Sheet media supply and use device

The sheet media supply device addresses the challenge of discharging long sheet media by incorporating a long-length loading section with air exhaust ports, ensuring effective separation and preventing jams.

JP7679607B2Active Publication Date: 2025-05-20FUJIFILM BUSINESS INNOVATION CORP
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Patent Information

Application Number
JP2020153047
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-09-11
Publication Date
2025-05-20
Estimated Expiration
2040-09-11

AI Technical Summary

Technical Problem

Existing sheet media supply devices struggle to efficiently separate and discharge long sheet media up to the end upstream in the discharge direction without air exhaust ports, leading to potential discharge jams and overlapping.

Method used

The device incorporates a long-length loading section with a dedicated and additional loading section, featuring side walls with first and second air exhaust ports to blow air onto the side ends of the long sheet media, ensuring separation up to the upstream end.

Benefits of technology

This configuration allows for effective separation and discharge of long sheet media, preventing jams and overlapping by ensuring air flow up to the upstream end, even when the extended portion bends due to weight.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a sheet-like medium supply device capable of separating a loaded long sheet-like medium to an end portion on the upstream side in a carrying direction, when a sheet-like medium loading portion is changed to a long loading portion extended to the upstream side in the carrying direction of the sheet-like medium and capable of loading a long sheet-like medium.SOLUTION: A supply device is equipped with a housing, a loading portion on which sheet-like media are loaded, lifting / lowering means for vertically lifting / lowering the loading portion, carrying means that carries the sheet-like media loaded on the loading portion from an upper place, and a first air discharge port that discharges air blown to left and right side ends of feeding width of the sheet-like media loaded on the loading portion. The loading portion can be changed to a long loading portion extended to the upstream side in a carrying direction of the sheet-like medium than before the change and capable of loading the sheet-like media, and has a second air discharge port that discharges air blown to at least either one of the left and right side ends of the long sheet-like media loaded on an extended part of the long loading portion.SELECTED DRAWING: Figure 7
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Description

[Technical field]

[0001] The present invention relates to a sheet media supply and usage device. [Background technology]

[0002] Conventionally, a paper feeding device capable of feeding long sheet media such as long paper that is longer than standard size paper such as A4 size or A3 size has been known, for example, as described in Patent Document 1 below.

[0003] Patent Document 1 describes a paper feeder equipped with a long paper option having an extension bottom plate as an extension plate that extends the upstream side of the tray bottom plate as a loading plate on which paper is loaded in the paper transport direction to load long paper. It is disclosed that the long paper option is equipped with an extension bottom plate, a long paper stand fixed to a housing, and an opening and closing cover. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent No. 6384275 (Claim 1, paragraph 0010, paragraph 0022, Figures 3-7, etc.) Summary of the Invention [Problem to be solved by the invention]

[0005] The object of the present invention is to provide a sheet-like material supplying device and a sheet-like material usage device that, when the sheet-like material loading section, which is raised and lowered by a lifting means, is changed to a long-length loading section that is extended upstream in the discharge direction of the sheet-like material and can load long sheet-like media, can separate the loaded long sheet-like media up to the end upstream in the discharge direction, compared to when the extended part of the long-length loading section does not have a second air exhaust port for exhausting air to be blown onto at least one of the left and right side ends of the long sheet-like media loaded on the extended part of the long-length loading section. [Means for solving the problem]

[0006] The sheet medium supply device of the present invention (1) comprises: the sheet-like medium feeding device comprises a housing, a loading section arranged inside the housing so as to be vertically movable and on which sheet-like media is loaded, a lifting means for lifting the loading section vertically, a discharge means for discharging the sheet-like media loaded on the loading section from an upper position, and a first air exhaust port for exhausting air to be blown against the left and right side ends of a feed width of the sheet-like media loaded on the loading section, The stacking section has an end portion corresponding to the upstream side in the conveying direction of the sheet-like medium extended toward the upstream side from before the change. , the length at the time of discharge is longer than 488 mm It can be changed to a long-length stacking section that can stack long sheet-like media, The long-length loading section is composed of a dedicated loading section disposed inside the housing, and an additional loading section provided in addition to the upstream end of the dedicated loading section in the discharge direction, with at least the upstream end of the extended portion in the discharge direction protruding outward from the side of the housing. , and left and right side walls that contact the left and right side ends of the long sheet medium loaded in the additional loading section of the long loading section, respectively, to guide the movement of the left and right side ends in the discharge direction, At least one of the left and right side walls has a portion that is at least on the outer side of the side of the housing. A second air exhaust port that exhausts air to be blown onto at least one of the left and right side edges of the long sheet of media. It is provided It is something.

[0007] The sheet medium supply device of the present invention (2) is the sheet-like medium feeding device comprises a housing, a loading section arranged inside the housing so as to be vertically movable and on which sheet-like media is loaded, a lifting means for lifting the loading section vertically, a discharge means for discharging the sheet-like media loaded on the loading section from an upper position, and a first air exhaust port for exhausting air to be blown against the left and right side ends of a feed width of the sheet-like media loaded on the loading section, the stacking section is changeable to a long stacking section in which an end portion corresponding to the upstream side in the discharge direction of the sheet-like medium is extended toward the upstream side from before the change, so that a long sheet-like medium having a length longer than 488 mm at the time of discharge can be stacked; The long-length loading section is configured as a replacement loading section that is attached in place of a dedicated loading section disposed inside the housing, and the extended section has at least an upstream end in the discharge direction that protrudes outward from a side of the housing. , a left and right side wall that contacts the left and right side ends of the long sheet medium loaded on the extended portion of the replacement stacking section, respectively, to guide the movement of the left and right side ends in the discharge direction; At least one of the left and right side walls is provided at least on a portion of the side wall that is on the outer side of the housing, with a second air exhaust port for exhausting air to be blown against at least one of the left and right side ends of the long sheet medium. .

[0008] The sheet medium supply device of the present invention (3) is the same as the sheet medium supply device of the present invention (1) Or (2) In the supply device, The second air exhaust port has an inner second air exhaust port disposed inside the housing and an outer second air exhaust port disposed outside a side portion of the housing. .

[0009] The sheet medium supply device of the present invention (4) is the same as the sheet medium supply device of the present invention (1) from (3) Either In the supply device, the second air exhaust port is The lower end is configured as an opening located below the lower end of the first air exhaust port. .

[0010] The sheet medium supply device of the present invention (5) is the same as the above inventions (1) to ( 4In any one of the supply devices, the second air outlet is It is composed of a vertically long opening. .

[0011] The sheet-like medium supply device of the present invention (6) is the same as the above-mentioned invention ( 3 ) In the supply device, the inner second air exhaust port and the outer second air exhaust port are integrally provided at the terminal end of each branched part into which the air supply duct is branched into two, or are connected to the terminal end.

[0012] The sheet medium supplying device of the present invention (7) is the supplying device of any one of the above inventions (1) to (6), The other of the left and right side walls is configured of a plate-like member extending along the carrying-out direction. .

[0013] The sheet-like medium of this invention (8) use The device is a sheet medium supply device that conveys and supplies the loaded sheet medium; a processing device that processes the sheet medium supplied from the supply device; Equipped with The sheet-like medium supplying device is configured to include the sheet-like medium supplying device according to any one of claims 1 to 7. . Effect of the Invention

[0019] According to the sheet-like medium supply device of the above-mentioned invention (1), the sheet-like medium stacking section Length when unloaded is greater than 488mm Long sheet media of Loading It is possible to carry out the above steps, and it consists of a dedicated loading section and an additional loading section. If you change to the long load section, An additional load section disposed with one end projecting outward from the side of the housing To too Compared to a case where there is no second air exhaust port that exhausts air to be blown onto at least one of the left and right side edges of the stacked long sheet-like medium, the Up to the upstream end of the stacked long sheet media in the direction of discharge Let air in It can be separated.

[0020] The above invention (2) Sheet media supply device According to When the sheet media stacking section is changed to a replacement stacking section that is capable of stacking long sheet media whose length at the time of discharge is longer than 488 mm and is installed in place of the dedicated stacking section, the replacement stacking section has a larger capacity than a dedicated stacking section that does not have a second air exhaust port that exhausts air to be blown onto at least one of the left and right side ends of the long sheet media that is stacked on a portion that is positioned in a state of protruding outward from the side of the housing of the replacement stacking section. Up to the upstream end of the stacked long sheet media in the direction of discharge Let air in It can be separated.

[0021] According to the above invention (3), Compared to a case where there is no inner second air exhaust port arranged inside the housing and no outer second air exhaust port arranged outside the side portion of the housing, Up to the upstream end of the stacked long sheet media in the direction of discharge Ensure air flow It can be separated.

[0022] According to the above invention (4), The second air exhaust port is not configured as an opening whose lower end is located lower than the lower end of the first air exhaust port. Compared to Even if the extended portion of the long stacking section is bent downward by the weight of the long sheet media being stacked, the Air can be made to flow up to the upstream end of the stacked long sheet media in the conveying direction to separate the media.

[0023] According to the above invention (5), If the second air exhaust port is not configured as a vertically long opening Compared to Even if the extended portion of the long stacking section is bent downward by the weight of the long sheet media being stacked, the Air is introduced to the upstream end of the stacked long sheet media in the conveying direction to separate them. It becomes easier to .

[0024] According to the above invention (6), When the inner second air exhaust port and the outer second air exhaust port are not integrally provided at the end of each branch that branches the air duct into two or are not connected to the end of each branch. Compared to the upstream end of the long sheet media in the conveying direction, With simple configuration It can be separated.

