The present invention relates to a book binding method and a book binding system for manufacturing a saddle-stitched booklet.
However, according to the conventional book binding system, a set of sheets and thereafter folding the stitched set of sheets along the center line thereof, as the number of sheets forming a booklet increases, the fold line of the bounded booklet is rounded and bulged, which causes a problem of degradation in appearance and feature of the booklet.
Furthermore, in the above-mentioned conventional book binding system, the motion of the collating machine is synchronized with the motion of the post-processing machine such as the sheet stitching unit, the sheet folding unit and so on by activating the collating machine at slower speed than a processing speed of the post-processing machine and starting the post-processing machine upon detection of reception of the stack of sheets, which causes a problem that both the working speed of the collating machine and the processing speed of the post processing machine are restricted so that the whole speed of the book binding processing cannot be increased.
Therefore, it is an object of the present invention to provide a book binding method and a book binding system which is capable of manufacturing a saddle stitched bound booklet with a neat fold line and good appearance even when the number of sheets forming the booklet increases, and which is capable of optimally synchronize a motion of post-processing machines with a motion of a collating machine so as to increase the processing speed of book binding.
In accordance with the present invention, the above object is achieved by a book binding method for a saddle-stitched bound booklet, comprising the steps of: folding a sheet or a set of sheets along the center line thereof one by one; stacking the folded sheet or the folded set of sheets in such a manner that the folded sheets or the folded sets of sheets are aligned with each other with respect to their fold lines; and stitching the stacked sheets or the stacked sets of sheets at the fold lines thereof to form a booklet.
In accordance with the present invention, the above object is also achieved by a book binding system for a saddle stitched bound booklet, comprising: a sheet feeding section feeding sheets or sets of sheets one by one; a sheet folding section sequentially receiving a sheet or a set of sheets from the sheet feeding section and folding the sheet or the set of sheets along the center line thereof; a sheet stacking section stacking the sheet or the set of sheets folded by the sheet folding section in such a manner that the folded sheets or the folded sets of sheets are aligned with each other with respect to the fold lines thereof; a sheet stitching section receiving a stack of the sheets or the sets of sheets from the sheet stacking section each time the predetermined number of the sheets or the sets of sheets are stacked in the sheet stacking section, and stitching the stack of the sheets or the sets of sheets at the fold line thereof; and a control section controlling operation of the sheet feeding section, the sheet folding section and the sheet stitching section.
According to a preferred embodiment of the present invention, the book binding system further comprises a frame, and the sheet folding section comprises: a sheet positioning table attached to the frame for sequentially receiving the sheet or the sets of sheets from the sheet feeding section and positioning the sheet or the set of sheets in place, a sheet conveying path extending from the sheet positioning table to the sheet stacking section, the sheet positioning table positioning the sheet or the set of sheets such that the center line of the sheet or the set of sheets aligns with the center line of the sheet conveying path; upper and lower horizontal rotating shafts attached to the frame at the entrance of the sheet folding section with the sheet conveying path therebetween and extending in the direction transverse to the sheet conveying path; a drive mechanism attached to the frame for rotating the upper horizontal rotating shaft; upper and lower creasing rollers fixed to the upper and lower horizontal rotating shafts, respectively, the upper and lower creasing rollers being disposed at the position corresponding to the center line of the sheet conveying path and bringing their outer periphery surfaces into contact with each other, the upper creasing roller being provided with a groove extending about the outer periphery thereof, the lower creasing roller being provided with a protrusion extending about the outer periphery thereof correspondingly with the groove, the groove and the protrusion being disposed at a position corresponding to the center line of the sheet conveying path, the sheet or the set of sheets on the sheet positioning table being nipped between the upper and lower creasing rollers and provided with an inverted V-shaped fold line thereon; at least one horizontal support shaft attached to the frame at a downstream side of the horizontal rotating shafts; a guide roller rotatably attached to the at least one horizontal support shaft at a position corresponding to the center line of the sheet conveying path, an outer periphery edge thereof upwardly pushing the fold line of the sheet or the set of sheets traveling on the sheet conveying path; a pair of vertical support shafts attached to the frame at the exit of the sheet folding section and extending downwardly from the frame across the sheet conveying path at the both sides of the center line of the sheet conveying path; a pair of press rollers rotatably attached to the lower ends of the vertical support shafts, each of the press rollers being composed of a large radius portion and a small radius portion connecting to the underside of the large radius portion, the press rollers bringing their outer periphery surfaces into contact with each other, the sheet or the set of sheets being nipped at its peripheral portion folded along the fold line between the press rollers and fed downstream; pulleys fixed to the upper horizontal rotating shaft at both sides of the upper creasing roller; and a first endless belt extending between the pulley and the small radius portion of the press roller at one side of the center line of the sheet conveying path, and a second endless belt extending between the pulley and the small radius portion of the press roller at the other side of the center line of the sheet conveying path, portions of the first and second endless belts which travel in a feeding direction of the sheet or the set of sheets contacting with a top surface of the sheet or the set of sheets and gradually narrowing the spacing therebetween towards the exit of the sheet folding section; whereby the sheet or the set of sheets is folded into an inverted V-shape along the center line thereof by being passed between the upper and lower creasing rollers, conveyed along the sheet conveying path by the at least one guide roller and the first and second endless belts and passed between the pair of pressing rollers.
