The present application is based on, and claims priority from JP Application Serial Number 2019-103521, filed Jun. 3, 2019, the disclosure of which is hereby incorporated by reference herein in its entirety.
The present disclosure relates to a head unit and a liquid ejection apparatus.
A liquid ejection apparatus such as an ink jet printer includes a head unit. It is known that mist generated in the head unit with ejection of ink is not attached to a recording medium but floats inside the printer. Liquid droplets derived from such mist may be attached to a nozzle forming surface on which nozzles are formed. In order to address this issue, a region having water repellency can be provided on the nozzle forming surface to facilitate removal of the attached liquid by a maintenance operation such as wiping. On the other hand, in the ink jet printer disclosed in JP-A-2018-114744, the head unit is provided inclined relative to the horizontal direction, and ink is ejected onto a recording paper from obliquely above.
However, when the inclined head unit is used and the nozzle forming surface has water repellency, the attached droplets may flow down along the nozzle forming surface due to the water repellency and the inclination, and may grow into a large droplets. As a consequence, since the nozzle forming surface has high water repellency, in other words, a low critical surface tension, the droplets may grow large, and the large droplets may be attached to the recording medium, causing stains.
According to a first aspect of the present disclosure, a head unit including a first ejection head having a first nozzle surface on which a plurality of first nozzles that eject liquid are disposed is provided. In this head unit, a first region having water repellency is provided on a first side on a first axis relative to a range in which the plurality of first nozzles are formed, the first axis extending along the first nozzle surface, and a second region having water repellency lower than the first region is provided on a second side on the first axis relative to the range in which the plurality of first nozzles are formed.
According to a second aspect of the present disclosure, a head unit including a first ejection head having a first nozzle surface on which a plurality of first nozzles that eject liquid are disposed is provided. In this head unit, a first region is provided on a first side on a first axis relative to a range in which the plurality of first nozzles are formed, the first axis extending along the first nozzle surface, and a second region having a critical surface tension larger than the first region is provided on a second side on the first axis relative to the range in which the plurality of first nozzles are formed.
According to a third aspect of the present disclosure, a liquid ejection apparatus is provided. This liquid ejection apparatus includes a head unit that includes an ejection head having a nozzle surface on which nozzles that eject liquid are disposed; and a control unit that controls the head unit to perform an ejection operation with the nozzle surface intersecting a horizontal plane, wherein a first region having water repellency is provided on an upper side relative to the region in which the nozzles are formed, and a second region having water repellency lower than the first region is provided on a lower side relative to the region in which the nozzles are formed.
According to a fourth aspect of the present disclosure, a liquid ejection apparatus is provided. This liquid ejection apparatus includes a head unit that includes an ejection head having a nozzle surface on which nozzles that eject liquid are disposed; and a control unit that controls the head unit to perform an ejection operation with the nozzle surface intersecting a horizontal plane, wherein a first region is provided on an upper side relative to the region in which the nozzles are formed, and a second region having a critical surface tension larger than the first region is provided on a lower side relative to the region in which the nozzles are formed.
In
The sheets of recording paper P fed out from the paper sheet cassette 30 by the feed roller 32 pass through a nip position between a feeding roller 34 and a separation roller 36 to be thereby separated and fed downstream, and then reach an upstream transport roller pair 38. Hereinafter, a transport path from the paper sheet cassette 30 to the upstream transport roller pair 38 is referred to as a “supply transport path.” The paper sheet transport path between the upstream transport roller pair 38 and a downstream transport roller pair 40 is formed as a head-facing region 43 where the recording paper P faces the ejection head 20. In the head-facing region 43, recording is performed by the ejection head 20 onto the recording paper P. A platen 42 that supports the recording paper P is disposed in the head-facing region 43. Hereinafter, a transport path from the upstream transport roller pair 38 to the downstream transport roller pair 40 is referred to as a “recording transport path.”
In the present embodiment, the head-facing region 43 that constitutes the recording transport path of the liquid ejection apparatus 100 is inclined relative to the horizontal direction. Further, the supply transport path is inclined in a direction along the inclination of the recording transport path and joined to the recording transport path. That is, the supply transport path and the recording transport path are joined in a substantially straight line. The supply transport path, the recording transport path, and an output path 47, which will be described later, are collectively referred to as a “paper sheet transport path.” A guide member G constitutes a part of the paper sheet transport path.