[0025] According to the above invention (7), When the other of the left and right side walls is not configured with a plate-like member along the carrying-out direction Compared to ,product Air is blown up to the upstream end of the long sheet of media in the conveying direction. Efficiently They can be separated by injecting them together.

[0026] The above invention (8) Apparatus for using sheet media According to When the sheet-form medium supply device is not configured to include any of the sheet-form medium supply devices according to the above inventions (1) to (7). Compared to Even when long sheet media longer than 488 mm in length are loaded on the portion of the long-length stacking section of the supply device that protrudes outward from the side of the housing, the loaded long sheet media can be separated up to the upstream end in the discharge direction and fed to the processing device while preventing discharge jams and overlapping. . [Brief description of the drawings]

[0032] [Figure 1] 1 is a side view showing an apparatus for using a sheet medium according to a first embodiment. [Diagram 2] 1 is a side view showing a sheet medium supplying device according to a first embodiment. [Diagram 3] FIG. 3 is a perspective view showing a state in which an additional device is attached to the supply device of FIG. 2; [Figure 4] 4 is a perspective view showing a state in which an opening / closing member and an opening / closing section of the supplying device in FIG. 3 are opened. FIG. [Diagram 5] FIG. 4 is a schematic side view showing a portion of the interior of the supply device of FIG. 3. [Figure 6] 4 is a perspective view showing a long-length stacking unit in the supply device and the adding device in FIG. 3; FIG. [Figure 7] 6 is an enlarged side view of a portion of the supply device of FIG. 5. [Figure 8] 4 is a side view mainly showing a long-length stacking unit and a lifting means in the supply device of FIG. 3. [Figure 9] 4 is a schematic plan view showing a long-length stacking section and its periphery in the supply device of FIG. 3. [Figure 10] FIG. 4 is a perspective view showing a loading section and a lifting means in the supply device of FIG. 3 before modification. [Figure 11] 1A is a schematic plan view showing the loading section before modification, and FIG. 1B is a schematic plan view showing the long loading section after modification. [Figure 12] 4A to 4C are schematic side views showing the configurations of a first air outlet and a second air outlet in the supply device of FIG. 3 in two states. [Figure 13] 1A is a schematic side view showing the configuration relating to a second air outlet, and FIG. 1B is a schematic side view showing the configuration of FIG. [Figure 14] FIG. 4(A) is a schematic side view showing the operation of the supply device in FIG. 3, and FIG. 4(B) is a schematic side view showing a state during an operation different from that in FIG. [Figure 15] 15 is a schematic side view showing a part of the operation shown in FIG. 14. FIG. [Figure 16] FIG. 11 is a schematic side view showing a supply device according to a second embodiment. [Figure 17] 17A is a schematic plan view showing the loading section in the supplying device of FIG. 16 before modification, and FIG. 17B is a schematic plan view showing the long loading section in the supplying device of FIG. 16 after modification. [Figure 18] FIG. 13(A) is a schematic plan view showing a long stacking section in a supplying device of a modified example, and (B) is a schematic plan view showing a lifting means and a second air exhaust port in the supplying device of (A). [Figure 19] 13 is a schematic side view showing a sheet medium supplying device according to another modified example. FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0033] Hereinafter, an embodiment of the present invention will be described with reference to the drawings.

[0034] Embodiment 1 1 shows a sheet-medium using device 100 according to a first embodiment of the present invention. 2 shows a sheet-medium supplying device 1 according to the first embodiment. In the following description, the direction indicated by the arrow X in the drawings is the width direction of the device, the direction indicated by the arrow Y is the height direction of the device, and the direction indicated by the arrow Z is the depth direction of the device perpendicular to the width and height directions. The circle at the intersection of the arrows X and Z in the drawings indicates that the depth direction of the device (arrow Z) faces downward perpendicular to the drawing.

[0035] <Devices using sheet media> As shown in FIG. 1, the sheet media usage device 100 includes a sheet media supply device 1 that carries out and supplies stacked sheet media 9, and a processing device 120 that processes the sheet media 9 supplied from the supply device 1. The sheet medium 9 is a medium in a sheet form that can be stored and discharged by the supply device 1 and transported and processed by the processing device 120. Reference numeral 200 shown in Fig. 1 denotes an installation surface where the image forming system 100A and the like are installed.

[0036] The sheet-like medium using device 100 in the first embodiment employs an image forming device 120A that forms an image on a sheet-like medium 9 as a processing device 120, and is configured as an image forming system 100A in combination with a supply device 1 in connection therewith. In the first embodiment, the sheet medium 9 is a recording medium on which an image can be formed, such as paper, coated paper, film, foil, or sheet-like cloth cut to a predetermined size.

[0037] As shown in FIG. 1, an image forming device 120A, which is an example of a processing device 120, is configured to include an image forming unit 123A that forms an image on a sheet-like medium 9 as an example of a processing unit 123, a transport path Rt that transports the sheet-like medium 9 within the housing 121, and the like, inside a housing 121 having a required external shape.

[0038] The image forming unit 123A is a part configured by an image forming method such as an electrophotographic method or an ink recording method, but is not particularly limited in terms of its image forming method, arrangement, number, etc. Rt1 shown by a dashed line in Fig. 1 is an introduction conveyance path that conveys the sheet medium 9 supplied from the supply device 1 to the image forming unit 123A, and is configured by conveyance rolls 125, a conveyance guide, etc. Rt2 shown by a dashed line is an ejection conveyance path that conveys the sheet medium 9 that has passed through the image forming unit 123A to an unillustrated storage unit or post-processing unit, and is configured by unillustrated conveyance rolls, a conveyance guide, etc.

[0039] In this image forming system 100A, when sheet-like medium 9 is supplied from a supply device 1 to an image forming device 120A, which is an example of a processing device 120, an image is formed on the supplied sheet-like medium 9 in the image forming device 120A, which is an example of processing.

[0040] 1, the image forming apparatus 120A may have an internal sheet medium supply unit 160 arranged inside the housing 121 to store the sheet medium 9 and supply it to the image forming unit 123A. When the internal supply unit 160 is arranged, a second introduction conveying path Rt3 is provided between the internal supply unit 160 and the image forming unit 123A. Even when the image forming apparatus 120A has the internal supply unit 160 arranged, it is possible to use the sheet medium supply unit 1 in combination with an external supply unit.

[0041] <Sheet media supply device> As shown in FIG. 1 and FIG. 2, the sheet medium supplying device 1 has a housing 10 which serves as a main body for accommodating and supplying a sheet medium 9. Furthermore, this supply device 1 is configured so that an add-on device 6 that enables long sheet media 9B to be stacked and stored on a side portion 10S of the housing 10 can be attached later.

[0042] Here, the long sheet medium 9B refers to a medium having a length longer than the normal sheet medium 9A having a normal length (the length along the discharge direction D or the feed length described below) that can be loaded and stored inside the housing 10. The normal length refers to a length that can be handled inside the housing 10 (specifically, loaded on the loading section 20A described below), and is, for example, a length of 488 mm or less.

[0043] <Main body of the supply device> The housing 10 is composed of a support frame that forms a required framework, exterior panels that form the exterior appearance, etc. Broadly speaking, as shown in Figures 1 to 4, the housing 10 has a structure that includes an upper portion 11, two upper and lower (upper and lower) supply units 12 and 13 that exist below the upper portion 11, and an unloading unit 14 that exists at one end of the upper portion 11 and the supply units 12 and 13.

[0044] An opening / closing member 15 for opening and closing the loading space S1 in the upper supply section 12 is provided on the upper surface of the upper section 11 of the housing 10 on the side opposite to the unloading section 14.

[0045] The opening / closing member 15 is structured to be opened and closed by swinging it up and down via a hinge disposed at the end on the side where the discharge section 14 is located. The opening / closing member 15 is also provided with a handle 15a at the end on the opposite side to the discharge section 14 for releasing the locked state in the closed state (FIG. 3). As a result, when the opening / closing member 15 is held by gripping the handle 15a and lifted upward, a latch mechanism (not shown) is released and the opening / closing member 15 is placed in an open state (FIG. 4). Reference numeral 15b in FIG. 4 denotes a damper that assists the opening operation of the opening / closing member 15 and maintains the open state.

[0046] 3 and other figures, the opening / closing member 15 is provided surrounded by the front wall 11A, the rear wall 11B, and the top surface 11C between the front wall 11A and the rear wall 11B that constitute the upper portion 11. A notch 11E is formed in the front wall 11A at a portion that overlaps with the closed opening / closing member 15, so as to open the loading space S1 to the outside as much as possible. Furthermore, the opening / closing member 15 is provided with a manual feed section 16 on which normal sheet-like media 9A for manual feeding is placed and fed.

[0047] As shown in Figures 2, 5, 7, 8, etc., both the upper supply section 12 and the lower supply section 13 in the housing 10 are equipped with containers 17A, 17B such as trays, loading sections 20A, 20B for loading normal sheet-like media 9A (Figure 1), a lifting means 30 for raising and lowering the loading sections 20A, 20B up and down inside the containers 17A, 17B, and discharge means 40A, 40B for discharging the normal sheet-like media 9A loaded on the loading sections 20A, 20B, respectively, in the direction indicated by arrow D (discharging direction D) toward the discharge section 14.

