaces of the side walls on both sides in a first direction that is the arrangement direction of the plurality of grooves and covers a part of the pressure chamber.
4. 4. The method for manufacturing a liquid ejection head according to claim 3, wherein the aperture portion is formed into a shape that narrows the opening more than the interior of the pressure chamber by exposing and developing the photosensitive resin after the film is formed, or by exposing, developing, and machining the photosensitive resin after the film is formed.
5. 4. A method for manufacturing a liquid ejection head as described in claim 3, wherein the photosensitive resin is supplied to the pressure chamber and the dummy chamber on the side of the actuator, and a restrictor portion that closes part of the opening and a cover portion made of photosensitive resin and covering the dummy chamber are formed by exposure and development, or by exposure, development and machining.
Citation Information
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