Recording device

The medium support section in the recording device switches states to expand within the device, addressing space requirements for longer sheets and enhancing usability by reducing protrusion and facilitating media handling.

JP7799981B2Active Publication Date: 2026-01-16SEIKO EPSON CORP
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Patent Information

Application Number
JP2020216433
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-12-25
Publication Date
2026-01-16
Estimated Expiration
2040-12-25

AI Technical Summary

Technical Problem

Existing recording devices require increased installation space to accommodate longer sheets, reducing usability due to the need for a larger tray in the unfolded state.

Method used

A medium support section that switches between a stored and protruding state, with the support surface expanding beyond the device body, allowing the downstream end to be positioned between device sides, reducing protrusion and utilizing internal space effectively.

Benefits of technology

Enables feeding of long media while minimizing device installation space, improving usability and facilitating media cassette attachment and jam clearance.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a recorder compatible with a longer sheet, while avoiding decrease in usability of the device which may be caused in conventional recorders that each require an increased installation space of the device necessary for a tray to be extended, with the length of the entire tray in an extended state having to be increased.SOLUTION: A recorder includes: a medium support portion forming a support surface for supporting a medium before feeding; a feed roller that feeds a medium, supported by the medium support portion, in a feed direction; and a device body that includes the medium support portion and the feed roller. The medium support portion is, in a switchable manner, in either of a stored state in which it is stored in the device body and a projecting state in which an upstream portion in the feed direction projects from a first side surface being one of side surfaces forming a periphery of the device body, and the support surface is extended more than that in the stored state. In the projecting state of the medium support portion, a downstream end of the support surface in the feed direction is located close to a second side surface between the first side surface and the second side surface, which is a side surface opposite to the first side surface.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to a recording device for recording on a medium. [Background technology]

[0002] Some recording devices, such as printers, are equipped with a tray for feeding media from the side of the device in addition to a media storage cassette that is detachable from the device body. As shown in Patent Document 1, such a tray is rotatably mounted on the side of the device and is made up of multiple trays. When in use, the entire tray is tilted down and then further expanded to allow long sheets to be loaded. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2017-013955 Summary of the Invention [Problem to be solved by the invention]

[0004] In order to accommodate longer sheets in the recording device described above, the overall length of the tray in the unfolded state must be increased, which increases the installation space required to unfold the tray, reducing the usability of the device. [Means for solving the problem]

[0005] In order to solve the above problem, the recording device of the present invention comprises a medium support section that forms a support surface that supports the medium before feeding, a feed roller that sends the medium supported by the medium support section in the feed direction, and a device main body that is equipped with the medium support section and the feed roller, and the medium support section is switchable between a stored state in which it is stored in the device main body and a protruding state in which the upstream portion in the feed direction protrudes from a first side surface that is one of the sides that form the periphery of the device main body, and the support surface is in a more expanded state than in the stored state, and in the protruding state of the medium support section, the downstream end of the support surface in the feed direction is located between the first side surface and a second side surface that is the side surface opposite the first side surface, and close to the second side surface. [Brief explanation of the drawings]

[0006] [Figure 1] FIG. [Figure 2] FIG. 10 is a diagram showing the media transport path of the printer when the upper media loading unit is in the storage state. [Figure 3] FIG. 10 is a diagram showing the media transport path of the printer when the upper media loading unit is in a protruding state. [Figure 4] FIG. 2 is a cross-sectional view of the first medium storage cassette taken along the YZ plane. [Figure 5] FIG. 2 is a cross-sectional view of the first medium storage cassette taken along the YZ plane. [Figure 6] FIG. 2 is a plan view of a first medium storage cassette. [Figure 7] FIG. 2 is a block diagram showing a control system for a feed mechanism of the printer. [Figure 8] 10 is a flowchart showing a control flow when the side cover is opened. [Figure 9] 10 is a flowchart showing a part of the control during medium feeding. [Figure 10] FIG. 10 is a diagram showing the media transport path of the printer when the upper media setting unit functions as an ejection tray. DETAILED DESCRIPTION OF THE INVENTION

[0007] The present invention will be briefly described below. A recording device according to a first aspect comprises a medium support section that forms a support surface that supports the medium before feeding, a feed roller that sends the medium supported by the medium support section in the feeding direction, and a device main body that is equipped with the medium support section and the feed roller, wherein the medium support section is switchable between a stored state in which it is stored in the device main body and a protruding state in which the upstream portion in the feeding direction protrudes from a first side surface that is one of the sides that form the periphery of the device main body, and the support surface is in a more expanded state than in the stored state, and wherein in the protruding state of the medium support section, the downstream end of the support surface in the feeding direction is located between the first side surface and a second side surface that is the side surface opposite the first side surface, and close to the second side surface.

[0008] According to this aspect, in a configuration including a medium support unit that can switch between a stored state and a protruding state in which an upstream portion in the feeding direction protrudes from a first side surface that is one of the sides that form the periphery of the device body and a support surface that supports the medium is in a more expanded state than in the stored state, the downstream end of the support surface in the feeding direction is located between the first side surface and a second side surface that is the side surface opposite the first side surface and close to the second side surface, so that the support surface extends in the feeding direction by utilizing the space within the device body. Therefore, in the protruding state of the medium support unit, the amount of protrusion of the medium support unit from the first side surface can be reduced, which makes it possible to feed long media while reducing the installation space of the device and improves the usability of the device.

[0009] The second aspect is characterized in that, in the first aspect, a media storage cassette having a media storage section for storing media is detachably attached to the front side of the device main body, and the media support section is capable of protruding laterally from the device main body. According to this aspect, the media storage cassette is detachably attached to the device main body from the front side, and the media support portion is capable of protruding laterally from the device main body, thereby facilitating the workability when attaching and detaching the media storage cassette, and even when the amount of protrusion of the media support portion from the device main body is ensured, the media support portion is less likely to get in the way.