[0048] The containers 17A and 17B are attached to the front side of the housing 10 (upstream side in the device depth direction Z) so as to be removable. The containers 17A and 17B are composed of a main body 170 (FIG. 10) having a box-like shape with open sides, a front wall 172 provided on the side surface on the front side of the main body 170, a leading end wall 173 that guides the vertical movement of the end portions on the downstream side in the discharge direction D of the stacking units 20A and 20B and aligns and positions the leading ends on the downstream side in the discharge direction D of the normal sheet-like media 9A loaded on the stacking units 20A and 20B, and a moving device such as a slide rail or latch mechanism (not shown) provided between the left and right side portions in the pull-out direction of the main body 170 and the inner wall portion of the housing 10. As shown in FIG. 10, a notched recess 173b is formed in the center of the upper end of the tip wall 173, which makes it possible to check the presence of normal sheet media 9A loaded on the loading sections 20A and 20B.

[0049] Containers 17A and 17B have handle openings 175 at the top of front wall 172, and a handle (not shown) is provided inside handle opening 175 for unlocking containers 17A and 17B stored in housing 10. As a result, containers 17A and 17B are pulled out to the outside of housing 10 by pulling them towards the front of housing 10 while gripping handle opening 175 and the handle, making it possible to load normal sheet media 9A on loading sections 20A and 20B. Incidentally, in the supply device 1, when the additional device 6 is attached, the handle opening 17 in the front wall portion 172 of the upper supply section 12 is blocked, making it impossible to pull out the container 17A.

[0050] The stacking units 20A and 20B are configured as plate-like members with a stacking surface 21 formed on the upper portion for stacking normal sheet media 9A, and are disposed within the containers 17A and 17B so as to be vertically movable.

[0051] 9, 10, 11(A), etc., stacking section 20A is provided with four hanging sections 22a, 22b, 22c, 22d that protrude outward at the left and right ends of stacking section 20A. Hanging sections 22a, 22b, 22c, 22d are provided at four locations in total, two on each side of left and right ends in left and right directions L and R that intersect with the discharge direction D in which normal sheet media 9A in stacking section 20A is discharged by discharge means 40A. In the first embodiment, the right direction R corresponds to the near side (front side) of the device, and the left direction L corresponds to the far side (rear side) of the device.

[0052] 7, 8, 10, etc., the loading section 20A is attached in a state in which the hanging sections 22a, 22b, 22c, 22d are fitted into four guide holes 174 provided in the front and back sidewalls of the main body 170 of the container 17A from the inside of the container 17A. The guide holes 174 are provided, for example, as penetrating rectangular openings that extend linearly a required length in the up-down direction (directions toward the downstream and upstream sides of the height direction Y of the device) indicated by the dashed double arrow (FIG. 10).

[0053] As a result, loading section 20A can move up and down within main body 170 of container 17A with hanging sections 22a, 22b, 22c, and 22d guided along guide holes 174. In addition, loading section 20A can move only by the vertical length of guide hole 174.

[0054] The above-mentioned configuration for the vertical movement of the loading section 20A is also adopted for the loading section 20B in a substantially similar manner. The guide hole 174 may be a guide groove having a linearly extending groove shape instead of a through-hole shape.

[0055] Furthermore, as shown in Figures 2, 4, 6, etc., the loading sections 20A, 20B are equipped with left and right side walls 25L, 25R that contact the left and right ends of the normal sheet-like media 9A loaded on each loading surface 21 and guide the left and right ends along the discharge direction D, and a rear end wall 26 that aligns and positions the rear end of the normal sheet-like media 9A that is upstream of the discharge direction D.

[0056] The side walls 25L, 25R have contact surfaces 251 (FIG. 5) that come into contact with the left and right side edges of normal sheet-like media 9A, and are entirely provided at the bottom of the main body 170 of the containers 17A, 17B so as to be movable in the left and right directions L, R. This allows the side walls 25L, 25R to be adjusted to positions that match the left and right side edges of the sheet-like media 9A. The rear end wall 26 has a contact surface that comes into contact with the rear end of a normal sheet medium 9A, and the entire wall is provided so as to be movable relative to a slide groove provided in the fixed surface portion 21A of the loading surface 21 along the discharge direction D. This allows the rear end wall 26 to be adjusted to move to a position that matches the position of the rear end of the sheet medium 9A. When the additional device 6 is attached, the rear end wall 26 is stored in a required location (for example, the raised portion 78 described below).

[0057] The loading surfaces 21 of the loading sections 20A and 20B have the following two types of surface configurations in accordance with the moving structures of the side walls 25L and 25R. That is, the loading surface 21 is composed of a fixed surface portion fixedly disposed in a central position in the left-right directions L, R in a form extending along the discharge direction D, and a plurality of sliding surface portions provided on both the left and right sides of the fixed surface portion so as to slide in the left-right directions L, R in accordance with the movement of the side walls 25L, 25R. The surface configuration of the loading surface 21 in the loading sections 20A, 20B is also adopted in the loading surface 72 in the dedicated loading section 71 of the long loading section 70A described later (FIGS. 6 and 9).

[0058] Furthermore, as shown in Figure 5, the side walls 25L, 25R have a first air exhaust port 50 on their contact surface 251 for exhausting air to be blown against the left and right side edges of normal sheet media 9A loaded on the loading sections 20A, 20B.

[0059] 9, in the first embodiment, two first air exhaust ports 50A, 50B are provided on the left side wall 25L with a gap therebetween in the unloading direction D, and two first air exhaust ports 50C, 50D are provided on the right side wall 25R with a gap therebetween in the unloading direction D. The first air exhaust ports 50A, 50B and the first air exhaust ports 50C, 50D are disposed at positions facing each other in the unloading direction D. The first air exhaust ports 50A and 50B are connected to an air duct incorporating a blower (not shown) that is disposed on the outside of the left side wall 25L (opposite the contact surface 251). On the other hand, the first air exhaust ports 50C and 50D are connected to an air duct incorporating a blower (not shown) that is disposed on the outside of the right side wall 25R (opposite the contact surface 251).

[0060] In the supply sections 12 and 13, air is discharged and blown from the first air exhaust ports 50A, 50B, 50C, and 50DE, respectively, so that air is blown into the left and right side ends of a portion of the uppermost normal sheet media 9A loaded on the stacking sections 20A and 20B, causing the uppermost portions of the sheet media 9A to be separated from each other above and below.

[0061] In addition, as shown in Figure 5, etc., the side walls 25L, 25R are provided on their contact surfaces 251 with a plurality of limiting means 55 that contact the upper surface portions of the left and right side ends of normal sheet-like media 9A loaded on the loading sections 20A, 20B to limit the height to the required height.

[0062] 9, in the left side wall 25L, one restriction means 55A is provided upstream of the first air exhaust port 50A in the discharge direction D, and two restriction means 55B, 55C are provided at a distance on both sides of the first air exhaust port 50B downstream and upstream in the discharge direction D. In addition, in the right side wall 25R, two restriction means 55D, 55E are provided at a distance on both sides of the first air exhaust port 50C downstream and upstream in the discharge direction D, and two restriction means 55F, 55G are provided at a distance on both sides of the first air exhaust port 50D downstream and upstream in the discharge direction D.

[0063] These limiting means 55A-55G are configured, for example, using plate-like members that protrude by a required length above each stacking surface 21 of the stacking units 20A, 20B from a required height position of each contact surface 251 of the side walls 25L, 25R. Also, the limiting means 55A-55G are configured, for example, to be stored inside the side walls 25L, 25R and not protrude from each contact surface 251 when normal sheet media 9A are loaded onto each stacking surface 21 of the stacking units 20A, 20B (when the stacking unit 20A, etc., is moved to the lowest position as described later).

[0064] In the supply sections 12 and 13, the left and right side ends of the normal sheet media 9A, which is floated as described above by the air discharged from the air exhaust port 50, are pressed down from above so as to stop it at the required height on each stacking surface 21 of the stacking sections 20A and 20B.

[0065] The lifting means 30 is configured as a device that lifts and lowers the loading sections 20A and 20B up and down inside the containers 17A and 17B by suspending them with wires 31, which are an example of a linear material.

[0066] To explain this lifting means 30 using the loading section 20A as a representative example, as shown in Figures 7 to 10, etc., it has four wires 31a, 31b, 31c, and 31d whose ends are distributed and connected to hanging sections 22a, 22b, 22c, and 22d provided at four locations on the loading section 20A.

[0067] The lifting means 30 also includes hanging pulleys 32a, 32b, 32c, 32d that are rotatably attached to the upper portion of the upper end of each guide hole 174 in the housing 17A and around which the wires 31a, 31b, 31c, 31d are wound, a left-side winding pulley 34L that winds up the wires 31a, 31b arranged on the left side, a right-side winding pulley 34R that winds up the wires 31c, 31d arranged on the right side, and auxiliary pulleys 33a, 33b that wind the wires 31a, 31b between the hanging pulleys 32a, 32b and the left-side winding pulley 33L so as to pull them along the required path.

[0068] 9 and 10, the lifting means 30 connects the left winding pulley 34L and the right winding pulley 34R with a rotating shaft 35, and the end of the rotating shaft 35 on the left winding pulley 34L side is connected to (the drive shaft of) a drive device 37 composed of a motor, a gear mechanism, etc., via a detachable coupling mechanism 36. In this lifting means 30, the left winding pulley 34L, the right winding pulley 34R, and the drive device 37 constitute a winding means 38 that winds up and pays out the wires 31a, 31b, 31c, and 31d.

