Sheet processor and image forming system
Patent Information
- Application Number
- JP2023140510
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-08-30
- Publication Date
- 2026-09-03
AI Technical Summary
【0007】 本発明によれば、角背処理を行う構成を備えたシート処理装置において、安全規格を容易に満たすことができる。
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Abstract
Description
[Technical field]
[0001] The present invention relates to a sheet processing apparatus that performs square spine processing on a sheet, and an image forming system that includes the sheet processing apparatus. [Background technology]
[0002] A sheet processing device has been proposed that performs a process of forming a corner on the spine of a folded sheet bundle (hereinafter, referred to as "cornered spine process") by clamping the folded sheet bundle with a pair of clamps and pressing the spine of the sheet bundle protruding beyond the clamps with a roller (Patent Document 1). Also, a sheet processing device has been proposed that performs a saddle stitching process that performs a stapling process at the center of the sheet bundle in the conveying direction, and a center folding process that folds the sheet bundle at the position where the saddle stitching process has been performed (Patent Document 2). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2001-260564 A [Patent Document 2] JP 2018-150096 A Summary of the Invention [Problem to be solved by the invention]
[0004] Here, if the sheet processing device described in Patent Document 2 is to be provided with a configuration for performing the square spine processing described in Patent Document 1, it is required to satisfy the safety standard IEC62368-1. This safety standard requires that a "child-accessible probe" be used to clear an access check to dangerous areas. On the other hand, the device for performing square spine processing described in Patent Document 1 discharges a folded sheet bundle that has been subjected to square spine processing, so a sufficiently large opening is required as an outlet for discharging the sheet bundle. In square spine processing, the sheet bundle is clamped by a pair of clamp parts, but if the opening of the sheet bundle outlet is large, there is a risk that the pair of clamp parts can be accessed by the "child-accessible probe."
[0005] An object of the present invention is to provide a sheet processing apparatus having a configuration for performing square spine processing, which can easily satisfy safety standards. [Means for solving the problem]
[0006] According to one aspect of the present invention, there is provided a sheet conveying device including a first conveying path that receives a sheet discharged from an image forming apparatus and conveys the sheet, a first stacking section that stacks the sheets conveyed to the first conveying path, a first binding processing section that performs a binding process on an end of a sheet stack consisting of a plurality of sheets that is stacked in the first stacking section, a stacking section that is movable up and down with respect to the first stacking section and that stacks the sheet stack that has been bound by the first binding processing section, a second conveying path that branches off from the first conveying path and conveys a sheet in a direction vertically downward with respect to the first conveying path, and a sheet conveying section that conveys the sheet conveyed to the second conveying path. a second stacking section which stacks sheets; a second binding processing section which performs saddle stitching on a sheet bundle consisting of a plurality of sheets stacked in the second stacking section; a pair of folding rollers which sandwich and transport the sheet bundle so that the spine of the sheet bundle is located downstream of an end portion on the fore-edge side, thereby folding the sheet bundle in the middle; and a pressing section which presses the sheet bundle which has been saddle stitched by the second binding processing section toward a nip portion of the pair of folding rollers. a pair of clamping sections that clamp and release the clamping of the sheet bundle by moving relatively along the thickness direction of the sheet bundle conveyed by the conveying roller pair, and a pressing roller that presses the spine of the sheet bundle clamped by the pair of clamping sections by moving along the width direction of the sheet bundle in a state in which the spine of the sheet bundle conveyed by the conveying roller pair protrudes downstream in the conveying direction of the conveying roller pair from the pair of clamping sections; a sheet bundle discharge section to which a sheet bundle is discharged; a discharge guide section that is disposed downstream of the square spine processing section in a conveying direction of the sheet bundle by the conveying roller pair and that guides the sheet bundle that has been subjected to the square spine processing by the square spine processing section toward the sheet bundle discharge section; and a cover member that is disposed downstream of the discharge guide section in the conveying direction of the sheet bundle by the conveying roller pair and that has a size in the width direction of the sheet bundle that is larger than a size in the width direction of the sheet bundle at a position that at least partially overlaps with the discharge guide section when viewed from the discharge direction of the sheet bundle,a cover member provided at a distance from the sheet stack discharge portion in the vertical direction. Effect of the Invention
[0007] According to the present invention, in a sheet processing apparatus having a configuration for performing square spine processing, safety standards can be easily satisfied. [Brief description of the drawings]
[0008] [Figure 1] 1 is a cross-sectional view showing a schematic configuration of an image forming system according to an embodiment. [Diagram 2] FIG. 1 is a cross-sectional view showing a schematic configuration of a sheet processing apparatus according to an embodiment. [Diagram 3] FIG. 2 is a control block diagram of the image forming system according to the embodiment. [Figure 4] FIG. 4 is an enlarged cross-sectional view of a saddle portion according to the embodiment. [Diagram 5] FIG. [Figure 6] FIG. 2A is a perspective view and FIG. 2B is a cross-sectional view of a square spine processing unit according to an embodiment. [Figure 7] 1A is a perspective view of the square spine processing portion according to the embodiment, and FIG. 1B is a perspective view of the square spine processing portion according to the embodiment, as seen from the front side. [Figure 8] FIG. 4 is a perspective view showing a part of the square spine processing unit and the drive unit according to the embodiment. [Figure 9] FIG. 4 is a perspective view of the square spine processing unit and the clamp unit according to the embodiment. [Figure 10] FIG. 4 is a cross-sectional view of a square spine processing unit and a clamp unit according to the embodiment. [Figure 11] Schematic diagrams showing, during the operation of square spine processing in an embodiment, (a) the state in which the sheet stack is stopped from being transported by the clamp section, (b) the state in which the sheet stack is clamped, (c) the state in which square spine processing is being performed on the sheet stack, and (d) the state in which the clamp on the sheet stack is released. [Figure 12] 2 is a perspective view showing the periphery of a sheet stack discharge unit of the sheet processing apparatus in the embodiment, with a discharge cover omitted. FIG. [Figure 13] FIG. 2 is a perspective view of the vicinity of a sheet stack discharge unit of the sheet processing apparatus according to the embodiment. [Figure 14] 4 is a plan view of the vicinity of a discharge portion for a sheet stack of the sheet processing apparatus according to the embodiment, as viewed from the front side in the discharge direction of the sheet stack. FIG. [Figure 15] 1A is a perspective view of a movable wall and a discharge cover in an embodiment, as viewed from the rear side in the discharge direction of a sheet stack; FIG. [Figure 16] FIG. 2 is a schematic cross-sectional view of the sheet processing apparatus according to the embodiment, showing a state in which the discharge cover is open. [Figure 17] 1 is a schematic cross-sectional view of the sheet processing apparatus according to the embodiment, showing a state in which a first tray is lowered below a predetermined position. [Figure 18] 2 is a perspective view showing the periphery of a sheet stack discharge unit of the sheet processing apparatus in the embodiment with a discharge cover closed. FIG. [Figure 19] 2 is a perspective view showing the periphery of a sheet stack discharge unit of the sheet processing apparatus in the embodiment with a discharge cover open. FIG. [Figure 20] 11 is a cross-sectional view of the vicinity of the discharge of a sheet stack, showing a state in which a child-accessible probe is inserted from a saddle discharge port in the sheet processing apparatus according to the embodiment. [Figure 21] 13 is a perspective view of the vicinity of the discharge of a sheet stack, showing another example of a guide configuration for opening and closing the discharge cover according to the embodiment. FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0009] The embodiment will be described with reference to Figures 1 to 21. First, the schematic configuration of an image forming system according to the present embodiment will be described with reference to Figure 1.
[0010] [Image formation system] In this embodiment, a copying machine is used as the image forming apparatus, and a sheet processing device is connected to the sheet discharge port of the copying machine, and a saddle unit for saddle stitching and center folding is further provided inside the sheet processing device. The image forming system 1000 includes an image forming apparatus A and a sheet processing device B. The downstream sheet processing device B receives the sheet S on which an image is formed by the image forming apparatus A, and performs saddle stitching, center folding, back square processing, etc. as necessary, and discharges the sheet to the downstream discharge unit. The image forming apparatus A includes various structures such as copying machines, printers, printing machines, facsimiles, and multifunction machines having multiple functions. The image forming apparatus A and the sheet processing device B will be described in detail below. In the following description, the side of the image forming apparatus A and the sheet processing device B where an operator such as a user operates the apparatus (for example, the side where an operation panel, operation buttons, etc. are located) will be referred to as the front side (the front side of the paper in FIGS. 1 and 2, etc.), and the opposite side to the front side will be referred to as the rear side (the rear side of the paper in FIGS. 1 and 2, etc.).
[0011] [Image forming equipment] 1, the image forming apparatus A includes an image forming unit A1, an image reading unit A2, and a document feeding unit A3. The image forming unit A1 includes a feeding section 2, an image forming section 3, a discharge section 4, and a data processing section 5 within a housing 1.
[0012] The feeding section 2 includes a plurality of cassettes 2a, 2b, and 2c, and each of the cassettes 2a, 2b, and 2c can store sheets S of different standard sizes selected in advance in a plurality of stages. The sheets S are, for example, paper or plastic sheets. Each of the cassettes 2a, 2b, and 2c is provided with a separation mechanism for separating the sheets S inside one by one, and a feeding mechanism for feeding the sheets S. The sheets S stored in the feeding section 2 configured as described above are fed out in the form of sheets S of a size designated by the control unit 310 (FIG. 3) of the image forming apparatus A. The sheets S supplied from the plurality of cassettes 2a, 2b, and 2c are further conveyed downstream by the conveying rollers 7. The leading edge of the sheet conveyed by the conveying rollers 7 is aligned by the pair of registration rollers 8, and skew is corrected. Then, the sheet S whose leading edge has been aligned by the pair of registration rollers 8 is fed to the downstream image forming section 3 at a predetermined timing.
[0013] A large-capacity cassette 2d and a manual feed tray 2e are connected to the image forming apparatus A. The large-capacity cassette 2d is an optional unit that stores sheets of a size that are consumed in large quantities. The manual feed tray 2e is configured to be able to feed special sheets such as thick paper sheets, coated sheets, and film sheets that are difficult to separate and feed.
[0014] The image forming unit 3 may be configured to form an image on the sheet S fed from the feeding unit 2, and various image forming mechanisms may be employed. In the illustrated embodiment, an electrostatic image forming mechanism is shown as the image forming unit 3. However, the image forming unit 3 is not limited to the illustrated electrostatic image forming mechanism, and it is also possible to employ an inkjet image forming mechanism, an offset image forming mechanism, or the like.
[0015] The image forming section 3 shown in FIG. 1 includes a photoconductor 9 formed in a drum or belt shape, an exposure device 10 for exposing the photoconductor 9, a development device 11 for developing the photoconductor 9 with toner, a charging device (not shown) for charging the photoconductor 9, and a cleaner (not shown) for cleaning the photoconductor 9. FIG. 1 shows a monochrome printing mechanism as an example. The photoconductor 9 is exposed by the exposure device 10 to form an electrostatic latent image, and the electrostatic latent image is developed by the development device 11 to form a toner image on the photoconductor 9. The toner image formed on the photoconductor 9 is transferred by the transfer device 12 to a sheet S conveyed from the registration roller pair 8. The sheet S with the transferred toner image is fixed by the fixing device 13. The image forming device A is also provided with a reversing conveying path, and the sheet S with the toner image fixed by the fixing device 13 is reversed and then sent to the registration roller pair 8 again, where an image is formed on the back side of the sheet S. Discharge rollers 15 are provided downstream of the fixing device 13 and downstream of the branch to the reverse transport path, and the discharge rollers 15 transport the sheet S from a discharge port 16 of the image forming apparatus A to a sheet processing apparatus B described later.
[0016] An image reading unit A2 that optically reads an original image is provided above the image forming unit A1 configured in this manner, and an original feeding unit A3 is mounted further above the image reading unit A2.
[0017] The image reading unit A2 includes a first platen glass 17, a second platen glass 21, a reading carriage 18 having a light source, a photoelectric conversion element 19, and a reduction optical system 20 formed by combining mirrors and lenses. The reading carriage 18 is scanned along the first platen glass 17 to irradiate light from the light source onto an image of an original placed on the first platen glass 17, and the light reflected from the image of the original is guided by the reduction optical system 20 to the photoelectric conversion element 19 to read the image. The photoelectric conversion element 19 converts image data into an electrical signal and transfers it to the image forming section 3, so that the image read by the image reading unit A2 can be formed on a sheet by the image forming unit A1.
[0018] The document feeding unit A3 includes a feed tray 22 and a discharge tray 24, and transports documents placed on the feed tray 22 one by one, passes them over the second platen glass 21, and discharges them onto the discharge tray 24. When reading a document fed from the document feeding unit A3 and passing over the second platen glass 21, the reading carriage 18 is stopped below the second platen glass 21 in advance, and image data is read from the image passing over the second platen glass 21.
