The present application claims priority to and incorporates by reference the entire contents of Japanese Patent Application No. 2013-007726 filed in Japan on Jan. 18, 2013 and Japanese Patent Application No. 2013-225737 filed in Japan on Oct. 30, 2013.
1. Field of the Invention
The present invention relates to a sheet processing apparatus, an image forming system, and a sheet-bundle additional folding method, and more particularly, to a sheet processing apparatus having a function of folding a sheet-like recording medium such as paper, recording paper, and transfer paper (hereinafter, referred to simply as a “sheet” in the present specification), an image forming system including the sheet processing apparatus, and a sheet-bundle additional folding method implemented by the sheet processing apparatus.
2. Description of the Related Art
Conventionally, in post-processing apparatuses used in combination with an image forming apparatus such as a copier, there are ones that bind a bundle of one or more sheets into a saddle-stitched booklet by saddle-stitching and folding the center of the sheet bundle with use of a pair of folding rollers installed parallel to each other in a sheet folding direction.
Furthermore, there is already known an additional folding technique for enhancing a fold in a folded saddle-stitched booklet by moving an additional folding roller along the fold after saddle-stitching and center-folding are performed on a sheet bundle.
As one of such additional folding techniques, for example, a technology disclosed in Japanese Patent Application Laid-open No. 2012-153530 is well known.
A sheet processing apparatus according to this technology includes a folding roller unit, an additional folding roller unit, and a drive unit. The folding roller unit makes a fold in a sheet while the sheet is passing through a nip between a pair of rollers. The additional folding roller unit includes first to third rollers: the first roller installed on the side of a first plane perpendicular to a direction of conveying a sheet bundle folded by the folding roller unit and the second and third rollers installed on the side of a second plane perpendicular to the sheet-bundle conveying direction; the second and third rollers each form a nip with the first roller. The drive unit drives the additional folding roller unit to move along the fold in a state where the sheet bundle is held in the nip between the first and second rollers and the nip between the first and third rollers. This configuration enables the sheet processing apparatus to perform additional folding sufficiently when performing the additional folding on a sheet bundle.
Specifically, the additional folding roller unit described in Patent document 1 includes three additional folding rollers, and is driven to move along a fold in a sheet bundle in a state where the fold is held between the rollers. In this regard, a roller having a larger diameter than those of the second and third rollers is used as the first roller.
In a case of using three folding rollers in this way, two nips are formed, and respective tangential angles of the nips are not parallel. Therefore, a direction of force applied to a staple differs between the nips, and therefore the staple may be deformed.
There is a method for enhancing a fold by shifting an angle between a direction of the tangent to a pair of additional folding rollers and a thickness direction of a sheet bundle from 90 degrees; however, in this enhancing method, a staple may be deformed depending on the position of the staple in the additional folding.
Namely, if we focus on enhancing a fold, a staple may be deformed; on the other hand, if we focus on preventing deformation of a staple, enhancement of a fold may be insufficient.
Therefore, there is a need for a sheet processing apparatus to enable a user to make a choice between emphasis on enhancement of a fold and emphasis on suppression of staple deformation in accordance with user's intention.
It is an object of the present invention to at least partially solve the problems in the conventional technology.
According to an embodiment, there is provided a sheet processing apparatus that includes a pressing unit including a first pressing member and a second pressing member, the pressing unit being configured to press a fold in a folded sheet bundle by holding the fold between the first pressing member and the second pressing member; a moving unit configured to move a pressing position of the pressing unit in a direction of the fold in the sheet bundle; and a position changing unit configured to change relative positions of the first pressing member and the second pressing member in the direction of the fold in the sheet bundle.
According to another embodiment, there is provided an image forming system that includes the sheet processing apparatus according to the above embodiment.
According to still another embodiment, there is provided a sheet-bundle additional folding method for a sheet processing apparatus that includes a pressing unit configured to press a fold in a folded sheet bundle by holding the fold between a first pressing member and a second pressing member, and a moving unit configured to move a pressing position of the pressing unit in a direction of the fold in the sheet bundle. The sheet-bundle additional folding method includes changing relative positions of the first pressing member and the second pressing member in the direction of the fold in the sheet bundle.
The above and other objects, features, advantages and technical and industrial significance of this invention will be better understood by reading the following detailed description of presently preferred embodiments of the invention, when considered in connection with the accompanying drawings.
The present invention enables a user to make a choice between enhancement of a fold in a sheet bundle by changing the relative positions of a pair of first and second pressing members in a sheet-bundle folding direction and suppression of staple deformation in accordance with user's intention.
An exemplary embodiment of the present invention will be explained below with reference to accompanying drawings.
