The present application is based on, and claims priority from JP Application Serial Number 2019-214129, filed Nov. 27, 2019, the disclosure of which is hereby incorporated by reference herein in its entirety.
The present disclosure relates to a medium transport apparatus that transports a medium, and a processing apparatus that performs processing on a transported medium.
To date, there is a known configuration in which a rear panel is opened for the purpose of clearing a paper jam or the like, and an example thereof is disclosed in JP-A-10-1240.
In the printing apparatus described in JP-A-10-1240, paper guides are integrated with the rear panel.
There is a medium transport apparatus in which an attachment/detachment portion is configured to be attached to and detached from a portion of an apparatus body that has a transport path for a medium. In this apparatus, the medium can be fed into the transport path by separating the attachment/detachment portion from the apparatus body and exposing the transport path. However, since the transport path for feeding the medium becomes shortened as a result of removing the portion to which the attachment/detachment portion is attached, a path extension member for extending the transport path is required.
However, in a configuration in which the path extension member is stored outside the medium transport apparatus in order to suppress an increase in the size of the apparatus body, the user has to search for the path extension member, which may complicate the user's work. In addition, in a configuration in which a storage portion dedicated to the path extension member is attached to the apparatus body, the apparatus body may be increased in size.
According to an aspect of the present disclosure, a medium transport apparatus includes an apparatus body having a transport path for a medium, an attachment/detachment portion that is configured to be mounted on the apparatus body and at least a portion of which is configured to be separated from the apparatus body, that covers the transport path when the attachment/detachment portion is mounted on the apparatus body, and that exposes a portion of the transport path when at least the portion of the attachment/detachment portion is separated from the apparatus body, and a path extension member configured to be attached to and detached from the attachment/detachment portion, in which the path extension member extends, in a state in which the attachment/detachment portion is separated, the transport path in a transport direction of the medium by being detached from the attachment/detachment portion and attached to the apparatus body.
Hereinafter, the present disclosure will be schematically described.
According to a first aspect of the present disclosure, a medium transport apparatus includes an apparatus body having a transport path for a medium, an attachment/detachment portion that is configured to be mounted on the apparatus body and at least a portion of which is configured to be separated from the apparatus body, that covers the transport path when the attachment/detachment portion is mounted on the apparatus body, and that exposes a portion of the transport path when at least the portion of the attachment/detachment portion is separated from the apparatus body, and a path extension member configured to be attached to and detached from the attachment/detachment portion, in which the path extension member extends, in a state in which the attachment/detachment portion is separated, the transport path in a transport direction of the medium by being detached from the attachment/detachment portion and attached to the apparatus body.
According to this aspect, the attachment/detachment portion is attached to and separated from the apparatus body in a state in which the path extension member is attached to the attachment/detachment portion. Since the path extension member is used as a portion of the attachment/detachment portion that is attached to and separated from the apparatus body, it is not necessary to secure a storage space dedicated to the path extension member in the apparatus body, and it is possible to suppress an increase in the size of the apparatus body.
Furthermore, the path extension member is detached from the attachment/detachment portion in a state in which the attachment/detachment portion is separated from the apparatus body. The path extension member that has been detached from the attachment/detachment portion is attached to the apparatus body to extend the transport path in the medium transport direction. As described above, since the path extension member is attached to the attachment/detachment portion, it is possible to save the user trouble of searching for the path extension member, and the user can easily attach the path extension member to the apparatus body.
That is, according to this aspect, in the configuration in which the attachment/detachment portion is attached to and separated from the apparatus body having the transport path, it is possible to improve the workability of the user in the extension of the transport path and suppress an increase in the size of the apparatus body.
In the medium transport apparatus of a second aspect according to the first aspect, the attachment/detachment portion is an inversion portion that inverts the medium between a front surface and a back surface.
According to this aspect, since the inversion portion, which has a longer path length than that in the case of transporting only the front surface or the back surface, is attachable to and detachable from the apparatus body, when the transport of the medium is stopped in the inversion portion, the medium can be easily removed from the transport path.
In the medium transport apparatus of a third aspect according to the second aspect, a portion of an inverting path formed by the inversion portion being mounted on the apparatus body also serves as a portion of the transport path.
