The present application claims priority from Japanese Patent Application No. 2018-182015 filed on Sep. 27, 2018, the disclosure of which is incorporated herein by reference in its entirety.
The present disclosure relates to a liquid discharge head including a supply channel and a return channel as well as a liquid discharge apparatus provided with the liquid discharge head.
There is known a liquid discharge head configured to circulate liquid between a tank (storage chamber) and individual liquid chambers (individual channels) via a supply-side common liquid chamber (supply channel) and a discharge-side common liquid chamber (return channel), wherein the discharge-side common liquid chamber includes a filter. The filter inhibits foreign matter from invading the individual liquid chambers (individual channels) through the discharge-side common liquid chamber (return channel) at the time of assembling the liquid discharge head.
In the above configuration, however, bubbles may accumulate in an upstream portion of the filter during liquid circulation, which may cause clogging of the filter. The clogging of the filter may interfere with liquid circulation, which may cause a shortage of liquid supply to the individual channels. Further, the clogging of the filter may increase the channel resistance of the return channel, which may require great driving force of a pump for liquid circulation. Furthermore, the clogging of the filter may make the channel resistance at an upstream side from the nozzle different from the channel resistance at a downstream side from the nozzle, which may break a meniscus of the nozzle and liquid may leak from the nozzle.
An object of the present disclosure is to provide a liquid discharge head that is capable of inhibiting clogging of a filter provided in a return channel and a liquid discharge apparatus provided with the liquid discharge head.
According to a first aspect of the present disclosure, there is provided a liquid discharge head, including: a plurality of individual channels respectively including a plurality of nozzles; a supply channel allowing an outlet of a storage chamber storing a liquid to communicate with an inlet of each of the individual channels; a return channel allowing an outlet of each of the individual channels to communicate with an inlet of the storage chamber, a return filter provided in the return channel; and a return branching channel branching off from a return upstream portion of the return channel, the return upstream portion being positioned upstream of the return filter.
According to a second aspect of the present disclosure, there is provided a liquid discharge head, including: a plurality of individual channels respectively including a plurality of nozzles; a supply channel allowing an outlet of a storage chamber storing a liquid to communicate with an inlet of each of the individual channels; a return channel allowing an outlet of each of the individual channels to communicate with an inlet of the storage chamber; a return filter provided in the return channel; a return branching channel branching off from a return upstream portion of the return channel, the return upstream portion being positioned upstream in the return filter; a valve switchable between a first position and a second position, the valve in the first position not allowing the individual channels to communicate with the return branching channel and allowing the individual channels to communicate with the storage chamber via the return channel, the valve in the second position not allowing the individual channels to communicate with the storage chamber via the return channel and allowing the individual channels to communicate with the return branching channel; a pump; and a controller, wherein, in a bubble removal process, the controller is configured to execute a first process in which the liquid moves from the storage chamber to flow through the supply channel, each of the individual channels, the return upstream portion, and the return branching channel by driving the pump with the valve being in the second position.
<Printer 100>
Referring to
The printer 100 includes a head unit 1x including four heads 1, a platen 3, a conveyer 4, and a controller 5.
The conveyer 4 has two roller pairs 4a and 4b arranged in the conveyance direction (a direction orthogonal to the vertical direction) with the platen 3 interposed therebetween. Driving a conveyance motor 4m (see
The head unit 1x is a line-type head unit in which ink is discharged from nozzles 33d (see
The platen 3, which is a flat-plate member, is disposed below the head unit 1x in a position between the roller pairs 4a and 4b in the conveyance direction. The sheet 9 is placed on an upper surface of the platen 3.
The controller 5 includes a Read Only Memory (ROM), a Random Access Memory (RAM), and an Application Specific Integrated Circuit (ASIC). The ASIC executes a recording process and the like in accordance with programs stored in the ROM. In the recording process, the controller 5 controls the conveyance motor 4m and a driver IC 1d of each head 1 (see
<Head 1>
As depicted in
Of the five plates 21 to 25 forming the channel unit 20x, the lowermost plate 25 has through holes forming the respective nozzles 33d.