[0069] 8 and 12, the lifting means 30 in the supply unit 12 is provided with a position sensor 39 that detects the position of the top of the normal sheet medium 9A loaded on the loading unit 20A. The position sensor 39 is disposed in a state capable of detecting the position of the top of the normal sheet medium 9A visible from the cutout portion 173b in the tip wall 173 of the container 17A, for example. In the lifting means 30, when the driving device 37 drives to wind up the wires 31a, 31b, 31c, and 31d, the stacking units 20A and 20B move upward, but the driving of the driving device 37 is controlled to stop when detection information is obtained from the position sensor 39. As a result, the upward movement of the stacking unit 20A by the lifting means 30 is stopped at a position where the top of the normal sheet media 9A reaches a required height.

[0070] The lifting means 30 provided in the loading section 20A is also provided in the loading section 20B in the supply section 13 at the lower stage.

[0071] The discharge means 40A, 40B include a suction section 41 that adsorbs and transports the topmost sheet medium 9A among the normal sheet media 9A stacked on the stacking sections 20A, 20B, respectively, a transport section 45 that transports the sheet medium 9A adsorbed by the suction section 41, and a guide member (not shown) that constitutes the first discharge path Rh1 (described later).

[0072] Moreover, the ejection means 40A, 40B are provided in a state where they are fixed to the housing 10, independent of the containers 17A, 17B. As a result, the ejection means 40A, 40B remain at fixed positions inside the housing 10 without moving even when the containers 17A, 17B are pulled out to the outside of the housing 10.

[0073] The suction unit 41 is disposed in a state facing each of the loading surfaces 21 of the loading units 20A, 20B at an upper position that is inside the leading end wall 173 at the downstream end of the containers 17A, 17B in the unloading direction D. The suction unit 41 is also provided so as to move back and forth at a required timing along the unloading direction D at a position upstream of the conveying unit 45 in the unloading direction D. This allows the suction unit 41 to move toward the conveying unit 45 during unloading and to move away from the conveying unit 45. The suction unit 41 is also connected to an air-suction type suction device (not shown) disposed at the rear side of the housing 10.

[0074] The conveying section 45 is disposed on the outer side downstream of the tip wall 173 of the containers 17A, 17B in the conveying direction D and downstream of the suction section 41 in the conveying direction D. The conveying section 45 is configured with, for example, a pair of conveying rolls, a guide member, etc. (not shown).

[0075] As shown in Figures 1 and 2, the discharge section 14 in the housing 10 is equipped with a first discharge path Rh1 for discharging to the outside normal sheet medium 9A discharged from the upper supply section 12 by discharge means 40A, a second discharge path Rh2 for discharging to the outside normal sheet medium 9A discharged from the lower supply section 13 by discharge means 40B, and a third discharge path Rh3 for discharging to the outside manually inserted sheet medium 9 discharged from the manual insertion supply section 16. The first discharge path Rh1, the second discharge path Rh2 and the third discharge path Rh3 are discharge transport paths that are arranged to merge along the way so as to ultimately reach the discharge roll 142 of the discharge outlet 18 provided on the other side 10B of the housing 10, and all of them are composed of a pair of transport rolls shown by dashed lines, a transport guide member not shown, etc.

[0076] In a supply device 1 not having an additional device 6 attached, when normal sheet media 9A is loaded onto the loading section 20A of the upper supply section 12 and the loading section 20B of the lower supply section 13, the containers 17A and 17B are pulled out to the front side of the housing 10, respectively, before the loading operation is performed.

[0077] At this time, when the containers 17A and 17B are pulled out, the coupling mechanism 36 is separated, and the connection between the rotary shaft 35 and the drive unit 37 in the lifting means 30 is released. As a result, the loading units 20A and 20B are moved downward by their own weight to their respective lowest positions. The lowest positions of the loading units 20A and the like are, for example, positions when the hanging units 22a, 22b, 22c, and 22d contact the lowest ends of the guide holes 174, respectively. After the normal loading operation of sheet media 9A is completed, containers 17A and 17B are pushed into and stored inside housing 10. This reconnects coupling mechanism 36, connecting rotation shaft 35 and drive device 37 in lifting means 30.

[0078] <Normal sheet media supply operation> In the sheet-form medium supply device 1, if the additional device 6 is not attached later, normal sheet-form media 9A and the like are supplied as follows.

[0079] That is, in the supply device 1, taking the upper supply section 12 as an example, inside the container 17A, the loading section 20A is moved upward by the simultaneous winding action of wires 31a, 31b, 31c, and 31d by the lifting means 30A until the top of the normal sheet media 9A loaded on the loading section 20A reaches the required height. Next, in stacker 20A, air is discharged from air exhaust ports 50A, 50B, 50C, 50D in left and right side walls 25L, 25R, respectively, and the uppermost normal sheet media 9A is floated and separated by the inflow of air. Also, in container 17A, the leading end portion of the floated uppermost sheet media 9A in the discharge direction D is attracted to it by the suction force of suction unit 41 of discharge means 40A.

[0080] Next, in the supply device 1, the suction section 41 of the discharge means 40A moves to carry the leading end of the adsorbed sheet-like medium 9A downstream in the discharge direction D to a transfer position where it is handed over to the conveying section 45, and then hands it over to the conveying section 45 (introducing it between a pair of rolls). Next, the conveying unit 45 of the discharge means 40A conveys the delivered sheet medium 9A out of the stacker 20A and the container 17A by the conveying force, and sends it out to the first discharge path Rh1. When the suction unit 41 finishes conveying the sheet medium 9A to the conveying unit 45, the suction force is temporarily stopped, and the suction unit 41 moves away from the conveying unit 45 to return to the original suction position.

[0081] As a result, normal sheet media 9A is discharged from the upper supply section 12 via the first discharge path Rh1 through the discharge outlet 18, and then supplied to the image forming device 120A (first introduction conveying path Rt1), which is an example of a supply destination. In the supply device 1, in a manner similar to the above-mentioned supply operation in the upper supply section 12, normal sheet-like media 9A loaded in the stacking section 20B is discharged from the discharge outlet 18 via the second discharge path Rh2 from the lower supply section 13 and then supplied to the destination.

[0082] <Additional equipment for supplying equipment> As shown in Figure 4 etc., the additional device 6 is retrofitted when the loading section 20A of the upper supply section 12 in the housing 10 of the supply device 1 is changed to a long loading section 70 in which the end 70c corresponding to the upstream side of the discharge direction D is extended further upstream than before the change, making it possible to load long sheet-like media 9B.

[0083] As shown in Figures 5, 7, 11(B), etc., the additional device 6 in embodiment 1 can be modified as a long-length loading section 70 to a long-length loading section 70A having a configuration in which at least the upstream end 70c in the discharge direction D of a loading portion 70b extended from a pre-modified loading section 70a arranged inside the housing 10 is arranged in a state in which it protrudes outward from the side 10S of the housing 10.

[0084] For this reason, the additional device 6 is attached to the upper part of the side part 10S of the housing 10 of the supplying device 1 in a state where it protrudes outward from the housing 10. The additional device 6 also includes a main body part 61 attached to the side part 10S of the housing 10 in a protruding manner, and an opening / closing part 62 serving as a cover provided on the upper side of the main body part 61. This additional device 6 is designed to be attached after, for example, removing a part of the exterior material (panel) on the side part 10S of the housing 10.

[0085] The main body 61 is a part having a shape having a space for arranging a part of the long load part 70A (mainly the extended load part 70b), and is composed of a support frame, an exterior material, etc. A part of the support frame is fixed to a support frame, etc., on the inside of the side part 10S of the housing 10 by screwing. 4, 6, etc., the opening / closing unit 62 is attached so as to swing up and down around a hinge (not shown) provided on the rear side of the main body 61 in the device depth direction Z as a fulcrum to open toward the rear of the device. By opening the opening / closing unit 62, the loading space S2 (FIG. 4) in the extended loading portion 70b (additional loading portion 73 described later) of the long stacking unit 70A is opened, making it possible to load long sheet media 9B on the long stacking unit 70A.

[0086] 5 to 9 and 11(B), the long load section 70A in the first embodiment is composed of a dedicated load section 71 arranged inside the housing 10, and an additional load section 73 additionally provided at the upstream end of the dedicated load section 71 in the unloading direction D. In this case, the dedicated load section 71 corresponds to the load section 70a before the change, and the additional load section 73 corresponds to the extended load section 70b.

[0087] In addition, the dedicated loading section 71 in this long loading section 70A is formed as a loading section provided above the raised section 78 that raises the loading surface 21 when the loading section 20A in the upper supply section 12 is in the lowest position. The reason for adopting the raising portion 78 here is to reduce the amount (mass) of long sheet media 9B loaded on the long loading portion 70A compared to when the raising portion 78 is not present (for example, when an additional loading portion 73 is connected to form a long loading portion 70A so that the loading surface is at the same height as the loading portion 20A), thereby reducing the load on the lifting means 30.

[0088] The raised portion 78 is configured as a structure disposed on the loading surface 21 of the loading portion 20A. In addition, the raised portion 78 has a dedicated loading portion 71 formed on its upper portion, the loading surface 72 for loading the downstream portion (from the leading end to the middle portion) of the long sheet medium 9B in the discharge direction D. Such a raised portion 78, excluding the dedicated loading portion 71, is formed as a structure having, for example, a downstream end wall 78A extending in the device depth direction Z downstream of the discharge direction D, an upstream end wall 78B extending in the device depth direction Z upstream of the discharge direction D, and an intermediate body 78C located between the downstream end wall 78A and the upstream end wall 78B and extending in the discharge direction D to support the dedicated loading portion 71.

[0089] The additional stacking section 73 is disposed with its upstream end 73b projecting outward from the side 10S of the housing 10, and is disposed across from the inside of the housing 10 (the upstream end of the dedicated stacking section 71) to the inside of the main body 61 of the additional device 6. The additional stacking section 73 is also a stacking section having a stacking surface 74 that mainly stacks the upstream portion (rear end) of the long sheet medium 9B in the discharge direction D.

