The present application claims priority from Japanese Patent Application No. 2018-147608, which was filed on Aug. 6, 2018, the disclosure of which is herein incorporated by reference in its entirety.
The following disclosure relates to a liquid ejection head including a plurality of individual passages each having a nozzle.
There is known a liquid ejection head including: a plurality of second common liquid passages (supply liquid passages) each communicating with inlets of corresponding ones of a plurality of individual passages; and a plurality of first common liquid passages (return liquid passages) each communicating with outlets of corresponding ones of the plurality of individual passages. The first common liquid passages are joined together by a first joining liquid passage, and the second common liquid passages are joined together by a second joining liquid passage. Liquid is supplied from the second joining liquid passage to the second common liquid passages through their respective one ends. While flowing from the one end to the other end of each of the second common liquid passages, the liquid enters into the inlets of the respective individual passages communicating with the second common liquid passage. The liquid having flowed into each of the individual passages is partly ejected from a nozzle. The remaining portion of the liquid flows into a corresponding one of the first common liquid passages via the outlet of the individual passage. The liquid having flowed into the first common liquid passage flows from one end toward the other end of the first common liquid passage collected by the first joining liquid passage through the other end thereof.
In the above-described liquid ejection head, the liquid is supplied from the second joining liquid passage to the one end of each of the second common liquid passages. The liquid flows from the one end toward the other end of the second common liquid passage and enters into the inlets of the respective individual passages communicating with the second common liquid passage. In this case, the pressure applied to each of the individual passages communicating with each of the second common liquid passages (the supply liquid passages) increases with decrease in distance to the one end of the second common liquid passage. Thus, the pressure to be applied varies among the individual passages communicating with each of the supply liquid passages, leading to a difference in amount of liquid to be ejected from the nozzle.
In the above-described liquid ejection head, the liquid having entered into each of the first common liquid passages flows from the one end toward the other end of the first common liquid passage and is collected by the first joining liquid passage through the other end thereof. In this case, the pressure applied to each of the individual passages communicating with each of the first common liquid passages (the return liquid passages) increases with increase in distance to the other end of the first common liquid passage. Thus, the pressure to be applied varies among the individual passages communicating with each of the return liquid passages, leading to a difference in amount of liquid to be ejected from the nozzle.
Accordingly, an aspect of the disclosure relates to a liquid ejection head with reduced variations in pressure to be applied among a plurality of individual passages.
In one aspect of the disclosure, a liquid ejection head includes: a plurality of individual passages each having a nozzle; a plurality of supply liquid passages each communicating with an individual inlet of a corresponding one of the plurality of individual passages; a plurality of return liquid passages each communicating with an individual outlet of a corresponding one of the plurality of individual passages; a first supply coupling liquid passage coupling the plurality of supply liquid passages to each other and communicating with a first inlet of each of the plurality of supply liquid passages; and a second supply coupling liquid passage coupling the plurality of supply liquid passages to each other and communicating with a second inlet of each of the plurality of supply liquid passages. In each of the plurality of supply liquid passages, the individual inlet of the corresponding one of the plurality of individual passages is located between the first inlet and the second inlet.
In another aspect of the disclosure, a liquid ejection head includes: a plurality of individual passages each having a nozzle; a plurality of supply liquid passages each communicating with an individual inlet of a corresponding one of the plurality of individual passages; a plurality of return liquid passages each communicating with an individual outlet of a corresponding one of the plurality of individual passages; a first return coupling liquid passage coupling the plurality of return liquid passages to each other and communicating with a first outlet of each of the plurality of return liquid passages; and a second return coupling liquid passage coupling the plurality of return liquid passages to each other and communicating with a second outlet of each of the plurality of return liquid passages. In each of the plurality of return liquid passages, the individual outlet of the corresponding one of the plurality of individual passages is located between the first outlet and the second outlet.
The objects, features, advantages, and technical and industrial significance of the present disclosure will be better understood by reading the following detailed description of the embodiments, when considered in connection with the accompanying drawings, in which:
Hereinafter, there will be described embodiments by reference to the drawings. First, there will be described, with reference to
The printer 100 includes a head unit 1x, a platen 3, a conveying mechanism 4, and a controller 5. The head unit 1x includes the four heads 1.