According to this aspect, since a portion of the inverting path also serves as a portion of the transport path, the space required for disposing the transport path and the inverting path is reduced as compared with a configuration in which they are separately present. Thus, it is possible to reduce the size of the medium transport apparatus.
In the medium transport apparatus of a fourth aspect according to any one of the first to third aspects, a engaged portion is formed on the apparatus body, and the path extension member has an engagement portion that engages with the engaged portion while the engagement portion is being elastically deformed.
According to this aspect, when attaching the path extension member to the apparatus body, by pressing the engagement portion toward the engaged portion, the engagement portion is elastically deformed and engages with the engaged portion. In this way, since the work of attaching the path extension member can be easily performed by pressing the path extension member in one direction, the path extension member can be attached to the apparatus body.
In the medium transport apparatus of a fifth aspect according to any one of the first to fourth aspects, the path extension member has a guide portion that guides, in the transport direction, an end portion of the medium in a width direction intersecting the transport direction.
According to this aspect, when the medium is transported in the transport path extended by the path extension member, the medium is guided in the guide direction by the guide portions against which the end portions in the width direction abut. As a result, it is possible to prevent the medium that enters the transport path from the path extension member from skewing.
In the medium transport apparatus of a sixth aspect according to any one of the first to fifth aspects, the attachment/detachment portion has a pedestal portion in which an inclined surface is formed so as to extend in an intersecting direction that intersects a mounting direction toward the apparatus body, and the path extension member is configured to be attached, in contact with the inclined surface, to the pedestal portion and to be detached from the pedestal portion.
According to this aspect, when the attachment/detachment portion is attached to the apparatus body, an external force acts on the attachment/detachment portion in the attachment direction. Here, when the path extension member is pressed in the mounting direction by the external force, since the path extension member is in contact with the inclined surface and is disposed so as to be inclined, the external force in the mounting direction is less likely to be concentrated on a portion of the path extension member as compared with a configuration in which the path extension member is upright. As a result, it is possible to suppress the deformation of the path extension member.
According to a seventh aspect of the present disclosure, a processing apparatus includes the medium transport apparatus according to any one of the first to sixth aspects, and a processing portion that performs processing on the medium being transported on the transport path.
According to this aspect, it is possible to obtain the same effects as those of the medium transport apparatus according to any one of the first to sixth aspects.
In an eighth aspect according to the seventh aspect, the processing apparatus further includes a mobile portion that moves the processing portion in an intersecting direction that intersects the transport direction; a detection portion that detects separation of the attachment/detachment portion from the apparatus body; and a control portion that controls, when the detection portion detects separation of the attachment/detachment portion, the mobile portion to move the processing portion to a side where the processing portion is retracted from the transport path.
According to this aspect, when the attachment/detachment portion is separated from the apparatus body, the detection portion detects the detachment. In this case, the control portion performs control to move the mobile portion to a side where the processing portion is retracted from the transport path. As a result, the processing portion retracts from the transport path. In this way, since the distance between the processing portion and the transport path becomes longer in accordance with the separation of the attachment/detachment portion, a relatively thick medium can be transported in the transport path, and the medium can be processed by the processing portion.
In the processing apparatus of a ninth aspect according to the seventh or eighth aspect, the processing portion is a recording portion that records information on the medium based on received information.
According to this aspect, it is possible to obtain the same effects as those of the processing apparatus according to the seventh aspect or the eighth aspect.
An embodiment of a medium transport apparatus and a processing apparatus according to the present disclosure will be described in detail below with reference to the accompanying drawings. In an XYZ coordinate system illustrated in each drawing, in a printer 10 described later, the X-axis direction is an apparatus width direction, the Y-axis direction is an apparatus depth direction, and the Z-axis direction is an apparatus height direction.
When distinguishing the left side from the right side when viewed from the front in the apparatus width direction, the right side is referred to as the +X side and the left side is referred to as the −X side. When distinguishing the front side from the rear side in the apparatus depth direction, the front side is referred to as the +Y side and the rear side is referred to as the −Y side. When distinguishing the upper side from the lower side in the apparatus height direction, the upper side is referred to as the +Z side and the lower side is referred to as the −Z side.