[0090] 5, 7, 9, etc., the dedicated loading section 71 in the long-length loading section 70A exists in a state in which the left and right side walls 25L, 25R of the upper supply section 12 protrude upward at the left and right ends in the left and right directions L, R intersecting with the discharge direction D. In this case, the first air exhaust port 50 and the restricting means 55 in the left and right side walls 25L, 25R are both present above the loading surface 72 of the dedicated loading section 71 (FIGS. 5 and 7).

[0091] In addition, in response to the left and right side walls 25L, 25R of the dedicated loading section 71 being structured so as to be movable in the left and right directions L, R as described above, as shown in Figures 6 and 9, the loading surface 72 thereof has two types of surface configurations (fixed type and sliding type) that are almost similar to the loading surface 21 in the loading section 20A described above. In other words, the loading surface 72 is composed of a fixed surface portion 72A fixedly arranged in a central position in the left-right directions L, R in a form extending along the unloading direction D, and a plurality of sliding surface portions 72B arranged on both the left and right sides of the fixed surface portion 72A so as to slide in the left-right directions L, R in accordance with the movement of the left and right side walls 25L.

[0092] As shown in Figures 4 to 7, 9, etc., the additional loading section 73 in the long loading section 70A has left and right side walls 63L, 63R that contact the left and right side ends of the rear end portion of the long sheet-like medium 9B loaded on its loading surface 74 and guide the left and right side ends along the discharge direction D, and a rear end wall 64 that aligns and positions the rear end of the long sheet-like medium 9B that is upstream of the discharge direction D.

[0093] The side walls 63L, 63R have contact surfaces 631 (FIG. 5) that respectively come into contact with the left and right side ends of the long sheet medium 9B, and are entirely provided so as to be movable in the left and right directions L, R at the bottom of the main body 61 of the adding device 6. This allows the side walls 63L, 63R to be adjusted to positions that match the left and right side ends of the long sheet medium 9B.

[0094] In accordance with the structure in which the left and right side walls 63L, 63R of the additional loading section 73 are movable in the left and right directions L, R, as shown in Figures 6 and 9, the loading surface 74 thereof has two types of surface configurations (fixed type and sliding type) similar to the loading surface 72 in the dedicated loading section 71 described above. That is, as shown in Figure 9 etc., the loading surface 74 is composed of a fixed surface portion 74A fixedly arranged in a central position in the left-right directions L, R in a form extending along the unloading direction D, a plurality of slide surface portions 74B arranged on the left side of the fixed surface portion 74A to slide in the left-right directions L, R in accordance with the movement of the left side wall 63L, and a right-side fixed surface portion 74C having a slide groove 74m (Figure 9) on its upper surface for sliding the right side wall 63R in the left-right directions L, R.

[0095] The rear end wall 64 has a contact surface 641 (FIG. 7) that comes into contact with the rear end of the long sheet medium 9B, and the entire wall is held by magnetic force or the like and movably mounted against a slide surface provided along the discharge direction D on the fixed surface portion 74A of the loading surface 74. This allows the rear end wall 64 to be adjusted to a position that matches the position of the rear end of the long sheet medium 9B.

[0096] In addition, similar to the air exhaust port 50 in the left side wall 25L described above, the left side wall 63L has a second air exhaust port 65 on its contact surface 631, as shown in Figures 5 and 7, which exhausts air to be blown toward the left and right side ends at the rear end side of the long sheet-like medium 9B loaded in the additional stacking section 73.

[0097] In the first embodiment, two second air exhaust ports 65A, 65B are provided on the left side wall 63L with a gap therebetween in the unloading direction D. Of these, the second air exhaust port 65A is disposed as an inner second air exhaust port 65A at a portion on the contact surface 631 of the left side wall 63L that is on the inside from the side portion 10S of the housing 10. The second air exhaust port 65B is disposed as an outer second air exhaust port 65B at a portion on the contact surface 631 of the left side wall 63L that is on the outside of the side portion 10S of the housing 10.

[0098] 7, the second air exhaust ports 65A, 65B are configured such that each of their lower ends 65u is an opening located lower than each of the lower ends 50u of the first air exhaust ports 50A, 50B. In other words, the height position of each of the lower ends 65u of the second air exhaust ports 65A, 65B from the loading surface (actually loading surface 74) of the long-length loading section 70A is lower than the height position of each of the lower ends 50u of the first air exhaust ports 50A, 50B from the loading surface (actually loading surface 72) of the long-length loading section 70A.

[0099] In this case, the second air exhaust ports 65A, 65B are configured as openings whose upper ends are at approximately the same height as the upper ends of the first air exhaust ports 50A, 50B. Also, the lower ends 65u of the second air exhaust ports 65A, 65B are both located lower than the lower ends 50u of the first air exhaust ports 50A, 50B by a required dimension α1, as shown in Figures 7 and 12. The dimension α1 can be set to a suitable value, and is selected within the range of several centimeters, for example.

[0100] Further, the second air exhaust ports 65A, 65B are configured as vertically elongated openings that are long in the up-down direction as shown in Fig. 7 and Fig. 12. The second air exhaust ports 65A, 65B in the first embodiment are configured as a plurality of (for example, four) vertically elongated openings 652 arranged at equal intervals in the discharge direction D inside the exhaust port frame 651.

[0101] As shown in FIG. 12, first air exhaust ports 50A, 50B in embodiment 1 are configured with movable opening 502 formed of a horizontally long rectangle that moves vertically inside exhaust port frame 501 formed of a horizontally long rectangle.

[0102] This movable opening 502 moves from the lowest home position shown in the upper part of Fig. 12 to the highest position shown in the lower part of Fig. 12 during the discharge operation of sheet media 9A, 9B (strictly speaking, during suction by suction unit 41 of discharge means 40A, etc.), and returns to the lowest home position after suction. In addition, the discharge opening frame 501 is closed by a closing unit 503 that moves integrally with the movable opening 502.

[0103] The first air exhaust ports 50A, 50B employing this movable opening 502 have a lower end 50u which corresponds to the lower end of the movable opening 502. As a result, bottom ends 50u of first air outlets 50A, 50B are displaced up and down. Also, dimension α1 corresponding to the difference in height between bottom ends 65u of second air outlets 65A, 65B and bottom ends 50u of first air outlets 50A, 50B at this time also changes to increase until it reaches a maximum dimension α2 (>α1), as shown in the upper and lower parts of FIG.

[0104] Even in the first air exhaust port 50A, 50B that employs such a movable opening 502, the lower end 65u of the second air exhaust port 65A, 65B only needs to be lower than the lower end 50u of the movable opening 502 when in the lowest home position (upper part of Figure 12).

[0105] 13, the inner second air exhaust port 65A and the outer second air exhaust port 65B are provided integrally with or connected to terminal ends 655e, 655f of branched portions 655c, 655d obtained by branching air duct 635 arranged in an outer portion (the portion opposite contact surface 631) 632 of left side wall 63L into two. This allows second air exhaust ports 65A, 65B to be easily provided in side wall 63L.

[0106] 13, reference numeral 657 denotes a blower such as a sirocco fan, reference numeral 655a denotes a main body of the blower duct 635 in which the blower 657 is housed, reference numeral 655b denotes an air passage extending from the main body 655a, and reference numeral 655g denotes an air intake port provided on the side of the main body 655a. The branching portions 655c and 655d are provided to extend laterally on the downstream and upstream sides of the discharge direction D at the upper portion of the air passage 655b, respectively.

[0107] At this time, when the second air exhaust ports 65A, 65B are provided integrally with the terminal ends 655e, 655f of the branching portions 655c, 655d of the air blower duct 635, for example, the second air exhaust ports 65A, 65B themselves are formed at the terminal ends 655e, 655f. In this case, the air blower duct 635 is attached by fitting the terminal ends 655e, 655f of the air blower duct 635 including the second air exhaust ports 65A, 65B into an attachment opening (not shown) provided in the side wall 31L.

[0108] In addition, when the second air exhaust ports 65A, 65B are provided by connecting them to the terminal ends 655e, 655f of the branching parts 655c, 655d of the air blower duct 635, for example, the second air exhaust ports 65A, 65B are attached to an attachment opening (not shown) in the left side wall 31L, or the attachment opening itself is formed as the second air exhaust ports 65A, 65B. Next, the terminal ends 655e, 655f of the branching parts 655c, 655d of the air blower duct 635 are connected to the second air exhaust ports 65A, 65B.

[0109] Furthermore, similar to the limiting means 55 on the left side wall 25L in the upper supply section 12, the left side wall 63L is provided with a plurality of limiting means 67 on its contact surface 631, as shown in Figures 7 and 9, which contact the upper surface portions of the left and right side ends at the rear end side of the long sheet-like medium 9B loaded in the additional stacking section 73 to limit it to the required height.

[0110] In the first embodiment, two restriction means 65A, 65B are provided apart from each other on both sides of the left side wall 63L, downstream and upstream in the discharge direction D of the inner second air discharge port 65A. The limiting means 65A, 65B are configured, for example, using plate-like members that protrude by a required length from a required height position of the contact surface 631 on the left side wall 63L above the loading surface 74 of the additional loading section 73. The limiting means 65A, 65B are configured, for example, to be stored inside the side wall 63L and not to protrude from the contact surface 631 when the long sheet media 9B is to be loaded on the loading surface 74 of the additional loading section 73.