An upper surface of the platen 3 is capable of supporting a sheet 9.
The conveying mechanism 4 includes two roller pairs 4a, 4b. The platen 3 is interposed between the two roller pairs 4a, 4b in a conveying direction. When a conveying motor 4m is driven by the controller 5, the roller pairs 4a, 4b are rotated in a state in which the sheet 9 is nipped by the roller pairs 4a, 4b, whereby the sheet 9 is conveyed in the conveying direction.
The head unit 1x is of a line type and elongated in a widthwise direction of the sheet 9. The line type is a type in which the head unit 1x ejects ink onto the sheet 9 from nozzles 21 (see
The controller 5 includes a read-only memory (ROM), a random-access memory (RAM), and an application-specific integrated circuit (ASIC). The ASIC executes various processings, such as a recording processing, according to programs stored in the ROM. In the recording processing, the controller 5 controls the conveying motor 4m and a driver IC 1d of the head 1 (see
There will be next described a configuration of each of the heads 1 with reference to
The head 1 includes a liquid-passage defining plate 11 and an actuator unit 12.
As illustrated in
As illustrated in
The supply liquid passages 31 and the return liquid passages 32 extend in the same direction that coincides with the widthwise direction of the sheet 9 and may be hereinafter referred to as “extending direction”. The supply liquid passages 31 and the return liquid passages 32 are arranged in a direction along the conveying direction which may be hereinafter referred to as “arrangement direction”. In the present embodiment, the arrangement direction is orthogonal to the extending direction. The supply liquid passages 31 and the return liquid passages 32 are alternately arranged in the arrangement direction.
Each of the supply liquid passages 31 has: a first inlet 31a formed at one end portion of the supply liquid passage 31 in the extending direction; and a second inlet 31b formed at the other end portion of the supply liquid passage 31 in the extending direction. Each of the supply liquid passage 31 communicates with the first supply coupling liquid passage 41 via the first inlet 31a and communicates with the second supply coupling liquid passage 42 via the second inlet 31b.
Each of the return liquid passages 32 has: a first outlet 32a formed at one end portion of the return liquid passage 32 in the extending direction; and a second outlet 32b formed at the other end portion of the return liquid passage 32 in the extending direction. Each of the return liquid passage 32 communicates with the first return coupling liquid passage 51 via the first outlet 32a and communicates with the second return coupling liquid passage 52 via the second outlet 32b.
Each of the supply coupling liquid passages 41, 42 and the return coupling liquid passages 51, 52 extends in the arrangement direction. The first supply coupling liquid passage 41 and the first return coupling liquid passage 51 are located on one side of the supply liquid passages 31 and the return liquid passages 32 in the extending direction and are located respectively at different positions in the extending direction. The second supply coupling liquid passage 42 and the second return coupling liquid passage 52 are located on the other side of the supply liquid passages 31 and the return liquid passages 32 in the extending direction and are located respectively at different positions in the extending direction. The first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 are arranged so as to be symmetric with respect to a plane extending in the arrangement direction and the vertical direction through the center of the liquid-passage defining plate 11 in the extending direction. The first return coupling liquid passage 51 and the second return coupling liquid passage 52 are arranged so as to be symmetric with respect to the plane.
In the present embodiment, the first return coupling liquid passage 51 and the second return coupling liquid passage 52 are located between the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 in the extending direction.
The first supply coupling liquid passage 41 communicates at its other-side surface in the extending direction with the first inlets 31a of the respective supply liquid passages 31. The second supply coupling liquid passage 42 communicates at its one-side surface in the extending direction with the second inlets 31b of the respective supply liquid passages 31. The first return coupling liquid passage 51 communicates at its other-side surface in the extending direction with the first outlets 32a of the respective return liquid passages 32. The second return coupling liquid passage 52 communicates at its one-side surface in the extending direction with the second outlets 32b of the respective return liquid passages 32.