[0010] The third aspect is characterized in that, in the first aspect, a media storage cassette having a media storage section for storing media is detachably provided to the device main body, and the media support section is provided in the media storage cassette.

[0011] According to this aspect, a media storage cassette equipped with a media storage section for storing media is detachably provided to the device main body, and the media support section is provided on the media storage cassette, so that when a media jam occurs inside the device, the jam can be easily cleared by removing the media storage cassette.

[0012] The fourth aspect is characterized in that, in the third aspect, the medium support portion is slidably arranged relative to the medium storage cassette, and the medium support portion switches between the stored state and the protruding state by sliding.

[0013] According to this aspect, the medium support section switches between the stored state and the protruding state by sliding, so that the medium support section can be easily switched between the protruding state and the stored state.

[0014] The fifth aspect is characterized in that, in the fourth aspect, the feed roller is arranged to be displaceable in a direction toward and away from the medium storage cassette, and when the medium support section is in the stored state, the feed roller can feed the medium from the medium storage section, and when the medium support section is in the protruding state, the feed roller can feed the medium from the medium support section.

[0015] According to this aspect, the feed roller is used both to feed the medium from the medium support section and to feed the medium from the medium storage section, thereby reducing the cost of the device compared to a configuration in which separate feed rollers are provided for the medium support section and the medium storage section.

[0016] The sixth aspect is characterized in that, in any of the first to fifth aspects, the medium support section includes a first support tray and a second support tray that is located upstream of the first support tray in the feeding direction when in the protruding state.

[0017] According to this aspect, the medium support section includes a first support tray and a second support tray that is located upstream of the first support tray in the feeding direction when in the protruding state, so that the size of the support surface in the feeding direction can be increased and it can accommodate long media.

[0018] The seventh aspect is characterized in that, in the fourth aspect, a motor is provided as a power source for sliding the medium support part, and the medium support part is switched between the protruding state and the stored state by the power of the motor. According to this aspect, the device is equipped with a motor that is a power source for sliding the medium support section, and the medium support section is configured to switch between the protruding state and the stored state using the power of the motor, thereby improving the usability of the device.

[0019] The eighth aspect is the seventh aspect, further comprising a cover that is openable and closable on the first side surface of the device body and that allows the medium support unit to protrude from the first side surface when opened, and an opening / closing sensor that outputs information related to the open / closed state of the cover, and a control unit that controls the motor, which is characterized in that when the cover is opened while the medium support unit is in the stored state, the control unit switches the medium support unit from the stored state to the protruding state based on the detection information of the opening / closing sensor.

[0020] According to this aspect, when the cover is opened while the medium support unit is in the stored state, the control unit switches the medium support unit from the stored state to the protruding state based on the detection information from the opening / closing sensor, thereby eliminating the need for an operation to switch the medium support unit from the stored state to the protruding state, improving the usability of the device.

[0021] The ninth aspect is the seventh aspect, further comprising a cover that is openable and closable on the first side surface of the device body and that allows the medium support unit to protrude from the first side surface when opened, an opening / closing sensor that outputs information related to the open / closed state of the cover, and a display unit that displays various information, wherein the control unit that controls the motor is characterized in that, based on the detection information of the opening / closing sensor, when the cover is opened while the medium support unit is in the stored state, causes the display unit to display information related to switching of the medium support unit from the stored state to the protruding state.

[0022] According to this aspect, when the cover is opened while the medium support unit is in the stored state, the control unit, based on the detection information from the opening / closing sensor, displays information on the display unit regarding the switching of the medium support unit from the stored state to the protruding state, thereby improving usability.

[0023] The present invention will be specifically described below. In the following, an inkjet printer 1 that performs recording by ejecting ink, which is an example of a liquid, onto a medium such as recording paper will be described as an example of a recording device. In the following, the inkjet printer 1 will be abbreviated as printer 1. The XYZ coordinate system shown in each figure is a Cartesian coordinate system, with the Y axis direction being the width direction intersecting the medium transport direction and the depth direction of the device. In this embodiment, of the side surfaces that form the periphery of the device main body 2, the side surface in the +Y direction is the back surface, and the side surface in the -Y direction is the front surface.

[0024] The X-axis direction is the width direction of the device, and as seen from the operator of the printer 1, the side in the +X direction is the left side, and the side in the -X direction is the right side. Hereinafter, of the sides that make up the periphery of the device main body 2, the side in the +X direction will be referred to as the first side 2a, and the side in the -X direction will be referred to as the second side 2b. The -X direction is the media feeding direction from the lower media setting unit 11 and upper media setting unit 12 that make up the first media storage cassette 10 (described below), and also from the second media storage cassette 20 and third media storage cassette 21. The Z-axis direction is the vertical direction, that is, the height direction of the device, with the +Z direction being the upward direction and the -Z direction being the downward direction.

[0025] 1, the printer 1 is equipped with a scanner unit 3, which is an example of an image reading device, on top of the device main body 2, and is configured as a multifunction device that has a document reading function in addition to an inkjet recording function. An operation unit 4 equipped with a display unit 4a that displays various information is provided on the top of the front of the device.

[0026] A first medium storage cassette 10, a second medium storage cassette 20, and a third medium storage cassette 21 are removably provided at the bottom of the device main body 2. In this embodiment, each medium storage cassette is installed by pushing it in the -Y direction from the front of the device, and can be removed by pulling it out in the +Y direction from the front of the device. Furthermore, each media storage cassette may be configured to be installed by being pushed in the -X direction from the left side of the device main body 2, or may be configured to be installed by being pushed in the +X direction from the right side of the device main body 2.