The first sheet post-processing apparatus 1 is a sheet post-processing apparatus having a sheet-bundle making function of receiving sheets one by one from the image forming apparatus PR and sequentially aligning and laying the sheets on top of another, thereby creating a sheet bundle in a stack unit, and discharges the sheet bundle into the subsequent second sheet post-processing apparatus 2 through a sheet-bundle discharge roller 10. The second sheet post-processing apparatus 2 is a saddle-stitch bookbinding apparatus that receives a sheet bundle conveyed thereto and performs saddle-stitching and center-folding on the sheet bundle. In the present specification, the second sheet post-processing apparatus 2 is also referred to as the saddle-stitch bookbinding apparatus.
The saddle-stitch bookbinding apparatus 2 discharges a finished booklet (the bound sheet bundle) to the outside or a subsequent sheet processing apparatus. The image forming apparatus PR forms a visible image on a sheet-like recording medium on the basis of input image data or image data of a scanned image. The image forming apparatus PR corresponds to, for example, a copier, a printer, a facsimile device, or a digital multifunction peripheral having at least two of these functions. An image forming method of the image forming apparatus PR can be any publicly-known methods, such as an electrophotographic method and a droplet injection method.
As illustrated in
On the downstream side of the entrance roller 201 in the entrance path 241, a bifurcating claw 202 is installed. This bifurcating claw 202 is horizontally placed, and bifurcates the conveying direction of a sheet bundle into the sheet-through path 242 and the center-folding path 243. The sheet-through path 242 is a sheet path which extends horizontally from the entrance path 241 and leads a sheet bundle into a subsequent processing apparatus (not illustrated) or a copy receiving tray, and the sheet bundle is discharged into the subsequent stage through an upper discharge roller 203. The center-folding path 243 is a sheet path which extends vertically downward from the bifurcating claw 202 and is for performing saddle-stitching and center-folding on a sheet bundle.
The center-folding path 243 includes an upper bundle conveyance guide plate 207 for guiding a sheet bundle on the upper side of a folding plate 215 for center-folding and a lower bundle conveyance guide plate 208 for guiding the sheet bundle on the lower part of the folding plate 215. On the upper bundle conveyance guide plate 207, an upper bundle conveyance roller 205, a trailing-end tapping claw 221, and a lower bundle conveyance roller 206 are installed in this order from the above. The trailing-end tapping claw 221 is placed to stand straight to a trailing-end tapping claw drive belt 222 driven by a drive motor (not illustrated). In accordance with the reciprocating rotation movement of the trailing-end tapping claw drive belt 222, the trailing-end tapping claw 221 taps (pushes) the trailing end of a sheet bundle to the side of a movable fence to be described later, thereby aligning the sheet bundle. Incidentally, when a sheet bundle is conveyed into the center-folding path 243 and when a sheet bundle is lifted up to be center-folded, the trailing-end tapping claw 221 is retracted from the center-folding path 243 on the upper bundle conveyance guide plate 207 (a dashed line position in
A reference numeral 294 denotes a trailing-end tapping claw HP sensor for detecting the home position of the trailing-end tapping claw 221, and detects the dashed line position in
On the lower bundle conveyance guide plate 208, a saddle-stitch stapler S1, a pair of saddle-stitch jogger fences 225, and a movable fence 210 are installed in this order from the above. The lower bundle conveyance guide plate 208 is a guide plate for receiving a sheet bundle conveyed through the upper bundle conveyance guide plate 207; the pair of saddle-stitch jogger fences 225 is installed in a width direction of the lower bundle conveyance guide plate 208, and the movable fence 210 is movably installed on the lower part of the lower bundle conveyance guide plate 208 so that the movable fence 210 can move up and down to come in contact with (support) the leading end of a sheet bundle.
The saddle-stitch stapler S1 is a stapler for binding the center of a sheet bundle. In a state where the movable fence 210 supports the leading end of a sheet bundle, the movable fence 210 moves vertically to bring the center position of the sheet bundle to the position opposed to the saddle-stitch stapler S1, and the sheet bundle is stapled, i.e., saddle-stitched in the position. The movable fence 210 is supported by a movable-fence drive mechanism 210a, and can move from the position opposed to a movable fence HP sensor 292 located on the upper side of the lower bundle conveyance guide plate 208 to the bottom of the lower bundle conveyance guide plate 208. As a movable range of the movable fence 210 with which the leading end of a sheet bundle has contact, a stroke enough to process any sizes of sheets from the maximum size to the minimum size that the saddle-stitch bookbinding apparatus 2 can process is ensured. Incidentally, as the movable-fence drive mechanism 210a, for example, a rack-and-pinion mechanism is used.
In between the upper and lower bundle conveyance guide plates 207 and 208, i.e., roughly in the center of the center-folding path 243, the folding plate 215, a pair of folding rollers 230, an additional folding roller unit 260, and a lower sheet discharge roller 231 are installed. The additional folding roller unit 260 includes additional folding rollers which are arranged one above the other across a sheet discharge path running between the pair of folding rollers 230 and the lower sheet discharge roller 231. The folding plate 215 can reciprocate in a horizontal direction, and a nip between the pair of folding rollers 230 is located in a reciprocating direction of the folding plate 215 when a folding operation is performed, and a sheet discharge path 244 is provided as an extension of the nip. The lower sheet discharge roller 231 is installed on the downmost stream of the sheet discharge path 244, and discharges a folded sheet bundle to the subsequent stage.