In the liquid ejection apparatus 100, a downstream portion of the paper sheet transport path from the head-facing region 43 is configured as the output path 47 that provides a curved path while the head unit 52 is disposed inside the output path 47 so that the recording paper P is outputted along the output path 47 with the face down. After recording is performed, the recording paper P is curved and reversed with the recording surface inside, and fed along the output path 47. More specifically, the output path 47 is a transport path from the downstream transport roller pair 40 to an output roller pair 48. A plurality of feeding roller pairs 44, 45, and 46 are provided between the downstream transport roller pair 40 and the output roller pair 48.
The recording paper P transported in the output path 47 is outputted toward an output tray 50 with the recording surface facing down by the output roller pair 48 which is provided at a paper sheet output port 49.
The liquid ejection apparatus 100 includes the head unit 52 at a position facing the head-facing region 43. As described above, the head-facing region 43 is inclined relative the horizontal direction. Accordingly, the head unit 52 is also inclined relative to the horizontal direction. The head unit 52 is provided with an ejection head 20. The ejection head 20 includes a nozzle surface 54a on which nozzles 25 that eject liquid are provided. The nozzle surface 54a is inclined relative to the horizontal direction. More specifically, the nozzle surface 54a is inclined such that a normal vector from the nozzle surface 54a toward the head-facing region 43 has a downward vector component in the gravitational direction.
The liquid ejection apparatus 100 includes one or more control units 10. The control unit 10 controls the head unit 52 to perform an ejection operation in a state in which the nozzle surface 54a is inclined relative to the horizontal direction. The liquid ejection apparatus 100 of the present embodiment is a serial printer. The control unit 10 performs recording of an image or the like on the recording paper P by ejecting ink toward the recording paper P while reciprocating the head unit 52 in the width direction of the recording paper P.
The liquid ejection apparatus 100 includes a cap 57 having a box shape with one side open. The cap 57 seals a nozzle surface 54a when the ejection operation of the head unit 52 is not performed by the control unit 10. As the cap 57 seals the nozzle surface 54a of the ejection head 20, ink in the head unit 52 is prevented from being dried. Further, flushing can be performed while the cap 57 seals the nozzle surface 54a of the ejection head 20, or the cap 57 faces the nozzle surface 54a of the ejection head 20. Flushing is an operation of ejecting ink from the ejection head 20 onto the inside of the cap 57. In
As shown in
As shown in
In the present embodiment, the second region A2 having low water repellency is formed by applying a hydrophilic coating such as a glass coating along the second axis AX2 on the nozzle surface 54a on the second side relative to the nozzle forming range 25a. Further, the first region A1 is formed by applying a water repellent coating such as a fluorine coating on a region other than the second region A2. That is, in the present embodiment, the water repellent region is provided on the nozzle surface 54a not only on the first side on the first axis AX1 relative to the nozzle forming range 25a, but also on the entire region other than the second region A2. In another embodiment, the first region A1 may be provided only on the first side on the first axis AX1 relative to the nozzle forming range 25a. In addition, the second region A2 may also be provided on the first side relative to the nozzle forming range 25a in addition to the second side. However, from the viewpoint of the effect of the second region A2 described later, the second region A2 is preferably not provided on the first side.
According to the present embodiment described above, the first region A1 having water repellency is provided on the first side on the first axis AX1 relative to the nozzle forming range 25a, and the second region A2 having water repellency lower than the first region A1 is provided on the second side. Accordingly, if the droplet derived from mist is attached to the nozzle surface 54a of the inclined head unit 52 and flows down along the nozzle surface 54a, the droplet wet-spreads in the second region A2 and is unlikely to grow into a large droplet since the second region A2 has low water repellency. Therefore, it is possible to reduce the possibility of the droplet derived from mist being attached to the recording paper P that faces the nozzle surface 54a and generating a stain.
Further, in the head unit 52B, both the first region A1 and the second region A2 may not be necessarily provided on the fixation plate 23. For example, only the first region A1 may be provided on the nozzle surface 54a, and the second region A2 may be provided on the fixation plate 23. Alternatively, only the second region A2 may be provided on the nozzle surface 54a, and the first region A1 may be provided on the fixation plate 23. That is, on the medium-facing surface 56 of the head unit 52, the first region A1 and the second region A2 may be provided on either the nozzle surface 54a or the fixation plate 23 as long as the first region A1 is provided on the first side on the first axis AX1 relative to the nozzle forming range 25a, and the second region A2 is provided on the second side.
