Image forming device
The feed tray design with separate storage sections and a shared feed roller mechanism addresses the space issue in image forming apparatuses, enabling efficient use of space by accommodating both roll and cut media without increasing size.
Patent Information
- Application Number
- JP2020219780
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2020-12-29
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2040-12-29
AI Technical Summary
Image forming apparatuses that accommodate both roll and cut media require additional space for separate rollers, increasing the device's size.
A feed tray with a first storage section for rolls and a second storage section for cut media, combined with a moving mechanism that allows a single feed roller to selectively engage with either roll or cut media, sharing a common transport path.
Prevents the apparatus from becoming larger by using a single feed roller to transport both roll and cut media, optimizing space utilization and reducing device size.
Smart Images

Figure 0007729040000001 
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an image forming apparatus having a feed tray that can accommodate both rolls and cut media. [Background technology]
[0002] There is known an image forming apparatus that can store both a roll of sheet-like paper and cut paper. For example, Patent Document 1 discloses a facsimile (image forming apparatus) having a paper feed cassette (feed tray) formed with a loading section for the roll and a loading section for the cut paper. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2-264556 Summary of the Invention [Problem to be solved by the invention]
[0004] The image forming apparatus disclosed in Patent Document 1 is provided with a roller for feeding roll paper unwound from a roll body from a paper feed cassette, and a separate roller for feeding cut paper. This type of image forming apparatus requires space inside the apparatus to accommodate the rollers for roll paper and cut paper, which increases the size of the apparatus.
[0005] SUMMARY OF THE INVENTION An object of the present invention is to provide an image forming apparatus having a feed tray that can accommodate both rolls and cut media, and that can prevent the apparatus from becoming large. [Means for solving the problem]
[0006] The image forming apparatus of the present invention comprises a housing, a feed tray that can be inserted into and removed from the housing and that can store sheet-like media, a feed roller that feeds the sheet-like media from the feed tray toward a transport path, an image forming unit that forms an image on the sheet-like media in the transport path, and a moving mechanism, wherein the feed tray has a first storage section that can store a roll of long sheet-like media wound into a roll, and a second storage section that can store multiple stacked cut media, which are sheet-like media that are shorter than the long sheet-like media, and the moving mechanism is capable of moving the feed roller to a position where it abuts the roll media, which is sheet-like media unwound from the roll body stored in the first storage section, and is also capable of moving the feed roller to a position where it abuts the cut media stored in the second storage section. [Effects of the Invention]
[0007] According to the present invention, a common feed roller can selectively transport either a roll medium unwound from a roll housed in the first housing section or cut medium housed in the second housing section, thereby preventing the image forming device from becoming larger in size in an image forming device having a feed tray that can accommodate both rolls and cut medium. [Brief explanation of the drawings]
[0008] [Figure 1] 1 is a schematic configuration diagram of a printer according to a first embodiment of the present invention. [Figure 2] FIG. 2 is a schematic diagram of the printer when cut paper is stored. [Figure 3] 10A and 10B are diagrams illustrating the transmission of power of the movement mechanism when the motor rotates forward. [Figure 4] 10A and 10B are diagrams illustrating the transmission of power of the movement mechanism when the motor rotates in reverse. [Figure 5] FIG. 2 is a schematic diagram of the printer when inserting and removing a feed tray. [Figure 6] FIG. 2 is a schematic diagram illustrating the configuration of the retraction mechanism when the feed tray is inserted into the housing. [Figure 7]10A and 10B are schematic diagrams illustrating a retraction mechanism when inserting or removing a feeding tray. [Figure 8] FIG. 10 is a schematic configuration diagram of a printer according to a second embodiment of the present invention. [Figure 9] FIG. 10 is a schematic diagram of a printer according to a second embodiment when cut paper is stored. [Figure 10] FIG. 10 is a schematic configuration diagram of a printer according to a second embodiment when a feed tray is inserted or removed. DETAILED DESCRIPTION OF THE INVENTION
[0009] (First embodiment) A printer 100 (image forming apparatus of the present invention) according to a first embodiment of the present invention will be described below with reference to Figures 1 to 7. The up-down direction, left-right direction, and front-rear direction shown in Figure 1 are the up-down direction, left-right direction, and front-rear direction of the printer 100.
[0010] (Overall configuration of the printer 100) 1, the printer 100 includes a housing 100a, a feed tray 11, a feed roller 2, a pair of transport rollers 3a, a pair of discharge rollers 3b, a cutter mechanism 4, a head 5 (an image forming unit of the present invention), a discharge tray 6, a guide 7, a pair of intermediate rollers 9, and a control unit 10. The feed tray 11 can be inserted into and removed from the lower part of the housing 100a. The discharge tray 6 forms a front side wall at the top of the housing 100a and can be opened and closed relative to the housing 100a.
[0011] The feed tray 11 can be inserted into and removed from the housing 100a in the front-to-rear direction. The feed tray 11 has a first storage section 11a that can store a roll R of long paper P1 (long sheet-like medium of the present invention) wound into a roll, and a second storage section 11b that can store a stack of cut sheets P2 (cut medium of the present invention, see FIG. 2), which are paper shorter than the long paper P1. In addition, a protrusion 18 that extends upward is formed on the rear end of the feed tray 11, i.e., the upstream end in the direction of removal of the feed tray 11 from the housing 100a. The protrusion 18 is a member that prevents the cut sheets P2 stored in the second storage section 11b from falling out when the feed tray 11 is inserted into or removed from the housing 100a.