A sheet-bundle detection sensor 291 is installed on the side of the lower end of the upper bundle conveyance guide plate 207, and detects the leading end of a sheet bundle which is conveyed into the center-folding path 243 and passes through the center-folding position. Furthermore, a fold passage sensor 293 is installed in the sheet discharge path 244, and detects the leading end of a center-folded sheet bundle, thereby recognizing the passage of the sheet bundle.
Generally, in the saddle-stitch bookbinding apparatus 2 configured as illustrated in
A sheet bundle SB having been conveyed into the center-folding path 243 is conveyed to the downstream of the center-folding path 243 by the entrance roller 201 and the upper bundle conveyance roller 205, and further conveyed to the position where after the sheet-bundle detection sensor 291 has confirmed the passage of the sheet bundle SB, the sheet bundle SB is caused to bump the leading end into the movable fence 210 by the lower bundle conveyance roller 206 as illustrated in
In this state, when the sheet bundle SB is released from nip pressure applied by the lower bundle conveyance roller 206 (the lower bundle conveyance roller 206 moves in a direction of arrow a) as illustrated in
After that, alignment of the sheet bundle SB in the width direction (a direction perpendicular to the sheet conveying direction) by the saddle-stitch jogger fences 225 and alignment of the sheet bundle SB in the conveying direction by the movable fence 210 and the trailing-end tapping claw 221 are executed, and the alignment operation of the sheet bundle SB in the width direction and the conveying direction is completed. At this time, respective pushing amounts of the trailing-end tapping claw 221 and the saddle-stitch jogger fences 225 are changed to optimum values on the basis of information on the sheet size, the number of sheets of the sheet bundle, and the thickness of the sheet bundle, and the alignment operation is performed.
If a bundle is thick, space in the sheet path is reduced; therefore, it is often the case that the bundle cannot be sufficiently aligned by one alignment operation. Therefore, in such a case, the number of alignments is increased. This makes possible to achieve a better alignment state. Furthermore, the time required to sequentially superpose sheets on the upstream side increases with increase in the number of sheets; therefore, it takes longer to receive the next sheet bundle SB. As a result, even if the number of alignments is increased, there is no time loss in the system, so it is possible to efficiently achieve a better alignment state. Therefore, it is also possible to control the number of alignments according to the processing time on the upstream.
Incidentally, the waiting position of the movable fence 210 is generally set to such a position that the saddle-stitch position of the sheet bundle SB is opposed to the binding position of the saddle-stitch stapler S1. By aligning the sheet bundle SB in this position, the sheet bundle SB can be bound in the stacked position without moving the movable fence 210 to the saddle-stitch position of the sheet bundle SB. Therefore, in this waiting position, a stitcher of the saddle-stitch stapler S1 is driven to move in a direction of arrow b, i.e., to the center of the sheet bundle SB, and saddle-stitches the sheet bundle SB with a clincher.
The movable fence 210 is positioned by controlling pulses from the movable fence HP sensor 292, and the trailing-end tapping claw 221 is positioned by controlling pulses from the trailing-end tapping claw HP sensor 294. The positioning controls on the movable fence 210 and the trailing-end tapping claw 221 are executed by a CPU 200a of a control circuit 200 included in the saddle-stitch bookbinding apparatus 2 (see
The sheet bundle SB which has been saddle-stitched in the state illustrated in
When the sheet bundle SB has reached the position illustrated in
The sheet bundle SB having been folded in half in the state illustrated in
The upper additional folding roller unit 261 is movably supported by a supporting member 265b so that the upper additional folding roller unit 261 can move up and down with respect to the unit moving mechanism 263, and the lower additional folding roller unit 262 is immovably attached to the lower end of the supporting member 265b of the pressing mechanism 265. An upper additional folding roller 261a of the upper additional folding roller unit 261 can come in contact with a lower additional folding roller 262a in a state where the upper additional folding roller 261a applies pressure to the lower additional folding roller 262a, and applies pressure to the lower additional folding roller 262a in a state where a sheet bundle SB is held in a nip between the upper and lower additional folding rollers 261a and 262a. The applied pressure is given by a pressure applying spring 265c which applies pressure to the upper additional folding roller unit 261 with elastic force. Then, in the pressure applying state, the upper additional folding roller unit 261 moves in a width direction (a direction of arrow D in
(1) a first guide path 271 for guiding the pressing mechanism 265 in a pressing cancel state at the time of forward movement;
(2) a second guide path 272 for guiding the pressing mechanism 265 in a pressing state at the time of forward movement;
(3) a third guide path 273 for switching the pressing mechanism 265 from the pressing cancel state to the pressing state at the time of forward movement;
(4) a fourth guide path 274 for guiding the pressing mechanism 265 in the pressing cancel state at the time of return movement;
(5) a fifth guide path 275 for guiding the pressing mechanism 265 in the pressing state at the time of return movement; and
(6) a sixth guide path 276 for switching the pressing mechanism 265 from the pressing cancel state to the pressing state at the time of return movement.