The plate 24 is disposed on an upper surface of the plate 25. The plate 24 has through holes forming respective pressure chambers 33c. Each of the pressure chambers 33c is formed corresponding to one of the nozzles 33d. As depicted in
Multiple pairs each including one nozzle 33d and one pressure chamber 33c are arranged in the sheet width direction to form four rows R1 to R4. The four rows R1 to R4 are arranged in the conveyance direction. A black ink is discharged from the nozzles 33d belonging to the first row R1 from an upstream side in the conveyance direction. A yellow ink is discharged from the nozzles 33d belonging to the second row R2 from the upstream side in the conveyance direction. A cyan ink is discharged from the nozzles 33d belonging to the third row R3 from the upstream side in the conveyance direction. A magenta ink is discharged from the nozzles 33d belonging to the fourth row R4 from the upstream side in the conveyance direction.
As depicted in
The plate 23 is disposed on an upper surface of the vibration film 24x. As depicted in
The four actuators 40 are provided corresponding to the four respective rows R1 to R4. Each actuator 40 includes a common electrode 42 disposed on the upper surface of the vibration film 24x, a piezoelectric body 41 disposed on an upper surface of the common electrode 42, and individual electrodes 43 disposed on an upper surface of the piezoelectric body 41. The piezoelectric body 41 and the common electrode 42 extend in the sheet width direction over the pressure chambers 33c belonging to each of the rows R1 to R4. The individual electrodes 43 are provided corresponding to the respective pressure chambers 33c to overlap in the vertical direction the respective pressure chambers 33c.
The common electrode 42 and the individual electrodes 43 are electrically connected to the driver IC 1d (see
The plates 23 to 25 and the vibration film 24x include individual channels 33 each of which is formed by the inflow channel 33a, the inflow channel 33b, the pressure chamber 33c, the nozzle 33d, and the outflow channel 33e, and the outflow channel 33f. An upper end of the inflow channel 33a corresponds to an inlet 33x of the individual channel 33, and an upper end of the outflow channel 33f corresponds to an outlet 33y of the individual channel 33.
The manifold plate 22 is disposed on an upper surface of the plate 23. The manifold plate 22 includes four supply common channels 31d and four return common channels 32d. As depicted in
As depicted in
As depicted in
In the plate 29, through holes 29y forming the channels 32c are longer in the sheet width direction than through holes 29x forming the channels 31c. Each through hole 29y forms not only the channel 32c but also an extending portion 32xm that extends in the sheet width direction from a first end 32c1 in the sheet width direction of the channel 32c. The length in the sheet width direction from the first end 32c1 in the sheet width direction of the channel 32c to a second end 32c2 is the same as the length in the sheet width direction of the channel 31c. The channels 31c and 32c overlap with each other in the conveyance direction.
The length (width) in the conveyance direction of the extending portion 32xm is equal to the width of the channel 32c. No irregularities are present between the channel 32c and the extending portion 32xm as viewed in the vertical direction. The width of the channel 31c is equal to the width of the channel 32c. Specifically, the width of each of the channel 31c, the channel 32c, and the extending portion 32xm is approximately 1.0 to 1.5 mm.
The plate 29 is provided with the channels 31c, the channels 32c, and the extending portions 32xm, and thus the channels 31c, the channels 32c, and the extending portions 32xm have the same length (depth) in the vertical direction. As depicted in
As depicted in
Each of the filters F1 and F2 may be, for example, an electroformed filter that has fine or minute through holes over its entire area. The diameter of the through holes is approximately 10 μm. The electroformed filter can be made more accurately, for example, than a mesh filter made using stainless steel. The electroformed filter is finely made to have high filtering performance.
As depicted in
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As depicted in
The subtank 7 is provided for each of the rows R1 to R4. Different colors of inks are stored in the storage chambers 7a of the subtanks 7. Specifically, the subtank 7 having the storage chamber 7a for storing the black ink corresponds to the row R1; the subtank 7 having the storage chamber 7a for storing the yellow ink corresponds to the row R2; the subtank 7 having the storage chamber 7a for storing the cyan ink corresponds to the row R3; and the subtank 7 having the storage chamber 7a for storing the magenta ink corresponds to the row R4.