[0012] The first storage section 11a has a cylindrical core member Rc, two rollers 14 and 15, and a roll cover 16. The roll body R is formed by winding a long sheet of paper P1 in a roll shape around the outer circumferential surface of the cylindrical core member Rc. The roll body R is arranged so that its axial direction (perpendicular to the plane of the paper in FIG. 1) along its rotation axis Rx (the central axis of the core member Rc) is parallel to the left-right direction. The axial direction of the rotation axis Rx also corresponds to the width direction of the long sheet of paper P1 and the cut paper P2.
[0013] The two rollers 14, 15 extend longitudinally in the left-right direction and are slightly longer than the width of the roll R. The roller 15 is disposed behind the roller 14. The rotation axes of the rollers 14, 15 are parallel to the rotation axis Rx. These two rollers 14, 15 support the roll R from below while in contact with the outer peripheral surface of the lower portion of the roll R.
[0014] When the long sheet of paper P1 is unwound from the roll R, the two rollers 14 and 15 rotate in response to the counterclockwise rotation of the roll R (solid arrow in FIG. 1). In this embodiment, the long sheet of paper P1 unwound from the roll R stored in the first storage section 11a is referred to as roll paper P1a (roll medium of the present invention). The roll paper P1a unwound from the roll R stored in the first storage section 11a is fed to the feed roller 2 through a path below the bottom surface 17 (described below) of the second storage section 11b. The feed roller 2 feeds the roll paper P1a toward the transport path, and then passes through the intermediate roller pair 9, the transport roller pair 3a, the head 5, and the paper discharge roller pair 3b to the paper discharge tray 6. The transport path of the roll paper P1a is defined by the feed roller 2, the intermediate roller pair 9, the transport roller pair 3a, and the paper discharge roller pair 3b.
[0015] The roll cover 16 is a member that covers the roll R stored in the first storage section 11a. The roll cover 16 extends in the left-right direction and is formed to be longer than the width of the rollers 14, 15. The roll cover 16 is also arranged so that it can come into close proximity with the outer peripheral surface of the largest size roll R that can be stored in the first storage section 11a. As a result, even if the roll R loosens and the outer diameter of the roll R attempts to increase, the outer peripheral surface of the roll R comes into contact with the inner surface of the roll cover 16, making it possible to prevent the outer diameter from increasing.
[0016] The second storage section 11b is located behind the first storage section 11a and has a bottom surface 17 that supports the cut sheet P2 from below. The bottom surface 17 extends long in the left-right direction and is formed to be slightly longer than the width of the cut sheet P2. The cut sheet P2 stored in the second storage section 11b is fed toward the conveyance path by the feed roller 2, and is sent to the paper output tray 6 via the intermediate roller pair 9, the conveyance roller pair 3a, the head 5, and the paper output roller pair 3b. The conveyance path of the cut sheet P2 is defined by the feed roller 2, the intermediate roller pair 9, the conveyance roller pair 3a, and the paper output roller pair 3b.
[0017] Additionally, a notch is formed in the rear end portion of the bottom surface 17 of second storage section 11b, in the center in the left-right direction. When printing on roll paper P1a, as described above, roll paper P1a is unwound from the roll R and fed to the feed roller 2 through a path below the bottom surface 17 of second storage section 11b. Then, when no cut sheet P2 is stored in second storage section 11b, roll paper P1a comes into contact with the feed roller 2 from the notched portion of bottom surface 17, and is fed toward the conveyance path.
[0018] The second storage section 11b is also provided with a mark 51 that indicates the maximum height position when the maximum number of cut sheets P2 is stored. The mark 51 is, for example, a rib-like shape that protrudes inward from the inner surface of the feed tray 11. The mark 51 is formed along the front-to-rear direction. The maximum number of cut sheets P2 that can be stored is, for example, 500 sheets.
[0019] In this embodiment, when printing on roll paper P1a, cut paper P2 is not stored in second storage section 11b. Furthermore, when printing on cut paper P2, roll paper P1a is not unwound from the roll R stored in first storage section 11a, or the roll R is not stored in first storage section 11a. Furthermore, in this embodiment, when the feed tray 11 is inserted into the housing 100a, at least a portion of first storage section 11a and all of second storage section 11b are contained within the housing 100a.
[0020] The feed roller 2 is located behind the first storage section 11a, near the rear end of the second storage section 11b. The feed roller 2 is driven by a motor 70 (the drive source of the present invention) (see FIG. 3) to rotate, thereby feeding the roll paper P1a and the cut paper P2 from the feed tray 11 to the transport path. As described above, the transport path for the roll paper P1a and the transport path for the cut paper P2 are both defined by the feed roller 2, the pair of intermediate rollers 9, the pair of transport rollers 3a, and the pair of discharge rollers 3b. Therefore, the feed roller 2 feeds the roll paper P1a and the cut paper P2 along the common transport path.
[0021] The cutter mechanism 4 is located downstream of the feed roller 2 in the transport direction (hereinafter simply referred to as the "transport direction") along the transport path of the roll paper P1a and cut paper P2, and upstream of the head 5, which will be described later, in the transport direction. The cutter mechanism 4 includes, for example, two rotary blades, a cutter 4a, and a cutting motor (not shown), which drives the cutter 4a back and forth in the axial direction. The roll paper P1a, which has been unwound from the roll R and transported along the transport path, is cut widthwise by the cutter 4a under the control of the control unit 10. This forms a trailing edge on the roll paper P1a that is sent to the paper output tray 6.
[0022] The guide 7 is located behind the feed roller 2 and upstream of the cutter mechanism 4 in the conveying direction. The guide 7 is intended to guide the roll paper P1a and cut paper P2 fed by the feed roller 2 to the cutter mechanism 4. As shown in FIG. 1, the guide 7 is inclined so that it is positioned higher as it moves from front to rear in the front-to-rear direction. The guide 7 extends long in the left-to-right direction and is formed to be slightly longer than the width of the roll paper P1a and cut paper P2. The surface of the guide 7 is formed with a fine uneven pattern that repeats in the conveying direction. This separates short sheets of paper, such as cut paper P2, to prevent double feeding.