It is noted that, while left two of the supply liquid passages 31 in
As illustrated in
The second supply coupling liquid passage 42 communicates with the storage chamber 7a via two supply openings 42x, 42y. The two supply openings 42x, 42y are formed respectively at one and the other end portions of the second supply coupling liquid passage 42 in the arrangement direction. The supply openings 42x, 42y are located between coupled portions (i.e., the second inlets 31b) of the respective supply liquid passages 31.
The first return coupling liquid passage 51 communicates with the storage chamber 7a via two return openings 51x, 51y. The return openings 51x, 51y are formed respectively at one and the other end portions of the first return coupling liquid passage 51 in the arrangement direction. The return openings 51x, 51y are located between coupled portions (i.e., the first outlets 32a) of the respective return liquid passages 32.
The second return coupling liquid passage 52 communicates with the storage chamber 7a via two return openings 52x, 52y. The return openings 52x, 52y are formed respectively at one and the other end portions of the second return coupling liquid passage 52 in the arrangement direction. The return openings 52x, 52y are located between coupled portions (i.e., the second outlets 32b) of the respective return liquid passages 32.
The sub-tank 7 is installed in the head 1. The storage chamber 7a communicates with a main tank, not illustrated, for storing the ink and stores the ink supplied from the main tank.
The individual passages 20 are arranged between the coupling liquid passages 41, 51 and the coupling liquid passages 42, 52 in the extending direction. The inlet 20a of each of the individual passages 20 is formed between the first inlet 31a and the second inlet 31b of a corresponding one of the supply liquid passages 31. The outlet 20b of each of the individual passages 20 is formed between the first outlet 32a and the second outlet 32b of a corresponding one of the return liquid passages 32.
Each of the individual passages 20 is formed between a corresponding one of the supply liquid passages 31 and a corresponding one of the return liquid passages 32 which are adjacent to each other in the arrangement direction. The individual passages 20 are arranged in five rows, in each of which the individual passages 20 each extending in the extending direction are arranged in the extending direction. The five rows are arranged in the arrangement direction. The supply liquid passage 31 and the return liquid passage 32 are formed on opposite sides of each of the rows of the individual passages 20 in the arrangement direction. In the present embodiment, the supply liquid passage 31 or the return liquid passage 32 formed between two of the rows of the individual passages 20 which are adjacent to each other in the arrangement direction communicates with the individual passages 20 belonging to the two rows. Here, each of first individual passages belonging to the rightmost one of the five rows of the individual passages 20 in
As illustrated in
As illustrated in
The supply liquid passage 31 is constituted by through holes formed in the respective plates 11c, 11d. The return liquid passage 32 is constituted by through holes formed in the respective plates 11f, 11g.
Damper films 35 are provided in the respective supply liquid passages 31. Damper films 37 are provided in the respective return liquid passages 32. Each of the damper films 35 defines a lower surface of a corresponding one of the supply liquid passages 31. Each of the damper films 37 defines an upper surface of a corresponding one of the return liquid passages 32. Specifically, the plate 11e has: a through hole serving as a damper chamber 34 at a region located under the supply liquid passage 31; and a through hole serving as a damper chamber 36 at a region located over the return liquid passage 32. The damper film 35 is mounted on an upper surface of the plate 11e so as to cover the damper chamber 34, and the damper film 37 is mounted on a lower surface of the plate 11e so as to cover the damper chamber 36.
As illustrated in
As illustrated in
Each of the damper films 35, 37, 45, 55 is a film-like member with a thickness that is less than that of each of the plates 11a-11i. The damper films 45, 55 are hatched in
It is noted that as illustrated in
Here, there will be described the flow of ink in the liquid-passage defining plate 11. The arrows in
As illustrated in
The ink having flowed in the first inlets 31a of the respective supply liquid passages 31 flows in the supply liquid passages 31 from the one side toward the other side in the extending direction and enters into the inlets 20a of the respective individual passages 20. The ink having flowed in the second inlets 31b of the respective supply liquid passages 31 flows in the supply liquid passages 31 from the other side toward the one side in the extending direction and enters into the inlets 20a of the respective individual passages 20.