In the present embodiment, as in the first embodiment, the first region A1 having water repellency is provided on the nozzle surface 54a of the ejection head 20 on the first side on the first axis AX1 relative to the nozzle forming range 25a. Further, the second region A2 having water repellency lower than the first region A1 is provided on the second side on the first axis AX1 relative to the nozzle forming range 25a. With this configuration, in the head unit 52G having the line head configuration as well, it is possible to prevent droplets caused by the mist attached to the head unit 52G from being attached to the recording paper P.
(O-1) In the above embodiments, the head unit 52 is provided with the fixation plate 23. However, the head unit 52 may not be provided with the fixation plate 23. In this case, the head unit 52 can be fixed to, for example, the holder 27 shown in
(O-2) In the above embodiments, the second region A2 is formed by applying a hydrophilic coating. On the other hand, the hydrophilic second region A2 may also be formed by removing a part of the water repellent coating formed on the nozzle surface 54a or the surface of the fixation plate 23. Alternatively, instead of a hydrophilic coating, the second region A2 may also be formed by adhering a hydrophilic material to the nozzle surface 54a or the fixation plate 23.
(O-3) In the above embodiments, the nozzle surface 54a may be a surface intersecting a horizontal plane. The expression “intersecting a horizontal plane” includes being inclined to the horizontal direction and being vertical to the horizontal direction. In this case, the control unit 10 controls the head unit 52 to perform an ejection operation in a state in which the nozzle surface 54a intersects the horizontal plane.
(O-4) In the above embodiments, the head unit 52 is inclined to the horizontal direction when it is mounted in the liquid ejection apparatus 100. On the other hand, for example, the head unit 52 may be configured to change the posture to be inclined to the horizontal direction when it is controlled by the control unit 10 to perform the ejection operation.
(O-5) In the above embodiments, a system in which the nozzle surface 54a obliquely intersects the horizontal plane, that is, a system in which the nozzle surface 54a forms an angle larger than 0 degree and smaller than 90 degree relative to the horizontal plane is described. However, even in a system in which the nozzle surface 54a intersects the horizontal plane at a right angle, that is, the nozzle surface 54a is orthogonal to the horizontal plane, the effect described in each embodiment can be obtained. However, when the nozzle surface 54a obliquely intersects the horizontal plane, a gravity component to a certain degree acts on the liquid attached to the nozzle surface 54a in a direction in which the recording medium exists. Accordingly, liquid grows largely in the direction in which the recording medium exists, and, in particular, the effect described in each embodiment can be suitably obtained.
The present disclosure is not limited to the above embodiments and can be embodied in various configurations without departing from the spirit thereof. For example, technical features in the embodiments corresponding to the technical features in the respective embodiments described below can be appropriately replaced or combined in order to solve part or all of the above problems or achieve part or all of the above effects. Further, technical features can be appropriately deleted as long as they are not described in the specification as indispensable features.
(1) According to a first aspect of the present disclosure, a head unit including a first ejection head having a nozzle surface on which nozzles that eject liquid are disposed is provided. In this head unit, a first region having water repellency is provided on a first side on a first axis relative to a range in which the nozzles are formed, the first axis extending along the nozzle surface, and a second region having water repellency lower than the first region is provided on a second side on the first axis relative to the range in which the nozzles are formed. With this configuration, it is possible to prevent the recording medium from being stained by droplets caused by the mist attached to the head unit.
(2) According to a second aspect of the present disclosure, a head unit including a first ejection head having a nozzle surface on which nozzles that eject liquid are disposed is provided. In this head unit, a first region is provided on a first side on a first axis relative to a range in which the nozzles are formed, the first axis extending along the nozzle surface, and a second region having a critical surface tension larger than the first region is provided on a second side on the first axis relative to the range in which the nozzles are formed. With this configuration, it is possible to prevent the recording medium from being stained by droplets caused by the mist attached to the head unit.