[0019] [Overall configuration of sheet processing device] Next, the overall configuration of sheet processing device B that performs processing such as stapling and folding on sheets conveyed from image forming device A will be described with reference to Fig. 2. Fig. 2 shows the detailed configuration of sheet processing device B. Sheet processing device B processes sheets received from receiving section 26, which is the entrance of straight path 28 connected to discharge port 16 of image forming device A, and can then load the sheets onto a first tray (first stacking tray) 49, a saddle discharge unit 131, and a second tray (second stacking tray) 71, which will be described later.
[0020] In the illustrated device, a sheet sent to the straight path 28 as the transport path and the first transport path is discharged to the first tray 49 after being processed by a processing section B1 described later, or a sheet transported on the straight path 28 is discharged to the second tray 71, or is discharged to a saddle discharge unit 131 after being processed by a saddle section B2 described later. Each device has a control section, a communication section, etc., as shown in the block diagram of the control configuration of the entire device in Fig. 3, and controls the device by using these sections.
[0021] The processing section B1 as an end binding processing section is disposed below the path exit (transfer section 35) of the straight path 28, collates and accumulates a plurality of sheets sequentially delivered from the straight path 28 via the transfer section 35 to form a sheet bundle, and can perform a binding process, which is an example of a predetermined process, on the end of this sheet bundle. The bound sheet bundle is stacked on a first tray 49 as a stacking section. The rear end (upstream end) of the sheet or sheet bundle stacked on the first tray 49 abuts against a stacking wall 50 on the upstream side of the first tray 49 in the sheet discharge direction, and is stacked along the stacking wall 50.
[0022] The first tray 49 can be raised and lowered relative to the processing tray 37 described later, and stacks a sheet bundle that has been stapled by a staple processing mechanism 47 described later. In this embodiment, the first tray 49 and the second tray 71 can be raised and lowered by a lifting mechanism (not shown). That is, in this embodiment, when sheets are sent to the first tray 49 or the second tray 71 serving as a stacking tray, the first tray 49 or the second tray 71 is raised and lowered to keep the position of the top sheet on the stacking surface of the tray constant relative to the pair of discharge rollers 42 or the second discharge roller 207 so that the alignment of the stacked sheets does not deteriorate.
[0023] The saddle section B2 is disposed below the transfer section of the saddle path 32 as a second transport path branching vertically downward from the straight path 28, and collates and accumulates a plurality of sheets sequentially delivered from the straight path 28 via the saddle path 32 and the transfer section to form a sheet bundle, and discharges the bundle to the saddle discharge unit 131 after saddle-stitching or folding without saddle-stitching. Each component will be described in detail below.
[0024] [housing] As shown in FIG. 2, the sheet processing apparatus B includes a housing 27, a straight path 28, a processing section B1, a saddle section B2, a first tray 49, a saddle discharge unit 131, a second tray 71, and the like. The straight path 28, the processing section B1, and the saddle section B2 are disposed inside the housing 27. The straight path 28 also includes a sheet receiving section 26 and a sheet delivery section 35. The processing section B1 and the saddle section B2 process the sheet delivered from the delivery section 35 of the straight path 28. The first tray 49, the saddle discharge unit 131, and the second tray 71 stack the sheets sent from each processing section. The illustrated housing 27 is connected to the housing 1 of the image forming apparatus A located upstream of the straight path 28 in the sheet conveying direction. The housing 27 and the housing 1 are arranged so that the heights of the discharge outlet 16 of the image forming device A and the receiving section 26 of the sheet processing device B from the installation surface are approximately the same, and the discharge outlet 16 and the receiving section 26 are connected.
[0025] [Sheet delivery route] The straight path 28, which is a sheet carry-in path, is configured as a substantially straight path that crosses the housing 27 in a substantially horizontal direction, and includes a receiving section 26 that is connected to the discharge port (main body discharge port) 16 of the image forming apparatus A, and a delivery section 35 that is located on the opposite side across the apparatus from the receiving section 26. In the straight path 28, an entrance roller 29, a first conveying roller 201, a second conveying roller 202, and a third conveying roller 203 are arranged as conveying rollers that can convey a sheet in a first direction from the receiving section 26 to the first discharge path 31, and can convey a sheet in a second direction from the first discharge path 31 to the receiving section 26. That is, the entrance roller 29, the first conveying roller 201, the second conveying roller 202, and the third conveying roller 203 can convey a sheet in a first direction and a second direction opposite to the first direction in the conveying path, and are arranged in order from the receiving section 26 side with respect to the first direction.
[0026] The first discharge path 31 is connected to a transfer section 35 of the straight path 28, and a first conveying roller 36 is disposed at this connection section. A sheet that is transferred from the straight path 28 to the first discharge path 31 and discharged from the first discharge path 31 is stacked on a first tray 49 or guided to processing section B1. Note that each of the above-mentioned conveying rollers may be other members capable of conveying a sheet, such as a conveying belt.
[0027] [Sheet delivery route layout] 2, a saddle path 32 and an upper conveying path 30, which are branch paths, are connected to the straight path 28. The saddle path 32 and the upper conveying path 30 are arranged in this order in the first direction from the receiving section 26 toward the first discharge path 31. The saddle path 32 branches off from the straight path 28 in the vertical downward direction, and the upper conveying path 30 branches off from the straight path 28 in the vertical upward direction. At the branching points of the straight path 28, the saddle path 32, and the upper conveying path 30, respectively, a saddle path switching member 33 and an upper conveying path switching member 34 are arranged as switching members for switching the conveying direction of the conveyed sheet.
[0028] [Path branching method] The upper conveying path switching member 34 is composed of a switching guide that moves to change the conveying path so that the sheet transported from the receiving section 26 is conveyed to either the first discharge path 31 or the upper conveying path 30, and is moved by a drive unit (not shown) such as an electromagnetic solenoid or a mini motor.
[0029] [Upper transport path] An upper conveying path 30 (printout discharge path) that conveys sheets other than those discharged to the first discharge path 31 branches off from the straight path 28, and the path branching portion is provided with an upper conveying path switching member 34 for guiding a sheet to the upper conveying path 30. The upper conveying path 30 is also provided with a fourth conveying roller 204, a fifth conveying roller 205, a sixth conveying roller 206, and a second discharge roller 207 as conveying rollers that guide the sheet to the second tray 71. As a result, the sheet guided to the upper conveying path 30 is discharged from the upper conveying path discharge port 40 to the second tray 71 (overflow tray).
[0030] The processing section B1 is composed of a processing tray 37 as a loading section and a first stacking section on which sheets conveyed through the first discharge path 31 downstream of the straight path 28 are loaded and which collates and stacks the loaded sheets, and a binding processing mechanism (end binding staple unit) 47 as a first binding processing section which binds the stacked sheet bundle. The processing section B1 performs binding processing on the sheet bundle loaded on the processing tray 37. The binding processing mechanism 47 is disposed vertically below the straight path 28. As shown in FIG. 2, the first discharge path 31 has a step formed thereon and the processing tray 37 is disposed below the step. Between the first discharge path 31 and the processing tray 37, a first switchback path is provided which changes the conveying direction to the opposite direction in a state where a part of the sheet is discharged from the discharge port 31a of the first discharge path 31 to the first tray 49, and guides the sheet onto the processing tray 37.
[0031] Specifically, the first discharge path 31 is provided with an upper conveying roller 41 and a lower conveying roller 48 that sandwich and convey a sheet. The upper conveying roller 41 and the lower conveying roller 48 form a discharge roller pair 42 as a discharge section. The upper conveying roller 41 can come into contact with and separate from the lower conveying roller 48, and can convey a sheet in a direction toward the first tray 49 with the upper conveying roller 41 and the lower conveying roller 48 sandwiching the sheet, and in a direction opposite to this direction. The upper conveying roller 41 and the lower conveying roller 48 can convey the sheet toward the processing tray 37 via the first switchback path.
[0032] Furthermore, the upper conveying roller 41 and the lower conveying roller 48 (i.e., the discharge roller pair 42) discharge the sheet or sheet stack on the processing tray 37 from the discharge opening 31a to a first tray 49 serving as a stacking tray (stacking section). The discharge opening 31a is a portion of the housing 27 that opens above the lower conveying roller 48. Furthermore, the discharge roller pair 42 discharges the sheet, which has been conveyed to the first discharge path 31 without passing through the processing tray 37, from the discharge opening 31a to the first tray 49.
[0033] The binding mechanism 47 has a trailing end regulating section 47a that abuts against an end (trailing end) of a sheet to position the sheet. On the processing tray 37, a pick-up section 38 is disposed that conveys the sheet conveyed to the processing tray 37 by the upper conveying roller 41 and the lower conveying roller 48 toward the trailing end regulating section 47a. The binding mechanism 47 performs binding processing on the end of a sheet bundle made up of multiple sheets that is placed on the processing tray 37 and whose end position is regulated by the trailing end regulating section 47a. The binding mechanism 47 also has a sheet bundle conveying mechanism that conveys the sheet bundle to the first tray 49 after performing binding processing on the end of the sheet bundle.
[0034] 2 supports the sheet fed from the first discharge path 31 between the processing tray 37 and the first tray 49 on the downstream side thereof so that the sheet straddles between them. In other words, the sheet fed from the first discharge path 31 is supported with its leading end on the uppermost sheet of the first tray 49 on the downstream side and its trailing end on the processing tray 37.
[0035] [Saddle Pass] A saddle path 32 for conveying a sheet to the saddle section B2 is connected to the straight path 28, and a path branching section is provided with a saddle path switching member 33 for guiding a sheet to the saddle path 32. The sheet guided to the saddle section B2 by the saddle path 32 is accumulated on a saddle stack tray 150, and after being subjected to center folding and folding processes, is discharged to a saddle discharge unit 131 via a substantially horizontal post-fold path guide 114, a second roller post-path guide 116, a clamp pre-guide 119, and a saddle discharge guide 124. In this embodiment, the saddle discharge guide 124 as a discharge guide section is used as an auxiliary guide for appropriately stacking the sheet in the saddle discharge unit 131.
[0036] [Control configuration] An outline of the control configuration of the image forming system 1000 will be described with reference to Fig. 3. First, the image forming apparatus A has a control unit 310, an operation unit 302, a conveyance control unit 303, an image processing unit 304, a drive unit 305, and a communication unit 306. The control unit 310 has a CPU (Central Processing Unit) 311, a ROM (Read Only Memory) 312, and a RAM (Random Access Memory) 313. The CPU 311 controls each unit while reading a program corresponding to a control procedure stored in the ROM 312. In addition, working data and input data are stored in the RAM 313, and the CPU 311 performs control by referring to the data stored in the RAM 313 based on the above-mentioned programs and the like.
[0037] The operation unit 302 is, for example, an operation panel provided in the image forming apparatus A and connected to the control unit 310, and an operator operates the apparatus and performs various settings. The transport control unit 303 controls various transport rollers that transport sheets in the image forming apparatus A and a switching member that switches the transport path. The image processing unit 304 controls the image forming unit 3. The drive unit 305 controls various motors and power sources. The communication unit 306 connects the control unit 310 to an external device 301 such as a personal computer and a communication unit 321 of the sheet processing apparatus B so that the control unit 310 can communicate with each other.
[0038] The sheet processing device B includes a stacker control unit 330, a conveyance control unit 322, an end binding control unit 323, a discharge processing control unit 324, and a communication unit 321. The stacker control unit 330 includes a CPU 331, a ROM 332, and a RAM 333, similar to the control unit 310. The conveyance control unit 322 controls various conveyance rollers that convey the sheet and a switching member that switches the conveyance path other than the saddle unit B2 of the sheet processing device B. The end binding control unit 323 controls the processing unit B1. The discharge processing control unit 324 controls the discharge of the sheet and various stacking trays on which the discharged sheets are stacked. The communication unit 321 connects the communication unit 306 of the image forming device A and the communication unit 341 of the saddle unit B2 to the stacker control unit 330 so that they can communicate with each other. The communication between the communication unit 306 and the communication unit 321 may be performed by wired communication or wireless communication.
[0039] The saddle unit B2 has a saddle control unit 350, a conveyance control unit 342, a saddle stitching control unit 343, a center folding control unit 344, a square spine processing control unit 345, and a communication unit 341. The saddle control unit 350 has a CPU 351, a ROM 352, and a RAM 353, similar to the control unit 310. The conveyance control unit 342 controls various conveyance rollers that convey the sheet in the saddle unit B2 and a switching member that switches the conveyance path. The saddle stitching control unit 343 controls the saddle stitching processing unit 104. The center folding control unit 344 controls the center folding processing mechanism C1. The square spine processing control unit 345 controls the square spine processing unit C2. The communication unit 341 connects the communication unit 321 of the sheet processing device B and the saddle control unit 350 so that they can communicate with each other.