[0023] The intermediate roller pair 9 is located downstream of the cutter mechanism 4 in the transport direction and upstream of the head 5 in the transport direction. The intermediate roller pair 9 transports the roll paper P1a and cut paper P2 to the transport roller pair 3a. The intermediate roller pair 9 is composed of a drive roller that is rotated by the drive of a motor 70, and a driven roller that rotates along with the drive roller. In this embodiment, the motor that rotates the feed roller 2 and the motor that rotates the intermediate roller pair 9 are both motors 70.
[0024] The conveying roller pair 3a is composed of a drive roller that is rotated by the drive of a conveying motor (not shown) and a driven roller that rotates along with the drive roller. The paper discharge roller pair 3b is composed of a drive roller that is rotated by the drive of a paper discharge motor (not shown) and a driven roller that rotates along with the drive roller. The conveying motor and paper discharge motor (not shown) are driven under the control of the control unit 10, and the conveying roller pair 3a and paper discharge roller pair 3b rotate while sandwiching the rolled paper P1a (or cut paper P2), thereby conveying the rolled paper P1a (or cut paper P2). Note that the drive roller of the conveying roller pair 3a and the drive roller of the paper discharge roller pair 3b may be driven by a common conveying motor (not shown). In this case, for example, the conveying roller pair 3a and the paper discharge roller pair 3b are connected by a belt.
[0025] The head 5 forms images on the roll paper P1a and the cut paper P2 and is located downstream of the pair of transport rollers 3a in the transport direction and upstream of the pair of discharge rollers 3b in the transport direction. The head 5 includes multiple nozzles (not shown) formed on its underside and a driver IC. When the driver IC is driven under the control of the control unit 10, ink is ejected from the nozzles. When the roll paper P1a (or the cut paper P2) transported by the pair of transport rollers 3a passes a position facing the underside of the head 5, ink is ejected from the nozzles of the head 5, forming an image on the long paper P1 or the cut paper P2. The head 5 may be either a line type, in which ink is ejected from the nozzles while remaining fixed in position, or a serial type, in which ink is ejected from the nozzles while moving in the axial direction of the rotation axis Rx. The roll paper P1a (or the cut paper P2) on which the image has been formed by the head 5 is received in the paper ejection tray 6, which is open relative to the housing 100a.
[0026] In this embodiment, the horizontal component of the transport direction of roll paper P1a and cut paper P2 fed by feed roller 2 is from front to back in the front-to-back direction, and the horizontal component of the transport direction of roll paper P1a and cut paper P2 discharged to the outside from the open paper output tray 6 after passing a position facing the underside of head 5 is from back to front in the front-to-back direction. In other words, the printer 100 of this embodiment has a so-called U-turn path configuration in which the transport direction is turned back midway.
[0027] The control unit 10 is connected to the motor 70, the conveying motor, the paper discharge motor, the driver IC, the cutting motor, etc. via an internal bus (not shown). The control unit 10 has a CPU (Central Processing Unit), ROM (Read Only Memory), and RAM (Random Access Memory). The ROM stores programs and data for the CPU to perform various controls. The RAM temporarily stores data used when the CPU executes programs.
[0028] (Moving mechanism 20) The printer 100 of this embodiment further includes a movement mechanism 20. The movement mechanism 20 has a swing arm 20a that rotatably supports the feed roller 2 and a swing shaft 20b that swingably supports the swing arm 20a on the housing 100a. The rotation axis of the swing shaft 20b is parallel to the left-right direction. The swing shaft 20b is located below the upper end of the feed tray 11. In this embodiment, the upper end of the feed tray 11 is the upper surface of the roll cover 16. Therefore, the swing shaft 20b is located below the upper surface of the roll cover 16. If the feed tray 11 does not have a roll cover 16, the uppermost part of the members that make up the feed tray 11 is the upper end of the feed tray 11. The swing shaft 20b may directly or indirectly support the swing arm 20a on the housing 100a.
[0029] The movement mechanism 20 can move up and down by swinging the swing arm 20a around the swing shaft 20b. For example, when printing on roll paper P1a, the swing arm 20a swings, as shown in FIG. 1, to move the movement mechanism 20 downward. This allows the movement mechanism 20 to move to a position where the feed roller 2 contacts the roll paper P1a unwound from the roll R stored in the first storage unit 11a. When printing on cut paper P2, the swing arm 20a swings, as shown in FIG. 2, to move the movement mechanism 20 upward. This allows the movement mechanism 20 to move to a position where the feed roller 2 contacts the topmost cut paper P2 of the stacked cut paper P2 stored in the second storage unit 11b. The swing of the swing arm 20a around the swing shaft 20b can be performed automatically by the control unit 10 or manually by an operator.
[0030] As shown in FIG. 3, the movement mechanism 20 further includes a biasing member 23 that biases the swing arm 20a upward, i.e., in a direction that weakens the force applied to the roll paper P1a (or cut paper P2) from the swing arm 20a via the feed roller 2. In this embodiment, the biasing member 23 is attached to a portion that contacts the swing shaft 20b. However, it may also be attached to a portion that does not contact the swing shaft 20b. In this embodiment, the biasing member 23 is a spring member. However, the biasing member 23 may be an elastic member other than a spring, such as resin.
[0031] (Power transmission mechanism 30) The printer 100 of this embodiment further includes a power transmission mechanism 30 for transmitting power from the motor 70 to the feed roller 2. The power transmission mechanism 30 is attached to the swing arm 20a. As shown in FIG. 3, the power transmission mechanism 30 has a transmission belt 31, a drive pulley 32, a driven pulley 33, three gears 34a to 34c, a planetary gear 35, and a connecting member 36.