Four main tanks (not depicted) respectively containing the black ink, yellow ink, cyan ink, and magenta ink are installed in the printer 100. The subtank 7 provided for the row R1 communicates with the main tank for the black ink and contains the black ink supplied from the corresponding main tank. The subtank provided for the row R2 communicates with the main tank for the yellow ink and contains the yellow ink supplied from the corresponding main tank. The subtank provided for the row R3 communicates with the main tank for the cyan ink and contains the cyan ink supplied from the corresponding main tank. The subtank provided for the row R4 communicates with the main tank for the magenta ink and contains the magenta ink supplied from the corresponding main tank.
As depicted in
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As depicted in
<Circulation of Ink>
The controller 5 controls the pump P and the valves V1 and V2 (see
The supply valve V1 is switchable or movable between an open position where ink is allowed to flow through the tube portion 51b (i.e., the channel of the tube portion 51b is open) and a closed position where ink is not allowed to flow through the tube portion 51b (i.e., the channel of the tube portion 51b is closed). When the supply valve V1 is in the open position, the storage chamber 7a communicates with the individual channels 33 via the supply branching channel 31x.
The return valve V2 is switchable or movable between a first position where the tube portion 52a communicates with the tube portion 52c, a second position where the tube portion 52b communicates with the tube portion 52c, and a third position where the tube portions 52a and 52b do not communicate with the tube portion 51c (i.e., the channel of the tube 52 is closed). The return valve V2 is, for example, a two-way solenoid valve (electromagnetic valve) that is electromagnetically switchable or movable between the above three positions. When the return valve V2 is in the first position, the storage chamber 7a communicates with the individual channels 33 via the return channel 32 and does not communicate with the individual channels 33 via the return branching channel 32x. When the return valve V2 is in the second position, the storage chamber 7a communicates with the individual channels 33 via the return branching channel 32x and does not communicate with the individual channels 33 via the return channel 32. When the return valve V2 is in the third position, the storage chamber 7a does not communicate with the individual channels 33 via the return channel 32 and does not communicate with the individual channels 33 via the return branching channel 32x.
In the recording process or the like, the controller 5 drives the pump P with the supply valve V1 being in the closed position and the return valve V2 being in the first position so that ink circulates through a circulation route. Namely, ink outflowing through the outlet lay of the storage chamber 7a flows through the supply channel 31, each individual channel 33, and the return channel 32, and then returns to the inlet lax of the storage chamber 7a. As depicted in
The controller 5 circulates ink along a route including the return branching channel 32x to remove bubbles accumulated in a lower portion of the return filter F2 at the time of the maintenance of the head 1. Further, if necessary, the controller 5 circulates ink along a route including the supply branching channel 31x to remove bubbles accumulated in an upper portion of the supply filter F1. Referring to
The controller 5 first determines whether to execute a bubble removal process (S1). For example, the controller 5 determines to execute the bubble removal process when the controller 5 receives an input for executing the maintenance from a user or when ink is to be introduced from the main tank to the subtank 7 for the first time. For example, when ink is circulated along the circulation route in the recording process, the controller 5 determines that the bubble removal process is executed before the recording process. This inhibits a situation in which bubbles accumulated in the vicinities of the filters F1 and F2 interfere with the circulation of ink, affecting ink discharge for recording. When the controller 5 has determined not to execute the bubble removal process (S1: NO), the controller 5 repeats the step S1.
When the controller 5 has determined to execute the bubble removal process (S1: YES), the controller 5 controls the supply valve V1 to have the closed position and controls the return valve V2 to have the second position (S2). Then, the controller 5 drives the pump P (S3). This moves ink from the storage chamber 7a to flow through the supply channel 31, each individual channel 33, the channel 32c, and the return branching channel 32x (a first process). As depicted in
After the step S3, the controller 5 determines whether ink is to be introduced from the main tank to the subtank 7 for the first time (S4). When the controller has determined that ink was previously introduced from the main tank to the subtank 7 (S4: NO), the controller 5 ends this process.