According to further preferred embodiment of the present invention, the sheet stacking section comprises: a saddle-shaped pair of support plates attached to the frame at the downstream side of the sheet folding section and extending in a direction of the sheet conveying path of the sheet folding section with a spacing therebetween for supporting the sheets or the sets of sheets folded into an inverted V-shape by the sheet folding section thereon. The sheet stitching section comprises: a saddle-shaped pair of support plates connecting to the pair of support plates of the sheet stacking section; a sheet stitching station provided on the second pair of support plates; a sheet conveying mechanism conveying a stack of the sheets or the sets of sheets from the sheet stacking section to the sheet stitching station when the predetermined number of the folded sheets or the folded sets of sheets are stacked in the sheet stacking section; a stitching wire drive head attached to the frame above the top end spacing between the second pair of support plates at the sheet stitching station for vertical movement, the stitching wire drive head being movable between a standby position in which the stitching wire drive head separates from the top end spacing and a stitching position in which the stitching wire drive head contacts with the stack of the sheets or the set of sheets supported on the second pair of support plates so as to drive the stitching wire into the fold line of the stack; a stitching wire bending block attached to the frame below the top end spacing between the second pair of support plates at the sheet stitching station for vertical movement, the stitching wire bending block being movable between a standby position in which the stitching wire bending block separates from the top end spacing between the second pair of support plates and a stitching position in which the stitching wire bending block contacts with the stack of the sheets or the sets of sheets so as to support the stack thereon; and a drive mechanism for moving the stitching wire drive head and the stitching wire bending block in such a manner that the stitching wire bending block is in its stitching position upon the stitching position of the stitching wire drive head and in its standby position upon the standby position of the stitching wire drive head.
According to further preferred embodiment of the present invention, the sheet conveying mechanism of the sheet stitching section comprises: a motor attached to the frame and having a horizontal drive shaft; an index unit attached to the frame and having a horizontal input rotary shaft and a horizontal output rotary shaft, the index unit being adapted to halt rotation of the output rotary shaft for the predetermined time duration of rotation of the input rotary shaft, the input rotary shaft being operatively connected to the drive shaft of the motor through a clutch/brake unit; at least one drive sprocket fixed to the output rotary shaft of the index unit: at least one horizontal sprocket support shaft fixed to the frame; at least one idle sprocket rotatably attached to the sprocket support shaft; at least one endless chain extending among the drive and idle sprockets in a vertical plane, the upper linear portion of the endless chain traveling along the top end spacing of the support plate pairs of both the sheet stacking section and the sheet stitching section; and a conveying claw fixed to the at least one endless chain; whereby the stack of the sheets or the sets of sheets are conveyed along the support plate pairs of the sheet stacking section and the sheet stitching section by the conveying claw pushing a trailing edge of the stack with circulating of the at least one endless chain
According to further preferred embodiment of the present invention, the control section measures time from start up of operation of the sheet feeding section to stacking of the predetermined number of the sheets or the sets of sheets in the sheet stacking section so as to determined the timing of operation of the sheet stitching section and record a value of the determined timing upon pre-operation of the system, and measures time elapsed from reception of the stack by the sheet stitching section and sends a start up signal of operation to the sheet feeding section each time the measured time equals to the recorded value of the timing in operation of the system.