In each of the individual passages 20, as illustrated in
As illustrated in
This circulation of the ink between the storage chamber 7a and each of the individual passages 20 enables discharge of air bubbles from the individual passages 20 and prevents increase in viscosity of the ink. Furthermore, in the case where the ink contains components with a possibility of settling, such as pigments, the components are stirred, thereby preventing settling of the components.
The actuator unit 12 is disposed on an upper surface of the liquid-passage defining plate 11 so as to cover the pressure chambers 22.
As illustrated in
The individual electrodes 12d and the common electrode 12b are electrically connected to the driver IC 1d. The driver IC 1d keeps the electric potential of the common electrode 12b at the ground potential and changes the electric potential of each of the individual electrodes 12d. Specifically, the driver IC 1d creates drive signals based on control signals output from the controller 5 and transmits the drive signals to the individual electrodes 12d. As a result, the electric potential of each of the individual electrodes 12d is changed between a predetermined driving potential and the ground potential. In this operation, for each of the piezoelectric elements 12c, portions of the vibration plate 12a and the piezoelectric element 12c which are located between a corresponding one of the individual electrodes 12d and a corresponding one of the pressure chambers 22 are deformed so as to protrude toward the pressure chamber 22. This changes the volume of the pressure chamber 22, so that a pressure is applied to the ink in the pressure chamber 22 to eject the ink from a corresponding one of the nozzles 21.
The head 1 according to the present embodiment as described above includes: the first supply coupling liquid passage 41 coupling the supply liquid passages 31 to each other and communicating with the first inlets 31a of the respective supply liquid passages 31; and the second supply coupling liquid passage 42 coupling the supply liquid passages 31 to each other and communicating with the second inlets 31b of the respective supply liquid passages 31 (see
The head 1 according to the present embodiment includes: the first return coupling liquid passage 51 coupling the return liquid passages 32 to each other and communicating with the first outlets 32a of the respective return liquid passages 32; and the second return coupling liquid passage 52 coupling the return liquid passages 32 to each other and communicating with the second outlets 32b of the respective return liquid passages 32 (see
The supply liquid passages 31 and the return liquid passages 32 extend in the same direction (the extending direction) and are arranged in the arrangement direction intersecting the extending direction (see
If the first supply coupling liquid passage 41 and the first return coupling liquid passage 51 are located at the same position in the extending direction, the first supply coupling liquid passage 41 and the first return coupling liquid passage 51 overlap each other in the orthogonal direction. In this case, it is difficult to form the supply openings 41x, 41y and the return openings 51x, 51y in the upper surface of the liquid-passage defining plate 11, which may make it difficult to mount tubes and so on to the supply openings 41x, 41y and the return openings 51x, 51y. If the lengths of the first supply coupling liquid passage 41 and the first return coupling liquid passage 51 in the orthogonal direction are increased in the case where the first supply coupling liquid passage 41 and the first return coupling liquid passage 51 overlap each other in the orthogonal direction, the entire size of the liquid passages in the orthogonal direction increases, unfortunately. In the present embodiment, in contrast, the first supply coupling liquid passage 41 and the first return coupling liquid passage 51 are located respectively at different positions in the extending direction (see
If the first return coupling liquid passage 51 is located between the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 in the extending direction, and the second return coupling liquid passage 52 is located on the other side of the second supply coupling liquid passage 42 in the extending direction, or if the second return coupling liquid passage 52 is located between the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 in the extending direction, and the first return coupling liquid passage 51 is located on the one side of the first supply coupling liquid passage 41 in the extending direction, variation in loss of the pressure is easily caused between the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 and between the first return coupling liquid passage 51 and the second return coupling liquid passage 52. If the liquid-passage defining plate 11 is rotated by 180 degrees about an axis extending in the orthogonal direction through the center of the liquid-passage defining plate 11 in the extending direction and the arrangement direction in each of the above-described cases, the arrangement of the supply coupling liquid passages 41, 42 and the return coupling liquid passages 51, 52 is changed, which may cause a malfunction in communication between each coupling liquid passage and the storage chamber 7a. In the present embodiment, in contrast, the first return coupling liquid passage 51 and the second return coupling liquid passage 52 are located between the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 in the extending direction (see