[0027] A side cover 6 is provided on the first side surface 2a, which is the left side surface of the device main body 2. The side cover 6 can be opened and closed by rotating around a rotation axis 6a (see FIGS. 2 and 3) parallel to the Y-axis direction. When the side cover 6 is opened as indicated by the reference numeral 6-1 and the two-dot chain line, it opens the opening 2c (see FIG. 3) formed in the first side surface 2a, and when it is closed, it closes the opening 2c. When the side cover 6 is opened, the second support tray 14 of the upper medium setting section 12, which will be described later, protrudes from the first side surface 2a in the +X direction, unfolding the support surface 12a that supports the medium. In FIG. 1, the reference numeral 14-1 and the two-dot chain line indicate the second support tray protruding from the first side surface 2a in the +X direction. The media that have been fed from each media storage cassette and have been recorded on are discharged onto a discharge tray 5 that is formed so as to be inclined upward in the -X direction.

[0028] Next, the medium transport path in the printer 1 will be described with reference to Figures 2 and 3. In Figures 2 and 3, the medium transport path is indicated by a dashed line. In the printer 1, the medium is transported through the medium transport path indicated by the dashed line. Symbol T1 indicates the medium feeding path from the separation roller pair 45 to the transport roller pair 31, symbol T2 indicates the medium transport path from the transport roller pair 33 to the transport roller pair 35, symbol T3 indicates the medium transport path from the transport roller pair 36 in the +X direction, and symbol T4 indicates the medium transport path from the transport roller pair 36 in the -X direction, passing above the line head 22, and to the transport roller pair 31. In the following description, the direction in which the media is fed may be referred to as "downstream," and the opposite direction may be referred to as "upstream." Also, in Figures 2 and 3, the media feeding path from the second media storage cassette 20 and the media feeding path from the third media storage cassette 21 are not shown, but the media feeding paths from the second media storage cassette 20 and the third media storage cassette 21 merge at the transport roller pair 29.

[0029] 2 and 3, a feed roller 50 is provided for feeding the loaded medium in the -X direction relative to the first medium storage cassette 10. The feed roller 50 is supported by an arm member 51. The arm member 51 is provided so as to be swingable about a rotation axis 52, and swinging causes the feed roller 50 to move forward and backward relative to the first medium storage cassette 10. The direction in which the feed roller 50 moves forward and backward relative to the first medium storage cassette 10 is generally along the Z axis. One feed roller 50 is provided so as to contact the center position of the medium set in the first medium storage cassette 10 in the X-axis direction, i.e., the medium width direction. However, multiple feed rollers 50 may be provided along the medium width direction so that the feed rollers 50 contact the medium at multiple positions symmetrical about the center position in the medium width direction.

[0030] A separation roller pair 45 is provided downstream of the feed roller 50. The separation roller pair 45 is composed of a drive roller 46 and a separation roller 47. The drive roller 46 is driven to rotate by a motor (not shown). The separation roller 47 is movable toward and away from the drive roller 46 and is pressed toward the drive roller 46 by a pressing member (not shown). The outer circumferential surface of separation roller 47 is formed of an elastic material such as elastomer, and is provided with a rotational torque by a torque limiter (not shown). Any media that are being fed in a double-feed state together with the other media being fed is stopped at the position of separation roller pair 45 by the action of separation roller 47.

[0031] A transport roller pair 29 is provided downstream of the separation roller pair 45, and a transport roller pair 30 is provided further downstream of that. A transport roller pair 31 is provided downstream of the transport roller pair 30. In this specification, unless otherwise specified, a "transport roller pair" is defined as consisting of a drive roller driven by a motor (not shown) and a driven roller that rotates in contact with the drive roller.

[0032] The medium receiving the feeding force from the pair of transport rollers 31 is sent to a recording position between the line head 22 , which is an example of a recording means, and the transport belt 23 , that is, facing the line head 22 . The line head 22 performs recording by ejecting ink, which is an example of a liquid, onto the surface of the medium. The line head 22 is an ink ejection head configured so that the nozzles that eject ink cover the entire area in the width direction of the medium, and is configured as an ink ejection head that can record across the entire width of the medium without moving in the width direction of the medium. However, the ink ejection head is not limited to this, and may be a type that is mounted on a carriage and ejects ink while moving in the width direction of the medium.

[0033] The conveyor belt 23 is an endless belt that is wound around pulleys 24 and 25, and rotates when at least one of the pulleys 24 and 25 is driven by a motor (not shown). The medium is conveyed to a position facing the line head 22 while being attracted to the belt surface of the conveyor belt 23. The medium can be attracted to the conveyor belt 23 by a known attraction method such as an air suction method or an electrostatic attraction method. In this embodiment, the medium transport path at the position facing the line head 22 extends horizontally.

[0034] The medium on whose first side has been recorded by the line head 22 is sent toward either the transport roller pair 33 or the transport roller pair 36 by the transport roller pair 32 located downstream of the transport belt 23 . A path switching flap 41 is provided downstream of the transport roller pair 32, and this path switching flap 41 causes the medium receiving the feeding force from the transport roller pair 32 to be sent toward either the transport roller pair 33 or the transport roller pair 36.

[0035] If recording is not performed on both the first side and the opposite second side of the medium, i.e., if double-sided recording is not performed, the medium is sent from the transport roller pair 32 to the transport roller pair 33, and is discharged to the discharge tray 5 via the medium transport path T2.

[0036] When recording on both the first side and the opposite second side of the medium, i.e., when double-sided recording is performed, the medium is sent from transport roller pair 32 toward transport roller pair 36 and sent into medium transport path T3. The rotation direction of transport roller pair 36 is then switched, and the medium enters medium transport path T4, where it is sent to transport roller pair 31 by transport roller pairs 37, 38, and 39. Reference numeral 42 denotes a path switching flap for sending the medium from medium transport path T3 to medium transport path T4.

[0037] The above is the medium transport path of the printer 1, and the first medium storage cassette 10 will be further explained below. As shown in Figures 2 and 3, the first medium storage cassette 10 is configured with a lower medium setting section 11, which is an example of a "medium storage section," and an upper medium setting section 12, which is an example of a "medium support section." The upper medium setting section 12 is provided above the lower medium setting section 11. In Figures 2 and 3, symbol P1 indicates a medium to be set in the lower medium setting section 11, and symbol P2 indicates a medium to be set in the upper medium setting section 12. A medium having a larger size in the feeding direction than the lower medium setting section 11 can be set in the upper medium setting section 12. In this specification, a medium having a larger size in the feeding direction is sometimes referred to as a long medium.