[0040] [Saddle] The saddle section B2 will be described with reference to Figs. 2 and 4. The saddle section B2 has a folding mechanism C1 and a square spine processing section C2. The folding mechanism C1 collates and stacks the sheets sent from the straight path 28 to form a sheet bundle, binds the sheet bundle in the center of the sheet bundle in the conveying direction (a middle part in the second conveying direction, which is the conveying direction of the saddle path roller 100 as the second conveying section, which will be described later), and folds the sheet bundle at the position where the binding process has been performed (hereinafter also referred to as "magazine finishing"). The square spine processing section C2 is disposed downstream of the folding mechanism C1 in the conveying direction of the sheet bundle (downstream of the first conveying direction, which is the conveying direction of the saddle third roller pair 118 as the first conveying means, which will be described later), and performs a square spine processing to crease the spine of the sheet bundle that has been subjected to the folding process. A saddle discharge unit 131 is disposed downstream of the square spine processing section C2 in the first conveying direction, and the bound sheet bundle is stacked thereon. It is also possible to collate one or more sheets and stack them, and then perform only center folding, in which the central portion in the conveying direction is folded, without performing saddle stitching or square spine processing.
[0041] [Folding mechanism] The center-folding mechanism C1 has a leading edge regulating stopper 109, a center-stitching processing section (center-stitching staple unit) 104, and a center-folding processing section 112, and accumulates sheets in a bundle and performs center-folding and center-stitching processes. That is, the sheets conveyed from the straight path 28 to the saddle path 32 are conveyed to the accumulating section and the saddle stack tray 150 as the second accumulating section by the saddle path rollers 100 as the second conveying section. The saddle stack tray 150 accumulates a plurality of sheets conveyed in the second conveying direction by the saddle path rollers 100 via the saddle path 32 to form a sheet bundle. The sheet bundle accumulated on the saddle stack tray 150 is positioned at a predetermined position on the saddle stack tray 150 by the leading edge regulating stopper 109.
[0042] The saddle stack tray 150 is provided with a saddle stack sensor 106 as a sheet detection unit that detects the presence or absence of a sheet. The saddle stack sensor 106 may be located anywhere as long as it can detect the presence or absence of a sheet in the saddle stack tray 150. In this embodiment, the saddle stack sensor 106 is located in a position that does not interfere with the operation of the abutting plate 112a and in the vicinity of the folding roller pair 113. For example, the saddle stack sensor 106 is preferably located between the saddle stitching processing unit 104 and the abutting plate 112a, and more preferably located between the pull-in separation roller 105 and the abutting plate 112a.
[0043] The saddle stitching processing section 104 as the second binding processing section performs binding processing (saddle stitching processing) on the center in the conveying direction (middle in the second conveying direction) of the sheet bundle positioned by the leading end regulating stopper 109. The center folding processing section 112 has a pushing plate 112a and a pair of folding rollers 113, and folds the sheet bundle by conveying the sheet bundle with the pair of folding rollers 113 while pushing the vicinity of the position where the sheet bundle has been bound by the saddle stitching processing section 104 (the center in the conveying direction of the sheet bundle bound) with the pushing plate 112a, and conveys the sheet bundle so that the spine of the sheet bundle is on the downstream side in the conveying direction.
[0044] The saddle stitching processing unit 104 is a mechanism that performs stitching processing by moving the sheet stack along the center (line) of the sheets while sandwiching the sheet stack between a head unit and an anvil unit. Also, the center folding processing unit 112 employs a configuration in which the sheet stack is inserted into the nip of a pair of folding rollers 113 pressed against each other by abutment plate 112a, and the sheet stack is folded and conveyed by the rotation of the pair of folding rollers 113, as shown in Figs. 2 and 4.
[0045] [Square back processing section] The square spine processing section C2, which serves as a square spine processing means, performs square spine processing to make the sheet bundle into a square spine shape along the crease (line) of the folded sheet bundle. The square spine processing section C2 includes a lower clamp unit 120 and an upper clamp unit 121 as a pair of clamp units, and a square spine processing unit 134 having a pressing roller 123. The lower clamp unit 120 and the upper clamp unit 121 relatively move along the thickness direction of the sheet bundle conveyed by a saddle third roller pair 118 described later, thereby clamping and releasing the clamping of the sheet bundle. The pressing roller 123 presses the spine of the sheet bundle by moving along the width direction of the sheet bundle (the direction perpendicular to the conveying direction of the sheet bundle, the front-back direction in Figs. 2 and 4). The square spine processing section C2 performs square spine processing to form a corner on the spine of the sheet bundle by pressing the spine of the sheet bundle clamped between the lower clamp unit 120 and the upper clamp unit 121 with the pressing roller 123 while the spine of the sheet bundle protrudes downstream relative to the lower clamp unit 120 and the upper clamp unit 121 in the first conveying direction. Note that the above-mentioned "corner" includes a curved surface and refers to the boundary between the front cover and the spine cover, and the boundary between the spine cover and the back cover of the sheet bundle.
[0046] Specifically, the square spine processing unit C2 clamps a part of the sheet bundle from both sides in the vertical direction (thickness direction of the sheet bundle) while the spine of the sheet bundle folded in the middle by the folding mechanism C1 is projected downstream in the first conveying direction. The pressing roller 123 presses the spine of the sheet bundle clamped by the lower clamp unit 120 and the upper clamp unit 121 along the width direction of the sheet bundle perpendicular to the conveying direction and thickness direction of the sheet bundle. In this way, the square spine processing unit C2 performs square spine processing to give a corner to the spine of the sheet bundle. The square spine processing is a process in which the spine of the sheet bundle shown in Figs. 11(a) and (b) described later is crushed by the pressing roller 123 to form two creases on the spine of the sheet bundle as shown in Figs. 11(c) and (d), thereby forming two corners on the spine of the sheet bundle. The two corners of the spine of the sheet bundle are formed at positions in the thickness direction of the sheet bundle that sandwich the staples driven in during the binding process by the saddle stitching processing unit 104. The two corners of the spine of the sheet bundle are also formed at positions that sandwich the creases formed during the center folding process by the center folding processing unit 112.
[0047] Between the folding mechanism C1 and the square spine processing section C2, a folding transport mechanism is disposed which transports the sheet stack folded in the folding mechanism C1 to the square spine processing section C2 downstream and stops the sheet stack there.
[0048] As described above, the processing section B1 and the straight path 28 are disposed in a substantially horizontal direction, the saddle path 32 that guides the sheets to the saddle section B2 is disposed in a substantially vertical direction, and the saddle stack tray 150 that collates and stacks the sheets is disposed so as to follow the substantially vertical direction. By disposing the straight path 28 in a direction that crosses the housing 27 in this way, and disposing the saddle path 32 and the saddle section B2 in a substantially vertical direction, it is possible to slim down the horizontal width of the device.
[0049] A saddle discharge unit 131 is disposed downstream of the saddle portion B2 in the sheet stack transport direction, and stores the folded sheet stack in a magazine shape. The illustrated saddle discharge unit 131 is disposed vertically below the first tray 49. This is because the device specifications assume that the first tray 49 is used more frequently than the saddle discharge unit 131, and the first tray 49 is set at a height position that makes it easy to remove the sheets on the tray.
[0050] [Saddle section configuration] Next, the center-folding mechanism C1, center-folding conveying mechanism C3, and back square processing section C2 that constitute the saddle section B2 will be described in more detail.
[0051] [Details of the center-folding mechanism] 2, the saddle path switching member 33 is switched to convey the sheet to the saddle path 32, thereby guiding the sheet to the center-folding mechanism C1. In terms of the height direction of the center-folding mechanism C1, there are arranged, in order from the vertically upper side (upstream side) which is the entrance side, a saddle entrance roller 101, a sorting beater 102, a trailing end press guide 103, a center-stitching processing section 104, a pull-in separation roller 105, a center-folding processing section 112, a first alignment roller 107, a second alignment roller 108, a leading end regulating stopper 109, and a leading end gripper 110.
[0052] The saddle inlet roller 101 further conveys the sheet delivered by the saddle path roller 100 from the saddle path 32 downward. The sorting beater 102 shifts the sheet conveyed downward from the saddle inlet roller 101 to the right side of FIG. 2 and accumulates the sheet on the saddle stack tray 150. The rear end pressing guide 103 presses the rear end of the sheet stacked on the saddle stack tray 150. The saddle stitching processing unit 104 performs a stitching process on the center of the sheet stack accumulated on the saddle stack tray 150 in the conveying direction. The pull-in separation roller 105 assists the conveyance of the sheet conveyed to the saddle stack tray 150, and is a roller that pulls the sheet toward the leading end regulation stopper 109. The pull-in separation roller 105 is arranged so as to be able to abut against and separate from the opposing roller 105a.
[0053] The center-folding processing section 112 has a pair of folding rollers 113, a pushing plate 112a as a pressing section, and a roller guide 111. The pair of folding rollers 113 form creases in the center-folding process. The pushing plate 112a pushes the sheet into the nip portion of the pair of folding rollers 113. That is, the pair of folding rollers 113 sandwiches and conveys the sheet bundle so that the spine of the sheet bundle is located downstream of the end portion on the fore-edge side, thereby center-folding the sheet bundle. The pushing plate 112a presses the sheet bundle that has been saddle-stitched by the saddle-stitching processing section 104 toward the nip portion of the pair of folding rollers 113. The roller guide 111 covers the pair of folding rollers 113. The first alignment roller 107 and the second alignment roller 108 convey the sheet conveyed to the saddle stack tray 150, and also align the sheet in the height direction. The leading edge regulating stopper 109 abuts against the leading edge (lower edge) of the conveyed sheet, thereby determining the height position of the leading edge of the sheet. The leading edge gripper 110 holds down the leading edge (lower edge) of the sheet stacked on the leading edge regulating stopper 109.
[0054] The saddle inlet roller 101 and the pull-in separation roller 105 are driven by the same motor. The rear end pressing guide 103 is positioned opposite the sorting beater 102 across the saddle stack tray 150. The saddle stitching processing section 104 is disposed downstream of the sorting beater 102 and the rear end pressing guide 103 and upstream of the pull-in separation roller 105.
[0055] The sheet conveyed from the saddle path 32 to the saddle section B2 is conveyed by the saddle inlet roller 101 to the leading edge regulating stopper 109 that has moved to a position according to the size of the sheet. The pull-in separation roller 105 has an auxiliary conveying function for accurately conveying the sheet being conveyed to the leading edge regulating stopper 109 in the saddle stack tray 150. At this time, the folding roller pair 113 is covered by a roller guide 111 to prevent the leading edge of the sheet from getting caught on the folding roller pair 113 and to convey the sheet efficiently.
[0056] The first alignment roller 107 and the second alignment roller 108 accurately abut the conveyed sheet against a leading edge regulation stopper 109, and align the sheet in the height direction.
[0057] The sorting beater 102 prepares to receive the next sheet by moving the sheet conveyed to the leading edge regulating stopper 109 to the trailing edge pressing guide 103 and pressing the trailing edge (upper edge) of the sheet by the trailing edge pressing guide 103. At this time, the trailing edge pressing guide 103 moves to a position according to the size and waits.
[0058] The leading end (lower end) of the sheet bundle formed by stacking a predetermined number of sheets on the saddle stack tray 150 is fixed by being gripped by the leading end gripper 110. In this state, the saddle stitching processing unit 104 performs a stitching process on the center of the sheet bundle in the second conveying direction. After the stitching process, the leading end regulating stopper 109 is lowered while the leading end (lower end) of the sheet bundle is gripped by the leading end gripper 110. At this time, the leading end regulating stopper 109 is lowered so that the position where the abutting plate 112a pushes into the pair of folding rollers 113 is a position that is half the sheet size, thereby lowering the sheet bundle from the stitching position.
[0059] When performing center folding, the roller guide 111 is retracted, the leading edge gripper 110 is released, and then the pusher plate 112a pushes the center of the sheet stack into the nip portion of the pair of folding rollers 113. This causes the sheet stack to be center folded.
[0060] The saddle inlet roller 101, the pull-in separation roller 105, the sorting beater 102, and the rear end pressing guide 103 are controlled by a conveyance control unit 342 (FIG. 3). In addition, the leading end regulating stopper 109, the leading end gripper 110, the saddle stitching processing unit 104, the first alignment roller 107, and the second alignment roller 108 are controlled by a saddle stitching control unit 343 (FIG. 3). In addition, the folding roller pair 113 and the abutment plate 112a are controlled by a center folding control unit 344 (FIG. 3).