According to further preferred embodiment of the present invention, the control section comprises: a sheet sensor disposed between the sheet folding section and a sheet stacking section for detecting passage of the predetermined number of the sheets or the sets of sheets; a subsidiary rotary shaft coaxially coupled to the input rotary shaft of the index unit; a pulse plate fixed to the subsidiary rotary shaft for generating a pulse every time it rotates a given amount of angle; an encoder for counting pulses generated by the pulse plate; a disc fixed to the subsidiary rotary shaft and having a extension strip at its periphery; an initial position sensor for detecting an initial position of the conveying claw of the sheet conveying mechanism of the sheet stitching section in which the conveying claw is positioned at an upstream side of the sheet stacking section by detecting the extension strip of the disc; and a processing unit measuring time from start up of operation of the sheet feeding section to stacking of the predetermine number of the sheets or the sets of sheets in the sheet stacking section based on a detection signal from the sheet sensor so as to determine the timing of operation of the sheet stitching section and record a value of the determined timing in a memory upon pre-operation of the system, and measuring time elapsed from reception of the stack by the sheet stitching section based on the counted value of the encoder, and sending a start up signal of operation to the sheet feeding section each time the measured time equals to the recorded value of the timing in operation of the system.
The above and other objects and the nature and advantages of the present invention will become more apparent from the following detailed description of an embodiment taken in conjunction with the drawings, wherein:
Now, the details of the present invention will he described with reference to the accompanying drawings
Referring to
The book binding system of the present invention also comprises a sheet folding section 3 sequentially receiving a set of sheets P from the collating machine 1 and folding the set of sheets P along the center line Pc thereof and a sheet stacking section 4 stacking the set of sheets P folded by the sheet folding section 3 in such a manner that the folded sets of sheets P are aligned with each other with respect to the fold lines Pc thereof.
The book binding system further comprises a sheet stitching section 5 receiving a stack of the sets of sheets P′ from the sheet stacking section 4 each time the predetermined number of the sets of sheets P are stacked in the sheet stacking section 4, and stitching the stack of the sets of sheets P′ at the fold line thereof Pc′, a sheet taking out section 6 receiving the stitched stack of sheets from the sheet stitching section 5 and supplying the stack to a trimming section 7 for trimming a front edge, a top edge and a foot edge of the stack, and a control section 46 controlling operation of the sheet feeding section (collating machine) 1, the sheet folding section 3, the sheet stitching section 5, the sheet taking out section 6 and the trimming section 7.
At the entrance of the sheet feeding section 3, upper and lower horizontal rotating shafts 3j, 3k are attached to the frame F with the sheet conveying path therebetween and extend in the direction transverse to the sheet conveying path. A motor M3 is attached to the frame F and a pulley 3s is fixed to a drive shaft of the motor M3. An endless belt 3t extends between the pulley 3s and a pulley 3r fixed to the upper horizontal rotating shaft 3j, so that the upper horizontal rotating shaft 3j is rotated by drive of the motor M3. Referring now to
At a downstream side of the horizontal rotating shafts 3j, 3k is at least one horizontal support shaft 3m attached to the frame F Referring now to
Referring now to
Pulleys 3a, 3a′ are fixed to the upper horizontal rotating shaft 3j at both sides of the upper creasing roller 3b. A first endless belt 3e extends between the pulley 3a and the small radius portion of the press roller 3d at one side of the center line of the sheet conveying path, and a second endless belt 3c′ extends between the pulley 3a′ and the small radius portion of the press roller 3d′ at the other side of the center line of the sheet conveying path. Portions of the first and second endless belts 3a, 3a′ which travel in a feeding direction of the set of sheets P contacting with a top surface of the set of sheets P and gradually narrowing the spacing therebetween towards the exit of the sheet folding section 3 (cf.
The sheet stacking section 4 comprises a saddle-shaped pair of support plates (not shown) attached to the frame at the downstream side of the sheet folding section 3 and extending in a direction of the sheet conveying path of the sheet folding section 3 with a spacing therebetween for supporting the sets of sheets P folded into an inverted V-shape by the sheet folding section 3 thereon.
The sheet stitching section 5 further comprises a sheet conveying mechanism conveying a stack of the sets of sheets P′ from the sheet stacking section 4 to the sheet stitching station when the predetermined number of the folded sets of sheets P are stacked in the sheet stacking section 4.
Referring now to
The sheet taking out section 6 further comprises a sheet conveying mechanism conveying a stack of the sets of sheets P′ from the sheet stitching section 5 to the sheet taking out station after the stacks of the sets of sheets was saddle-stitched.
In this embodiment, the sheet conveying mechanism of the sheet stitching section 5 and the sheet taking out section 6 is a common sheet conveying mechanism. Referring now to
Referring to
The stitched stack of the sets of sheets P′ supplied to the trimming section 7 is firstly trimmed by a front edge trimming cutter 7a at its front edge and thereafter trimmed by a top and foot edge trimming cutter 7b at its top and foot edges.