[0038] 4, the lower medium setting section 11 is provided with edge guides 16A and 16B that regulate the edges of the media in the Y-axis direction, i.e., the width direction, and are movable in the width direction. Similarly, the upper medium setting section 12 is provided with edge guides 17A and 17B that regulate the edges of the media in the width direction and are movable in the width direction.

[0039] The upper medium setting section 12 is configured to include a first support tray 13 and a second support tray 14. As shown in Figure 4, the first medium storage cassette 10 is provided with a tray support section 15 above the lower medium setting section 11, and the first support tray 13 and the second support tray 14 are supported by the tray support section 15 so as to be slidable in the X-axis direction. Note that the tray support section 15 is not shown in the figures except for Figures 4 and 5.

[0040] As shown in FIG. 6, a first rack portion 13a is formed along the X-axis direction on the -Y-direction side of the first support tray 13, and a first pinion gear 71 meshes with the first rack portion 13a, so that the first rack portion 13a and the first pinion gear 71 form a rack-and-pinion mechanism. Similarly, a second rack portion 14a is formed along the X-axis direction on the -Y-direction side of the second support tray 14, and a second pinion gear 72 meshes with the second rack portion 14a, so that the second rack portion 14a and the second pinion gear 72 form a rack-and-pinion mechanism. In this embodiment, the racks that make up the rack and pinion mechanism are formed on the side surfaces of the trays, but they may be formed on the surfaces in the +Z or -Z direction.

[0041] 6, reference numeral 18 denotes a tray drive unit provided in the -Y direction relative to the upper medium setting unit 12, and the first pinion gear 71 and the second pinion gear 72 constitute the tray drive unit 18. The tray drive unit 18 is also provided with a tray drive motor 63. A drive gear 63a is provided on the rotation shaft of the tray drive motor 63. A spur gear 75 meshes with the drive gear 63a, and a clutch gear 73 meshes with the spur gear 75, and this clutch gear 73 transmits the drive force of the tray drive motor 63 to the first pinion gear 71.

[0042] Furthermore, a spur gear 76 meshes with the drive gear 63a, and a spur gear 77 meshes with the spur gear 76, and a clutch gear 74 meshes with the spur gear 77, and the clutch gear 74 transmits the driving force of the tray drive motor 63 to the second pinion gear 72. The clutch gears 73 and 74 are gears that can rotate freely when a torque above a predetermined level is applied.

[0043] Because the tray drive unit 18 is configured as described above, when the tray drive motor 63 rotates, the first pinion gear 71 and the second pinion gear 72 rotate, and the first support tray 13 and the second support tray 14 slide in the X-axis direction. Here, the rotation directions of the first pinion gear 71 and the second pinion gear 72 are opposite to each other, so when the drive gear 63a rotates clockwise in Fig. 6, the first support tray 13 slides in the +X direction, and the second support tray 14 slides in the -X direction. Conversely, when the drive gear 63a rotates counterclockwise in Fig. 6, the first support tray 13 slides in the -X direction, and the second support tray 14 slides in the +X direction.

[0044] 2 shows the upper medium setting unit 12 in a storage state, and when the first support tray 13 slides in the -X direction from this state and the second support tray 14 slides in the +X direction, the second support tray 14, which is the upstream part of the upper medium setting unit 12, protrudes in the +X direction from the first side surface 2a of the device main body 2, as shown by the change from FIG. 2 to FIG. 3. This state is the protruding state of the upper medium setting unit 12, and the support surface 12a, which is the top surface of the upper medium setting unit 12, is extended to its longest in the X-axis direction. Then, medium P2 set in the upper medium setting unit 12 faces the feed roller 50, and medium P2 can be fed by the feed roller 50.

[0045] Furthermore, when the first support tray 13 is displaced in the +X direction and the second support tray 14 slides in the -X direction from the protruding state of the upper medium setting unit 12 shown in Figure 3, the second support tray 14 becomes stored inside the device main body 2, as shown by the change from Figure 3 to Figure 2. This state is the stored state of the upper medium setting unit 12. In the stored state of the upper medium setting unit 12, the upper medium setting unit 12 does not face the feed roller 50, but the feed roller 50 faces the lower medium setting unit 11, and the medium P1 set in the lower medium setting unit 11 can be fed by the feed roller 50. The movement limits of the first support tray 13 and the second support tray 14 in the +X direction and the −X direction are restricted by restricting portions (not shown).

[0046] In this embodiment, the first support tray 13 and the second support tray 14 are driven by one tray drive motor 63, but a motor may be provided for each of the first support tray 13 and the second support tray 14, and they may be driven independently. In this embodiment, the upper medium setting section 12 is configured with two trays, the first support tray 13 and the second support tray 14, but it may also be configured with three or more trays.

[0047] Next, the tray drive unit 18 is provided integrally with the tray support unit 15 that supports the first support tray 13 and the second support tray 14, thereby allowing the upper medium setting unit 12 to rotate about the rotation axis 12c as shown in Figures 4 and 5. The rotation axis 12c is a rotation axis having an axis center parallel to the X-axis direction. By the tray drive unit 18, first support tray 13, second support tray 14, and tray support unit 15 rotating together, the meshed state between the first pinion gear 71 and the first rack unit 13a is maintained, and the meshed state between the second pinion gear 72 and the second rack unit 14a is maintained. As the upper media setting section 12 rotates, the upper media setting section 12 opens and closes the top of the lower media setting section 11, and as the upper media setting section 12 opens the top of the lower media setting section 11, the lower media setting section 11 can be easily accessed.