[0032] The transmission belt 31 is, for example, a timing belt having grooves formed in the width direction of the belt and arranged in the extension direction of the belt. The drive pulley 32 and the driven pulley 33 have grooves on their outer circumferential surfaces that mesh with the grooves of the transmission belt 31. When the motor 70 is driven, the drive pulley 32 receives the rotational force of the motor 70 and rotates. The driven pulley 33 rotates in conjunction with the rotation of the drive pulley 32 as the rotational force of the drive pulley 32 is transmitted by the transmission belt 31. The driven pulley 33 also has teeth that mesh with the planetary gear 35. The planetary gear 35 is in contact with the driven pulley 33 and the gear 34a and is a gear that transmits the rotational force of the driven pulley 33 to the gear 34a. One end of the connecting member 36 is rotatably supported on the shaft of the driven pulley 33, and the other end is rotatably supported on the shaft of the planetary gear 35. As a result, the planetary gear 35 is supported by the connecting member 36 so as to be swingable around the rotation axis of the driven pulley 33. The planetary gear 35 and the connecting member 36 in this embodiment correspond to the cutting mechanism of the present invention. The three gears 34a, 34b, and 34c mesh with each other and are gears for transmitting the rotational force transmitted from the planetary gear 35 to the feed roller 2. The gears 34a, 34b, and 34c in this embodiment correspond to the gear train of the present invention.
[0033] As described above, the motor 70 drives the rotation of both the feed roller 2 and the intermediate roller pair 9. The motor 70 can be driven to rotate forward and reverse. When the motor 70 is driven to rotate forward, the feed roller 2 feeds the rolled paper P1a (or cut paper P2). When the motor 70 is driven to rotate reversely, the intermediate roller pair 9 transports the rolled paper P1a (or cut paper P2).
[0034] More specifically, when the motor 70 is driven to rotate in the forward direction, as shown in FIG. 3, the drive pulley 32 rotates clockwise in the figure, and accordingly, the transmission belt 31 and driven pulley 33 also rotate clockwise in the figure. At this time, the connecting member 36 swings clockwise in FIG. 3 around the rotation axis of the driven pulley 33, and the planet gear 35 and gear 34a mesh together. The planet gear 35 meshing with the driven pulley 33 then rotates counterclockwise in FIG. 3, and rotates the feed roller 2 counterclockwise in FIG. 3 via gears 34a to 34c, i.e., in the direction that transports the roll paper P1a (or cut paper P2). In other words, when the motor 70 rotates in the forward direction, its power is transmitted to the feed roller 2.
[0035] When the motor 70 is driven to rotate in the reverse direction, as shown in Fig. 4, the drive pulley 32 rotates counterclockwise in the figure, and accordingly, the transmission belt 31 and the driven pulley 33 also rotate counterclockwise in the figure. At this time, the connecting member 36 swings counterclockwise in Fig. 3 (see the solid arrow in Fig. 4) around the rotation axis of the driven pulley, and the planet gear 35 and the gear 34a are separated from each other. Therefore, the rotation of the planet gear 35 is not transmitted to the gears 34a to 34c and the feed roller 2. In other words, when the motor 70 rotates in the reverse direction to rotate the intermediate roller pair 9, the transmission of the power to the feed roller 2 is cut off.
[0036] (Evacuation mechanism 40) The printer 100 of this embodiment further includes a retraction mechanism 40 that retracts the feed roller 2 and the swing arm 20a above the protrusion 18 of the feed tray 11 as shown in FIG. 5 when the feed tray 11 is inserted into or removed from the housing 100a. The retraction mechanism 40 includes a horizontal surface 41a, inclined surfaces 41b and 41c, and a cylindrical member 43 of a side wall 41 of the feed tray 11. The retraction mechanism will be described below with reference to FIGS. 6 and 7.
[0037] As shown in FIG. 6 , a cylindrical member 43 is supported on the tip of an extension 42 that extends from the swing arm 20a to the right and left in the left-right direction to the sidewalls 41 on both sides of the feed tray 11. A horizontal surface 41a and inclined surfaces 41b and 41c are formed on the upper part of the sidewall 41 of the feed tray 11. The inclined surface 41b slopes downward from the front to the rear near the center of the horizontal surface 41a, which extends horizontally across the entire upper part of the sidewall 41. The inclined surface 41c slopes upward from the front to the rear near the center of the horizontal surface 41a and at a position rearward of the inclined surface 41b. The rear end of the inclined surface 41b is connected to the front end of the inclined surface 41c, and the front end of the inclined surface 41b is connected to the horizontal surface 41a, while the rear end of the inclined surface 41c is connected to the horizontal surface 41a. The cylindrical member 43 is movable along the horizontal surface 41a and the inclined surfaces 41b and 41c.
[0038] When the feed tray 11 is inserted into the housing 100a, as shown in FIG. 6, the cylindrical member 43 is positioned near the connection point between the inclined surfaces 41b and 41c. At this time, the movement mechanism 20 moves to a position where the feed roller 2 abuts on the roll paper P1a or the cut paper P2. In contrast, when the feed tray 11 is removed from the housing 100a, or when the removed feed tray 11 is inserted back into the housing 100a, the feed tray 11 moves forward relative to the housing 100a, and the cylindrical member 43 is positioned on the horizontal surface 41a behind the inclined surface 41c, as shown in FIG. 7. As a result, as shown in FIG. 5, the swing arm 20a can move together with the feed roller 2 to a position where it is retracted above the protrusion 8 when the feed tray 11 is inserted into or removed from the housing 100a.