The first supply coupling liquid passage 41 communicates with the storage chamber 7a via the two supply openings 41x, 41y formed such that the coupled portions of the respective supply liquid passages 31 are interposed between the supply openings 41x, 41y (see
The first return coupling liquid passage 51 communicates with the storage chamber 7a via the two return openings 51x, 51y formed such that the coupled portions of the respective return liquid passages 32 are interposed between the return openings 51x, 51y (see
At least a portion of each of the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 is defined by a corresponding one of the damper films 45 (see
At least a portion of each of the first return coupling liquid passage 51 and the second return coupling liquid passage 52 is defined by a corresponding one of the damper films 55 (see
In each of the first supply coupling liquid passage 41, the second supply coupling liquid passage 42, the first return coupling liquid passage 51, and the second return coupling liquid passage 52, a corresponding one of the damper films 45, 55 is provided at the surface (i.e., the upper or lower surface) different from the side surface communicating with any of the inlets 31a, 31b of the supply liquid passages 31 and the outlets 32a, 32b of the return liquid passages 32 (see
If the damper film is located between the coupling liquid passages 41, 51, a component for supporting the damper film needs to be provided between the coupling liquid passages 41, 51, which may result in complicated configuration between the coupling liquid passages 41, 51. In the present embodiment, in contrast, the first supply coupling liquid passage 41 is located on the one side of the first return coupling liquid passage 51 in the orthogonal direction, and the damper film 45 provided on the first supply coupling liquid passage 41 is located on the one side of the first supply coupling liquid passage 41 in the orthogonal direction (see
Likewise, if the damper film is located between the coupling liquid passages 42, 52, a component for supporting the damper film needs to be provided between the coupling liquid passages 42, 52, which may result in complicated configuration between the coupling liquid passages 42, 52. In the present embodiment, in contrast, the second supply coupling liquid passage 42 is located on the one side of the second return coupling liquid passage 52 in the orthogonal direction, and the damper film 45 provided on the second supply coupling liquid passage 42 is located on the one side of the second supply coupling liquid passage 42 in the orthogonal direction. The damper film 55 provided on the second return coupling liquid passage 52 is located on the other side of the second return coupling liquid passage 52 in the orthogonal direction. This configuration reduces the above-described problem.
If one damper film elongated in the arrangement direction is provided for each of the coupling liquid passages 41, 42, 51, 52, it is difficult to adjust the damping performance. It is difficult to evenly bond the one damper film elongated in the arrangement direction, and the volume of the liquid passage may change depending upon the flatness of the damper film. In the present embodiment, in contrast, the five damper films (45 or 55) spaced apart from each other in the arrangement direction are provided for each of the coupling liquid passages 41, 42, 51, 52 (see
At least a portion of each of the supply liquid passages 31 and the return liquid passages 32 is defined by the damper film (see
There will be next described a head 201 according to a second embodiment with reference to
In the first embodiment, the first return coupling liquid passage 51 and the second return coupling liquid passage 52 are located between the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 in the extending direction (see
In the present embodiment, the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 are located between the first return coupling liquid passage 51 and the second return coupling liquid passage 52 in the extending direction.
If the first supply coupling liquid passage 41 is located between the first return coupling liquid passage 51 and the second return coupling liquid passage 52 in the extending direction, and the second supply coupling liquid passage 42 is located on the other side of the second return coupling liquid passage 52 in the extending direction, or if the second supply coupling liquid passage 42 is located between the first return coupling liquid passage 51 and the second return coupling liquid passage 52 in the extending direction, and the first supply coupling liquid passage 41 is located on the one side of the first return coupling liquid passage 51 in the extending direction, variation in loss of the pressure is easily caused between the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 and between the first return coupling liquid passage 51 and the second return coupling liquid passage 52. If the liquid-passage defining plate 11 is rotated by 180 degrees about the axis extending in the orthogonal direction through the center of the liquid-passage defining plate 11 in the extending direction and the arrangement direction in each of the above-described cases, the arrangement of the supply coupling liquid passages 41, 42 and the return coupling liquid passages 51, 52 is changed, which may cause a malfunction in communication between each coupling liquid passage and the storage chamber 7a. In the present embodiment, in contrast, the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 are located between the first return coupling liquid passage 51 and the second return coupling liquid passage 52 in the extending direction. This configuration reduces the above-described problem.