[0111] The limiting means 65A, 65B press down from above the left and right side ends of the long sheet medium 9B that is lifted and separated by the air discharged from the second air exhaust ports 50A, 65B, respectively, in the additional stacking section 73, so as to stop it at the required height on the stacking surface 74 of the additional stacking section 73.

[0112] On the other hand, the right side wall 63R is configured of a plate-like member along the discharge direction D. This right side wall 63R does not have the second air exhaust port 65 and the restricting means 67 on a contact surface 631 that contacts the downstream right end of the long sheet medium 9B (FIG. 9).

[0113] In addition, in the sheet media supply device 1, as shown in Figures 7 to 9, the lifting means 30 has wires 31 attached to both a dedicated loading section 71, which is the part corresponding to the pre-modified loading section 70a in the long loading section 70A, and an additional loading section 73 corresponding to the extended loading section 70b. In the lifting means 30 in embodiment 1, the wire 31 is attached, for example, to the dedicated loading section 71 at a total of four locations as mentioned above, while being attached to two locations, one on each of the left and right ends of the additional loading section 73 in the direction intersecting with the unloading direction D, i.e., one location each in the unloading direction D of each of those ends.

[0114] The additional loading section 73 has two hanging sections 68a, 68b protruding outward, one at each of the left and right ends, as shown in Figures 8, 9, 11(B), etc., in accordance with the total number of attachment points of the wire 31 of the lifting means 30. 8, the additional loading section 73 is attached by fitting its hanging sections 68a, 68b into two guide sections 69 provided on the front and back sidewall sections of the main body section 61 of the additional device 6 from the inside of the main body section 61. The guide sections 69 are formed as elongated guide holes or groove-shaped guide grooves that extend linearly in the vertical direction by a required length, similar to the guide holes 174 provided in the upper supply section 12 of the housing 10. As a result, the additional loading section 73 is provided so as to move up and down within the main body 61 of the adding device 6 with the hanging sections 68a, 68b being guided along the guide sections 69.

[0115] As shown in Figures 7 to 9, the lifting means 30 includes two wires 31e, 31f whose ends are respectively distributed and connected to hanging portions 68a, 68b provided at two locations on the additional loading section 73, and hanging pulleys 32e, 32f rotatably attached to the upper portion of the upper end of each guide section 69 in the main body section 61 and around which each wire 31e, 31f is hung. The hanging portions 68a, 68b and the hanging pulleys 32e, 32f are provided in the additional device 6 in advance.

[0116] 7, 9, etc., the wire 31e disposed on the left side is wound around the hook pulley 32e, the hook pulley 32b, the auxiliary pulley 33b, the auxiliary pulley 33a, and the hook pulley 32a in this order, and then wound around the left winding pulley 34L. The wire 31f disposed on the right side is wound around the hook pulley 32f, the hook pulley 32d, and the hook pulley 32c in this order, and then wound around the right winding pulley 34R, as shown in FIGS. 8, 9, etc. The wires 31 e and 31 f are provided as accessories of the additional device 6 .

[0117] When it is necessary to supply long sheet media 9B, the additional device 6 is attached to the side portion 10S of the housing 10. Incidentally, since the additional device 6 is an optional item, it is also possible to attach it at the time of shipment from the factory when an order is received before shipment from the factory.

[0118] When the additional device 6 is attached, the long-length loading section 70A and the like are also attached. In this case, the dedicated loading section 71 in the long loader 70A is attached by placing and fixing the dedicated loading section 71 on the loading surface 21 of the loading section 20A in the container 17A in the upper supply section 12 of the housing 10 via a raising section 78. The long loader 70A is assembled by connecting and integrating an additional loading section 73 to the upstream end of the dedicated loading section 71 in the discharge direction D with a fastener (not shown).

[0119] When mounting the additional device 6 employing the lifting means 30, the following assembly work is carried out for the additional portion of the lifting means 30. That is, the additional portion of the lifting means 30 at this time is assembled by attaching the wires 31e, 31f to the hanging portions 68a, 68b of the additional loading portion 73 and wrapping them around the hanging pulleys 32e, 32f, etc., and winding them around the take-up pulleys 34L, 34RL.

[0120] <Supplier with additional equipment> In the sheet media supply device 1 equipped with the additional device 6, as shown in FIG. 14, long sheet media 9B can be loaded on a long stacking section 70A consisting of a dedicated stacking section 71 and an additional stacking section 73. In embodiment 1, the long stacking section 70A is configured as a stacking section capable of stacking, for example, a long sheet-like medium 9B whose length along the discharge direction D (length at the time of discharge) is longer than 488 mm and less than 864 mm.

[0121] In addition, in this case, when loading long sheet media 9B into the long stacking section 70A in the sheet media supply device 1, the loading operation is performed after opening the opening / closing member 15 in the upper portion 11 of the housing 10 and the opening / closing section 62 in the additional device 6, as shown in Figure 4.

[0122] When the loading operation of this long sheet-like medium 9B is performed, the connection between the rotating shaft 35 and the drive unit 37 in the lifting means 30 is temporarily released, and the long loading section 70A moves downward under its own weight to the lowest position of the loading section 20A supporting the raised section 78 of the dedicated loading section 71. After the long sheet media 9B has been loaded, the opening / closing member 15 and the opening / closing section 62 are closed (FIG. 3). At this time, the rotation shaft 35 and the drive device 37 of the lifting means 30 are connected to each other.

[0123] <Long sheet media supply operation> In the supply device 1 to which the add-on device 6 has been retrofitted, the long sheet medium 9B is supplied as follows.

[0124] In this supplying device 1, as shown in FIG. 14(A), when long sheet media 9B are loaded on long stacking section 70A and a supply operation is started, long stacking section 70A is moved upward.

[0125] At this time, the long-length stacking section 70A is lifted up within the storage body 17A of the housing 10 and within the main body section 61 of the additional device 6 by simultaneously winding up the wires 31a, 31b, 31c, 31d, 31e, and 31f of the lifting means 30A, and is moved upward until the upper portion of the long-length sheet-like media 9B stacked on the long-length stacking section 70A reaches the required height (until detection information from the position sensor 39 is obtained). In addition, as shown in FIG. 14(B), the long-length stacking section 70A is moved upward by the required amount each time the quantity of long-length sheet media 9B stacked on the long-length stacking section 70A decreases due to supply.

[0126] At this time, in the supply device 1, the upward movement of the long load section 70A is performed by lifting the dedicated load section 71 by winding up the wires 31a, 31b, 31c, and 31d of the lifting means 30, and in addition, lifting the additional load section 73 by winding up the wires 31e and 31f of the lifting means 30. In other words, the long load section 70A moves upward as both the dedicated load section 71 and the additional load section 73 are lifted by the wires 31 of the lifting means 30. For this reason, in this supply device 1, the long-length loading section 70A can be raised and lowered well, particularly moved upward, while maintaining its overall balance, compared to a case in which the lifting means 30 does not have the wires 31 attached to both the dedicated loading section 71, which is the part of the long-length loading section 70A that corresponds to the loading section 20A before the change, and the additional loading section 73, which is the extended part.

[0127] Next, in the long-length stacking section 70A, as shown in Figures 9 and 15, air is discharged from the first air exhaust ports 50A, 50B, 50C, 50D on the left and right side walls 25L, 25R in the housing 10 and the second air exhaust ports 65A, 65B on the left side wall 63L in the additional device 6, and the uppermost long-length sheet media 9B stacked in the long-length stacking section 70A are floated and separated by the inflow of air.

[0128] At this time, the uppermost long sheet medium 9B floated in the long stacking section 70A has its height position restricted as its left and right ends are pressed down from above by contact with a plurality of limiting means 55 on the left and right side walls 25L, 25R and a plurality of limiting means 67 on the left side wall 63L within the additional device 6. At this time, in the container 17A in the housing 10, the leading end portion of the levitated topmost sheet medium 9B in the discharge direction D is subjected to the suction force of the suction portion 41 of the discharge means 40A and is thereby brought into an adsorbed state.

[0129] Next, in the supply device 1 to which the additional device 6 is attached, the suction section 41 of the conveying means 40A moves to carry the downstream tip of the adsorbed long sheet medium 9B in the conveying direction D to a transfer position where it can be handed over to the conveying section 45, and the conveying section 45 of the conveying means 40A delivers the delivered long sheet medium 9B from the long stacking section 70A and the container 17A by its conveying force, and sends it out to the first conveying path Rh1.

[0130] As a result, the long sheet medium 9B is discharged from the supply device 1 to which the additional device 6 is attached via the first discharge path Rh1 through the discharge outlet 18, and then supplied to the image forming device 120A (first introduction conveying path Rt1), which is an example of a supply destination.

[0131] In this supply device 1, in addition to a first air exhaust port 50 being provided in the left and right side walls 25L, 25R of the dedicated loading section 71 in the long loading section 70A, a second air exhaust port 65 is provided in the left side wall 63R of the additional loading section 73 in the long loading section 70A. Therefore, according to the supply device 1, compared to when the left side wall 63R of the additional stacking section 73 does not have the second air exhaust port 65, the long sheet media 9B stacked in the long stacking section 70A are separated by the air discharged and blown from the second air exhaust port 65 flowing in up to the end of the long sheet media 9B upstream in the discharge direction D. This releases the tight contact state between the top stacked long sheet media 9B.

[0132] In this case, the right side wall 63R of the additional stacking section 73 is not provided with a second air exhaust port 65. However, because the right side wall 63R is configured as a plate-like member having a contact surface 631, the air exhausted from the second air exhaust port 65 in the left side wall 63R is blocked by the contact surface 631 without directly blowing through the right end of the long sheet medium 9B upstream in the discharge direction D. This allows the air to be effectively used to separate the long sheet medium 9B.