[0039] As described above, in the printer 100 of this embodiment, the movement mechanism 20 moves the swing arm 20a about the swing shaft 20b, so that the feed roller 2 can move to a position (see FIG. 1) where it contacts the roll paper P1a unwound from the roll R stored in the first storage section 11a, and also to a position (see FIG. 2) where it contacts the cut paper P2 stored in the second storage section 11b. This allows the common feed roller 2 to selectively transport the roll R stored in the first storage section 11a or the cut paper P2 stored in the second storage section 11b. This prevents the printer 100 from becoming too large, even in a printer with a feed tray 11 that can accommodate both the roll R and the cut paper P2. Furthermore, the feed roller 2 can feed the roll paper P1a unwound from the roll R and the stacked cut paper P2 in accordance with both their heights.
[0040] Furthermore, the feed roller 2 of this embodiment can feed the roll paper P1a and cut paper P2 unwound from the roll R along a common transport path. This saves space compared to providing separate transport paths for the roll paper P1a and cut paper P2, further reducing the size of the device.
[0041] Furthermore, the swing shaft 20b in this embodiment is located below the upper end of the feed tray 11 (the upper end surface of the roll cover 16). This allows the height dimension of the device to be reduced compared to when the swing shaft 20b is located above the upper end of the feed tray 11.
[0042] Furthermore, the printer 100 of this embodiment further includes a power transmission mechanism 30 attached to the swing arm 20a for transmitting power from the motor 70 to the feed roller 2. The power transmission mechanism 30 includes a transmission belt 31 and a gear train (gears 34a, 34b, 34c). This prevents gear loss compared to when power from the motor 70 is transmitted using only gears, thereby improving the efficiency of power transmission to the feed roller 2.
[0043] In this embodiment, the power transmission mechanism 30 is disposed between the transmission belt 31 and the feed roller 2 and further includes a planetary gear 35 and a connecting member 36 that can selectively transmit power from the motor 70 to the feed roller 2 and cut off the power transmission. After the feed roller 2 transports the rolled paper P1a (or the cut paper P2) to another roller (the pair of intermediate rollers 9 in this embodiment) downstream of the feed roller 2 in the transport direction, the rolled paper P1a (or the cut paper P2) continues to be transported by the pair of intermediate rollers 9. At this time, if the motor 70 and the feed roller 2 are electrically connected and power from the motor 70 is transmitted to the feed roller 2, the rolled paper P1a (or the cut paper P2) receives a load from the feed roller 2 in the opposite direction to the transport direction. This load acts as transport resistance for the rolled paper P1a (or the cut paper P2), which may adversely affect the quality of the image formed by the head 5. Furthermore, when the feed roller 2 is supported by the swing arm 20a as in this embodiment, the swing arm 20a swings up and down with each conveyance, generating noise. Therefore, the above problem can be avoided by rotating the feed roller 2 in the reverse direction after conveying the paper to the pair of intermediate rollers 9, thereby cutting off the transmission of power to the feed roller 2. The planetary gear 35 and the connecting member 36 are preferably positioned between the transmission belt 31 and the feed roller 2, closer to the feed roller 2. This is because the farther the planetary gear 35 and the connecting member 36 are from the feed roller 2, the greater the load caused by the meshing of the gears, and the lower the power transmission efficiency.
[0044] Furthermore, the movement mechanism 20 of this embodiment further includes a biasing member 23 that biases the swing arm 20a in a direction that weakens the force that the swing arm 20a applies to the roll paper P1a (or cut paper P2) in the vertical direction. The vertical force that the swing arm 20a applies to the cut paper P2 increases by the weight of the swing arm 20a, which could lead to the risk of multiple stacked cut paper P2 stored in the second storage section 11b being accidentally transported together. This embodiment makes it possible to prevent multiple cut paper P2 from being transported together.
[0045] In this embodiment, the swing shaft 20b is supported by the housing 100a, and a protrusion 18 extending upward is formed at the upstream end of the feed tray 11 in the direction of removal from the housing 100a. The swing arm 20a, together with the feed roller 2, moves to a position above the protrusion 18 when the feed tray 11 is inserted into or removed from the housing 100a. This makes it possible to prevent the feed roller 2 and the swing arm 20a from coming into contact with the protrusion 18 and hindering insertion or removal of the feed tray 11 in the printer 100, in which the feed tray 11 is configured to have the protrusion 18.
[0046] (Second embodiment) Next, a second embodiment of the present invention will be described with reference to Figures 8 to 10. In the following description, the same components as those in the first embodiment will be denoted by the same reference numerals, and the description thereof will be omitted.
[0047] In the printer 200 according to the second embodiment, the movement mechanism 120 includes a pressure plate 120a that supports roll paper P1a or cut paper P2 unwound from a roll R from below and is movable in the vertical direction, and a pressure plate drive unit 120b that moves the pressure plate 120a in the vertical direction. The pressure plate 120a is a plate-shaped member that extends in the front-rear and left-right directions. The pressure plate 120a is attached to the feed tray 111. The pressure plate 120a can be moved in the vertical direction by rotating around one end 120a2 on the front side. The axial direction of the one end 120a2, i.e., the rotation axis of the pressure plate 120a, is parallel to the left-right direction.
[0048] The pressure plate driver 120b is a member that displaces the pressure plate 120a in the up-down direction. The pressure plate driver 120b includes, for example, an operating member (not shown) that can swing up and down, a motor (not shown) that supplies a driving force for moving the pressure plate 120a upward, and a drive transmission unit (not shown) that transmits the driving force supplied from the motor to the operating member. The operating member abuts against the pressure plate 120a and moves the pressure plate 120a upward when supplied with driving force from the motor. The drive transmission unit includes a plurality of rotating bodies such as gears. For details, see JP 2007-269462 A, JP 2017-071492 A, etc.