The reason why the pressing mechanism 265 moves along the guide path 270 is because the guide pin 265a of the pressing mechanism 265 is loosely fitted into the guide path 270 so that pressing mechanism 265 can move. Namely, the guide path 270 serves as a cam groove, and the guide pin 265a serves as a cam follower that shifts position while the pressing mechanism 265 moves along the cam groove.
The additional folding roller unit 260 starts moving forward from the initial position (
When the pressing mechanism 265 reaches the third guide path 273 near the center SB3 of the sheet bundle SB (
While pressing the sheet bundle SB, the additional folding roller unit 260 further moves in the direction of arrow D2 (
Then, the additional folding roller unit 260 is caused to start making return movement by the unit moving mechanism 263 (
Then, when the pressing mechanism 265 enters the fifth guide path 275, the pressing mechanism 265 goes into the complete pressing state, and moves through the fifth guide path 275 in the direction of arrow D3 (
Additional folding is performed on the sheet bundle SB by the forward and return movements of the additional folding roller unit 260 in this way. At this time, the additional folding is performed by the movements of the additional folding roller unit 260 as follows. The additional folding roller unit 260 starts the additional folding from near the center SB3 to the side of the other end SB2b of the sheet bundle SB, and passes through the other end SB2b of the sheet bundle SB. After that, the additional folding roller unit 260 starts moving from the outside of the other end SB2b and passes over the additionally-folded sheet bundle SB, and starts the additional folding from near the center SB3 to the side of the end SB2a of the sheet bundle SB, and passes through the end SB2a.
Through these movements, when the additional folding roller unit 260 starts moving from the side of the end SB2a to start the additional folding or when the additional folding roller unit 260 returns back to the side of the end SB2a after having gone through the other end SB2b, the pair of additional folding rollers 261a and 262a never have contact with the end SB2 of the sheet bundle SB from the outside of the sheet bundle SB, and never applies pressure to the sheet bundle SB. Namely, when the additional folding roller unit 260 passes through the end SB2 of the sheet bundle SB from the outside of the end SB2, the additional folding roller unit 260 is in the pressing cancel state. Therefore, there is no damage to the end SB2 of the sheet bundle SB. Furthermore, the additional folding is performed from near the center SB3 to the end SB2 of the sheet bundle SB; therefore, it is possible to shorten the travel distance of the additional folding roller unit 260 in the additional folding while having the pair of additional folding rollers 261a and 262a in contact with the sheet bundle SB, and thus the sheet bundle SB is less likely to accumulate twisting which may cause a wrinkle or the like. Therefore, when the fold (spine) SB1 in the sheet bundle SB is additionally-folded, there is no damage to the end SB2 of the sheet bundle SB, and it is possible to suppress the occurrence of curling or a wrinkle in the fold SB1 and its vicinity due to the accumulation of twisting.
To prevent the pair of additional folding rollers 261a and 262a from running on the end SB2 from the outside of the end SB2 of the sheet bundle SB, the additional folding roller unit 260 is moved as can be seen from
At this time, the distances La and Lb can be set to about the same distance so that the pressing is started, for example, from near the center SB3 of the sheet bundle SB in the width direction (
Incidentally, in the additional folding roller unit 260 according to the present embodiment, the lower additional folding roller unit 262 is provided, and the pair of additional folding rollers 261a and 262a performs additional folding; alternatively, the lower additional folding roller unit 262 can be eliminated, and the additional folding roller unit 260 can be configured to include the upper additional folding roller unit 261 and a supporting member (not illustrated) having a contact surface opposed to the upper additional folding roller unit 261 and to press a sheet bundle between the upper additional folding roller unit 261 and the supporting member.
Furthermore, in the additional folding roller unit 260 according to the present embodiment, the upper additional folding roller unit 261 is configured to be movable in the vertical direction, and the lower additional folding roller unit 262 is configured to be immovable in the vertical direction; however, the lower additional folding roller unit 262 can be also configured to be movable in the vertical direction. When the lower additional folding roller unit 262 is configured to be movable in the vertical direction, the additional folding rollers 261a and 262a move away from each other to be symmetrical to the additional folding position; therefore, the additional folding position is fixed regardless of the thickness of a sheet bundle SB, and it is possible to further suppress damage, such as an abrasion.