[0048] Next, FIG. 7 is a block diagram showing the control system of the feeding mechanism. The control unit 60 is equipped with a CPU and non-volatile memory (not shown), and the non-volatile memory stores programs and parameters for performing various controls. The control unit 60 receives signals relating to operation information from the operation unit 4, and outputs signals relating to the display content of the display unit 4a (see FIG. 1) to the operation unit 4. Furthermore, the control unit 60 receives detection signals from a cover open / close sensor 65, a first medium detection sensor 66, and a second medium detection sensor 67.

[0049] The cover open / close sensor 65 is a sensor for detecting the open / close state of the side cover 6 (see Figures 2 and 3), and the control unit 60 can detect whether the side cover 6 is in a closed state or an open state based on the detection signal of the cover open / close sensor 65. In addition, the first media detection sensor 66 is a sensor located near the downstream side of the separation roller pair 45 (see Figures 2 and 3), and the control unit 60 can detect the passage of the leading and trailing ends of the media at the position of the first media detection sensor 66 based on the detection signal of the first media detection sensor 66. The second media detection sensor 67 is a sensor located near the downstream side of the conveying roller pair 29 (see Figures 2 and 3), and the control unit 60 can detect the passage of the leading and trailing ends of the media at the position of the second media detection sensor 67 based on the detection signal of the second media detection sensor 67. It should be noted that the printer 1 is provided with a number of other media detection sensors (not shown) on its media transport path, but a description of these will be omitted.

[0050] The control unit 60 controls a first feed motor 61 and a second feed motor 62. The first feed motor 61 is a drive source for the feed roller 50 (see FIGS. 2 and 3), and the second feed motor 62 is a power source for the assist roller 55 (see FIGS. 2 and 3), which will be described later. In this embodiment, the feed roller 50 and the assist roller 55 are each provided with an independent motor, but it is also possible to configure the feed roller 50 and the assist roller 55 to be driven by a single motor.

[0051] The driving force of the first feed motor 61 is transmitted to the rotary shaft 52 via a power transmission mechanism (not shown), and then transmitted from the rotary shaft 52 to the feed roller 50 via a power transmission mechanism (not shown). When the first feed motor 61 rotates forward, the arm member 51 swings clockwise in FIGS. 2 and 3, and the feed roller 50 comes into contact with the media set in the lower media set section 11 or the upper media set section 12. When the first feed motor 61 rotates reversely, the arm member 51 swings counterclockwise in FIGS. 2 and 3, and the feed roller 50 reaches its uppermost position as shown by the two-dot chain line in FIG. 2, i.e., it comes into a separated state where it is separated from the media set in the lower media set section 11 or the upper media set section 12.

[0052] Next, the second feeding motor 62 is a drive source for the assist roller 55 (see FIGS. 2 and 3). Here, the assist roller 55 will be described. The assist roller 55 is supported by an arm member 56. The arm member 56 is provided so as to be able to swing about a rotation shaft 57, and swinging causes the assist roller 55 to advance and retreat relative to the upper medium setting unit 12. The direction in which the assist roller 55 advances and retreats relative to the upper medium setting unit 12 is generally along the Z axis. One assist roller 55 is provided so as to contact the center position in the X-axis direction, i.e., the medium width direction, of the medium set in the upper medium setting section 12. However, multiple assist rollers 55 may be provided along the medium width direction so that the feed roller 50 contacts the medium at multiple positions symmetrical about the center position in the medium width direction.

[0053] The driving force of the second feed motor 62 is transmitted to the rotary shaft 57 via a power transmission mechanism (not shown), and then transmitted from the rotary shaft 57 to the assist roller 55 via a power transmission mechanism (not shown). When the second feed motor 62 rotates forward, the arm member 56 swings clockwise in FIGS. 2 and 3, and the assist roller 55 comes into contact with the media set in the upper media setting section 12. When the second feed motor 62 rotates reversely, the arm member 56 swings counterclockwise in FIGS. 2 and 3, and the assist roller 55 reaches its uppermost position as shown in FIG. 2, i.e., it is separated from the media set in the upper media setting section 12.

[0054] In addition, the control unit 60 separates the feed roller 50 and the assist roller 55 when in a standby state before feeding a medium. Also, when the upper medium setting unit 12 is in the process of switching from the stored state to the protruding state, or from the protruding state to the stored state, the control unit 60 separates the feed roller 50 and the assist roller 55.

[0055] The assist roller 55 is provided with a one-way clutch 58. The one-way clutch 58 transmits the driving force of the second feed motor 62 to the assist roller 55, but causes the assist roller 55 to rotate freely in the rotation direction when the assist roller 55 feeds the medium in the feed direction, specifically the counterclockwise direction in FIG. 3. This allows the assist roller 55 to rotate freely in the counterclockwise direction in FIG. 3 at a rotation speed that is faster than the rotation speed caused by the drive of the second feed motor 62.

[0056] In this embodiment, the peripheral speed of the feed roller 50 is set to be slower than the peripheral speed of the assist roller 55, so unless slippage occurs between the feed roller 50 and the medium, the assist roller 55 comes into contact with the medium and rotates in response to the action of the one-way clutch 58. At this time, the driving force of the second feed motor 62 does not act on the assist roller 55. In contrast, if slippage occurs between the feed roller 50 and the medium and the medium feed speed by the feed roller 50 decreases, the driving force of the second feed motor 62 acts on the assist roller 55, and the assist roller 55 begins to apply a feeding force to the medium.

[0057] Next, the first medium storage cassette 10 is provided with a cassette connection part 70, and when the first medium storage cassette 10 is attached to the device main body 2, the cassette connection part 70 fits into a main body connection part 68 provided on the device main body 2. The cassette connection part 70 and the main body connection part 68 are configured with connectors that realize an electrical connection, and by connecting the cassette connection part 70 to the main body connection part 68, power is supplied from the device main body 2 to the tray drive motor 63, and control by the control part 60 becomes possible.