There will be next described a head 301 according to a third embodiment with reference to
In the first embodiment, the first supply coupling liquid passage 41 communicates with the storage chamber 7a via the two supply openings 41x, 41y with the coupled portions of the respective supply liquid passages 31 between the two supply openings 41x, 41y, the second supply coupling liquid passage 42 communicates with the storage chamber 7a via the two supply openings 42x, 42y with the coupled portions of the respective supply liquid passages 31 between the two supply openings 42x, 42y, the first return coupling liquid passage 51 communicates with the storage chamber 7a via the two return openings 51x, 51y with the coupled portions of the respective return liquid passages 32 between the two return openings 51x, 51y, and the second return coupling liquid passage 52 communicates with the storage chamber 7a via the two return openings 52x, 52y with the coupled portions of the respective return liquid passages 32 between the two return openings 52x, 52y (see
In the present embodiment, each of the first supply coupling liquid passage 41 and the second supply coupling liquid passage 42 communicates with the storage chamber 7a via a corresponding one of the supply openings 41x, 42x which is located on the one side of the coupled portions of the respective supply liquid passages 31 in the arrangement direction, and each of the first return coupling liquid passage 51 and the second return coupling liquid passage 52 communicates with the storage chamber 7a via a corresponding one of the return openings 51x, 52x which is located on the one side of the coupled portions of the respective return liquid passages 32 in the arrangement direction.
If the supply openings 41x, 42x are located on the one side of the coupled portions of the respective supply liquid passages 31 in the arrangement direction, and the return openings 51x, 52x are located on the other side of the coupled portions of the respective return liquid passages 32 in the arrangement direction, the pressure applied to each of the inlets 20a and the outlets 20b of the individual passages 20 increases with decrease in distance to the supply opening 41x or 42x in the arrangement direction, and the pressure applied to each of the inlets 20a and the outlets 20b of the individual passages 20 decreases with increase in distance to the supply opening 41x or 42x in the arrangement direction (i.e., with decrease in distance to the return opening 51x or 52x). This results in a larger distribution of the pressure applied to each of the individual passages 20, leading to a case where a meniscus of the ink is not maintained. In the present embodiment, in contrast, the supply openings 41x, 42x are located on the one side of the coupled portions of the respective supply liquid passages 31 in the arrangement direction, and the return openings 51x, 52x are located on the one side of the coupled portions of the respective return liquid passages 32 in the arrangement direction, making it possible to reduce the above-described problems.
While the embodiments have been described above, it is to be understood that the disclosure is not limited to the details of the illustrated embodiments, but may be embodied with various changes and modifications, which may occur to those skilled in the art, without departing from the spirit and scope of the disclosure.
In the above-described embodiments, both the supply coupling liquid passages and the return coupling liquid passages are provided. However, the return coupling liquid passages or the supply coupling liquid passages may be omitted.
The positional relationship among the coupling liquid passages in the extending direction is not limited in particular. For example, the head may be configured such that the first return coupling liquid passage is located between the first supply coupling liquid passage and the second supply coupling liquid passage in the extending direction, and the second return coupling liquid passage is located on the other side of the second supply coupling liquid passage in the extending direction. The head may be configured such that the second return coupling liquid passage is located between the first supply coupling liquid passage and the second supply coupling liquid passage in the extending direction, and the first return coupling liquid passage is located on the one side of the first supply coupling liquid passage in the extending direction. The head may be configured such that the first supply coupling liquid passage is located between the first return coupling liquid passage and the second return coupling liquid passage in the extending direction, and the second supply coupling liquid passage is located on the other side of the second return coupling liquid passage in the extending direction. The head may be configured such that the second supply coupling liquid passage is located between the first return coupling liquid passage and the second return coupling liquid passage in the extending direction, and the first supply coupling liquid passage is located on the one side of the first return coupling liquid passage in the extending direction. The first supply coupling liquid passage and the first return coupling liquid passage may be located on the same position in the extending direction and overlap each other in the orthogonal direction. Likewise, the second supply coupling liquid passage and the second return coupling liquid passage may be located on the same position in the extending direction and overlap each other in the orthogonal direction.