When the controller 5 has determined that ink is to be introduced from the main tank to the subtank 7 for the first time (S4: YES), the controller 5 controls the supply valve V1 to have the open position and controls the return valve V2 to have the third position (S5). Then, the controller 5 drives the pump P (S6). This moves ink from the storage chamber 7a to flow through the channel 31a and the supply branching channel 31x (a second process). As depicted in
After the step S6, the controller 5 ends this process.
In a case where ink flows the circulation route including the return channel 32 and not including the return branching channel 32x, the ink passes through the return filter F2. Whereas, in a case where ink flows the circulation route including the return branching channel 32x, with the ink does not pass through the return filter F2. If those circulation routes have difference levels of channel resistance, the menisci of the nozzles 33d would be broken and ink leakage would be caused. In order to inhibit the above problem, for example, the diameter of the protrusion 32xn is adjusted in this embodiment. This makes the channel resistance of the return branching channel 32x larger than the channel resistance of a downstream portion (the channel 32a and the through hole 20c) of the return filter F2 in the return channel 32 and makes the channel resistance of the return branching channel 32x equal to the channel resistance of the return filter F2.
In the above embodiment, the printer 100 corresponds to a liquid discharge apparatus of the present disclosure; the head 1 corresponds to a liquid discharge head of the present disclosure; the channel 31a corresponds to a supply upstream portion of the present disclosure; the channel 32c corresponds to a return upstream portion of the present disclosure; the return hole 32dx corresponds to a communicating portion of the present disclosure; the plate 27 corresponds to a protrusion defining member of the present disclosure; the return valve V2 corresponds to a valve of the present disclosure; the sheet width direction corresponds to a first direction of the present disclosure; the conveyance direction corresponds to a second direction of the present disclosure; and the vertical direction corresponds to a third direction of the present disclosure.
The head 1 of this embodiment includes the individual channels 33, the supply channel 31, the return channel 32, and the return branching channel 32x branching off from the upper portion (channel 32c) of the return filter F2 in the return channel 32 (see
In the head 1, the supply filter F1 is provided in the supply channel 31 (see
The head 1 includes the supply branching channel 31x branching off from the upstream portion (channel 31a) of the supply filter F1 in the supply channel 31 (see
The first end 31a1 in the sheet width direction of the channel 31a is connected to the outlet lay of the storage chamber 7a, and the second end 31a2 in the sheet width direction of the channel 31a is connected to the supply branching channel 31x (see
The first end 32c1 in the sheet width direction of the channel 32c (the connection portion with the return branching channel 32x) is farther away from the supply branching channel 31x than the second end 32c2 in the sheet width direction of the channel 32c (see
The return hole 32dx that is the communicating portion with the outlet 33y of each individual channel 33 is provided (see
The length in the conveyance direction of the extending portion 32xm is equal to the length in the conveyance direction of the channel 32c (see
The upper end surface of the extending portion 32xm is in the same position as the return filter F2 in the vertical direction (see
The return filter F2 extends in the sheet width direction to partially overlap in the vertical direction with the extending portion 32xm. Part of the plate 27 overlapping in the vertical direction with the extending portion 32xm is joined to the return filter F2 (see
The filter plate 28 provided with the return filter F2 has the through hole 28x forming the protrusion 32xn (see
The channel resistance of the return branching channel 32x is larger than the channel resistance of the downstream portion (the channel 32a and through hole 20c) of the return filter F2 in the return channel 32. The channel resistance of the downstream portion of the return filter F2 in the return channel 32 is typically smaller than the channel resistance of the return filter F2. Since the channel resistance of the return branching channel 32x is larger than the channel resistance of the downstream portion of the return filter F2 in the return channel 32, the channel resistance of the return branching channel 32x is close to the channel resistance of the return filter F2. This inhibits the difference in channel resistance between the circulation route including the return channel 32 and not including the return branching channel 32x and the circulation route including the return branching channel 32x. Ink leakage is thus inhibited.