(3) In the head unit of the above aspect, on the nozzle surface, the first region may be provided on the first side relative to the range in which the nozzles are formed, and the second region may be provided on the second side relative to the range in which the nozzles are formed. With this configuration, it is possible to prevent the recording medium from being stained by droplets caused by the mist attached to the nozzle surface.
(4) The head unit of the above aspect may further include a fixation plate to which the first ejection head is fixed, the fixation plate having an opening through which the nozzle surface is exposed, wherein, on the fixation plate, the first region may be provided on the first side relative to the range in which the nozzles are formed, and the second region may be provided on the second side relative to the range in which the nozzles are formed. With this configuration, it is possible to prevent the recording medium from being stained by droplets caused by the mist attached to the fixation plate.
(5) In the head unit of the above aspect, the second region may be provided at least on a first side on a second axis relative to the range in which the nozzles are formed, the second axis extending along the nozzle surface and being perpendicular to the first axis. With this configuration, it is possible to more effectively prevent the recording medium from being stained by droplets caused by the mist attached to the head unit.
(6) The head unit of the above aspect may further include a second ejection head having a nozzle surface on which nozzles that eject liquid are disposed, the second ejection head being provided at a position different from the first ejection head, wherein a common second region may be provided on the second side relative to the range in which the nozzles are formed in the first ejection head and on the second side relative to a range in which the nozzles are formed in the second ejection head. With this configuration, it is possible to prevent the recording medium from being stained by droplets caused by the mist attached to the head unit.
(7) In the head unit of the above aspect, the plurality of nozzles may be arrayed on the nozzle surface along the first axis. With this configuration, it is possible to prevent the recording medium from being stained by droplets attached to, for example, a serial type head unit.
(8) In the head unit of the above aspect, the plurality of nozzles may be arrayed on the nozzle surface along the second axis, the second axis extending along the nozzle surface and being perpendicular to the first axis. With this configuration, it is possible to prevent the recording medium from being stained by droplets attached to, for example, a head unit of line head configuration.
(9) In the head unit of the above aspect, when the head unit is mounted in the liquid ejection apparatus and an ejection operation is performed, the nozzle surface may intersect a horizontal plane, the first side may correspond to an upper side, and the second side may correspond to a lower side. With this configuration, it is possible to prevent the recording medium from being stained by droplets caused by the mist attached to the head unit.
(10) In the head unit of the above aspect, the second region may not be provided on the first side relative to the range in which the nozzles are formed. With this configuration, it is possible to more effectively prevent the recording medium from being stained by droplets caused by the mist attached to the head unit.
(11) According to a third aspect of the present disclosure, a liquid ejection apparatus is provided. This liquid ejection apparatus includes a head unit that includes an ejection head having a nozzle surface on which nozzles that eject liquid are disposed; and a control unit that controls the head unit to perform an ejection operation with the nozzle surface intersecting a horizontal plane, wherein a first region having water repellency is provided on an upper side relative to the region in which the nozzles are formed, and a second region having water repellency lower than the first region is provided on a lower side relative to the region in which the nozzles are formed. With this configuration, it is possible to prevent the recording medium from being stained by droplets caused by the mist attached to the head unit.
(12) According to a fourth aspect of the present disclosure, a liquid ejection apparatus is provided. This liquid ejection apparatus includes a head unit that includes an ejection head having a nozzle surface on which nozzles that eject liquid are disposed; and a control unit that controls the head unit to perform an ejection operation with the nozzle surface intersecting a horizontal plane, wherein a first region is provided on an upper side relative to the region in which the nozzles are formed, and a second region having a critical surface tension larger than the first region is provided on a lower side relative to the region in which the nozzles are formed. With this configuration, it is possible to prevent the recording medium from being stained by droplets caused by the mist attached to the head unit.
(13) The liquid ejection apparatus of the above aspect may further include a cap configured to seal the nozzle surface when an ejection operation is not performed by the control unit, wherein the cap may have a contact portion configured to contact the second region when the nozzle surface is sealed. With this configuration, liquid attached to the second region can be removed by using the contact portion of the cap.
The present disclosure can be embodied in various forms other than the head unit and the liquid ejection apparatus described above. For example, the present disclosure can be embodied as an ejection head mounted in the head unit, a fixation plate to which the ejection head is fixed, or the like.
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JP2019-103521 | Jun 2019 | JP | national |
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Number | Date | Country | |
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20200376838 A1 | Dec 2020 | US |