[0058] The control unit 60 can determine whether the upper medium setting unit 12 is in the storage state (Fig. 2) or the protruding state (Fig. 3) based on the rotation direction of the tray drive motor 63. When you want to check the state of the upper medium setting unit 12, such as when turning on the power or returning from power saving mode, you can simply drive the tray drive motor 63 in the direction that switches the upper medium setting unit 12 to the storage state. This confirms that the upper medium setting unit 12 is in the storage state. However, it is of course possible to provide a sensor for detecting the state of the upper medium setting section 12 and to grasp the state of the upper medium setting section 12 based on this.

[0059] In the printer 1 having the above configuration, the control unit 60 performs the process shown in FIG. 8 depending on whether the side cover 6 is open or closed. When the side cover 6 is opened (Yes in step S101), the control unit 60 causes the display unit 4a of the operation unit 4 to display information related to the switching of the upper medium setting unit 12 from the stored state to the protruding state (step S102). The information display related to the switching of the upper medium setting unit 12 from the stored state to the protruding state can be a message such as, "A tray will protrude from the left side of this machine. Is this OK?" When the user presses the OK button in response (Yes in step S103), the control unit 60 drives the tray drive motor 63 to switch the upper medium setting unit 12 from the stored state to the protruding state (step S104). Furthermore, if the side cover 6 is closed while information regarding the switching of the upper media setting section 12 from the stored state to the protruding state is displayed, the control section 60 clears the above information displayed on the display section 4a and returns to the home screen.

[0060] When the control unit 60 receives a recording execution command (Yes in step S105), it executes a medium feeding operation (step S106). Thereafter, the medium feeding operation is repeatedly executed until there is no next page (Yes in step S107).

[0061] Next, the medium feeding operation in step S106 will be described with reference to Fig. 9. The control unit 60 drives the first feed motor 61 and the second feed motor 62 in the forward direction, switching the feed roller 50 and the assist roller 55 from a separated state to a contact state (step S201). As a result, the medium placed in the upper medium setting unit 12 is sent downstream in the feeding direction.

[0062] At this time, if no media is placed in the upper media setting unit 12, the feed roller 50 and the assist roller 55 come into contact with the support surface 12a of the upper media setting unit 12, causing an increase in the drive current values ​​of the first feed motor 61 and the second feed motor 62. Therefore, when the drive current values ​​of the first feed motor 61 and the second feed motor 62 exceed a predetermined threshold, the control unit 60 can stop the drive of the first feed motor 61 and the second feed motor 62 and display an error message such as "Please check the paper condition" on the display unit 4a. However, it goes without saying that a sensor for detecting the presence or absence of media on the upper media setting section 12 may be provided separately.

[0063] Furthermore, if the drive current value of only the second feed motor 62, out of the first feed motor 61 and the second feed motor 62, exceeds a predetermined threshold, it is assumed that a medium with a small size in the feed direction has been set, and in this case, only the drive of the second feed motor 62 is stopped and the feed operation continues.

[0064] Next, when the leading edge of the fed medium is detected by the first medium detection sensor 66 (Yes in step S202), that is, when the medium is nipped by the separation roller pair 45, the control unit 60 reverses the first feed motor 61 and the second feed motor 62 by a predetermined amount, switching the feed roller 50 and the assist roller 55 from a contact state to a separated state, and then stops them (step S203). This prevents the feed roller 50 and the assist roller 55 from becoming a transport load for the medium feeding operation by the separation roller pair 45.

[0065] Furthermore, the media sent from the upper media loading unit 12 are likely to be long, requiring a high conveying force. Therefore, for example, the first feed motor 61 and the second feed motor 62 may be stopped after the leading edge of the media is detected by the second media detection sensor 67, which is further downstream from the first media detection sensor 66. That is, after the media is nipped by the two roller pairs, the separation roller pair 45 and the conveying roller pair 29. In this case, it is also preferable to control the feed roller 50 and the assist roller 55 as follows so that they do not impose a conveying load on the media feeding operation of the separation roller pair 45. For example, once the leading edge of the media is detected by the first media detection sensor 66, the drive speed of the first feed motor 61 and the second feed motor 62 may be increased so that the media feed speed of the feed roller 50 and the assist roller 55 is faster than, or at least equal to, the media feed speed of the separation roller pair 45 until the leading edge of the media is detected by the second media detection sensor 67.

[0066] As described above, the upper medium setting unit 12 can be switched between a stored state (FIG. 2) in which it is stored in the device main body 2 and a protruding state (FIG. 3) in which a portion of the second support tray 14, which is the upstream portion in the feeding direction, protrudes from the first side surface 2a of the device main body 2, and the support surface 12a is in a more expanded state than in the stored state. As shown in FIG. 3, in the protruding state of the upper medium setting unit 12, the downstream end 12b of the support surface 12a in the feeding direction is located between the first side surface 2a and the second side surface 2b, which is the side surface opposite the first side surface 2a, and is close to the second side surface 2b. The downstream end 12b of the support surface 12a in the feeding direction being located between the first side surface 2a and the second side surface 2b and close to the second side surface 2b means that the downstream end 12b is located closer to the second side surface 2b than the intermediate position Xc between the first side surface 2a and the second side surface 2b.

[0067] With this configuration, the support surface 12a extends in the feeding direction by utilizing the space within the device main body 2, so that when the upper media set section 12 is in a protruding state, the amount of protrusion W2 of the upper media set section 12 from the first side surface 2a can be reduced.This allows the installation space of the device to be reduced while ensuring the length of the support surface 12a in the feeding direction (W1+W2), allowing long media to be fed, improving the usability of the device.

[0068] Furthermore, the first media storage cassette 10 is arranged to be attachable and detachable from the device main body 2 in the -Y direction, i.e., from the front side, and the upper media set section 12 is able to protrude in the +X direction, i.e., sideways, from the device main body 2. This facilitates the workability when attaching and detaching the first media storage cassette 10, and even when the amount of protrusion of the upper media set section 12 from the device main body 2 is ensured, the upper media set section 12 is unlikely to get in the way.