[0133] Therefore, in image forming system 100A equipped with this supply device 1, even when long sheet media 9B are loaded on long stacking section 70A of supply device 1 for use, the loaded long sheet media 9B are separated up to the end on the upstream side in the discharge direction D, preventing discharge jams and double running, and are supplied to image forming device 120A, which is an example of processing device 120. As a result, in image forming system 100A, images are formed satisfactorily on long sheet media 9B that is normally supplied.

[0134] In addition, this supply device 1 is provided with second air exhaust ports 65, which are an inner second air exhaust port 65A arranged inside the housing 10 and an outer second air exhaust port 65B arranged outside the side portion 10S of the housing 10. Therefore, according to the supply device 1, air reliably flows in and is separated up to the upstream end in the discharge direction D of the long sheet-like medium 9B loaded in the long stacking section 70A, compared to a case in which the second air exhaust port 65A and the outer second air exhaust port 65B are not provided.

[0135] In addition, in this supply device 1, the second air discharge port 65 is configured as an opening whose lower end 65u is located lower than the lower end 50u of the first air discharge port . Therefore, according to the supply device 1, even if the additional stacking section 73, which is an example of an extended stacking portion 70b in the long stacking section 70A, bends downward due to the weight of the long sheet-like medium 9B being stacked thereon, as illustrated by the dotted line in Figure 15, the long sheet-like medium 9B can be separated well up to the end upstream in the discharge direction D. In other words, in the supply device 1, it is possible to reliably blow air from the second air exhaust port 65 to the left end upstream in the discharge direction D of the long sheet medium 9B loaded on the additional stacking section 73 when it is bent downward, and air flows up to the end upstream in the discharge direction D of the long sheet medium 9B and is separated, compared to a case in which the lower end 65u of the second air exhaust port 65 is not configured as an opening located lower than the lower end 50u of the first air exhaust port 50.

[0136] Moreover, in this supply device 1, the second air discharge port 65 is configured as a vertically elongated opening 652 (FIG. 12) that is long in the up-down direction. Therefore, according to the supply device 1, compared to a case in which the second air exhaust port 65 is not configured as a vertically long opening 652, even if the additional stacking section 73 in the long stacking section 70A bends downward as described above, air will flow into the upstream end of the long sheet medium 9B stacked on the bent additional stacking section 73 in the discharge direction D, making it easier for the medium to be separated.

[0137] In contrast, for example, if the lower end 65u of the second air exhaust port 65 is at the same height as the lower end 50u of the first air exhaust port 50 (the position shown by the dashed line in Figure 15), the following problem will occur if the additional stacking section 73 bends downward due to the weight of the long sheet-like medium 9B being stacked on it, as illustrated by the dotted line in Figure 15. In other words, when the additional stacking section 73 bends downward, it may not be possible to blow air from the second air exhaust port 65 to the left end of the upper portion 9Bt of the long sheet medium 9B loaded on the stacking surface 74 of the additional stacking section 73. In this case, if the ends of the upper portions 9Bt of the long sheet media 9B downstream in the conveying direction D remain in contact with each other, for example, the long sheet media 9B may become jammed during conveying, or multiple long sheet media 9B may be conveyed in an overlapping state. Note that the downward bending of the additional stacking portion 73 is more likely to occur if the lifting means 30 is configured not to attach the wires 31 to the additional stacking portion 73.

[0138] Embodiment 2 FIG. 16 shows a sheet medium supplying device 1B according to the second embodiment. This sheet media supplying device 1B has a configuration similar to that of the supplying device 1A of embodiment 1, except that it is modified in that it uses a long-length stacking section 70B that is arranged in a state where the extended stacking portion 70b is also housed inside the housing 10 as the long-length stacking section 70, without attaching an additional device 6.

[0139] 16 and 17, the long load section 70A in the supply device 1B is composed of a dedicated load section 71 arranged inside the housing 10, and an additional load section 75 additionally provided so as to extend the dedicated load section 71 to the upstream end in the discharge direction D. In this case, the dedicated load section 71 corresponds to the load section 70a before the change, and the additional load section 75 corresponds to the extended load section 70b.

[0140] The dedicated loading unit 71 is a loading unit having the same configuration as the dedicated loading unit 71 in the embodiment 1. That is, the dedicated loading unit 71 is configured as a loading unit provided on the upper part of the raising unit 78 placed on the loading unit 20A in the container 17A in the upper supply unit 12. Further, the dedicated loading section 71 has a loading surface 72 having the same configuration as the dedicated loading section 71 in the first embodiment.

[0141] The additional stacking section 75 is a stacking section disposed in a gap space between the upstream end of the dedicated stacking section 71 and the side section 10S of the housing 10, and has a stacking surface 76 for stacking the upstream end of the long sheet media 9B in the discharge direction D. The additional stacking section 75 is connected to and integrated with the upstream end of the dedicated stacking section 71 by a fastener or the like (not shown). The additional loading section 75 is provided with hanging sections 22e, 22f at one each of the left and right ends.

[0142] Furthermore, in this supply device 1B, as shown in FIG. 17(B), similarly to the lifting means 30 in embodiment 1, the lifting means 30 includes hanging parts 22a, 22b, 22c, and 22d provided at four positions on the dedicated loading section 71 in the long loading section 70B, and wires 31a, 31b, 31c, and 31d attached to each of the hanging parts 22a, 22b, 22c, and 22d, respectively.

[0143] In the second embodiment, the wire 31 of the lifting means 30 is not attached to the additional loading section 75 . However, even in the second embodiment, from the viewpoint of lifting and lowering the long loader 70B while maintaining its overall balance, the wire 31 of the lifting means 30 may be attached to the additional loader 75. In this case, as illustrated by the two-dot chain line in Fig. 17(B), the wires 32g and 32h may be attached to the hanging parts 68c and 68d provided at two positions, one each at the left and right ends of the additional loader 75. However, in this case, it is possible to omit providing the guide parts (68a, 68b) in the first embodiment for guiding the vertical movement of the hanging parts 22e and 22f on the additional loader 75.

[0144] 16, the supply device 1B has left and right side walls 69L, 69R for the additional stacking section 75. The left and right side walls 69L, 69R can be configured in substantially the same manner as the left and right side walls (63L, 63R) in the first embodiment.

[0145] 16, the left side wall 69L is provided at its contact surface 691 with a second air outlet 65C for discharging air to be blown against the left and right side edges at the rear end side of the long sheet media 9B loaded on the additional stacker 75. Incidentally, the right side wall 69R is made of a plate-like member almost similarly to the side wall 63R in the first embodiment, and does not have a second air outlet 65C. Second air exhaust port 65C is an air exhaust port present inside housing 10. Second air exhaust port 65C has substantially the same configuration as second air exhaust ports 65A and 65B in the first embodiment.

[0146] Even in this supply device 1B, when the long stacking section 70B is changed to one capable of stacking long sheet media 9B, the long sheet media 9B stacked in the long stacking section 70B is separated up to the upstream end in the discharge direction D by the inflow of air, compared to when the additional stacking section 75 of the long stacking section 70B does not have a second air exhaust outlet 65C.

[0147] Variations. In the supplying devices 1, 1B according to the first and second embodiments, a replacement stacking section 70C as exemplified in FIG. 18 may be applied in place of the long stacking sections 70A, 70B.

[0148] The replacement loading section 70C is configured as a long loading section that is attached in place of a dedicated loading section (loading section 20A) disposed inside the housing 10. As shown in Fig. 18(B), the replacement loading section 70C also has the loading section 20A, which is the loading section 70a before the change, and a loading section 70b that is longer than the loading section before the change. The replacement loading section 70E is configured such that the loading section corresponding to the loading section 20A has a raised section 78, but may have a configuration without the raised section 78. Moreover, the replacement loading section 70C has a continuous loading surface 77. Strictly speaking, when the left and right side walls 25L, 25R, 63L, and 63R are provided, this loading surface 77 adopts a surface configuration having the slide surfaces 72B and 74B.

[0149] When this replacement loading section 70C is applied, the lifting means 30 attaches wires 31a, 31c to hanging parts 22a, 22c provided at two positions of loading section 70a corresponding to loading section 20A before the change, while attaching wires 31e, 31f to hanging parts 68e, 68f provided at two positions of loading section 70b extended from before the change. The lifting means 30 may also attach the descending wire 31 to the above-mentioned four positions of loading section 70a before the change of the replacement loading section 70C and to the above-mentioned two positions of loading section 70b extended from before the change.

[0150] The supply device 1 employing this replacement stacking section 70C also has a second air exhaust port 65 for exhausting air to be blown onto at least one of the left and right side ends of the long sheet media 9B loaded on the extended loading portion 70b of the replacement stacking section 70C. As a result, in the supply device 1 employing the replacement stacking section 70C, the long sheet-like medium 9B loaded on the extended stacking section 70b of the replacement stacking section 70C is separated up to the upstream end in the discharge direction D by the inflow of air, compared to a case in which the second air exhaust outlet 65 is not provided in the extended stacking section 70b of the replacement stacking section 70C.

[0151] In addition, in the first and second embodiments, a configuration example is shown in which the long-length loading section 70 has the loading portion 70a before the modification configured as a dedicated loading section 71 via a raised portion 78 on top of the loading section 20A that loads normal sheet-like media 9A. However, it is also possible to adopt a configuration in which the raised portion 78 is not included in the loading portion 70a before the modification, and for example, the loading section 20A is used as the dedicated loading section 71 as is. This configuration is effective, for example, for a feeder type that can carry a relatively small amount of long sheet media 9B, since the increase in weight load due to the loading of long sheet media 9B is not insignificant.