[0049] The pressure plate drive unit 120b displaces the pressure plate 120a vertically, so that the feed roller 102 can move to a position where it contacts the roll paper P1a unwound from the roll R, and the feed roller 102 can move to a position where it contacts the cut paper P2. For example, when printing on the roll paper P1a, the pressure plate 120a rotates around the front end 120a2 of the movement mechanism 120, as shown in FIG. 8 (see the solid arrow in FIG. 8). This allows the movement mechanism 120 to move to a position where it contacts the roll paper P1a unwound from the roll R stored in the first storage unit 11a. When printing on the cut paper P2, the pressure plate 120a rotates around the front end 120a2 of the movement mechanism 120, as shown in FIG. 9 (see FIG. 9). This allows the movement mechanism 120 to move to a position where the feed roller 102 comes into contact with the uppermost cut sheet P2 of the cut sheets P2 stored in a stack in the second storage section 11b.
[0050] Furthermore, in the housing 200a of the printer 200 according to the second embodiment, a plate-shaped member 131 extending in the transport direction along the transport path of the rolled paper P1a unwound from the roll R, i.e., in the front-to-rear direction, is disposed at a position above the maximum height position when the second storage section 11b stores the maximum number of cut sheets P2. In the second embodiment, the plate-shaped member 131 extends from a position forward of the feed roller 102 to a position rearward of the feed roller 102. The plate-shaped member 131 also extends in the left-to-right direction and is slightly longer than the width of the rolled paper P1a and cut sheets P2. A notch is formed in the plate-shaped member 131 so that it does not overlap with the feed roller 102 when viewed from above. The printer 200 has a retraction mechanism (not shown) that retracts the feed roller 102 to a position above the plate-shaped member 131 when inserting or removing the feed tray 111 into or from the housing 200a.
[0051] The retraction mechanism may be configured, for example, similar to the retraction mechanism 40 of the first embodiment, including horizontal surfaces, inclined surfaces, and cylindrical members on the side walls of the feed tray. However, the printer 200 of the second embodiment differs from the first embodiment in that it does not have a swing arm. Therefore, cylindrical members are supported at the tips of extensions extending from the support member 103, which supports the feed roller 102 on the housing 200a, to the right and left and to the positions of the side walls on both sides of the feed tray 111. The retraction mechanism allows the feed roller 102, at least a portion of which is located below the plate-like member 131, to move to a retracted position above the plate-like member 131 when the feed tray 111 is inserted into or removed from the housing 200a, as shown in FIG. 10 .
[0052] As described above, in the printer 200 of the second embodiment, the movement mechanism 120 includes a pressure plate 120a that supports from below the roll paper P1a or cut paper P2 unwound from the roll R and is movable up and down, and a pressure plate drive unit 120b that displaces the pressure plate 120a up and down. By displacing the pressure plate 120a up and down, the movement mechanism 120 can move the feed roller 102 to a position where it contacts the roll paper P1a unwound from the roll R, and also to a position where it contacts the cut paper P2. This allows the feed roller 102 to transport the paper in accordance with both the height of the roll paper P1a and the height of the stacked cut paper P2.
[0053] Furthermore, in the printer 200 of the second embodiment, a plate-shaped member 131 extending in the transport direction along the transport path of the roll paper P1a is disposed in the housing 200a at a position above the maximum height position when the second storage section 11b stores the maximum number of cut sheets P2. The feed roller 102 can be moved to a retracted position above the plate-shaped member 131 when the feed tray 111 is inserted into or removed from the housing 200a. The printer 200, which forms images on the roll paper P1a, has a cutter mechanism 4 that cuts the roll paper P1a. When the cutter mechanism 4 cuts the roll paper P1a, some of the roll paper P1a may remain in the transport path from the first storage section 11a to the cutter mechanism 4. In this case, when the feed tray 111 is inserted into or removed from the housing 200a, the leading edge of the roll paper P1a remaining in the transport path from the first storage section 11a to the cutter mechanism 4 may come into contact with the feed roller 102. According to the second embodiment, it is possible to prevent the leading edge of the roll paper P1a from coming into contact with the feed roller 102 when inserting or removing the feed tray 111 into or from the housing 200a.
[0054] (Variation) Although the preferred embodiments of the present invention have been described above, the present invention is not limited to the above-described embodiments, and various modifications are possible within the scope of the patented invention.
[0055] In the first embodiment, the feed roller 2 is supported by the housing 100a via the swing arm 20a and the swing shaft 20b. However, the feed roller 2 may be supported by the feed tray 11 via the swing arm 20a and the swing shaft 20b. In the second embodiment, the feed roller 102 may be supported directly or indirectly by the housing 200a, or may be supported directly or indirectly by the feed tray 111.
[0056] In the first embodiment, the retraction mechanism 40 does not have to be provided. In this case, it is preferable that the protrusion 18 is not formed at the rear end of the feed tray 11, or that the protrusion 18 is positioned so as not to overlap the feed roller 2 and the swing arm 20a in the left-right direction when viewed from the front-to-rear direction. This makes it possible to avoid interference with the feed roller 2 and the swing arm 20a coming into contact with the protrusion 18 when inserting or removing the feed tray 11 into or from the housing 100a.
[0057] Furthermore, in the first embodiment, when inserting or removing the feed tray 11 into or from the housing 100a, the swing arm 20a may move together with the feed roller 2 to a position where it is retracted above the mark 51 that indicates the maximum height position when the maximum number of cut sheets P2 is accommodated. This prevents the feed roller 2 and swing arm 20a from coming into contact with the cut sheets P2 accommodated in the second accommodation section 11b, which would hinder insertion or removal, and prevent the cut sheets P2 from being damaged, when the feed tray 11 is inserted or removed into or from the housing 100a.