Printer Outline
The paper sheet P is, for example, plain paper. The sheet material S is, for example, thicker than the paper sheet P, is formed as a resin plate material, and has a recessed portion (not illustrated) formed therein. For example, a digital versatile disc (DVD) on which information is recorded is placed in this recessed portion.
In addition, the printer 10 also includes a body portion 12 and a scanner portion 18 placed on the +Z side of the body portion 12. In the printer 10, the same operational effects as those of a paper sheet transport portion 30 described later can be obtained.
The scanner portion 18 reads information of a document (not illustrated). The information of the read document is sent to a control unit 28 described later.
The body portion 12 is an example of an apparatus body and is configured to include a casing 13 that houses each portion of the printer 10, a housing portion 14 that houses the paper sheet P, an operation panel 16 through which various settings for the printer 10 are performed, and a body frame 17 formed of a plurality of metal plates provided in the casing 13. A plurality of paths, which will be described later, for transporting the paper sheet P or the sheet material S (lower diagram of
As illustrated in
The support members 15A, 15B, and 15C support the paper sheet P (
In addition, as illustrated in
The information recording portion 20 illustrated in
The head 22 is an example of a processing portion and a recording portion, and is configured as a so-called ink-jet recording head that records, as an example of processing, various types of information on the paper sheet P or the sheet material S by ejecting ink, which is an example of a liquid, onto the paper sheet P or the sheet material S. A guide member 41 that forms the bottom surface of the second path K2 (
The mobile unit 24 illustrated in
In this way, the mobile unit 24 is configured to move the head 22 in the Z-axis direction, which is an example of an intersecting direction that intersects the transport direction of the paper sheet P.
Assuming that the thickness of the paper sheet P is d1 [mm], and the distance between the −Z side lower surface of the head 22 and the +Z side upper surface of the guide member 41 is d2 [mm]. In addition, assuming that the thickness of the sheet material S, which is thicker than the paper sheet P, is d3 [mm] (
A portion of the body frame 17 illustrated in
In addition, an inclined wall 21 is provided on a portion of the body frame 17. The inclined wall 21 is inclined so that a +Y side end portion of the inclined wall 21 is located on the −Z side of a −Y side end portion of the inclined wall 21. In addition, the inclined wall 21 couples the hypotenuse portions of the pair of the side walls 19 to each other in the X-axis direction. The inclined wall 21 partitions, in the Y-axis direction, a space portion in which the inversion unit 40 is disposed and a space portion of the first manual feed path K3 (
A cutout portion 23 that penetrates the side wall 19 in the X-axis direction and that opens toward the −Y side is formed in a portion of the side wall 19. The sensor 26 is provided on the −X side of the cutout portion 23.
The sensor 26 is configured as an optical sensor including an emitting portion 26A that emits light in the Z-axis direction and a light receiving portion 26B that receives the light emitted from the emitting portion 26A. The sensor 26 detects that the inversion unit 40 is attached when the amount of light received by the light receiving portion 26B is smaller than a set amount. In addition, the sensor 26 detects the detachment of the inversion unit 40 from the body portion 12 when the amount of light received by the light receiving portion 26B is equal to or larger than the set amount. Information on whether the inversion unit 40 is attached detected by the sensor 26 is sent to the control unit 28 (
The control unit 28 illustrated in
Furthermore, when the sensor 26 (
Path Through which Paper Sheet is Transported
As illustrated in
The paper sheet P can be transported on all the above-mentioned paths.
The sheet material S can be transported only through the second path K2 and the second manual feed path K4.
The first path K1 extends from a −Y side end portion of the housing portion 14 to the +Z side, and extends to the transport roller 34 via the +Z side outer peripheral surface of an inverting roller 44 described later. The portion of the first path K1 from the inverting roller 44 to the transport roller 34 is formed in a straight line along the Y-axis direction. In this linear portion, the paper sheet P or the sheet material S is supported by a lower guide member 27 that forms the lower portion of the path.
The second path K2 extends linearly along the Y-axis direction from the transport roller 34 toward the +Y side via the −Z side of the head 22 (
The first manual feed path K3 extends obliquely downward to the transport roller 34 from a portion on the −Y side and the +Z side of the center of the body portion 12.