The channel resistance of the return branching channel 32x is equal to the channel resistance of the return filter F2. That configuration reliably inhibits the difference in channel resistance between the circulation route including the return channel 32 and not including the return branching channel 32x and the circulation route including the return branching channel 32x. Ink leakage is thus reliably inhibited.
The head 1 includes the return valve V2 (see
The return valve V2 can be switched or moved to the third position where the storage chamber 7a does not communicate with the individual channels 33 via the return branching channel 32x and does not communicate with the individual channels 33 via the return channel 32. This configuration can circulate ink on the supply channel 31 side by positioning the return valve V2 in the third position (S5 in
The embodiment of the present disclosure is explained above. The present disclosure, however, is not limited to the above. Various changes or modifications in the design may be made without departing from the claims.
The return branching channel and the supply branching channel may communicate with another storage chamber different from the storage chamber that communicates with the supply channel and the return channel or may be open to the atmosphere without being limited to the configuration in which the return branching channel and the supply branching channel communicate with the storage chamber that communicates with the supply channel and the return channel.
The return branching channel may be provided in a position close to the supply branching channel instead of being provided in the position away from the supply branching channel.
The supply branching channel and the supply filter may be omitted.
Irregularities and a height difference may be present between the extending portion and the end of the return upstream portion by making the length in the second direction (the conveyance direction in the above embodiment) of the extending portion of the return branching channel different from the length in the second direction of the end of the return upstream portion, or making the length in the third direction (the vertical direction in the above embodiment) of the extending portion of the return branching channel different from the length in the third direction of the end of the return upstream portion.
The size and pattern of the hole in the area of the return filter to be joined to the protrusion defining member (in the above embodiment, the area of the return filter F2 to be joined to the plate 27, see
The return filter may not be joined to the protrusion defining member. For example, the return filter may not extend to the position overlapping in the vertical direction with the extending portion, and part of the protrusion defining member overlapping in the vertical direction with the extending portion may be exposed to the extending portion without being joined to the return filter.
The upper end surface of the extending portion of the return branching channel may be at a position different in the vertical direction from the return filter (e.g., a position above the return filter).
The through hole forming the protrusion of the return branching channel may be formed in any other member than the filter plate provided with the return filter.
The return branching channel is not limited to the configuration having the extending portion and the protrusion. For example, the return branching channel may be formed only having the extending portion (a portion extending in the first direction) or formed only having the protrusion (a portion extending upward).
The channel resistance of the return branching channel may not be equal to the channel resistance of the return filter. Or, the channel resistance of the return branching channel may be equal to or less than the channel resistance of the downstream portion of the return filter in the return channel.
The pump may be provided between the supply channel and the outlet of the storage chamber or between the return channel and the inlet of the storage chamber. Multiple pumps may be provided between the supply channel and the outlet of the storage chamber and between the return channel and the inlet of the storage chamber.
The number of supply common channels and the number of return common channels are not limited to the above. One supply common channel and one return common channel may be provided. Further, the position and the number of the supply holes and the position and the number of the return holes are not limited to the above.
The number of nozzles and the number of pressure chambers included in each individual channel are not limited to the above. For example, each individual channel may include one nozzle and two pressure chambers. Each individual channel may include two or more nozzles.
The actuator is not limited to a piezo-type actuator using piezoelectric elements. The actuator may be an actuator in any other type (e.g., a thermal-type actuator using heat generating elements and an electrostatic-type actuator using electrostatic force).
The head is not limited to the line-type head. The head may be a serial-type head in which liquid is discharged from nozzles onto a medium (an object to which liquid is to be discharged) during movement of the head in a scanning direction parallel to the sheet width direction.
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, liquefied metal, and liquefied resin).
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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2018-182015 | Sep 2018 | JP | national |
Number | Name | Date | Kind |
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20110128335 | von Essen | Jun 2011 | A1 |
20180072066 | Yoneta | Mar 2018 | A1 |
Number | Date | Country |
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2017-177752 | Oct 2017 | JP |
2018-47683 | Mar 2018 | JP |
Number | Date | Country | |
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20200101478 A1 | Apr 2020 | US |