[0069] In addition, a first media storage cassette 10 equipped with a lower media setting section 11 is removably provided on the device main body 2, and an upper media setting section 12 is provided on the first media storage cassette 10, so that when a media jam occurs inside the device, the jam can be easily cleared by removing the first media storage cassette 10. Of course, the upper medium setting section 12 may not be integral with the first medium storage cassette 10, but may be provided independently in the device main body 2.

[0070] In addition, the upper media set section 12 is arranged to be slidable relative to the first media storage cassette 10, and as the upper media set section 12 slides, the upper media set section 12 switches between a stored state and a protruding state, making it easy to switch between the protruding state and the stored state. In this embodiment, the upper medium setting section 12 is configured to slide along the horizontal direction, but may be configured to be inclined upward in the +X direction in the protruding state.

[0071] Furthermore, the feed roller 50 is provided so as to be movable toward and away from the first medium storage cassette 10, and is configured so that when the upper medium set unit 12 is in a stored state, the feed roller 50 can feed media from the lower medium set unit 11, and when the upper medium set unit 12 is in a protruding state, the feed roller 50 can feed media from the upper medium set unit 12. As a result, the feed roller 50 is used to feed media from both the upper medium set unit 12 and the lower medium set unit 11, which reduces the cost of the device compared to a configuration in which separate feed rollers are provided for the upper medium set unit 12 and the lower medium set unit 11.

[0072] In addition, the upper media setting section 12 includes a first support tray 13 and a second support tray 14 that is located upstream of the first support tray 13 in the feeding direction when in the protruding state, so that the size of the support surface 12a in the feeding direction can be increased and it can accommodate long media.

[0073] The device main body 2 also includes a tray drive motor 63, which is the power source for sliding the upper media setting section 12. The power of the tray drive motor 63 switches the upper media setting section 12 between a protruding state and a retracted state, eliminating the need for the user to operate the upper media setting section 12 themselves, improving the ease of use of the device.

[0074] The device main body 2 also includes a side cover 6 that is openable and closable on the first side surface 2a and that, when opened, allows the upper medium setting section 12 to protrude from the first side surface 2a, and a cover open / close sensor 65 that outputs information related to the open / close state of the side cover 6. Based on the detection information from the cover open / close sensor 65, when the side cover 6 is opened while the upper medium setting section 12 is in the stored state, the control section 60 that controls the tray drive motor 63 causes the display section 4a to display information related to the switching of the upper medium setting section 12 from the stored state to the protruding state. This improves usability. In this embodiment, the side cover 6 is provided on the device main body 2, but it may be provided integrally with the upper medium setting section 12, for example.

[0075] The control unit 60 may be configured to switch the upper medium setting unit 12 from the stored state to the protruding state when the side cover 6 is opened while the upper medium setting unit 12 is in the stored state based on detection information from the cover open / close sensor 65. This eliminates the need for an operation to switch the upper medium setting unit 12 from the stored state to the protruding state, improving the ease of use of the device.

[0076] 3, when the upper medium setting unit 12 is in the protruding state, the downstream end 12b of the support surface 12a in the feeding direction is located between the first side surface 2a and the second side surface 2b and close to the second side surface 2b. In other words, the upper medium setting unit 12 is located inside the device main body 2. Therefore, an assist roller 55 that applies a feeding force to the medium fed from the upper medium setting unit 12 can be provided inside the device main body 2, upstream of the feeding roller 50. This makes it possible to prevent insufficient feeding force when feeding long media, and achieves appropriate feeding. In this embodiment, one assist roller 55 is provided upstream of the feed roller 50, but a plurality of assist rollers may be provided upstream of the feed roller 50 along the feed direction.

[0077] Furthermore, the feed roller 50 and the assist roller 55 can be switched between a contact state in which they are in contact with the media supported in the upper media set section 12 and a separated state in which they are separated from the media supported in the upper media set section 12. Therefore, after the media has been fed, the feed roller 50 and the assist roller 55 can be set to the separated state (step S203 in Figure 9), thereby preventing the feed roller 50 and the assist roller 55 from causing a transport load.

[0078] In addition, when the leading edge of the medium sent out from the upper medium setting section 12 is nipped by the separation roller pair 45, the control section 60 switches the feed roller 50 and the assist roller 55 from a contact state to a separated state (Yes in step SS202 of Figure 9, step S203), thereby preventing the feed roller 50 and the assist roller 55 from generating a transport load when the medium is transported by the separation roller pair 45.

[0079] Furthermore, the peripheral speed of the assist roller 55 is set to be slower than the peripheral speed of the feed roller 50, so that excessive feeding of the medium by the assist roller 55 can be prevented, thereby preventing the medium from bending between the feed roller 50 and the assist roller 55.

[0080] In addition, the power transmission path between the second feed motor 62, which is the power source for the assist roller 55, and the assist roller 55 is provided with a one-way clutch 58 that causes the assist roller 55 to rotate freely in the rotation direction when feeding the medium in the feeding direction, thereby preventing the assist roller 55 from becoming a transport load on the medium fed by the feed roller 50.

[0081] The upper media setting unit 12 can also serve as an ejection tray that supports media that have been recorded on and ejected. The device main body 2A shown in FIG. 10 includes a path switching flap 43 downstream of the transport roller pair 33, and further includes a downward media transport path T5 downstream of the path switching flap 43 in addition to the above-described upward media transport path T3. The path switching flap 43 switches the media transport destination between media transport path T3 and media transport path T5. Media sent to media transport path T5 can be ejected in the +X direction through the opening 2c and is supported by a portion of the upper media setting unit 12 that protrudes in the +X direction from the first side surface 2a when the upper media setting unit 12 is in a protruding state. In this way, the upper medium setting section 12 can also serve as a discharge tray that supports the medium that is discharged after recording, but the upper medium setting section 12 can also function as a dedicated discharge tray.