In a state in which the inversion unit 40 described later is detached from the body portion 12, the second manual feed path K4 extends linearly toward the +Y side along the Y-axis direction from a portion on the −Y side of the center of the body portion 12 to the transport roller 34.
The inverting path K5 is formed by the inversion unit 40 being mounted on the body portion 12. In addition, the inverting path K5 has a straight portion K5a that extends linearly along the Y-axis direction from the transport roller 34 to the inverting roller 44, and a curved portion K5b that joins the first path K1 from the −Y side end of the straight portion K5a via the −Z side outer peripheral surface of the inverting roller 44.
In the present embodiment, the straight portion of the first path K1, a portion of the second manual feed path K4, and the straight portion K5a are formed as one path. That is, a portion of the inverting path K5 also serves as a portion of the second path K2 and the second manual bypass path K4.
A cutout portion 29 (
The height of the longitudinal wall portion 27B in the Z-axis direction is approximately the same as the height of a base portion 62 (
The extension unit 60 is located on the +Z side of the lower wall portion 27C. In addition, a unit detection sensor 31 is provided on a portion of the lower wall portion 27C.
The unit detection sensor 31 is, for example, configured as a reflective optical sensor. In addition, the unit detection sensor 31 includes an emitting portion that emits light and a light receiving portion that receives light. When the extension unit 60 (
engaged portions 33 are formed at positions on the −Z side of the center of the body frame 17 in the Z axis direction and on the −Y side of both end portions of the lower wall portion 27C in the X axis direction.
The engaged portions 33 are portions that are recessed outward in the X-axis direction, and are formed so that a member to be engaged therewith can be inserted in the X-axis direction and engaged in the Z-axis direction.
The paper sheet transport portion 30 illustrated in
The inversion unit 40 illustrated in
As illustrated in
The body member 42 is formed in a prismatic shape whose axial direction is the X-axis direction. In addition, the body member 42 is formed in a trapezoidal shape when viewed from the X-axis direction. A +Y side portion of the body member 42 is inclined toward the front lower side (+Y side and −Z side), and a plurality of through holes are formed therein. A −Y side portion of the body member 42 stands upright in the Z direction.
The inverting roller 44 has a shaft portion 44A (
The auxiliary disks 45, with the X-axis direction as the axial direction, are disposed on the +X side and the −X side of the rotary portion 44B with a space therebetween, and are integrated with the shaft portion 44A.
The upper guide member 46 is disposed so as to face the +Z side and +Y side portions of the body member 42, and forms a portion of the first path K1 (
The rear surface cover 58 is formed in a plate shape having the Y-axis direction as the thickness direction, and is attached to the −Y side portion of the body member 42. In addition, the rear surface cover 58 is formed with window portions 58A (upper diagram in
The movable claw portions 56 are provided in the body member 42 so as to be relatively movable in the X-axis direction, and are urged outward in the X-axis direction by springs (not illustrated). In addition, the movable claw portions 56 are configured to move toward the center in the X-axis direction by being operated through the window portions 58A. In addition, the movable claw portions 56 restrict the movement of the inversion unit 40 with respect to the body portion 12 when engaged with recessed portions (not illustrated) formed in the body portion 12.
The pedestal member 48 illustrated in
At a +Y side end portion of the pedestal member 48, there is formed a bottom portion 52 that protrudes in a plate shape from the inclined surface 49 toward the +Y side. The bottom portion 52 has an upper surface 53 that is a +Z side surface. A through hole 53A is formed in the center of the upper surface 53 in the X-axis direction. The inclined surface 49 and the upper surface 53 support the extension unit 60 when the extension unit 60 (
In addition, in the pedestal member 48, side portions 54 are formed on the +X side and the −X side of the inclined surface 49. Each of the side portions 54 has a side wall 54A along the YZ plane and a flange 54B. A through hole 54C is formed in the flange 54B.
As illustrated in
The extension unit 60 illustrated in
Further, the base portion 62, the overhanging portions 64, the engagement portions 66, the knob portions 69, and the grip portions 72 are, for example, formed symmetrically on the +X side and the −X side with respect to the center in the X-axis direction. For this reason, in the following description, the +X side portion of the extension unit 60 will be basically described, and the −X side portion may be omitted.