[0061] [Folding transport mechanism] The configuration of the folding conveying mechanism C3 will be described with reference to Figs. 2 and 4. The folding conveying mechanism C3 is a mechanism that transfers the sheet bundle that has been folded in the folding mechanism C1 to the spine processing section C2. Specifically, the folding conveying mechanism C3 first transfers the sheet bundle that has been folded in the folding process by the folding roller pair 113 so that the spine of the sheet bundle is located downstream in the conveying direction from the edge on the fore-edge side, and transfers the sheet bundle to the post-folding path guide 114. The post-folding path guide 114 is disposed along a direction (here, substantially horizontal) that bends downward in the vertical direction with respect to the folding roller conveying direction 113c (Fig. 2), which is a direction along a perpendicular line (first virtual line α2 described next, Fig. 4) that passes through the rotation center of each roller of the folding roller pair 113 as the first conveying roller pair, and is disposed downstream in the conveying direction of the folding roller pair 113.
[0062] Here, as shown in FIG. 4, a first line α1 passing through the rotation centers of the pair of folding rollers 113 and a straight line perpendicular to the width direction (the direction perpendicular to the conveying direction of the sheet bundle, the front-back direction in FIGS. 2 and 4) and passing through the nip of the pair of folding rollers 113 in a state where the sheet bundle is not being nipped are defined as a first virtual line α2. In this case, the pair of folding rollers 113 are disposed so that the first virtual line α2 is parallel to the horizontal direction or inclined vertically upward with respect to the horizontal direction toward the downstream of the conveying direction. In this embodiment, the first virtual line α2 is inclined vertically upward with respect to the horizontal direction toward the downstream of the conveying direction. On the other hand, the post-folding path guide 114 is extended in a direction inclined with respect to the first virtual line α2, and in this embodiment, is extended in a substantially horizontal direction.
[0063] The post-fold path guide 114 guides the conveyance of the sheet bundle, and leads the sheet bundle to the saddle second roller pair 115 located downstream in the conveyance direction. The saddle second roller conveyance direction 115c, which is a direction along a perpendicular line to a straight line passing through the rotation centers of the rollers of the saddle second roller pair 115, is disposed along a direction that descends vertically downward toward the downstream in the conveyance direction. The saddle second roller pair 115 is driven by the center folding control unit 344 to convey the sheet bundle.
[0064] The sheet bundle conveyed by the saddle second roller pair 115 is delivered to the second roller post-path guide 116 arranged on the downstream side of the conveying direction and parallel to the saddle second roller conveying direction 115c (FIG. 2), and is guided by the second roller post-path guide 116. The second roller post-path guide 116 also has a second roller post-path upper guide 116a that guides the upper surface of the sheet bundle, and a second roller post-path lower guide 116b that guides the lower surface of the sheet bundle. A saddle conveying sensor 117 as a detection unit is arranged vertically above the guide surface of the second roller post-path upper guide 116a, and between the sheet bundle receiving port and the sheet bundle discharge port. The saddle conveying sensor 117 detects the position of the leading edge of the sheet bundle.
[0065] The second roller rear path guide 116 guides the conveyance of the sheet, and leads it to a saddle third roller pair 118 located downstream in the conveyance direction. A saddle third roller conveyance direction 118c (FIG. 2), which is a direction along a perpendicular line (a second virtual line β2 described next, FIG. 4) to a straight line passing through the rotation centers of the respective rollers of the saddle third roller pair 118, is disposed along a direction that descends vertically downward toward the downstream in the conveyance direction.
[0066] The saddle third roller pair 118 as a conveying roller pair is driven by the center folding control unit 344, and conveys the sheet bundle that has been subjected to the center stitching and center folding so that the spine of the sheet bundle is located downstream of the edge of the fore-edge side in the conveying direction. In other words, the saddle third roller pair 118 conveys the sheet bundle so that the spine of the sheet bundle is the leading end. When the direction in which the sheet bundle is conveyed by the saddle third roller pair 118 as the conveying means and the first conveying means is the first conveying direction (saddle third roller conveying direction 118c), the saddle path roller 100 as the second conveying means that conveys the sheet to the center folding mechanism C1 is located upstream of the saddle third roller pair 118 in the first conveying direction. Then, the saddle path roller 100 conveys the sheet in a second conveying direction different from the first conveying direction, upstream of the saddle third roller pair 118 in the first conveying direction. Hereinafter, the upstream side and downstream side of the first conveying direction (saddle third roller conveying direction 118c) in which the sheet stack is conveyed by the saddle third roller pair 118 may be simply referred to as the "upstream side" and the "downstream side".
[0067] The folding roller pair 113, the saddle second roller pair 115, and the saddle third roller pair 118 are driven by the same motor, and the center folding control unit 344 controls the driving of each roller pair by controlling this motor. The saddle third roller pair 118 holds the sheet bundle center-folded by the center folding unit 112 and transports it toward the square spine processing unit C2, and is located immediately upstream of the square spine processing unit C2.
[0068] 4, a second line β1 passing through the rotation centers of the saddle third roller pair 118 and a straight line perpendicular to the width direction and passing through the nip of the saddle third roller pair 118 when the sheet stack is not being sandwiched are defined as a second imaginary line β2. In this case, the saddle third roller pair 118 is provided such that the second imaginary line β2 intersects with the first imaginary line α2 and is inclined vertically downward as it moves toward the downstream of the folding roller pair 113 in the conveying direction.
[0069] In other words, the saddle third roller pair 118 is disposed such that the second virtual line β2 is inclined downward in the vertical direction as it approaches the horizontal direction and downstream in the conveying direction. That is, in this embodiment, the second virtual line β2 is inclined with respect to the first virtual line α2. The folding roller pair 113 conveys the sheet bundle in a horizontal direction or in a direction (folding roller conveying direction 113c) that is inclined upward in the vertical direction as it approaches the horizontal direction and downstream in the conveying direction. In contrast, the saddle third roller pair 118 conveys the sheet bundle in a direction (saddle third roller conveying direction 118c) that is inclined downward in the vertical direction as it approaches the horizontal direction and downstream in the conveying direction.
[0070] Therefore, in the present embodiment, the center-folding conveying path C4 as a third conveying path that conveys the sheet bundle between the folding roller pair 113 and the saddle third roller pair 118 is bent so that the sheet bundle conveyed by the folding roller pair 113 is handed over to the saddle third roller pair 118. That is, the center-folding conveying path C4 has a post-folding path guide 114 and a second-roller post-path guide 116, and the conveying path is bent between the post-folding path guide 114 and the second-roller post-path guide 116. In other words, the direction in which the sheet bundle is guided by the second-roller post-path guide 116 is inclined with respect to the direction in which the sheet bundle is guided by the post-folding path guide 114.
[0071] In this way, by making the conveying direction of the sheet bundle of the folding roller pair 113 and the conveying direction of the sheet bundle of the saddle third roller pair 118 different and bending the conveying path between the post-fold path guide 114 and the second roller post-path guide 116, the width of the sheet processing device B (the length in the second conveying direction, the length in the left-right direction in FIG. 2) can be reduced, and the device can be made more compact. Also, by discharging the sheet bundle downward by the saddle third roller pair 118, obliquely downward in the folding roller conveying direction 113c, which is the sheet conveying direction of the saddle third roller pair 118, the sheet bundle processed by the saddle section B2 can be discharged to a lower position in the device.
[0072] This allows the saddle discharge unit 131, to which the sheet stack processed in the saddle section B2 is discharged, to be disposed below the device, and increases the amount that the first tray 49 located above the saddle discharge unit 131 can descend. As a result, it is possible to increase the sheet stacking capacity of the first tray 49 while reducing the size of the sheet processing device B. Note that when the arrangement of the transport path guides for the above-mentioned sheets or sheet stacks and the transport direction of the sheets or sheet stacks are horizontal, vertical, or parallel, this also includes cases where an angle is made with respect to the horizontal, vertical, or parallel due to tolerances, etc.
[0073] [Details of back corner processing section] The square spine processing section C2 will be described with reference to Figs. 2 and 4, and with reference to Figs. 5 to 10. As described above, the square spine processing section C2 includes a pair of clamp sections, namely, a lower clamp unit 120 and an upper clamp unit 121, and a square spine processing unit 134 having a pressing roller 123. The clamp mechanism C5 including the lower clamp unit 120 and the upper clamp unit 121 includes a clamp pre-guide 119 as shown in Fig. 5. The clamp pre-guide 119 is disposed downstream of the saddle third roller pair 118 in the conveying direction and along a direction that bends downward in the vertical direction with respect to the saddle third roller conveying direction 118c, and guides the conveyance of the sheet stack.
[0074] The clamp front guide 119 has a clamp front upper guide portion 119a as a first guide portion that guides the upper surface of the sheet bundle, and a clamp front lower guide portion 119b as a second guide portion that guides the lower surface of the sheet bundle. The clamp front upper guide portion 119a and the clamp front lower guide portion 119b are disposed at a position in the thickness direction away from a line centered on the saddle third roller conveying direction 118c by more than 1 / 2 the thickness of the sheet bundle that can pass through the device (the thickness of the sheet bundle when the center folding process is performed on the sheet bundle with the maximum thickness that can be conveyed in the device). In other words, the distance between the clamp front upper guide portion 119a and the clamp front lower guide portion 119b is greater than the maximum thickness of the sheet bundle that can be processed by the sheet processing device B (the maximum thickness of the sheet bundle that can be center folded by the center folding process mechanism C1). At least one of the clamp front upper guide portion 119a and the clamp front lower guide portion 119b may be omitted.
[0075] The lower clamp unit 120 and the upper clamp unit 121 are relatively movable between a first position where the sheet bundle conveyed from the saddle third roller pair 118 can be received, and a second position where the sheet bundle is sandwiched between them. The lower clamp unit 120 and the upper clamp unit 121 sandwich a part of the sheet bundle from both sides in the thickness direction of the sheet bundle by moving from the first position to the second position.
[0076] In this embodiment, the upper clamp unit 121 as the first clamp unit is movable, and the lower clamp unit 120 as the second clamp unit is fixed. That is, the upper clamp unit 121 moves in a direction approaching the lower clamp unit 120 to clamp the sheet bundle. However, the upper clamp unit 121 may be fixed and the lower clamp unit 120 may be movable, or both may be movable. In either case, the sheet bundle is clamped between an upper clamp surface (upper clamp pressing portion) 142, which is a surface of the upper clamp unit 121 facing the lower clamp unit 120, and a lower clamp surface (lower clamp pressing portion) 143, which is a surface of the lower clamp unit 120 facing the upper clamp unit 121 (see FIG. 5 and FIG. 11(a) to (d)).
[0077] The lower clamp surface 143 of the lower clamp unit 120 and the upper clamp surface 142 of the upper clamp unit 121 are parallel to the clamp pre-upper guide portion 119a and the clamp pre-lower guide portion 119b, respectively, and are disposed downstream of the clamp pre-guide 119 in the sheet bundle conveying direction. The sheet bundle conveyed while being guided by the clamp pre-guide 119 is further guided by the upper clamp surface 142 and the lower clamp surface 143 to be conveyed a predetermined amount. The clamp pre-lower guide portion 119b is fixed to the lower clamp unit 120, and the clamp pre-upper guide portion 119a is fixed to the upper clamp unit 121. In this embodiment, the clamp pre-upper guide portion 119a moves together with the upper clamp unit 121 in a substantially vertical direction (thickness direction of the sheet bundle). The upper clamp unit 121 and the lower clamp unit 120, like the pre-clamp upper guide portion 119a and the pre-clamp lower guide portion 119b, are positioned in the first position at a thickness direction away from a line centered on the saddle third roller conveying direction 118c by more than half the thickness of the sheet stack that can pass through the device (the thickness of the sheet stack when a center folding process is performed on a sheet stack of the maximum thickness that can be conveyed in the device).
[0078] [Square back processing unit] Next, the internal configuration of the square spine processing unit 134 will be described with reference to Figures 5 to 10. The square spine processing unit 134 has a pressing roller (square spine processing roller) 123, a unit frame 147, roller pressure units 138a and 138b, pressure springs 145a and 145b, an upper movement regulating unit 139, and a lower movement regulating unit 140. As shown in Figures 5 and 10, the pressing roller 123 is arranged so that its outer circumferential surface contacts the downstream end surfaces of the lower clamp unit 120 and the upper clamp unit 121. In addition, as shown in Figure 6(b), the pressing roller 123 has a roller shaft 141 arranged on its inner diameter side, and is rotatable with respect to the roller shaft 141.
[0079] 6(a) and (b), the unit frame 147 has a pair of side plates 147a arranged on both sides of the pressing roller 123, a rear plate 147b arranged on the left side of the pressing roller 123 on the downstream side in the first transport direction (FIG. 6(b)), and an upper plate 147c and a lower plate 147d arranged on both sides in the rotation axis direction of the pressing roller 123 and bent from both ends of the rear plate 147b. The unit frame 147 is configured in this way to house the pressing roller 123 inside the side plates and expose the pressing roller 123 to the upstream side in the first transport direction.