[0058] In the first embodiment, roll paper P1a unwound from the roll R stored in first storage section 11a is sent to the feed roller 2 through a path below the bottom surface 17 of second storage section 11b. However, a path does not have to be formed below the bottom surface 17. In this case, roll paper P1a unwound from the roll R stored in first storage section 11a is sent to the feed roller 2 through the upper side of the bottom surface 17 of second storage section 11b.
[0059] In the first and second embodiments, the feed roller 2 may be configured to transport the roll paper P1a and the cut paper P2 along at least partially different transport paths. In this case, for example, a pair of intermediate rollers, a pair of transport rollers, and a pair of discharge rollers for transporting the roll paper P1a may be provided separately from a pair of intermediate rollers, a pair of transport rollers, and a pair of discharge rollers for transporting the cut paper P2. Furthermore, at least one of the pair of intermediate rollers, the pair of transport rollers, and the pair of discharge rollers may be common to the roll paper P1a and the cut paper P2.
[0060] In the first embodiment, a plate-shaped member extending in the transport direction along the transport path of the roll paper P1a unwound from the roll R, i.e., the front-to-rear direction, may be disposed above the maximum height position when the maximum number of cut sheets P2 is accommodated in the second storage section 11b. In this case, the plate-shaped member extends in the left-to-right direction and is slightly longer than the width of the roll paper P1a and cut sheets P2. The plate-shaped member is notched so that it does not overlap with the feed roller 2 and swing arm 20a when viewed from above. In this case, the swing arm 20a is preferably configured to move together with the feed roller 2 to a retracted position above the feed plate-shaped member when the feed tray 11 is inserted into or removed from the housing 100a. The printer 100, which forms images on the roll paper P1a, has a cutter mechanism 4 that cuts the roll paper P1a. When the roll paper P1a is cut by the cutter mechanism 4, some of the roll paper P1a may remain in the transport path from the first storage section 11a to the cutter mechanism 4. In this case, when the feed tray 11 is inserted into or removed from the housing 100a, the leading edge of the roll paper P1a remaining in the transport path from the first storage section 11a to the cutter mechanism 4 may come into contact with the feed roller 2. This configuration prevents the leading edge of the roll paper P1a from coming into contact with the feed roller 2 when the feed tray 11 is inserted into or removed from the housing 100a. Note that the plate-shaped member may extend, for example, from a position forward of the pivot shaft 20b to a position rearward of the feed roller 2, or from a position forward of the pivot shaft 20b to a position forward of the feed roller 2. The length of the plate-shaped member in the front-to-rear direction is preferably adjusted appropriately depending on the degree of curl of the roll paper P1a.
[0061] In the second embodiment, the pressure plate 120 is attached to the feed tray 111. However, the pressure plate 120 may be attached to the housing 200a. In this case, it is preferable that the components of the feed tray 111 do not come into contact with the pressure plate 120 when the feed tray 111 is inserted into or removed from the housing 200a.
[0062] In the above embodiment, the second storage section 11b is located behind the first storage section 11a. However, the second storage section 11b may be located in front of the first storage section 11a. In this case, for example, the roll paper P1a unwound from the roll R stored in the first storage section 11a may be fed from back to front in the front-to-back direction and then fed by a feed roller. In this case, the roll paper P1a and cut paper P2 may be fed from back to front by the feed roller, then fed from front to back by rollers located downstream in the transport direction along the transport path, and then further fed from back to front by rollers located downstream in the transport direction and guided to the head. In other words, the transport path for the roll paper P1a and cut paper P2 may be S-shaped.
[0063] In the first and second embodiments, the feed tray is insertable and removable in the front-rear direction relative to the housing. However, the feed tray may be insertable and removable in the left-right direction relative to the housing.
[0064] The image forming apparatus according to the present invention can be applied to a multifunction machine, a copier, etc. in addition to the printer 100. The printer is not limited to an inkjet type, but may be a laser type. Furthermore, the sheet medium according to the present invention may be a cloth, a label, etc., in addition to paper.
[0065] In the above embodiment, the paper ejection tray 6 forms a side wall on the front side of the upper portion of the housing 100a and can be opened and closed relative to the housing 100a. However, the paper ejection tray 6 may be arranged so that the paper placement surface is parallel to the paper transport direction, and may be configured to be extendable and retractable in the horizontal direction relative to the housing 100a.
[0066] If the swing arm 20a is heavy, that weight increases the normal force applied from the swing arm 20a to the cut sheet P2, which could result in the accidental conveyance of multiple sheets P2 at once. To prevent this, the movement mechanism 20 of the first embodiment has a biasing member 23 that biases the swing arm 20a upward, in a direction that weakens the force applied from the swing arm 20a to the rolled sheet P1a (or cut sheet P2). However, for example, if the swing arm is made of a lightweight material, the normal force applied from the swing arm to the rolled sheet P1a (or cut sheet P2) may be reduced, resulting in insufficient feeding force for the rolled sheet P1a (or cut sheet P2) by the feed roller supported by the swing arm. In this case, the movement mechanism may have a biasing member that biases the swing arm downward. In either case of a biasing member that biases the swing arm upward or a biasing member that biases the swing arm downward, it is preferable that the biasing force be adjusted so as to obtain sufficient feeding force from the feeding roller while preventing multiple cut sheets P2 from being accidentally transported together. [Explanation of symbols]
[0067] 2 Feeding roller 11 Feeder tray 11a First storage section 11b Second storage section 18 Convex part 20 Moving mechanism 20a Swing arm 20b Oscillating shaft 23 biasing member 30 Power transmission mechanism 31 Transmission Belt 32 Drive pulley 33 Driven pulley 34a, 34b, 34c gear 35 Planetary gear (cutting mechanism) 36 Connecting member (cutting mechanism) 40 Evacuation mechanism 41a Horizontal surface 40b, 40c slope 42 Extension 43 Cylindrical member 51 Landmark 70 Motor (drive source) 100 printers 100a housing 102 Feeding roller 111 Feeder tray 120 Moving mechanism 120a pressure plate 120b Pressure plate drive unit 131 Plate-shaped members 200 printers 200a housing R roll body P1 Long paper (long sheet media) P1a Roll paper (roll media) P2 Cut paper (cut media)
Claims
1. a housing into which a feed tray capable of accommodating sheet media can be inserted and removed; a feed roller that feeds the sheet medium from the feed tray toward a conveyance path; an image forming unit that forms an image on a sheet medium in the transport path; a moving mechanism, The moving mechanism includes: The feed roller is movable to a position where it contacts from above a roll medium, which is a long sheet medium wound into a roll and unwound from the roll medium stored in the feed tray, and An image forming apparatus characterized in that the feed roller can be moved to a position where it contacts from above the cut media, which are sheet media shorter than the long sheet media and are stored in a stacked state in the feed tray.