The base portion 62 is a plate-shaped portion having a thickness direction in the Z-axis direction. In addition, the base portion 62 is formed in a rectangular shape that is long in the X-axis direction and short in the Y-axis direction when viewed from the Z-axis direction. Slits 63 that are elongated in the X-axis direction are formed in a portion of the base portion 62.
The overhanging portion 64 extends from a −Y side end portion of the base portion 62 toward the −Y side in the form of a plate that is long in the X-axis direction. The X-axis direction length and the Y-axis direction length of the overhanging portion 64 are shorter than the X-axis direction length and the Y-axis direction length of the base portion 62. In addition, an upper surface 64A of the overhanging portion 64 is disposed at a height position on the −Z side with respect to the height position of an upper surface 62A of the base portion 62.
As illustrated in
The claw portion 68 protrudes toward the +X side from a −Z side end portion of the arm portion 67. In addition, the claw portion 68, when viewed from the Y axis direction, is formed in an inverted triangular shape. The size of the claw portion 68 is set to a size capable of engaging with the edge portion of the -engaged portion 33 and the through hole 54C (
The knob portion 69 extends from the −Z side end portion of the arm portion 67 further toward the −Z side in a plate shape with the X axis direction as the thickness direction. The arm portion 67 is elastically deformed by moving the knob portion 69 to the +X side or the −X side while the knob portion 69 is being held by the user.
The grip portion 72 protrudes in a plate shape from a portion that is the +X side end portion and a +Z side end portion of the base portion 62 to the +X side with the Z axis direction as the thickness direction. The grip portions 72 are gripped by the user when the extension unit 60 is to be attached to or detached from the body portion 12 or the inversion unit 40 (
As illustrated in
The edge guides 76 are an example of guide portions, and one is provided on each of the +X side and the −X side. The pair of edge guides 76 are coupled to a known rack and pinion mechanism through the slits 63, and one of the edge guides 76 can move following the other. Then, the pair of the edge guides 76 guide, in the Y-axis direction, both end portions of the sheet material S (lower diagram of
In the printer 10 illustrated in
As a result, as illustrated in the upper diagram of
As illustrated in the lower diagram of
Here, as illustrated in
As illustrated in the upper diagram of
Here, as illustrated in the lower diagram of
As illustrated in
In this way, in a state in which the inversion unit 40 (
As illustrated in the upper diagram of
On the other hand, as illustrated in the lower diagram of
Next, a procedure for housing the extension unit 60 in the body portion 12 will be described.
In the state in which the extension unit 60 is attached to the body portion 12 illustrated in
As illustrated in the upper diagram of
As illustrated in
(1) As described above, according to the present embodiment, the inversion unit 40 is attached to and detached from the body portion 12 with the extension unit 60 attached to the inversion unit 40. Since the extension unit 60 is used as a portion of the inversion unit 40 that is attached to and detached from the body portion 12, it is not necessary to secure a storage space dedicated to the extension unit 60 in the body portion 12, and it is possible to prevent an increase in the size of the body portion 12.
Furthermore, the extension unit 60 is detached from the inversion unit 40 in a state in which the inversion unit 40 is detached from the body portion 12. The extension unit 60 that has been detached from the inversion unit 40 is attached to the body portion 12 to extend the second manual feed path K4 in the sheet material S transport direction. In this way, since the extension unit 60 is attached to the inversion unit 40, and the user does not have to search for the extension unit 60, the user can easily attach the extension unit 60 to the body portion 12.
That is, according to this aspect, in the configuration in which the inversion unit 40 is attached to and detached from the body portion 12 having the second manual feed path K4, it is possible to improve the workability of the user in extending the second manual feed path K4 and suppress an increase in the size of the body portion 12 at the same time.
(2) According to the present embodiment, since the inversion unit 40, which has a longer path length than that in the case of transporting only the front surface or the back surface, is attachable to and detachable from the body portion 12, when the transport of the paper sheet P is stopped in the inversion unit 40, the paper sheet P can be easily removed from the first manual feed path K3 and the like.
(3) According to the present embodiment, since a portion of the inverting path K5 also serves as a portion of the second bypass path K4, and since the space required for the arrangement of the second manual bypass path K4 and the inverting path K5 is reduced compared with a configuration where these exist separately, the paper sheet transport portion 30 can be reduced in size.