[0080] In this embodiment, the rear plate 147b, the upper plate 147c, and the lower plate 147d are integrally formed, and as shown in FIG. 6(b), the cross section is substantially U-shaped. These may be separate bodies, or may be integrally formed with the pair of side plates 147a. Both ends of the roller shaft 141 of the pressure roller 123 are rotatably supported by the upper plate 147c and the lower plate 147d, respectively. The upper plate 147c and the lower plate 147d are extended upstream in the first conveying direction from the pressure roller 123, and the upper movement restricting portion 139 and the lower movement restricting portion 140 are supported at the tip portions, respectively.
[0081] That is, the upper movement restricting portion 139 is provided at the tip of the support shaft 139a fixed to the upper plate 147c and extending downward from the upper plate 147c. The lower movement restricting portion 140 is provided at the tip of the support shaft 140a fixed to the upper plate 147c and extending downward from the lower plate 147d. The upper movement restricting portion 139 is a roller rotatably supported at the tip of the support shaft 139a, and the lower movement restricting portion 140 is a roller rotatably supported at the tip of the support shaft 140a. In this embodiment, two lower movement restricting portions 140 are arranged side by side, but one may be used. The upper movement restricting portion 139 may also be two. The upper movement restricting portion 139 and the lower movement restricting portion 140 are located on both sides of the pressing roller 123 with respect to the rotation axis direction of the roller shaft 141.
[0082] Roller pressure members 138a and 138b are connected to the roller shaft 141 on the outer side of the pressure roller 123 in the roller thickness direction and downstream in the conveying direction. Pressure springs 145a and 145b are arranged between the roller pressure members 138a and 138b and a rear plate 147b of the unit frame 147, and the roller shaft 141 is urged by the pressure springs 145a and 145b. Since the roller shaft 141 is configured to be movable in the conveying direction, the pressure with which the pressure roller 123 presses the spine of the sheet stack by the urging forces of the pressure springs 145a and 145b changes with the change in the amount of protrusion of the spine of the sheet stack from the lower clamp unit 120 and the upper clamp unit 121, which will be described later.
[0083] Further, the pressure roller 123 is biased by pressure springs 145a and 145b via the roller shaft 141, and is therefore pressed against the lower clamp unit 120 and the upper clamp unit 121. On the other hand, an upper movement restricting portion 139 and a lower movement restricting portion 140 are disposed on the opposite side of the pressure roller 123 and the lower clamp unit 120 and the upper clamp unit 121 so as to face the lower clamp unit 120 and the upper clamp unit 121, respectively (FIG. 5). That is, in terms of the conveying direction (first conveying direction) of the sheet bundle, on the upstream side of the lower clamp unit 120 and the upper clamp unit 121, the upper movement restricting portion 139 is disposed with respect to the upper clamp unit 121, and the lower movement restricting portion 140 is disposed with respect to the lower clamp unit 120.
[0084] 9 and 10, an upstream end surface 120a of the lower clamp unit 120 abuts against the lower movement restricting portion 140. An upstream end surface 121a of the upper clamp unit 121 abuts against the upper movement restricting portion 139. In this embodiment, the lower movement restricting portion 140 and the upper movement restricting portion 139 are rollers having rotation axes in a direction perpendicular to the width direction of the sheet bundle and the conveying direction of the sheet bundle (up and down direction in FIG. 10, approximately vertical direction in this embodiment), and rotate while abutting against the end surfaces 120a and 121a. As a result, the pressure applied from the pressure roller 123 to the lower clamp unit 120 and the upper clamp unit 121 restricts the lower clamp unit 120 and the upper clamp unit 121 from moving upstream.
[0085] When the leading edge of the sheet bundle conveyed by the saddle third roller pair 118 is detected by the above-mentioned saddle conveyance sensor 117, the conveyance amount of the sheet bundle is counted by the square spine processing control unit 345, and the sheet bundle is stopped after being conveyed a predetermined conveyance amount. Specifically, as shown in FIG. 11(a) described later, the center-folded sheet bundle is stopped in a state where the spine of the sheet bundle protrudes downstream in the conveyance direction from the upper clamp unit 121 and the lower clamp unit 120. In this embodiment, in the square spine processing, the conveyance amount of the sheet bundle by the saddle third roller pair 118 is controlled to adjust the protruding amount of the spine of the sheet bundle from the upper clamp unit 121 and the lower clamp unit 120.
[0086] [Upper clamp unit and lower clamp unit] The upper clamp unit 121 moves from a receiving position (first position) where the sheet bundle is received to a clamp holding position (second position) where the sheet bundle is held, thereby pressurizing the sheet bundle between the lower clamp unit 120 and holding the sheet bundle with the upper clamp surface 142 and the lower clamp surface 143. At this time, as shown in Fig. 11(b) described later, the leading end of the sheet bundle protrudes by a predetermined protrusion amount P1 from end surfaces 120c and 121b on the downstream side in the conveying direction of the lower clamp unit 120 and the upper clamp unit 121 after clamp holding.
[0087] The upper clamp unit 121 is operated by driving the clamp drive motor 132 (FIGS. 7(a) and 7(b)) by the square spine processing control unit 345. As shown in FIG. 7(a) and 7(b), the square spine processing unit C2 further transmits the drive transmitted by the clamp drive train 133, which is composed of a pulley, a belt, and further a gear train, to the clamp drive link 122, thereby moving the upper clamp unit 121 connected to the clamp drive link 122 in the sheet bundle thickness direction. A plurality of clamp springs 144 for pressing the sheet bundle are built in between the clamp drive link 122 and the upper clamp unit 121, and the amount of movement of the clamp drive link 122 remains constant, and the amount of compression of the clamp spring 144 changes depending on the thickness of the sheet bundle, so that the pressing force also changes. The clamp holding position described above also changes depending on the thickness of the sheet bundle.
[0088] [Square back processing section] 11(c) described later, the square spine processing section C2 performs square spine processing by pressing the spine of the sheet bundle held between the lower clamp unit 120 and the upper clamp unit 121 in a state where the sheet bundle is protruding from the end faces 120c, 121b by a predetermined protrusion amount P1 while scanning in the width direction of the sheet bundle with the pressing roller 123 arranged downstream in the conveying direction. That is, in the square spine processing, the pressing roller 123 moves in the width direction to press the spine of the sheet bundle sandwiched by the lower clamp unit 120 and the upper clamp unit 121 located at the second position in a state where the spine of the sheet bundle conveyed by the saddle third roller pair 118 protrudes downstream in the conveying direction from the lower clamp unit 120 and the upper clamp unit 121.
[0089] When processing the square spine, the square spine processing control unit 345 operates the drive motor 135 (FIG. 7(b)) to move the square spine processing unit 134. As shown in FIG. 8, the square spine processing unit 134 is connected to a drive belt 137 arranged in the width direction of the sheet bundle, and can move in the width direction of the sheet bundle along a guide rail 120b shown in FIG. 9 described later. The drive belt 137 rotates by transmitting power from the drive motor 135 through a drive train 136 (FIG. 7(b)) composed of a gear train. This allows the square spine processing unit 134 to scan the sheet bundle in the width direction. The home positions of the square spine processing unit 134 are provided on the front side and rear side of the sheet processing device B. In other words, the square spine processing unit 134 can be moved from the rear side to the front side for the first sheet bundle to perform the square spine processing, and then the square spine processing unit 134 can be moved from the front side to the rear side for the second sheet bundle to perform the square spine processing. Each home position of the square spine processing unit 134 is provided with a sensor (not shown), which makes it possible to detect the position of the square spine processing unit 134. However, the home position may be provided on either the front side or the rear side, and the square spine processing unit 134 may scan in the width direction from the front side to the rear side or from the rear side to the front side. In this way, when the home position is provided on either side, for example, the square spine processing unit 134 may be moved from the rear side to the front side for the first sheet bundle to perform the square spine processing, and then the square spine processing unit 134 may be returned from the front side to the rear side, and the square spine processing unit 134 may be moved from the rear side to the front side for the second sheet bundle to perform the square spine processing, etc.
[0090] In addition, in one square spine processing, the pressing roller 123 is moved in one direction from the front side to the rear side or from the rear side to the front side, but the pressing roller 123 may be moved back and forth in one square spine processing. For example, in one square spine processing, whether the pressing roller 123 is moved in one direction or moved back and forth may be set according to the number of sheets and the type of sheets included in the sheet bundle. This setting may be performed automatically on the control unit side, or may be set by an operator such as a user or a serviceman. Furthermore, in one square spine processing, whether the pressing roller 123 is moved in one direction or moved back and forth may be arbitrarily set by the operator.
[0091] The lower clamp unit 120 has a guide rail 120b formed along the width direction of the sheet bundle, as shown in Figs. 9 and 10. When the square spine processing unit 134 moves in the width direction of the sheet bundle, the lower movement restricting portion 140 moves along the guide rail 120b while engaging with the guide rail 120b. The guide rail 120b is formed by combining a plurality of members, as shown in Fig. 10, into a substantially U-shaped cross section, and is formed so that a part of the roller-shaped lower movement restricting portion 140 can enter into it. The lower surface of the outer diameter side of the lower movement restricting portion 140 engages with the lower surface of the guide rail 120b, and the outer peripheral surface of the lower movement restricting portion 140 abuts against the end surface 120a. This restricts the movement of the square spine processing unit 134 in the thickness direction of the sheet bundle when it moves. The guide rail 120b may be a groove formed in a part of the material on the upstream side of the lower clamp unit 120 in the conveying direction.
[0092] After the square spine processing is completed, the drive motor 135 (FIG. 7(b)) is operated to move the square spine processing unit 134 in the width direction to move it out of the conveying path of the sheet bundle, and the clamp drive motor 132 (FIGS. 7(a) and (b)) is further operated to move the upper clamp unit 121 in a direction away from the sheet bundle (FIG. 11(d) described later). This makes it possible to convey the sheet bundle further downstream. It is also possible to discharge the sheet bundle without performing the above-mentioned square spine processing.
[0093] [Discharge section] As shown in FIG. 2, the sheet bundle that has passed through the saddle portion B2 is conveyed by the saddle third roller pair 118 toward the saddle discharge guide 124 disposed further downstream in the first conveying direction than the square spine processing unit 134. The saddle discharge guide 124 as a discharge guide portion is supported so as to be swingable about a first fulcrum 124b having a rotation axis parallel to the rotation axis of each roller of the saddle third roller pair 118. The first fulcrum 124b is located above a line extending downstream in the conveying direction of the sheet bundle by the saddle third roller pair 118 (first conveying direction, saddle third roller conveying direction 118c). The saddle discharge guide 124 is disposed so as to hang down vertically downward from the first fulcrum 124b.
[0094] The saddle discharge guide 124 has a first transport direction upstream side inclined toward the upstream side in the first transport direction from the first fulcrum 124b toward the middle part 124a in the vertical direction. The saddle discharge guide 124 has a first transport direction upstream side inclined toward the downstream side in the first transport direction from the middle part 124a toward the lower end in the vertical direction. That is, the saddle discharge guide 124 has a first transport direction upstream side side inclined toward the downstream side in the first transport direction from the middle part 124a toward the lower end in the vertical direction. In addition .... In other words, the saddle discharge guide 124 has a first transport direction upstream side side inclined toward the downstream side in the first transport direction. In addition, the saddle discharge guide 124 has a first transport direction upstream side side inclined toward the downstream side in the first transport direction from the middle part 124a toward the lower end.
[0095] The guide surface 124d is located below a line extending downstream in the above-mentioned saddle third roller conveying direction 118c, and comes into contact with the sheet bundle conveyed by the saddle third roller pair 118 to guide the sheet bundle downward. The saddle discharge guide 124 is rotatable about the first fulcrum 124b when the sheet bundle comes into contact with the guide surface 124d. Depending on the rigidity of the sheet bundle, the saddle discharge guide 124 may not come into contact with the guide surface 124d of the saddle discharge guide 124, and even if the sheet bundle does come into contact, the amount of rotation varies depending on the rigidity, so the saddle discharge guide 124 does not necessarily rotate.
[0096] A second fulcrum 124c is provided at the lower end of the saddle ejection guide 124, and a saddle ejection roller 125 described later is connected to the second fulcrum 124c so as to be rotatable about the second fulcrum 124c. The second fulcrum 124c is located below the guide surface 124d, and has a rotation axis parallel to the rotation axis of the first fulcrum 124b.
[0097] As the sheet stack continues to be transported by the saddle third roller pair 118, it is delivered to a saddle discharge unit 131 disposed downstream of the square spine processing unit 134 in the first transport direction and vertically below the saddle discharge guide 124. The saddle discharge unit 131 has a saddle discharge upstream tray 127, a saddle discharge upstream sensor 128, a saddle discharge tray 129, and a saddle discharge downstream sensor 130.