The number and positions of the supply openings and the return openings are not limited in particular. For example, in the third embodiment (
A damper film may be provided on a surface of each of the coupling liquid passages, which surface communicates with the inlets of the respective supply liquid passages or the outlets of the respective return liquid passages.
At least one damper film may be provided between the first supply coupling liquid passage and the first return coupling liquid passage. At least one damper film may be provided between the second supply coupling liquid passage and the second return coupling liquid passage. In the case where a single damper film is provided between the liquid passages, pressure waves are canceled out between the liquid passages. In the case where two damper films separated from each other in the orthogonal direction are provided between the liquid passages, a space between the two damper films damps the pressure waves.
While a plurality of damper films separated from each other in the arrangement direction are provided on each of the coupling liquid passages in the above-described embodiments, the present disclosure is not limited to this configuration. For example, one or two damper films each elongated in the arrangement direction may be provided.
No damper film may be provided on each of the coupling liquid passages, the supply liquid passages, and the return liquid passages.
The positional relationship among the coupling liquid passages, the supply liquid passages, and the return liquid passages in the orthogonal direction is not limited in particular. For example, the supply coupling liquid passages and the return coupling liquid passages may be located at the same position in the orthogonal direction. The supply coupling liquid passages may be located below the return coupling liquid passages, in other words, the supply coupling liquid passages may be located on the other side of the return coupling liquid passages in the orthogonal direction. The supply liquid passages and the return liquid passages may be located at the same position in the orthogonal direction. The supply liquid passages may be located below the return liquid passages.
In the above-described embodiment (
Each of the number of the supply liquid passages and the number of the return liquid passages at least needs to be two or more.
The individual passages need not be arranged in rows and may be arranged on a random basis.
The configuration of each of the individual passages (e.g., the shape of the pressure chamber and a manner of communication between the pressure chamber and the nozzle) is not limited in particular. For example, the pressure chamber may have any shape on the plane extending along the extending direction and the arrangement direction, such as a square, a parallelogram, a rhombus, a perfect circle, and an oval. While the pressure chamber is formed just above the nozzle in the above-described embodiments, the present disclosure is not limited to this configuration. For example, another liquid passage establishing communication between the pressure chamber and the nozzle may be formed. Each of the number of the nozzles and the number of the pressure chambers in each of the individual passages is not limited to one and may be two or more.
The positions of the inlet and the outlet in each of the individual passages are not limited in particular. For example, while the inlet 20a and the outlet 20b are arranged so as to be symmetric with respect to the center point O of the pressure chamber 22 in the above-described embodiment (
The actuator is not limited to the piezoelectric actuator using piezoelectric elements and may be of any other type such as a thermal actuator using heating elements and an electrostatic actuator using an electrostatic force.
The head is not limited to the line head and may be a serial head which ejects liquid from nozzles onto a recording medium while moving in a scanning direction parallel with the widthwise direction of the sheet.
The recording medium is not limited to the sheet and may be any of a cloth, a circuit board, and the like.
The liquid ejected from the nozzles is not limited to the ink and may be any other type of liquid such as treatment liquid that coagulates or precipitates components of the ink.
The present disclosure is applied to the printer in the above-described embodiments but may be applied to a facsimile, a copying machine, and a multi-function peripheral (MFP), for example. The present disclosure may also be applied to a liquid ejection apparatus used for purposes different from image recording. For example, the present disclosure may be applied to a liquid ejection apparatus configured to eject conductive liquid onto a substrate to form a conductive pattern on the substrate.
Number | Date | Country | Kind |
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JP2018-147608 | Aug 2018 | JP | national |
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20200039224 A1 | Feb 2020 | US |