(4) According to the present embodiment, when the extension unit 60 is attached to the body portion 12, by pressing the engagement portions 66 toward the engaged portions 33, the engagement portions 66 are engaged with the engaged portions 33 while being elastically deformed. In this way, the attachment of the extension unit 60 can be easily performed by attaching the extension unit 60 to the body portion 12 by pressing the extension unit 60 in one direction.
(5) According to the present embodiment, when the sheet material S is transported in the second manual feed path K4 extended by the extension unit 60, the sheet material S is guided in the Y-axis direction, which is the guide direction, by the edge guide 76 against which the end portions of the sheet material S in the width direction abut. As a result, it is possible to prevent the sheet material S that enters the second manual feed path K4 from the extension unit 60 from skewing to the +X side or the −X side of the transport direction.
(6) According to the present embodiment, when the inversion unit 40 is mounted on the body portion 12, an external force acts on the inversion unit 40 in the Y-axis direction, which is the mounting direction. Here, when the extension unit 60 is pressed in the Y-axis direction by the action of the external force, since the extension unit 60 is in contact with the inclined surface 49 and disposed in an inclined manner, the external force in the Y-axis direction is less likely to become concentrated on a portion of the extension unit 60 as compared with a configuration in which the extension unit 60 stands upright in the Z-axis direction. Consequently, deformation of the extension unit 60 can be suppressed.
(7) According to this embodiment, when the inversion unit 40 is detached from the body portion 12, the sensor 26 detects the detachment. In this case, the control unit 28 controls the mobile unit 24 to move the head 22 to a side where the head 22 is retracted from the second path K2. As a result, the head 22 retracts from the second path K2. In this way, since the distance between the head 22 and the second path K2 becomes longer in accordance with the detachment of the inversion unit 40, in the second path K2, the sheet material S, which is thicker than the paper sheet P, can be transported, and the sheet material S can be processed by the head 22.
The paper sheet transport portion 30 and the printer 10 according to the embodiment of the present disclosure are basically based on having the above-described configurations; however, it is of course possible to partially change or omit a configuration without departing from the scope of the present disclosure.
The printer 10 is not limited to the ink jet type, but may be of an electrophotographic type. The medium is not limited to the paper sheet P or the sheet material S, and may be a sheet-shaped film.
The processing apparatus is not limited to a recording apparatus such as the printer 10, but may be, for example, a scanner (information reading apparatus) in which the head 22 is replaced with an image reading portion.
The unit that is attached to and detached from the body portion 12 in the paper sheet transport portion 30 is not limited to the inversion unit 40 forming the inverting path K5, and, for example, may be a unit that forms a portion of the first path K1 and exposes the second manual feed path K4.
In addition, although not illustrated, the unit that is attached to and detached from the body portion 12 may be a unit that forms a second housing portion provided above the housing portion 14. For example, the second housing portion may be a portion such as a sheet feeding cassette that is mostly pulled out from the apparatus body and partially remains in the apparatus body. In this way, at least a portion of the attachment/detachment portion may be separated from the apparatus body.
A portion of the inverting path K5 need not also serve as a portion of the second manual feed path K4.
The extension unit 60 may be one in which the portion attached to the body portion 12 does not elastically deform. For example, a portion of the extension unit 60 to be attached to the body portion 12 may be formed of a metal pin, and the pin may be inserted into the hole of the body portion 12 to be engaged with the body portion 12.
In the paper sheet transport portion 30, the extension unit 60 need not have the edge guides 76. In addition, the edge guides 76 are not limited to the movable type, and may be formed integrally with the base portion 62.
The pedestal member 48 is not limited to one having the inclined surface 49, and the extension unit 60 may be attached to the upper surface along the XY plane or the side surface along the XZ plane.
The printer 10 is not limited to one in which the head 22 moves in the Z-axis direction, and may have the guide member 41 in the Z-axis direction. In addition, the medium support portion 15 may be a separate body, and the rear surface cover 58 of the inversion unit 40 may form the −Y side surface of the printer 10.
Number | Date | Country | Kind |
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2019-214129 | Nov 2019 | JP | national |