[0098] The saddle discharge upstream tray 127 has an upstream belt 127a and is located below the guide surface 124d of the saddle discharge guide 124. The saddle discharge upstream tray 127 conveys the sheet bundle guided downward by the guide surface 124d while guiding it further downstream by the upstream belt 127a. A sheet bundle loading surface 127b of the saddle discharge upstream tray 127 is inclined so as to be vertically downward as it approaches the downstream side in the conveying direction.
[0099] The saddle discharge tray 129 as a sheet bundle discharge section has a downstream belt 129a, receives the sheet bundle conveyed from the saddle discharge upstream tray 127, and conveys the sheet bundle while guiding it further downstream by the downstream belt 129a. Specifically, as shown in FIG. 12 and FIG. 13 described later, the saddle discharge tray 129 has a downstream belt 129a and a tray section 129b. The downstream belt 129a is arranged in a pair spaced apart in the width direction, and is capable of conveying the sheet bundle stacked on the tray section 129b. The sheet bundle stacking surface 129c of the saddle discharge tray 129 is inclined so as to face vertically upward as it approaches the downstream side in the conveying direction. Therefore, the sheet bundle guided to the saddle discharge upstream tray 127 by the guide surface 124d is conveyed in a direction inclined vertically downward by the upstream belt 127a of the saddle discharge upstream tray 127, and then conveyed in a direction inclined vertically upward by the downstream belt 129a of the saddle discharge tray 129.
[0100] In addition, a saddle discharge upstream sensor 128 that detects the sheet stack on the upstream side is arranged on the upstream side within the transportable area of the saddle discharge upstream tray 127, and a saddle discharge downstream sensor 130 that detects the sheet stack on the downstream side is arranged on the upstream side within the transportable area of the saddle discharge tray 129.
[0101] The sheet bundle delivered to the saddle discharge unit 131 is guided and transported by the saddle discharge upstream tray 127 and the saddle discharge tray 129, where the sheet bundle is stacked. The saddle discharge upstream tray 127 holds the sheet bundle at a nip point between the saddle discharge roller 125 and the saddle discharge roller 125 on the downstream side in the transport direction. The sheet bundle present on the saddle discharge upstream tray 127 is configured to suppress the opening side (small edge side) from opening at this nip point. The position of this nip point can be changed around the second fulcrum 124c depending on the thickness of the sheet bundle.
[0102] When the succeeding sheet bundle is being processed, the preceding sheet bundle is transported upstream in the transport direction by the upstream belt 127a of the saddle discharge upstream tray 127, and is stopped at a predetermined transport distance after being detected by the saddle discharge upstream sensor 128 and the saddle discharge downstream sensor 130. This transport distance is a position where the opening side of the preceding sheet bundle can be suppressed from opening at the nip point with the saddle discharge roller 125, and the succeeding sheet bundle is in a positional relationship where it comes into contact with the upper surface of the preceding sheet bundle when it is discharged. That is, in this embodiment, the succeeding sheet bundle is stacked on top of the preceding sheet bundle in the saddle discharge unit 131 (so-called tile stacking).
[0103] In this way, the saddle discharge unit 131 discharges the succeeding sheet bundle onto the upper surface of the preceding sheet bundle without entering the opening of the preceding sheet bundle, and the succeeding sheet bundle is stably stacked in a shingle-like manner on the stacking surface 129c of the saddle discharge tray 129 without problems such as getting caught, curling, or being pushed out of the preceding sheet bundle. That is, by appropriately changing the above-mentioned conveyance amount according to the size of the sheet bundle, the succeeding sheet bundle can be stably stacked on top of the preceding sheet bundle.
[0104] The saddle discharge port 126 is disposed downstream of the saddle discharge guide 124 in the first transport direction and between the saddle discharge upstream tray 127 and the saddle discharge tray 129. The sheet bundle transported to the saddle discharge unit 131 passes through the saddle discharge port 126 and is discharged to the outside of the sheet processing device B, making it easier for the user to access the discharged sheet bundle.
[0105] If another device exists downstream of the saddle discharge unit 131, it is possible to transfer the sheet bundle to the downstream device by continuing the conveyance without stacking. In this embodiment, a discharge cover 151 is provided as a cover member on the outside of the saddle discharge guide 124. The discharge cover 151 is arranged so as not to prevent the sheet bundle from being discharged from the saddle discharge port 126, and is arranged so as not to allow an operator such as a user to access the inside of the device through the saddle discharge port 126.
[0106] [Control of back corner processing] Next, the control of the square spine processing of this embodiment will be described with reference to Figs. 11(a) to 11(d). As described above, the square spine processing unit C2 performs square spine processing to make a corner on the spine of the sheet bundle that has been saddle-stitched and center-folded. The center-folding control unit 344 shown in Fig. 3 controls each of the conveying roller pairs, namely, the folding roller pair 113, the saddle second roller pair 115, and the saddle third roller pair 118, with the same drive. Such square spine processing will be described with reference to Figs. 11(a) to 11(d).
[0107] In the square spine processing, the center folding control unit 344 is triggered by detecting the leading end of the sheet bundle Sb by the saddle conveyance sensor 117, and conveys the center folded sheet bundle Sb between the upper clamp unit 121 and the lower clamp unit 120 which are in a separated state. Then, as shown in FIG. 11(a), the center folding control unit 344 stops conveying the sheet bundle Sb in a state where the spine Ssp of the sheet bundle Sb protrudes further downstream in the first conveying direction than the end faces 121b and 120c on the downstream side in the first conveying direction of the upper clamp unit 121 and the lower clamp unit 120.
[0108] In this state, the square spine processing control unit 345 drives the clamp drive motor 132 (FIGS. 7(a) and (b)) to move the upper clamp unit 121 toward the lower clamp unit 120, and as shown in FIG. 11(b), the sheet stack Sb is clamped by the upper clamp unit 121 and the lower clamp unit 120. At this time, the spine Ssp of the sheet stack Sb protrudes downstream by P1 beyond the end faces 121b and 120c on the downstream side in the first conveying direction of the upper clamp unit 121 and the lower clamp unit 120.
[0109] Next, the square spine processing control unit 345 operates the drive motor 135 (FIG. 7(b)) to move the square spine processing unit 134 in the width direction of the sheet bundle Sb. At this time, as shown in FIG. 11(c), the pressing roller 123 of the square spine processing unit 134 moves in the width direction while pressing the spine Ssp of the sheet bundle Sb, so that the square spine processing is performed on the spine Ssp of the sheet bundle Sb. After that, as shown in FIG. 11(d), the square spine processing control unit 345 drives the clamp drive motor 132 (FIGS. 7(a) and (b)) to separate the upper clamp unit 121 from the lower clamp unit 120, and releases the clamping of the sheet bundle Sb. Then, the above-mentioned discharge operation of the sheet bundle Sb is performed.
[0110] [Details of the saddle ejection section] 12 to 21, a saddle discharge section 160 that discharges the sheet bundle processed by the saddle section B2 of the sheet processing device B of this embodiment will be described. The saddle discharge section 160 has a saddle discharge unit 131 including the above-mentioned saddle discharge tray 129, a saddle discharge port 126, a discharge cover 151, and the like. A sheet bundle that has been saddle-stitched and center-folded in the saddle section B2 or a sheet bundle that has been square-back processed is discharged from the saddle discharge port 126 to the saddle discharge tray 129, which serves as a sheet bundle discharge section.
[0111] As shown in FIG. 12, an opening 161 is provided on the sheet stack discharge side of the saddle portion B2 of the housing 27. That is, the housing 27 has the opening 161 vertically above the saddle discharge tray 129 of the stacking wall 50, which is the wall on the side where the sheet stack is discharged from the square spine processing portion C2. In other words, the opening 161 is an opening formed in the lower part of the stacking wall 50, and constitutes a part of the above-mentioned saddle discharge port 126. As shown in FIG. 13 and FIG. 14, the saddle discharge port 126 is a gap formed between the discharge cover 151 and the saddle discharge tray 129 by covering the upper part of the opening 161 with the discharge cover 151, and the sheet stack is discharged through this gap and the opening 161. That is, the discharge cover 151 is arranged to cover a part of the opening 161 so that the sheet stack can be discharged from inside the housing 27 to the saddle discharge tray 129 through the gap between the discharge cover 151 and the saddle discharge tray 129 and the opening 161.
[0112] Therefore, the opening area of the opening 161 is larger than that of the saddle discharge port 126, and as described below, the inside of the device can be accessed by opening the discharge cover 151. In this embodiment, as shown in Fig. 2, the opening 161 is formed at a position where at least a part of it overlaps with the saddle discharge guide 124 when viewed from the discharge direction of the sheet stack.
[0113] As described above, the discharge port for discharging the sheet stack that has been subjected to the square spine treatment is required to have a sufficiently large opening. In this embodiment, the sheet stack is discharged from the saddle discharge port 126, which has the opening 161 partially covered by the discharge cover 151 as described above. Therefore, when the discharge cover 151 is opened, the inside of the housing 27 can be accessed through the opening 161. The clamp mechanism C5 having the lower clamp unit 120 and the upper clamp unit 121 is provided inside the housing 27. The clamp mechanism C5 presses the sheet stack with a force of, for example, 80 kgf (approximately 800 N), so it is necessary to provide a configuration that satisfies the safety standard IEC62368-1.
[0114] For this reason, the present embodiment is configured as follows. First, downstream of the square spine processing section C2 in the conveying direction of the sheet bundle by the saddle third roller pair 118, a saddle discharge guide 124 is disposed to guide the sheet bundle subjected to the square spine processing by the square spine processing section C2 toward the saddle discharge tray 129. In addition, downstream of the saddle discharge guide 124 in the conveying direction of the sheet bundle by the saddle third roller pair 118, the above-mentioned discharge cover 151 is disposed. As is clear from FIG. 12 and FIG. 13, the size L1 in the width direction of the sheet bundle of the discharge cover 151 is larger than the size L2 in the width direction of the saddle discharge guide 124 at a position where at least a part of the discharge cover 151 overlaps with the saddle discharge guide 124 when viewed from the discharge direction of the sheet bundle. As described above, the discharge cover 151 is disposed with a gap of the distance D from the saddle discharge tray 129 in the vertical direction.
[0115] With this configuration, the sheet bundle subjected to the square spine processing in the square spine processing section C2 is guided to the saddle discharge tray 129 by the saddle discharge guide 124. Then, this sheet bundle is discharged from the saddle discharge port 126, which is a gap between the discharge cover 151, which has a larger width than the saddle discharge guide 124, and the saddle discharge tray 129. For this reason, it is difficult to access the clamp mechanism C5 of the square spine processing section C2 from outside the sheet processing device B through the saddle discharge port 126. In particular, even if the opening 161 is formed as in this embodiment, the upper part of this opening 161 is covered by the discharge cover 151, which has a larger width than the saddle discharge guide 124. The upper part of the opening 161 is close to the clamp mechanism C5, but in this state covered by the discharge cover 151, the clamp mechanism C5 cannot be accessed through the opening 161, and safety can be sufficiently ensured.
[0116] [Discharge cover] Such a discharge cover 151 will be described in more detail. The discharge cover 151 is supported by a movable wall portion 51 that is movable vertically along the stacking wall 50 together with the first tray 49. As described above, the first tray 49 is capable of ascending and descending relative to the processing tray 37, and gradually descends when a sheet or a sheet stack is discharged onto the stacking surface 49a on which the sheets are stacked. The rear end (upstream end) of the sheet or sheet stack stacked on the first tray 49 abuts against the stacking wall 50 on the upstream side of the first tray 49 in the sheet discharge direction, and the sheet or sheet stack is stacked along the stacking wall 50.
[0117] In this embodiment, in order to increase the amount of sheets or sheet stacks loaded on the first tray 49, the first tray 49 can be lowered to the position shown in FIG. 17, which will be described later. At this time, the loading surface 49a of the first tray 49 is positioned lower than the upper end of the opening 161 in the vertical direction. Then, the opening 161 is present on the upstream side of the first tray 49 in the discharge direction, and the rear end of the sheets or sheet stack on the first tray 49 cannot be regulated. Therefore, in this embodiment, as described above, a moving wall portion 51 that moves together with the first tray 49 is provided.
[0118] That is, when the first tray 49 is lowered so that the stacking surface 49a is positioned lower than the upper end of the opening 161 in the vertical direction, the movable wall portion 51 moves together with the first tray 49 to cover the area of the opening 161 above the stacking surface 49a. As a result, even if the first tray 49 is lowered to a position where the stacking surface 49a is lower than the upper end of the opening 161, the rear end of the sheets or sheet bundle on the first tray 49 is regulated by the movable wall portion 51. With this configuration, in this embodiment, it is possible to increase the stacking amount of sheets or sheet bundles on the first tray 49 while reliably regulating the rear ends of the sheets or sheet bundles on the first tray 49.