Incidentally, in the example illustrated in
By setting the pressing cancel state and the pressing state in this way, each of the ends SB2a and SB2b is pressed from the inside of the sheet bundle SB, and the pair of additional folding rollers 261a and 262a never come in direct contact with from the corner side of the ends SB2a and SB2b. Incidentally, a mechanism in the case of additional folding set in this way is identical to that illustrated in
As illustrated in
Incidentally, the direction of the straight line Y connecting the center 261b1 of the rotating shaft 261b of the upper additional folding roller 261a and the center 262f1 of the rotating shaft 262f of the lower additional folding roller 262a is parallel to a thickness direction t of a sheet bundle SB.
As illustrated in
At this second position, when a staple SB3 is located at the position in contact with the lower additional folding roller 262a as illustrated in
Therefore, when the folding quality is a problem, the position of the lower additional folding roller 262a is changed to the first bearing 262d at which the angle θ becomes 90° as illustrated in
Incidentally, in the present embodiment, two bearings are installed in the lower additional folding roller case 262c; however, the number of bearings can be three or more, and the additional one or more bearings can be installed on the side of the upper additional folding roller unit 261. Furthermore, in the present embodiment, the second bearing 262e is installed 3 millimeters from the position of the first bearing 262d on the upstream side of the first bearing 262d in the forward movement direction; however, the second bearing 262e can be installed on the downstream side of the first bearing 262d.
In
From this state, the elastic engagement state of the engagement piece 262b1 with the lower additional folding roller case 262c is released by operating the engagement piece 262b1 as indicated by an arrow illustrated in (b) of
Incidentally, (c) and (d) of
The first and second bearings 262d and 262e are paired up with bearings 262b1 and 262b2 on the side of the cover 262b, respectively. When the cover 262b is opened, the first and second bearings 262d and 262e are also opened.
In this example, the shaft 262g of the lower additional folding roller 262a serves as a cam follower, and is moved by an eccentric cam 262h. Specifically, as illustrated in
In
Incidentally, the motor 262j is controlled by the CPU 200a of the control circuit 200 mounted on the saddle-stitch bookbinding apparatus 2 on the basis of, for example, operation input from a control panel (not illustrated) installed on the side of the image forming apparatus PR. The CPU 200a includes a control unit and an operation unit; the control unit controls the flow of command interpretation and program control, and the operation unit carries out an operation. A program is stored in a memory (not illustrated), and a command (a numerical value or a sequence of numerical values) to be executed is fetched from the memory storing therein the program, and the program is executed.
Furthermore, a solenoid can be used instead of the eccentric cam 262h and the motor 262j. However, if it is driven by a solenoid, the lower additional folding roller 262a can take only two positions corresponding to the positions illustrated in
The saddle-stitch bookbinding apparatus 2 includes the control circuit 200 equipped with a microcomputer including the CPU 200a and an I/O interface 200b, etc. Signals from a CPU or switches of an operation panel PRa, etc. of the image forming apparatus PR and sensors (not illustrated) are input to the CPU 200a via the first communication interface 200c, the first sheet post-processing apparatus 1, and the second communication interface 200d. In the control circuit 200 of the saddle-stitch bookbinding apparatus 2, the CPU 200a performs prescribed control on the basis of an input signal.
Namely, the control of the saddle-stitch bookbinding apparatus 2 is performed on the basis of an instruction or information from the CPU of the image forming apparatus PR. A user issues an operation instruction through the operation panel PRa of the image forming apparatus PR. Incidentally, if the saddle-stitch bookbinding apparatus 2 is provided with an operation panel, a user can issue an operation instruction through this operation panel.
Accordingly, an operation signal through the operation panel PRa is transmitted from the image forming apparatus PR to the saddle-stitch bookbinding apparatus 2, and a processing state and functions of the saddle-stitch bookbinding apparatus 2 are notified to the user through the operation panel PRa.
Furthermore, the CPU 200a performs drive control of the solenoid and the motor via a driver and a motor driver, and acquires sensor information stored in the apparatus from an interface. Moreover, depending on a controlled object or a sensor, the CPU 200a controls the motor driver so as to drive the motor via the I/O interface 200b, and acquires sensor information from the sensor.
Just like the saddle-stitch bookbinding apparatus 2, the first sheet post-processing apparatus 1 also includes a control circuit equipped with a microcomputer including a CPU and an I/O interface, etc., and performs control corresponding to the sheet-bundle making function.