[0152] In the first and second embodiments, a side wall having a configuration in which the second air exhaust port 65 is provided may be used as the right side wall 63R, 69R. In the lifting means 30, a linear material such as a belt can be used instead of the wire 31. Furthermore, when the container 17 is not provided, the lifting means 30 may be disposed at a required portion of the housing 10.

[0153] Furthermore, in the first embodiment and the like, the image forming system 100A in which the processing device 120 is the image forming device 120A has been exemplified as the sheet-like medium-using device 100, but the present invention is not limited to this. The sheet-like medium-using device 100 may be any device that has a processing device 120 that performs the required processing of normal sheet-like medium 9A or long sheet-like medium 9B supplied from the supply device 1.

[0154] Examples of the device 100 used include a printing system in which the processing device 120 is a printing device that applies ink to ordinary sheet-like media 9A, etc., a coating system in which the processing device 120 is a coating device that applies liquid paint to ordinary sheet-like media 9A, etc., and a drying system in which the processing device 120 is a drying device that dries ordinary sheet-like media 9A, etc. When the processing device 120 has a sheet medium supply device disposed therein, the supply device may be configured to include the supply device 1 on which the long stacking unit 70 is disposed.

[0155] In addition, as shown in Figure 19, the second air exhaust port 65 may be provided as an upstream air exhaust port 65E in a sheet media supply device 1C having a loading section 20C arranged inside the housing 10 and loading normal sheet media 9A, without being changed to a long stacking section 70A, 70B, 70C, for exhausting air to be blown onto at least one of the left and right side ends of the normal sheet media 9A loaded in a portion near the end portion upstream of the loading section 20C in the discharge direction D.

[0156] In this case, in the supply device 1C, the lifting means 30 is attached to four locations, two locations each in the conveying direction D at the left and right ends of the stacker 20C in the direction intersecting the conveying direction D, with four wires 31a, 32b (31c, 31d) distributed to each location (see FIG. 9). Also, in the supply device 1C, downstream air exhaust ports 55A, 55B are provided at positions downstream in the conveying direction D of the upstream air exhaust port 65D, which exhaust air to be blown against the left and right ends of the normal sheet media 9A loaded in the portion of the stacker 20C downstream in the conveying direction D. 19, the upstream air exhaust port 65D is arranged at a position upstream of the two wires 31b (, 31d) attached to the upstream portion of the loading unit 20C in the discharge direction D, among the four wires 31, and further, the lower end 65u of the upstream air exhaust port 65D is preferably configured as an opening located below the lower ends 55u of the downstream air exhaust ports 55A, 55B. The upstream air exhaust port 65D is provided in the contact surfaces 251 of the left and right side walls 21L, 25R, respectively, in the same manner as the downstream air exhaust ports 55A, 55B.

[0157] In this supply device 1C, even if the portion 20Ce near the end of the stacking section 20C on the downstream side in the discharge direction D bends downward due to the weight of the normal sheet-like medium 9A being stacked thereon, the normal sheet-like medium 9A stacked in the portion 20Ce near the end of the stacking section 20C when it bends downward is separated well up to the end upstream in the discharge direction D. That is, with this supply device 1C, it is possible to reliably blow air from the downstream air exhaust port 65D to the left end upstream in the conveying direction D of the normal sheet media 9A loaded on the end-proximal portion 20Ce of the stacker 20C when the stacker 20C is bent downward. Therefore, with the supply device 1C, air flows in and is separated up to the end upstream in the conveying direction D of the normal sheet media 9A, as compared to a case in which the downstream air exhaust port 65D is not provided and the lower end 65u of the downstream air exhaust port 65D is not configured as an opening located lower than the lower ends 55u of the upstream air exhaust ports 55A, 55B.

[0158] This supply device 1C can be understood as a supply device of the invention specified as follows, for example. That is, the printer comprises a housing (10), a loading section (20C) arranged inside the housing (10) so as to be vertically movable and on which sheet-like media (9A) are loaded, a lifting means (30) for suspending the loading section (20C) by a plurality of wires and lifting it up and down, a discharge means (40) for discharging the sheet-like media (9A) loaded on the loading section (20C) from above, and an air exhaust port (55) for exhausting air to be blown against the left and right side ends of the feed width of the sheet-like media (9A) loaded on the loading section (20C), The lifting means (30) is provided with four linear members (31) which are distributed and attached to four locations, i.e., two locations each on the left and right ends of the loading section (20C) in a direction intersecting with the discharge direction D, and the four locations are located in the discharge direction, the air exhaust port (55) includes an upstream air exhaust port (65D) arranged at a position upstream of two linear materials (31b, 31d) of the four linear materials (31) attached to an upstream portion of the loading section (20C) in the discharge direction D, and downstream air exhaust ports (55A, 55B) arranged at a position downstream of the upstream air exhaust port (65D) in the discharge direction D, The upstream air exhaust port (65D) is an opening whose lower end (65u) is located lower than the lower ends (55u) of the downstream air exhaust ports (55A, 55B) in this sheet-like medium supply device (1C). [Explanation of symbols]

[0159] 1, 1B... Sheet medium supply device 9...Sheet media 9B...Long sheet media 10…Housing 10S…Side 20...Loading section (an example of the loading section before the change) 40...Export means 55…First air outlet 55u…Lower end of first air outlet 65…Second air outlet 65u…Bottom end of second air outlet 65A…Second inner air outlet 65B…Second air outlet on the outside 70…Long load section 70c...End portion corresponding to the upstream side in the discharge direction 70A, 70B...Long load section (an example of a long load section consisting of a dedicated load section and an additional load section) 70E…Long load section (an example of a replacement load section) 71… Dedicated loading area 73…Additional Cargo Section 100...Device for using sheet-like media 100A...Image forming system (an example of a device using sheet media) 120... Processing device 120A: Image forming device (an example of a processing device) 655…Ventilation duct 655c, 655d...Branch D…Export direction

Claims

1. A housing and a loading section disposed within the housing so as to be movable up and down, on which sheet-like media is loaded; A lifting means for lifting the loading section up and down; a conveying means for conveying the sheet-like medium stacked on the stacking section from above; a first air exhaust port that exhausts air to be blown against left and right side ends of a feed width of the sheet-like medium loaded on the loading section; Equipped with the stacking section is changeable to a long stacking section in which an end portion corresponding to the upstream side in the discharge direction of the sheet-like medium is extended toward the upstream side from before the change, and which can stack a long sheet-like medium having a length longer than 488 mm when discharged; the long-length loading section is composed of a dedicated loading section disposed inside the housing, and an additional loading section provided in addition to an end portion of the dedicated loading section on the upstream side in the discharge direction, with at least an end portion of the extended portion on the upstream side in the discharge direction protruding outward from a side portion of the housing, and left and right side walls that contact the left and right side ends of the long sheet medium loaded in the additional loading section of the long loading section, respectively, to guide the movement of the left and right side ends in the discharge direction, A sheet media supply device in which a second air exhaust port is provided in at least one of the left and right side walls, at least in a portion that is on the outer side of the side of the housing, for exhausting air to be blown onto at least one of the left and right side ends of the long sheet media.

2. A housing and a loading section disposed within the housing so as to be movable up and down, on which sheet-like media is loaded; A lifting means for lifting the loading section up and down; a conveying means for conveying the sheet-like medium stacked on the stacking section from above; a first air exhaust port that exhausts air to be blown against left and right side ends of a feed width of the sheet-like medium loaded on the loading section; Equipped with the stacking section is changeable to a long stacking section in which an end portion corresponding to the upstream side in the discharge direction of the sheet-like medium is extended toward the upstream side from before the change, and which can stack a long sheet-like medium having a length longer than 488 mm when discharged; the long load section is configured as a replacement load section that is attached in place of a dedicated load section disposed inside the housing, and that has an extended portion having at least an upstream end in the discharge direction that protrudes outward from a side portion of the housing, a left and right side wall that contacts the left and right side ends of the long sheet medium loaded on the extended portion of the replacement stacking section, respectively, to guide the movement of the left and right side ends in the discharge direction; A sheet media supply device in which a second air exhaust port is provided in at least one of the left and right side walls, at least in a portion that is on the outer side of the side of the housing, for exhausting air to be blown onto at least one of the left and right side ends of the long sheet media.

3. A sheet media supplying device as described in claim 1 or 2, wherein the second air exhaust port has an inner second air exhaust port arranged inside the housing and an outer second air exhaust port arranged outside the side of the housing.

4. 4. The sheet medium supply device according to claim 1, wherein the second air exhaust port is an opening whose lower end is located lower than the lower end of the first air exhaust port.

5. 5. The sheet medium supplying device according to claim 1, wherein the second air exhaust port is configured as a vertically elongated opening.

6. A sheet media supply device as described in claim 3, wherein the inner second air exhaust port and the outer second air exhaust port are integrally formed at the end portions of each branch portion into which the air supply duct is branched into two or are connected to the end portions.

7. 7. The sheet medium supplying device according to claim 1, wherein the other of the left and right side walls is formed of a plate-like member extending along the conveying direction.

8. a sheet medium supply device that conveys and supplies the loaded sheet medium; a processing device that processes the sheet medium supplied from the supply device; Equipped with The sheet medium supply device according to claim 1 , wherein the sheet medium supply device is a sheet medium using device including the sheet medium supply device according to claim 1 .

Citation Information

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