The trimming section 7 comprises a motor M2 attached to the frame F, a drive shaft 17 attached to the frame for rotation about its axis and connected to a rotary shaft of a motor M2 through an endless chain, a crank plate 18 fixed to an end of the drive shaft 17, a front edge trimming cutter 7a connected to the crank plate 18 for vertical movement. The trimming section 7 further comprises a drive shaft 21 attached to the frame for rotation about its axis and connected to the drive shaft 17 through an endless chain 24 in such a manner that the drive shaft 21 is rotated synchronously with rotation of the drive shaft 17, a crank plate 22 fixed to an end of the drive shaft 21, a top and foot edge trimming cutter 7b, 7c connected to the crank plate 22 for vertical movement. The drive shaft 17 is provided with a disc having an extension strip 23a at its outer periphery and a pulse plate 19 generating a pulse every time it rotates a given amount of angle. The trimming section 7 further comprises an initial position sensor 23 for detecting an initial position of the front edge trimming cutter 7a by detecting the extension strip 23a of the disc and an encoder 20 for counting pulses generated by the pulse plate after detection of the extension strip 23b by the initial position sensor 23 so as to determine a position of the front edge trimming cutter 7a.
In control of operation of the sheet feeding section 1, the sheet folding section 3 and the sheet stitching section 5, the control section 46 measures time from start up of operation of the sheet feeding section 1 to stacking of the predetermined number of the sets of sheets P in the sheet stacking section 4 so as to determine the timing of operation of the sheet stitching section 5 and record a value of the determined timing upon pre operation of the system, and measures time elapsed from reception of the stack P′ by the sheet stitching section 5 and sends a start up signal of operation to the sheet feeding section 1 each time the measured time equals to the recorded value of the timing in operation of the system. Referring to
In pre-operation of the system, at first, the processing unit 25 brings the stitching section 5 to a halt and sends a start up signal of operation to the sheet feeding section (the collating machine) 1 and starts operation of time counter (
Thereafter, the processing unit 25 gets the sheet stitching section 5 started by initiating drive of the motor M1 so as to be the system in operation (
In the above-mentioned embodiment, the sheet stitching section 5 and the sheet taking out section 6 are intermittently moved, but the present invention can be applied to a system in which the sheet stitching section 5 and the sheet taking out section 6 are continuously moved.
As described above, according to the present invention, it is possible to obtain the advantages that a saddle-stitched bound booklet with a near fold line and good appearance can be manufactured by separating a stack of sheets which forms a booklet into a plurality of sets of sheets accordingly with the number of sheets of the stack, separately folding the sets of sheets along the center line thereof, stacking the folded sets of sheets and stitching the stack of the sets of sheets along the center line thereof. In addition, there is provided a book binding system capable of optimally synchronize a motion of post-processing machine with a motion of a collator so as to increase the processing speed of book binding.
While the embodiment disclosed herein is preferred, it will be appreciated from this teaching that various alternatives, modifications, variations or improvements therein may be made by those skilled in the art, which are intended to be encompassed by the following claims.
Number | Date | Country | Kind |
---|---|---|---|
2002-016584 | Jan 2002 | JP | national |
2002-121899 | Apr 2002 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
4085927 | Muller | Apr 1978 | A |
4592651 | Oikawa et al. | Jun 1986 | A |
4898373 | Newsome | Feb 1990 | A |
4917366 | Murakami et al. | Apr 1990 | A |
4957284 | Brabant | Sep 1990 | A |
5108081 | Russel et al. | Apr 1992 | A |
5779232 | Ochsner | Jul 1998 | A |
6095740 | Hollenstein et al. | Aug 2000 | A |
6099225 | Allen et al. | Aug 2000 | A |
6708967 | Trovinger et al. | Mar 2004 | B1 |
6808479 | Trovinger et al. | Oct 2004 | B2 |
6878104 | Trovinger et al. | Apr 2005 | B2 |
20030002955 | Silberbauer | Jan 2003 | A1 |
20040071529 | Kawatsu et al. | Apr 2004 | A1 |
Number | Date | Country |
---|---|---|
0038 942 | Nov 1981 | EP |
2 778 361 | Nov 1999 | FR |
11-023387 | Aug 2000 | JP |
Number | Date | Country | |
---|---|---|---|
20030214092 A1 | Nov 2003 | US |