In this control procedure, first, the user inputs the number of sheets to be additionally-folded through the operation panel PRa. Accordingly, sheet-number setting is performed (Step S101). The CPU 200a determines whether the number of sheets set by the user is equal to or more than a preset sheet number N (Step S102). When the number of sheets is equal to or more than N (YES at Step S102), the CPU 200a sets the additional folding intensity to “high” (Step S104). Accordingly, as explained above with reference to
On the other hand, when the number of sheets is less than N (NO at Step S102), the CPU 200a sets the additional folding intensity to “low” (Step S103). Accordingly, as explained above with reference to
Incidentally, to simplify the explanation, the additional folding intensity is set to either one of the two levels, i.e., either “low” or “high” at Step S103 or S104; however, three or more levels of additional folding intensity can be set in a stepwise or continuous fashion according to information on the number of sheets. Furthermore, when the additional folding intensity is set to “low”, it is possible to set η=0 (θ=90°). When the additional folding intensity is set in a stepwise or continuous fashion, the CPU 200a just has to control a rotation angle of the motor 262j. To set the additional folding intensity appropriately or optimally, it is necessary to enable the CPU 200a to set the intensity in a continuous fashion. For this control, for example, a stepping motor is suitable.
When the additional folding intensity has been set at Step S103 or S104, the image forming apparatus PR performs an image forming operation, and makes a sheet bundle SB corresponding to the number of sheets set in the first sheet post-processing apparatus 1, and then conveys the sheet bundle SB to the saddle-stitch bookbinding apparatus 2 (Step S105). Then, the saddle-stitch bookbinding apparatus 2 performs a folding process on the sheet bundle SB as described in
For example, when a sheet is thick and set to special paper such as coated paper, the additional folding intensity needs to be high. In this example, the sheet thickness is acquired from sheet information on sheets contained in a sheet tray, and the additional folding intensity is appropriately or optimally controlled on the basis of the information.
In this control procedure, when a sheet tray of the image forming apparatus PR has been selected (Step S201), the CPU 200a determines whether the thickness of sheets contained in the sheet tray is larger than a preset reference thickness on the basis of sheet thickness information of the sheets (Step S202). When the thickness of the sheets is larger than the reference thickness (i.e., when the sheets are thick paper) (YES at Step S202), the CPU 200a sets the additional folding intensity to “high” (Step S204). On the other hand, when the thickness of the sheets is smaller than the reference thickness (NO at Step S202), the CPU 200a sets the additional folding intensity to “low” (Step S203). On the basis of this setting, the eccentric cam 262h is rotated by the motor 262j of the additional folding roller unit 260, thereby the additional folding roller unit 260 is put into “high” or “low” state.
Then, at Steps S205 to S208, a conveying process, a folding process, an additional folding process, and a discharge process are performed in the same manner as at Steps S105 to S108, and the process is terminated.
Also in this case, to simplify the explanation, the additional folding intensity is set to either one of the two levels, i.e., either “low” or “high”; however, three or more levels of additional folding intensity can be set in a stepwise or continuous fashion according to information on the number of sheets. Furthermore, when the additional folding intensity is set to “low”, it is possible to set η=0 (θ=90°).
The thickness of a sheet bundle SB will be described later with reference to
In this control procedure, first, upon completion of an image forming operation of the image forming apparatus PR, the first sheet post-processing apparatus 1 makes a bundle SB of sheets corresponding to one saddle-stitched booklet, and conveys the sheet bundle SB to the saddle-stitch bookbinding apparatus 2 (Step S301). Then, the saddle-stitch bookbinding apparatus 2 performs a folding process on the sheet bundle SB as described in
Then, the additional folding process described at Step S107 is performed at Step S306, and the discharge process described at Step S108 is performed at Step S307, and then the process is terminated.
Also in this case, to simplify the explanation, the additional folding intensity is set to either one of the two levels, i.e., either “low” or “high”; however, three or more levels of additional folding intensity can be set in a stepwise or continuous fashion according to information on the number of sheets. Furthermore, when the additional folding intensity is set to “low”, it is possible to set η=0 (θ=90°).
Moreover, in this control procedure, the thickness of a folded sheet bundle SB is detected by the thickness sensor 266 installed in the additional folding roller unit 260; however, the thickness of a before-folded sheet bundle SB can be detected, and then the sheet bundle SB can be processed in the same control procedure.
When a sheet bundle SB is saddle-stitched as described above with reference to
In this control procedure, first, the CPU 200a sets a folding process mode (Step S401). In this setting of the folding process mode, whether with or without a binding process is set. Then, the CPU 200a determines content of this setting, i.e., whether or not to perform a binding process in the folding process (Step S402).
When having determined not to perform a binding process (NO at Step S402), the CPU 200a sets the additional folding intensity to “high” (Step S404). On the other hand, when having determined to perform a binding process (YES at Step S402), the CPU 200a sets the additional folding intensity to “low” (Step S403). In accordance with this setting, the eccentric cam 262h is rotated by the motor 262j of the additional folding roller unit 260, thereby the additional folding roller unit 260 is put into “high” or “low” state.