[0082] The present invention is not limited to the embodiments described above, and various modifications are possible within the scope of the invention described in the claims, and it goes without saying that these modifications are also included in the scope of the present invention. [Explanation of symbols]

[0083] 1...inkjet printer, 2...device main body, 2a...first side, 2b...second side, 2c...opening, 3...scanner unit, 4...operation unit, 4a...display unit, 5...output tray, 6...side cover, 6a...rotating shaft, 10...first media cassette, 11...lower media setting unit, 12...upper media setting unit, 12a...support surface, 12b...downstream end, 12c...rotating shaft, 13...first support tray, 13a...first rack unit, 14...second support tray, 14a...second rack unit, 15...tray support unit, 16A, 16B...edge guides, 17A, 17B...edge guides, 18...tray drive unit, 19...cassette connection unit, 20...second media cassette, 21...third media cassette, 22...line head, 23...conveyor belt, 24, 25... Pulley, 26...belt unit, 29-39...conveyor roller pair, 41, 42, 43...path switching flaps, 45...separation roller pair, 46...drive roller, 47...separation roller, 50...feed roller, 51...arm member, 52...rotating shaft, 55...assist roller, 56...arm member, 57...rotating shaft, 58...one-way clutch, 60...control unit, 61...first feed motor, 62...second feed motor, 63...tray drive motor, 63a...drive gear, 65...cover open / close sensor, 66...first media detection sensor, 67...second media detection sensor, 68...main body connection unit, 70...cassette connection unit, 71...first pinion gear, 72...second pinion gear, 73, 74...clutch gear, 75, 76, 77...spur gear

Claims

1. a medium support portion that forms a support surface that supports the medium before feeding; a medium storage unit that stores a medium; a media storage cassette including the media storage section; a feed roller that feeds the medium supported by the medium support unit in a feed direction; an apparatus body including the medium support unit and the feed roller; the medium support unit is switchable between a storage state in which it is stored in the device body and a protruding state in which an upstream portion in the feeding direction protrudes from a first side surface that is one of the side surfaces that form the periphery of the device body, and the support surface is in a more expanded state than in the storage state; the feed roller is provided so as to be displaceable in a direction toward and away from the medium accommodation cassette, and is capable of feeding the medium set in the medium accommodation section when the medium support section is in the stored state, and is capable of feeding the medium set in the medium support section when the medium support section is in the protruding state; When the medium support section is in the protruding state, a downstream end of the support surface in the feeding direction is located between the first side surface and a second side surface that is an opposite side surface to the first side surface, closer to the second side surface than the feeding roller. A recording device characterized by:

2. a medium support portion that forms a support surface that supports the medium before feeding; a medium storage unit that stores a medium; a media storage cassette including the media storage section; a feed roller that feeds the medium supported by the medium support unit in a feed direction; an apparatus body including the medium support unit and the feed roller; the medium support unit is switchable between a storage state in which it is stored in the device body and a protruding state in which an upstream portion in the feeding direction protrudes from a first side surface that is one of the side surfaces that form the periphery of the device body, and the support surface is in a more expanded state than in the storage state; the feed roller is provided so as to be displaceable in a direction toward and away from the medium accommodation cassette, and is capable of feeding the medium set in the medium accommodation section when the medium support section is in the stored state, and is capable of feeding the medium set in the medium support section when the medium support section is in the protruding state; In the protruding state of the medium support part, a downstream end of the support surface in the feeding direction is located between the first side surface and a second side surface that is the side surface opposite to the first side surface, closer to the second side surface than a downstream end of the support surface in the feeding direction in the stored state. A recording device characterized by:

3. 3. The recording device according to claim 1, wherein a medium containing cassette having a medium containing section for containing a medium is detachably mounted on the front side of the device body, the medium support portion is capable of protruding laterally relative to the device body; A recording device characterized by:

4. 3. The recording apparatus according to claim 1, wherein the medium storage cassette is detachably provided in the apparatus body, The medium support unit is provided in the medium storage cassette. A recording device characterized by:

5. 5. The recording apparatus according to claim 4, wherein the medium support section is provided slidably relative to the medium containing cassette, The medium support portion switches between the stored state and the protruding state by sliding. A recording device characterized by:

6. 6. The recording apparatus according to claim 1, wherein the medium support unit comprises: a first support tray and a second support tray located upstream of the first support tray in the feeding direction in the protruding state; A recording device characterized by:

7. 7. The recording apparatus according to claim 6, When switching from the storage state to the protruding state, the second support tray is moved in a protruding direction, and the first support tray is moved in a direction opposite to the protruding direction; When switching from the protruding state to the retracted state, the second support tray is moved in a direction opposite to the protruding direction, and the first support tray is moved in the protruding direction. A recording device characterized by:

8. 6. The recording apparatus according to claim 5, further comprising a motor as a power source for sliding the medium support unit, The medium support unit is switched between the protruding state and the retracted state by the power of the motor. A recording device characterized by:

9. 9. The recording apparatus according to claim 8, wherein a cover is provided on the first side surface of the apparatus body so as to be openable and closable, and the cover allows the medium support portion to protrude from the first side surface when the cover is opened. an opening / closing sensor that outputs information relating to the opening / closing state of the cover, a control unit that controls the motor, based on detection information from the open / close sensor, when the cover is opened while the medium support unit is in the stored state, switching the medium support unit from the stored state to the protruding state; A recording device characterized by:

10. 9. The recording apparatus according to claim 8, wherein a cover is provided on the first side surface of the apparatus body so as to be openable and closable, and the cover allows the medium support portion to protrude from the first side surface when the cover is opened. an opening / closing sensor that outputs information relating to the opening / closing state of the cover; a display unit that displays various information, a control unit that controls the motor, based on detection information from the open / close sensor, when the cover is opened while the medium support unit is in the stored state, causing the display unit to display information related to switching of the medium support unit from the stored state to the protruding state. A recording device characterized by:

Citation Information

Patent Citations

  • Paper feed cassette

    JP1992148733A

  • Image recording device

    JP2007145524A

  • Long sheet loading tray and image formation device

    JP2017013955A

  • Image forming apparatus

    JP2017081674A

  • Paper feeding device and image forming apparatus

    JP2018090341A