[0119] 15(a) is a perspective view of the discharge cover 151 and the moving wall portion 51 as viewed from the inside (rear side) of the device, and FIG. 15(b) is an enlarged view of a part of the discharge cover 151. As shown in FIGS. 15(a) and 15(b), the discharge cover 151 is supported rotatably about a rotation shaft 51a provided on the moving wall portion 51 in parallel with the width direction. That is, the discharge cover 151 is rotatable about the rotation shaft 51a between a closed position (first position) shown in FIG. 2 and an open position (second position) shown in FIG. 16. The open position is a position where the opening 161 is exposed when the lower end of the discharge cover 151 in the vertical direction is located downstream of the closed position in the discharge direction of the sheet stack, and the first tray 49 is located above a predetermined position described below, as shown in FIG. 16.
[0120] When the first tray 49 is lowered below a predetermined position together with the moving wall portion 51 in the vertical direction, the discharge cover 151 rotates about the rotation shaft 51a, thereby allowing the first tray 49 to be lowered below the predetermined position, as shown in FIG. 17. In order to rotate the discharge cover 151 about the rotation shaft 51a in this manner, a guide block 162 is arranged as a rotation guide portion on one widthwise side of the saddle discharge tray 129, as shown in FIGS. 18 and 19. The widthwise side on which the guide block 162 is arranged may be either of the two widthwise sides, and in this embodiment, the guide block 162 is arranged on the right side in FIG. 14. When the first tray 49 is lowered below the predetermined position, the guide block 162 engages with a part of the discharge cover 151 to guide the rotation of the discharge cover 151 about the rotation shaft 51a.
[0121] 13 and 14, the discharge cover 151 has a first portion 151a extending in a substantially vertical direction in the closed position to cover a part of the opening 161, a second portion 151b extending from a vertical lower end of the first portion 151a downstream in the discharge direction of the sheet stack, and a pair of side portions 151c provided at both ends in the width direction of the first portion 151a and the second portion 151b. The vertical lower ends of the pair of side portions 151c extend vertically downward beyond the second portion 151b. Abutment portions 151d provided at the lower ends of the pair of side portions 151c are engageable with the guide block 162.
[0122] More specifically, the first portion 151a has a length greater than the width of the opening 161 and covers an upper portion of the opening 161 in the closed position. The second portion 151b has the same width as the first portion 151a and extends from the lower end of the first portion 151a in the sheet stack discharge direction in the closed position. A saddle discharge port 126 for discharging the sheet stack is defined between the second portion 151b and the saddle discharge tray 129. As described later, the length of the second portion 151b in the sheet stack discharge direction is set so that even if a "child-touchable probe" is inserted into the saddle discharge port 126, it will not reach the clamp mechanism C5 (see FIG. 20 described later).
[0123] The pair of side portions 151c are provided to cover both widthwise sides of the first portion 151a and the second portion 151b and to protrude vertically downward from the second portion 151b. The widthwise distance between the pair of side portions 151c is greater than the widthwise length of the saddle discharge tray 129. Therefore, when the discharge cover 151 descends together with the moving wall portion 51, the abutting portions 151d of the pair of side portions 151c can move downward from the stacking surface 129c of the saddle discharge tray 129 without interfering with the saddle discharge tray 129. The abutting portions 151d of the pair of side portions 151c are located downstream in the sheet stack discharge direction from the rotation shaft 51a that rotatably supports the discharge cover 151.
[0124] Meanwhile, the guide block 162 has a guide surface 162a on its upper surface that guides the contact portions 151d of the pair of side surface portions 151c that are part of the discharge cover 151. The guide surface 162a is inclined downward toward the downstream in the discharge direction of the sheet stack. As a result, when the discharge cover 151 descends together with the moving wall portion 51, the contact portions 151d of the pair of side surface portions 151c come into contact with the guide surface 162a of the guide block 162, as shown in FIG. 18. In this embodiment, this position is the predetermined position.
[0125] Next, when the discharge cover 151 further descends together with the moving wall portion 51, the contact portions 151d of the pair of side portions 151c engage with the guide surfaces 162a and are guided along the inclined direction of the guide surfaces 162a. Then, as the discharge cover 151 descends, the contact portions 151d move downstream in the discharge direction of the sheet stack, and as shown in FIG. 19, the discharge cover 151 rotates around the rotation shaft 51a toward the open position.
[0126] As shown in FIG. 19, a guide rib 151e is provided on the inside of the second portion 151b (below the closed position). The guide rib 151e is provided so as to face the stacking surface 129c of the saddle discharge tray 129 when the discharge cover 151 is in the closed position. The guide rib 151e is provided at a distance from the stacking surface 129c, thereby forming a discharge path for the sheet stack between the guide rib 151e and the stacking surface 129c. As described above, when the discharge cover 151 is rotated by descending together with the moving wall portion 51 and abutting against the guide block 162, when the discharge cover 151 descends and rotates to a certain position, the guide rib 151e of the discharge cover 151 abuts against the stacking surface 129c of the saddle discharge tray 129. The guide rib 151e abuts against the stacking surface 129c, so that the discharge cover 151 opens to the position shown in FIG. 19. In this position, the contact portions 151d of the pair of side surface portions 151c and the guide block 162 are not in contact with each other.
[0127] As shown in Figs. 18 and 19, when the moving wall portion 51 is lowered together with the first tray 49, the job of discharging a sheet bundle to the saddle discharge tray 129 is not accepted. That is, when the number of sheets or sheet bundles loaded on the first tray 49 is large and the loading surface 49a of the first tray 49 is lowered, for example, below the upper end of the opening 161, the acceptance of jobs including saddle stitching and center folding in the saddle portion B2 is interrupted. That is, when the moving wall portion 51 is lowered together with the first tray 49 below a predetermined position in the vertical direction, the operation of the saddle portion B2 including the square spine processing portion C2 is prohibited. Therefore, when the first tray 49 is lowered to such a position, the sheet bundle is not discharged to the saddle discharge tray 129.
[0128] The guide surface 162a of the guide block 162 and the contact portion 151d of the pair of side portions 151c may have any shape as long as the discharge cover 151 swings toward the open position when the discharge cover 151 descends and contacts the guide block 162. For example, the guide surface 162a is a flat inclined surface in the illustrated example, but may be a curved surface. In the illustrated example, the contact portion 151d is formed of a straight portion 151d1 that is approximately parallel to the discharge direction of the sheet bundle in the closed position, and an inclined surface 151d2 that inclines upward from the upstream end of the straight portion 151d1 in the discharge direction of the sheet bundle toward the upstream side. However, the upstream end of the lower end of the pair of side portions 151c in the discharge direction of the sheet bundle may be curved, or a roller that rotates along the guide surface 162a may be provided at the lower end of the pair of side portions 151c.
[0129] 15(a) and 15(b), the present embodiment includes springs 51b as urging parts that urge the discharge cover 151 in a direction from the open position toward the closed position. The springs 51b are, for example, torsion coil springs that are arranged around the rotating shaft 51a and spaced apart from each other in the width direction, and urge the discharge cover 151 toward the closed position. The urging parts may be configured in other ways, such as rubber, as long as they urge the discharge cover 151 toward the closed position.
[0130] In addition, in the case of this embodiment, as shown in FIG. 2, an interlock portion 155 is provided. The interlock portion 155 permits the operation of the saddle portion B2 including the square back processing portion C2 when the discharge cover 151 is in the closed position, and prohibits the operation of the saddle portion B2 including the square back processing portion C2 when the discharge cover 151 is rotated a predetermined amount from the closed position to the open position. For this reason, as shown in FIG. 14, a flag 152 that rotates together with the discharge cover 151 is provided at an end portion on one side in the width direction of the discharge cover 151. In addition, a slit 153 through which the flag 152 can pass when the discharge cover 151 moves together with the moving wall portion 51 is formed in the wall portion 156 around the opening 161 on the housing 27 side.
[0131] The interlock unit 155 is, for example, a photointerrupter disposed inside the housing 27. Therefore, the flag 152 provided on the discharge cover 151 can be detected by the interlock unit 155 through the slit 153. The slit 153 is provided within a range in which the discharge cover 151 moves in the vertical direction, and the flag 152 can rotate together with the discharge cover 151 while passing through the slit 153 within this range.
[0132] When the flag 152 enters between the light-emitting part and the light-receiving part of the photointerrupter, the interlock part 155 detects the flag 152, and when the flag 152 retreats from between the light-emitting part and the light-receiving part, the interlock part 155 does not detect the flag 152. The interlock part 155 permits the operation of the saddle part B2 including the square back processing part C2 when the flag 152 is detected by the interlock part 155, and prohibits the operation of the saddle part B2 when the flag 152 is not detected by the interlock part 155. That is, when the flag 152 is no longer detected by the interlock part 155, the saddle control part 350 stops driving the saddle part B2. The above-mentioned predetermined amount is the rotation amount from the state in which the discharge cover 151 is in the closed position and the flag 152 is detected by the interlock part 155 to the point in time when the discharge cover 151 rotates toward the open position and the flag 152 is no longer detected by the interlock part 155.
[0133] 15(a) and 15(b), a recess 154 recessed toward the downstream side in the discharge direction of the sheet stack is formed in the approximate center in the width direction on the back side of the discharge cover 151. As described above, the saddle discharge guide 124 can swing around the first fulcrum 124b as a swing shaft provided in parallel with the width direction at the upper end in the vertical direction, and swings when guiding the sheet stack that has been subjected to the square spine processing by the square spine processing unit C2 toward the saddle discharge tray 129 (see FIG. 2). For this reason, the discharge cover 151 has the recess 154 formed to be recessed toward the downstream side in the discharge direction of the sheet stack so as not to interfere with the saddle discharge guide 124 even if the saddle discharge guide 124 swings when guiding the sheet stack.
[0134] In the present embodiment configured as described above, when the discharge cover 151 is in the open position, the operation of the saddle part B2 is prohibited by the interlock part 155, so it is safe for an operator to access the inside of the device through the opening 161 for work. On the other hand, when the discharge cover 151 is in the closed position, the operation of the saddle part B2 is not prohibited, so even if an operator tries to access the inside of the device from the saddle discharge port 126, his / her hand or the like cannot reach the clamp mechanism C5. This makes it possible for the present embodiment to meet the safety standard IEC62368-1. This point will be described with reference to FIG. 20.
[0135] FIG. 20 is a cross-sectional view showing a state where a "child-touchable probe (hereinafter, tactile probe 170)" is inserted from the saddle discharge port 126 in the sheet processing device B of this embodiment. The tactile probe 170 is based on the safety standard IEC62368-1. As described above, the saddle discharge port 126 is a gap between the discharge cover 151 and the saddle discharge tray 129. The discharge cover 151 has a second portion 151b protruding in the discharge direction of the sheet bundle, and the loading surface 129c of the saddle discharge tray 129 is inclined downward toward the upstream side in the discharge direction of the sheet bundle. Therefore, the gap between the second portion 151b of the discharge cover 151 in the closed position and the loading surface 129c of the saddle discharge tray 129 differs in the discharge direction of the sheet bundle, and the interval d1 at the upstream end position of the second portion 151b in the discharge direction of the sheet bundle is the narrowest, and the interval d2 at the downstream end position of the second portion 151b in the discharge direction of the sheet bundle is the widest. For example, d1 is 60 mm, and d2 is 65 mm. By setting the distances d1 and d2 in this manner, the sheet stack can be fed to the saddle discharge tray 129 without being obstructed by the discharge cover 151.
[0136] When the tangible probe 170 is inserted into the saddle discharge port 126 from the upstream side in the discharge direction of the sheet bundle, the tangible probe 170 comes into contact with three points: a position α1 at the tip (downstream end in the discharge direction) of the loading surface 129c of the saddle discharge tray 129, a position α2 at the upstream end in the discharge direction of the sheet bundle on the inner surface of the second portion 151b, and a position α3 on the upstream side in the discharge direction of the sheet bundle on the loading surface 127b of the saddle discharge upstream tray 127. Then, the tangible probe 170 cannot be inserted any further (upstream in the discharge direction of the sheet bundle). As is clear from FIG. 20, the tangible probe 170 does not reach the clamp mechanism C5, and it can be seen that the configuration of this embodiment satisfies the safety standard IEC62368-1.
[0137] <Other embodiments> In the above embodiment, the guide block 162 is used as the rotation guide for rotating the discharge cover 151 when the moving wall 51 is lowered together with the first tray 49. However, the configuration of the rotation guide is not limited thereto. For example, as shown in FIG. 21, instead of the guide block 162, two cylindrical pins 163a and 163b may be provided on one widthwise side of the saddle discharge tray 129. The widthwise side on which the pins 163a and 163b are arranged may be either of the two widthwise sides, and in the illustrated example, it is the left side in FIG. 21. The pin 163b is provided vertically below the pin 163a and downstream in the discharge direction of the sheet stack.