Then, upon completion of an image forming operation of the image forming apparatus PR, the first sheet post-processing apparatus 1 makes a bundle SB of sheets corresponding to one saddle-stitched booklet, and conveys the sheet bundle SB to the saddle-stitch bookbinding apparatus 2 (Step S405). And then, in the case of without a binding process in the saddle-stitch bookbinding apparatus 2, the saddle-stitch bookbinding apparatus 2 performs a folding process on the sheet bundle SB; on the other hand, in the case of with a binding process, the saddle-stitch bookbinding apparatus 2 performs a binding process and a folding process on the sheet bundle SB (Step S406). After the execution of the folding process, in the same manner as at Steps S107 and S108, the saddle-stitch bookbinding apparatus 2 performs additional folding on the sheet bundle SB at the “low” or “high” level of additional folding intensity set at Step S403 or S404 (Step S407), and discharges the sheet bundle SB to the outside of the apparatus (Step S408).
Incidentally, especially when the number of sheets in the sheet bundle SB to be bound is small, there is concern about deformation; therefore, the additional folding intensity can be set in combination with information on the sheet bundle SB, such as sheet number information, thickness information, and a thickness detection result described in
Therefore, for example, additional folding intensities based on various combinations have been found by experiment, and results of the experiment have been tabulated in a table in advance, and when the CPU 200a sets the additional folding intensity, the CPU 200a determines the additional folding intensity of a sheet bundle to be additionally-folded with reference to the table. By doing this, a fold SB1 in a sheet bundle SB can be pressed at the appropriate or optimal additional folding intensity, and the fold SB1 can be enhanced.
The thickness sensor 266 is composed of a displacement sensor 266a and a metal plate 266b. The metal plate 266b is directly fixed to the top of the upper additional folding roller 261a, and is displaced along with displacement of the upper additional folding roller 261a. The displacement sensor 266a is placed in a preset position separated from the metal plate 266b by a gap G. Accordingly, when the thickness of a sheet bundle SB (SB(1) in (a) of
The displacement sensor 266a includes, for example, a coil (not illustrated) on the surface thereof and an oscillation circuit (not illustrated), and applies weak current to the oscillation circuit so that a magnetic field is formed around the coil. Due to the influence of the metal plate 266b near the coil, a magnetic flux changes, and this affects the oscillation circuit, and when the distance between the coil and the metal plate 266b changes, a frequency changes. Therefore, a gap G between the displacement sensor 266a and the metal plate 266b fixed to the upper additional folding roller 261a is detected by the frequency change, thereby detecting displacement of the upper additional folding roller 261a. This displacement is input to the CPU 200a, and the CPU 200a detects whether a sheet bundle SB is thick or thin or the degree of thickness.
Namely, the thickness of a fold SB1 in a sheet bundle SB conveyed into the additional folding roller unit 260 can be detected by using the thickness sensor 266 structured, for example, like this. Incidentally, the thickness sensor 266 composed of the displacement sensor 266a using the coil and the metal plate 266b is an example of a means of detecting the thickness of a sheet bundle SB; besides this, a widely-used displacement sensor, such as an ultrasonic sensor, can be used in the thickness sensor 266.
In the flowcharts illustrated in
Incidentally, in known examples, the action of enhancing folding of a fold SB1 by further applying pressure to the fold SB1 is referred to as “folding enhancement”. On the other hand, in the present embodiment, the same action is referred to as “additional folding”. Both just differ in the form of expression and are practically the same.
Furthermore, in the above-described embodiment, in a state where a sheet bundle SB is at a stop, additional folding is performed by movement of the additional folding roller unit 260; however, a relation between them is relative. Therefore, the additional folding roller unit 260 can be configured so that in a state where the additional folding roller unit 260 is at a stop in a sheet fold direction, the pair of additional folding rollers 261a and 262a is rotated while pressing a fold SB1 in a sheet bundle SB. This example is illustrated in
In this example, as illustrated in
Incidentally, in
As described above, according to the present embodiment, it is possible to achieve the following effects.
(1) The saddle-stitch bookbinding apparatus 2 (a sheet processing apparatus) includes the additional folding roller unit 260 (a pressing unit), which presses a fold SB1 in a folded sheet bundle SB by holding the fold SB1 between the upper additional folding roller 261a (a first pressing member) and the lower additional folding roller 261b (a second pressing member), and the unit moving mechanism 263 (a moving unit) which moves the pressing position of the additional folding roller unit 260 in a direction of the fold in the sheet bundle SB [a direction of arrow D1]. The saddle-stitch bookbinding apparatus 2 further includes a position changing unit for changing the relative positions of the upper additional folding roller 261a and the lower additional folding roller 261b in the direction of the fold in the sheet bundle SB, and therefore it is possible to choose emphasis on enhancement of a fold or emphasis on suppression of staple deformation according to the changed position.
(2) The position changing unit sets the upper and lower additional folding rollers 261a and 261b in the positions at which a first pressing position of the upper additional folding roller 261a (the first pressing member) to press the sheet bundle SB and a second pressing position of the lower additional folding roller 261b (the second pressing member) to press the sheet bundle SB are shifted with respect to each other in the direction of the fold in the sheet bundle SB [for example, the positions on the straight line Y′ illustrated in
(3) The position changing unit can change the relative positions n to arbitrary positions; therefore, it is possible to choose emphasis on enhancement of a fold or emphasis on suppression of staple deformation, and also possible to set the degrees of the emphases relatively.