2. 2. The image forming apparatus according to claim 1, wherein the moving mechanism further includes a swing arm that rotatably supports the feeding roller, and a swing shaft that swingably supports the swing arm.
3. a housing into which a feed tray capable of accommodating sheet media can be inserted and removed; a feed roller that feeds the sheet medium from the feed tray toward a conveyance path; an image forming unit that forms an image on a sheet medium in the transport path; a moving mechanism, The moving mechanism includes: The feed roller is movable to a position where it contacts a roll of long sheet-like medium that is unwound from a roll of long sheet-like medium stored in the feed tray, and The feeding roller is movable to a position where it contacts cut media that are shorter than the long sheet media and are stored in a stacked state in the feeding tray, The image forming apparatus is characterized in that the moving mechanism includes a swing arm that rotatably supports the feed roller, a swing shaft that swingably supports the swing arm, and a biasing member that biases the swing arm in a direction that weakens the force applied from the swing arm to the sheet medium in the vertical direction.
4. a housing into which a feed tray capable of accommodating sheet media can be inserted and removed; a feed roller that feeds the sheet medium from the feed tray toward a conveyance path; an image forming unit that forms an image on a sheet medium in the transport path; a moving mechanism, The moving mechanism includes: The feed roller is movable to a position where it contacts a roll of long sheet-like medium that is unwound from a roll of long sheet-like medium stored in the feed tray, and The feeding roller is movable to a position where it contacts cut media that are shorter than the long sheet media and are stored in a stacked state in the feeding tray, a feed tray having a first storage section capable of storing the roll body and a second storage section capable of storing a plurality of the cut media in a stacked state; the moving mechanism further includes a swing arm that rotatably supports the feed roller, and a swing shaft that swingably supports the swing arm, The swing shaft is supported by the housing, a plate-like member extending in a conveying direction along the conveying path of the roll medium is disposed in the housing at a position above a maximum height position when the maximum number of the cut media is accommodated in the second accommodation section; The image forming apparatus according to claim 1, wherein the swing arm moves to a retracted position above the plate-like member when the feed tray is inserted into or removed from the housing.
5. 5. The image forming apparatus according to claim 2, wherein the pivot shaft is positioned below an upper end of the feeding tray.
6. a power transmission mechanism attached to the swing arm for transmitting power from a drive source to the feed roller; 6. The image forming apparatus according to claim 2, wherein the power transmission mechanism includes a transmission belt and a gear train.
7. The swing shaft is supported by the housing, a protrusion extending upward is formed at an upstream end of the feeding tray in a direction in which the feeding tray is removed from the housing, 7. The image forming apparatus according to claim 2, wherein the swing arm moves to a retracted position above the protrusion when the feed tray is inserted into or removed from the housing.
8. a feed tray having a first storage section capable of storing the roll body and a second storage section capable of storing a plurality of the cut media in a stacked state; The swing shaft is supported by the housing, a mark indicating a maximum height position when the maximum number of cut media is accommodated in the second storage section; 7. The image forming apparatus according to claim 2, wherein the swing arm moves to a retracted position above the mark when the feed tray is inserted into or removed from the housing.
9. 2. The image forming apparatus according to claim 1, wherein the moving mechanism further includes a pressure plate that supports the sheet medium from below and is displaceable in the vertical direction, and a pressure plate drive unit that displaces the pressure plate in the vertical direction.
10. a housing into which a feed tray capable of accommodating sheet media can be inserted and removed; a feed roller that feeds the sheet medium from the feed tray toward a conveyance path; an image forming unit that forms an image on a sheet medium in the transport path; a moving mechanism, The moving mechanism includes: The feed roller is movable to a position where it contacts a roll of long sheet-like medium that is unwound from a roll of long sheet-like medium stored in the feed tray, and The feeding roller is movable to a position where it contacts cut media that are shorter than the long sheet media and are stored in a stacked state in the feeding tray, a feed tray having a first storage section capable of storing the roll body and a second storage section capable of storing a plurality of the cut media in a stacked state; the moving mechanism further includes a pressure plate that supports the sheet medium from below and is displaceable in the up and down direction, and a pressure plate drive unit that displaces the pressure plate in the up and down direction; a plate-like member extending in a conveying direction along the conveying path of the roll medium is disposed in the housing at a position above a maximum height position when the maximum number of the cut media is accommodated in the second accommodation section; The image forming apparatus according to claim 1, wherein the feeding roller moves to a retracted position above the plate-like member when the feeding tray is inserted into or removed from the housing.
11. The image forming apparatus according to any one of claims 1 to 3 and 9, characterized in that it is provided with a feed tray having a first storage section capable of storing the roll body and a second storage section capable of storing multiple stacks of the cut media.
12. 12. The image forming apparatus according to claim 1, wherein the feeding roller feeds the roll medium and the cut medium along a common transport path.
Citation Information
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