[0138] When the discharge cover 151 descends, the abutment portions 151d of the pair of side surface portions 151c first engage with the upper pin 163a. Since the pin 163a is located downstream in the discharge direction from the rotation shaft 51a of the discharge cover 151, the discharge cover 151 continues to descend while the abutment portions 151d of the discharge cover 151 abut against the curved surface of the pin 163a, and the abutment portions 151d are guided by the pin 163a, causing the discharge cover 151 to rotate toward the open position.
[0139] Next, when the discharge cover 151 is further lowered, the discharge cover 151 opens to a certain angle, and the contact portion 151d engages with the lower pin 163b. Then, the contact portion 151d is guided by the pin 163b, and the discharge cover 151 rotates further in the opening direction. Thereafter, as in the case described in FIG. 19, the discharge cover 151 is lowered while the guide rib 151e provided on the inside of the discharge cover 151 is in contact with the loading surface 129c, and the discharge cover 151 is in the open state. The above-mentioned guide block 162 and the pins 163a and 163b may be provided on only one side in the width direction, or on both sides.
[0140] In the above embodiment, the square spine processing is performed downstream inside the saddle unit B2 in the sheet processing device B, but the same square spine processing may be performed in another housing connected to the outside. For example, it may be a single unit that performs only the square spine processing without performing saddle stitching or center folding. In this case, this unit has the above-mentioned square spine processing unit C2 and a conveying unit such as a conveying roller pair that conveys the sheet bundle that has been saddle stitched and center folded to the square spine processing unit C2.
[0141] In addition, in the above-described embodiment, the sheet processing device B has a control unit that controls each internal configuration of the sheet processing device B, but each internal configuration of the sheet processing device B may be configured to be controlled by a control unit provided in the image forming device.
[0142] In the above embodiment, the image forming system 1000 in which the sheet processing apparatus B is directly connected to the image forming apparatus A has been described, but other system configurations may be used. For example, a configuration in which other processing apparatuses, conveying apparatuses, etc. are connected between the image forming apparatus A and the sheet processing apparatus B may be used. In the above embodiment, the image forming apparatus A that forms a monochrome image using toner has been described as an example, but the image forming apparatus may be an image forming apparatus that forms a color image using toner, or an image forming apparatus that forms an image on a sheet using ink.
[0143] Furthermore, in the above embodiment, a pair of rollers is used as an example of a conveying means for conveying a sheet inside the sheet processing device B, but a belt may be used to convey the sheet. Specifically, the conveying means may be any of a pair of rollers that sandwiches the belt to convey the sheet, a pair of belts that sandwiches the sheet to convey the sheet, and a belt and rollers that sandwich the sheet. The conveying structure may be changed depending on the position or route to convey the sheet. For example, the sheet may be conveyed by a pair of rollers at one position and by a pair of belts at another position.
[0144] The disclosure of this embodiment also includes the following configuration. (Configuration 1) a first transport path that receives a sheet discharged from the image forming apparatus and transports the sheet; a first stacking unit that stacks the sheets transported to the first transport path; a first binding processing unit that performs a binding process on an end of a sheet bundle made up of a plurality of sheets accumulated in the first accumulation unit; a stacking section that is movable up and down with respect to the first stacking section and that stacks the sheet bundle that has been bound by the first binding processing section; a second transport path that branches off from the first transport path and transports a sheet in a vertically downward direction relative to the first transport path; a second stacking unit that stacks the sheets transported to the second transport path; a second binding processing section that performs saddle stitching processing on a sheet bundle consisting of a plurality of sheets accumulated in the second accumulation section; a folding roller pair that sandwiches and conveys the sheet bundle so that the spine of the sheet bundle is located downstream of the end of the fore-edge side, thereby folding the sheet bundle in the middle; and a pressing section that presses the sheet bundle that has been saddle-stitched by the second binding section toward a nip section of the folding roller pair, and a center-folding processing section that performs center-folding on the sheet bundle; a pair of conveying rollers for sandwiching and conveying the sheet bundle that has been center-folded by the center-folding processing unit; a pair of clamping sections that clamp and release the sheet bundle by moving relatively along the thickness direction of the sheet bundle conveyed by the conveying roller pair, and a pressing roller that presses the spine of the sheet bundle clamped by the pair of clamping sections by moving along the width direction of the sheet bundle in a state in which the spine of the sheet bundle conveyed by the conveying roller pair protrudes downstream in the conveying direction of the conveying roller pair from the pair of clamping sections, and a square spine processing section that performs square spine processing to form a corner on the spine of the sheet bundle center-folded by the center-folding processing section; a sheet bundle discharge section to which the sheet bundle subjected to the square spine processing by the square spine processing section is discharged; a discharge guide section that is disposed downstream of the square spine processing section in a conveying direction of the sheet bundle by the conveying roller pair and that guides the sheet bundle that has been subjected to the square spine processing by the square spine processing section toward the sheet bundle discharge section; a cover member provided downstream of the discharge guide portion in the conveying direction of the sheet stack by the conveying roller pair, and having a size in the width direction of the sheet stack that is larger than the size in the width direction of the discharge guide portion at a position where at least a portion of the cover member overlaps with the discharge guide portion when viewed from the discharge direction of the sheet stack, and the cover member is provided at a distance from the sheet stack discharge portion in the vertical direction. (Configuration 2) the discharge guide portion is rotatable about a pivot axis provided at a vertical upper end portion thereof parallel to the width direction, The sheet processing device described in configuration 1 is characterized in that the cover member has a recess that is recessed toward the downstream side in the discharge direction of the sheet stack so as not to interfere with the discharge guide portion even if the discharge guide portion swings when guiding the sheet stack that has been subjected to square spine processing by the square spine processing portion toward the sheet stack discharge portion. (Configuration 3) a housing that accommodates the first transport path, the first stacking unit, the first binding processing unit, the second transport path, the second stacking unit, the second binding processing unit, the center-folding processing unit, the pair of transport rollers, the square spine processing unit, and the discharge guide; the housing has an opening vertically above the sheet stack discharge portion in a wall portion on a side from which the sheet stack is discharged from the square spine processing portion, The sheet processing device described in configuration 1 or 2, characterized in that the cover member is arranged to cover a portion of the opening so that a sheet bundle can be discharged from inside the housing to the sheet bundle discharge portion through a gap between the cover member and the sheet bundle discharge portion and through the opening. (Configuration 4) 4. The sheet processing apparatus according to configuration 3, wherein the opening is formed at a position at which at least a part of the opening overlaps with the discharge guide portion when viewed from the discharge direction of the sheet stack. (Configuration 5) a movable wall portion movable along the wall portion in a vertical direction together with the loading portion, The sheet processing device described in configuration 3 or 4, characterized in that when the loading section is lowered so that the loading surface on which the sheets of the loading section are loaded is positioned lower than the upper end of the opening in the vertical direction, the movable wall section moves together with the loading section to cover the area above the loading surface of the opening. (Configuration 6) The cover member is supported on the movable wall portion so as to be rotatable about a rotation axis provided parallel to the width direction, The sheet processing device described in configuration 5, characterized in that when the loading section, together with the movable wall section, descends below a predetermined position in the vertical direction, the cover member rotates around the pivot axis, thereby allowing the loading section to descend below the predetermined position. (Configuration 7) The sheet processing device described in configuration 6 is characterized in that it is provided with a rotation guide portion that engages with a part of the cover member when the stacking portion is lowered below the predetermined position to guide the rotation of the cover member about the rotation axis. (Configuration 8) the cover member is rotatable about the rotation shaft to a first position and a second position in which the vertical lower end is located downstream of the first position in a sheet stack discharge direction, a biasing portion that biases the cover member in a direction from the second position toward the first position; The sheet processing device described in configuration 6 or 7 is characterized in that it is provided with an interlock unit that allows operation of the square spine processing unit when the cover member is in the first position and prohibits operation of the square spine processing unit when the cover member is rotated a predetermined amount from the first position toward the second position. (Configuration 9) The sheet processing device according to any one of configurations 6 to 8, characterized in that when the movable wall portion together with the stacking portion descends below the predetermined position in the vertical direction, the operation of the square spine processing portion is prohibited. (Configuration 10) A first virtual line is a first line passing through the rotation centers of the pair of folding rollers and a line perpendicular to the width direction that passes through the nip of the pair of folding rollers when the sheet stack is not being sandwiched, and a second virtual line is a second line passing through the rotation centers of the pair of conveying rollers and a line perpendicular to the width direction that passes through the nip of the pair of conveying rollers when the sheet stack is not being sandwiched, the conveying roller pair is provided such that the second imaginary line intersects with the first imaginary line and the second imaginary line is inclined downward in a vertical direction toward a downstream of the folding roller pair in a conveying direction, The sheet processing device according to any one of configurations 1 to 9, characterized in that a conveying path for conveying the sheet stack between the pair of folding rollers and the pair of conveying rollers is curved so that the sheet stack conveyed by the pair of folding rollers is handed over to the pair of conveying rollers. (Configuration 11) an image forming unit having an image forming section for forming an image on a sheet; The sheet processing device according to any one of configurations 1 to 10, The image forming system is characterized in that the sheet processing device performs the square spine processing on a sheet bundle obtained by bundling sheets on which images have been formed by the image forming unit. [Explanation of symbols]
[0145] 3. Image forming section 27. Housing 28 Straight path (first transfer path) 32 Saddle path (second transfer path) 37 Processing tray (first stacking section) 47 Binding processing mechanism (first binding processing section) 49 First tray (loading area) 49a Loading surface 50···Loading wall (wall section) 51... Movable wall section 51a Rotating shaft 51b Spring (urging part) 104: Saddle stitch processing section (second stitch processing section) 112 Center-folding processing section 112a... Veneer (pressing part) 113... Folding roller pair 117···Saddle transport sensor (detection part) 118....Saddle third roller pair (transport roller pair) 120···Lower clamp unit (clamp section) 121···Upper clamp unit (clamp section) 123 Pressure roller 124 Saddle ejection guide (ejection guide part) 124b... First fulcrum (swing axis) 129 Saddle discharge tray (sheet stack discharge section) 151... Discharge cover (cover member) 154...Recess 155···Interlock section 161...Opening 162 Guide block (rotating guide section) 163a, 163b... Pin (rotation guide part) 1000···Image forming system A. Image forming device B Sheet processing device C2: Corner back processing section Sb: Sheet bundle Sb1...1st page Sb2...2nd side
Claims
1. A sheet processing device that performs corner back processing on a sheet bundle, A conveying unit that conveys the sheet bundle in the conveying direction, A pair of clamping parts for holding the sheet bundle conveyed by the conveying unit, A pressing section that presses the back of the sheet bundle held by the pair of clamping sections to perform corner back processing, A discharge tray from which the sheet bundles that have undergone the aforementioned corner-back treatment are discharged, A first cover portion is positioned downstream in the transport direction from the pair of clamp portions, A discharge unit that discharges the sheet bundle that has undergone the corner-back treatment into the discharge tray through an opening formed between the first cover portion and the discharge tray, A second cover portion extends from the upper edge of the opening in the direction opposite to the pair of clamp portions so as to face the discharge tray, Equipped with, The clamp portion that holds the sheet bundle is positioned upstream of the second cover portion in the extending direction, and vertically above the lower end of the second cover portion, The sheet processing apparatus is characterized in that the length of the second cover portion in the extending direction is set to a length such that a child-accessible probe of safety standard IEC 62368-1, which is inserted into the inside of the apparatus from below the second cover portion through the opening, does not reach the clamping portion of the clamp.
2. The system further includes a discharge guide section that guides the sheet bundle, which has undergone the aforementioned corner-back treatment, toward the discharge tray, and the discharge guide section is pivotable about a pivot axis provided at its upper vertical end parallel to the width direction of the sheet bundle. The sheet processing apparatus according to claim 1, characterized in that the second cover portion has a recess that is recessed toward the downstream side in the extension direction of the second cover portion in order to avoid interference with the discharge guide portion even when the discharge guide portion swings when guiding the sheet bundle that has been subjected to the corner-back treatment toward the discharge tray.
3. The second cover portion is, At a position where the second cover portion overlaps with the discharge guide portion when viewed from the direction of extension, The sheet processing apparatus according to claim 2, characterized in that the size of the sheet bundle in the width direction is larger than the size of the discharge guide portion in the width direction.
4. The sheet processing apparatus according to claim 1, characterized in that the second cover portion is arranged to cover a part of the opening.
5. An image forming unit that forms an image on a sheet, A sheet processing apparatus according to any one of claims 1 to 4, Equipped with, The aforementioned sheet processing device is An image forming system characterized by applying the corner backing treatment to a sheet bundle, which is a bundle of sheets on which images have been formed by the image forming unit.