(4) The position changing unit changes the relative positions depending on information on the sheet bundle SB; therefore, it is possible to choose emphasis on enhancement of a fold or emphasis on suppression of staple deformation on the basis of, for example, information on the number of sheets, information on the thickness of sheets set on the sheet tray, and information on the thickness of a sheet bundle, etc.
(5) The position changing unit changes the relative positions depending on information on whether or not to perform a binding process on the sheet bundle SB; therefore, it is possible to choose emphasis on enhancement of a fold or emphasis on suppression of staple deformation depending on whether or not to perform a binding process.
(6) The first pressing member and the second pressing member include the upper additional folding roller 261a (a first roller member) and the lower additional folding roller 262a (a second roller member) respectively. The position changing unit includes the first and second bearings 262d and 262e that rotatably support either the upper additional folding roller 261a or the lower additional folding roller 262a [the lower additional folding roller 262a in
Furthermore, all we have to do is form the first and second bearings 262d and 262e in advance as the position changing unit; therefore, it is possible to provide the saddle-stitch bookbinding apparatus 2 at low cost. Moreover, no electric power is consumed in the position change, and no running cost is necessary. At this time, if three or more bearings are formed, fine adjustment of the angle η is also possible.
(7) The position changing unit includes the cover 262d formed of an elastic body; the cover 262d is opened when the shaft 262g is moved, and closed after the shaft 262g has been moved and rotatably holds the shaft 262g in the bearing 262d or 262e. Therefore, by opening and closing of the cover 262b, it is possible to easily choose emphasis on enhancement of a fold or emphasis on suppression of staple deformation in accordance with user's intention. Furthermore, the lower additional folding roller 262a is removably attached to a bearing, and therefore a user can easily replace the lower additional folding roller 262a when the lower additional folding roller 262a is worn down.
(8) The position changing unit includes the guide surface 262k (a guide unit) that guides either one of the upper and lower additional folding rollers 261a and 262a to be moved parallel to a moving direction of the unit moving mechanism 263 (the moving unit) and the eccentric cam 262h and the motor 262j or a solenoid (a cam unit) that reciprocate the lower additional folding roller 262a (one of the additional folding rollers) along the guide surface 262k; therefore, it is possible to choose emphasis on enhancement of a fold or emphasis on suppression of staple deformation by the motor driving the lower additional folding roller 262a, thereby changing the position of the lower additional folding roller 262a in accordance with user operation input through the operation panel.
(9) The additional folding roller unit 260 includes the guide path 270 (a pressing drive unit) for the additional folding roller unit 260 (a pressing unit) to start pressing and cancel the pressing; therefore, the pressing start position and the pressing cancel position can be arbitrarily set according to the shape of the guide path 270.
(10) When the additional folding roller unit 260 (the pressing unit) moves forward from the side of one end SB2a of a sheet bundle SB, the additional folding roller unit 260 starts pressing at the position separated by a distance La from the end SB2 of the sheet bundle SB in the width direction of the sheet bundle SB [a direction D1] (a preset first position), and after having passed through the other end SB2b of the sheet bundle SB, the additional folding roller unit 260 cancels the pressing, and then, when the additional folding roller unit 260 moves backward from the side of the other end SB2b, the additional folding roller unit 260 starts pressing at the position separated by a distance Lb from the end SB2b (a preset second position), and passes through the other end SB2b of the sheet bundle SB; therefore, when the additional folding roller unit 260 moves from the outside of the end SB2 of the sheet bundle SB, the additional folding roller unit 260 is always in the pressing cancel state, and never causes damage to the end SB2 of the sheet bundle SB when performing additional folding on a fold SB1 in the sheet bundle SB.
Furthermore, the additional folding roller unit 260 does not perform additional folding on the entire area of the sheet bundle SB in the width direction at once; therefore, it is possible to suppress the occurrence of curling or a wrinkle in the fold SB1 and its vicinity due to the accumulation of twisting.
Incidentally, in the above explanation of the effects in the embodiment, each unit in the present embodiment is described together with an element in claims enclosed in parentheses or is denoted by a reference numeral so as to clear a correspondence relation between the two. In addition, the correspondence to the embodiment is enclosed in square brackets as needed.
According to the embodiments, it is possible to choose emphasis on enhancement of a fold or emphasis on suppression of staple deformation in accordance with user's intention.
Although the invention has been described with respect to specific embodiments for a complete and clear disclosure, the appended claims are not to be thus limited but are to be construed as embodying all modifications and alternative constructions that may occur to one skilled in the art that fairly fall within the basic teaching herein set forth.
Number | Date | Country | Kind |
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2013-007726 | Jan 2013 | JP | national |
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