Cutting device and cutting method

The cutting device addresses the issue of blade-component contact by converting driving forces to move positioning units, preventing malfunctions and ensuring efficient cutting operations.

JP2025118342APending Publication Date: 2025-08-13HORIZON CO LTD
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Patent Information

Application Number
JP2024013612
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-01-31
Publication Date
2025-08-13

AI Technical Summary

Technical Problem

Conventional cutting devices are prone to malfunction due to potential contact between the cutting blade and other components, especially when servo motors or timing belts fail, leading to significant downtime and reduced production efficiency.

Method used

A cutting device with a first blade, a second blade, a conveyance unit, a stopper, and a positioning unit, where the first driving force is converted into a second driving force to move the positioning unit, ensuring the first blade avoids contact with other components during the cutting process.

Benefits of technology

The device effectively prevents the cutting blade from contacting other components, maintaining device functionality and enhancing production efficiency by ensuring precise cutting without malfunctions.

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Abstract

To appropriately prevent a failure of a device caused by a blade that performs cutting coming into contact with another member.SOLUTION: A cutting device 100 comprises: an upper blade 10; a lower blade 20; a cutting blade moving mechanism 40 that generates a first driving force for moving the tip of the upper blade 10 along a vertical direction VD; a conveying unit 50 that conveys a sheet bundle B along a conveying direction TD; a stopper 60 against which a downstream end of the sheet bundle B in the conveying direction TD abuts; a positioning unit 70 that positions the sheet bundle B by bringing it into contact with the stopper 60; and a driving force conversion mechanism 80 that converts the first driving force generated by the cutting blade moving mechanism 40 into a second driving force in the conveying direction TD, and moves the positioning unit 70 along the conveying direction TD by the second driving force, such that when the upper blade 10 is at a non-cutting position, the positioning unit 70 is placed at a position X3 near an opposed position X1, and when the upper blade 10 is at a cutting position, the positioning unit 70 is placed at a retreat position on the upstream side in the conveying direction TD relative to the position X1.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a cutting device and a cutting method. [Background technology]

[0002] Conventionally, a trimming device that trims the fore edge of a bound book is known (see, for example, Patent Document 1). Patent Document 1 discloses that the fore edge of a booklet bound at the back is moved by pushing with a pusher and positioned at the cutting position of a fore edge trimming blade. The pusher is fixed to a timing belt that moves with the rotation of a servo motor, and reciprocates between a standby position and a position where the fore edge of the booklet is trimmed. When the pusher positions the position where the fore edge of the booklet is trimmed below the tip of the fore edge trimming blade, the pusher returns to the standby position. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-230530 Summary of the Invention [Problem to be solved by the invention]

[0004] However, if an abnormality occurs in the servo motor or timing belt, for example, and the pusher is in the area where the edge trimmer blade moves up and down, the edge trimmer blade and the pusher may come into contact, potentially causing a malfunction in the device. If such an abnormality occurs, it will take a lot of work and time to repair the device so that it is in a malfunction-free state, and the production efficiency of the trimmer will drop significantly.

[0005] The present invention has been made in consideration of the above circumstances, and aims to provide a cutting device and cutting method that can perform cutting while positioning a stack of paper and appropriately prevent the cutting blade from coming into contact with other components and causing the device to break down. [Means for solving the problem]

[0006] A cutting device according to one aspect of the present invention includes a first blade, a second blade fixed at a predetermined position, a first movement mechanism that generates a first driving force that moves a tip of the first blade in a predetermined direction between a non-cutting position spaced apart from the second blade and a cutting position past the second blade, a conveyance unit that conveys a stack of paper along a conveyance direction that intersects with the predetermined direction toward an opposing position where the first blade and the second blade face each other in the predetermined direction, a stopper that is disposed at a downstream end of the stack of paper conveyed by the conveyance unit in the conveyance direction and against which the stack of paper is abutted, and a stopper that is disposed at an upstream end of the stack of paper conveyed in the conveyance direction. a positioning unit that presses a fore-edge portion disposed at a position corresponding to the first blade along the conveying direction to position the paper stack in contact with the stopper; and a second movement mechanism that converts the first driving force generated by the first movement mechanism into a second driving force in the conveying direction, and moves the positioning unit along the conveying direction by the second driving force so that when the first blade is in the non-cutting position, the positioning unit is positioned at a proximity position that is close to the opposing position, and when the first blade is in the cutting position, the positioning unit is positioned at a retracted position upstream of the proximity position in the conveying direction.

[0007] In the cutting device according to one aspect of the present invention, the downstream end of the paper stack in the conveying direction is abutted against the stopper by the conveying unit, and the positioning unit positions the paper stack so that it contacts the stopper.Then, the edge of the paper stack, which is positioned so that the first blade faces the second blade, is cut when the first blade moves from the non-cutting position to the cutting position.

[0008] In the cutting device according to one aspect of the present invention, the second movement mechanism converts the first driving force generated by the first movement mechanism into the second driving force, so when the first driving force moves the first blade from the non-cutting position to the cutting position, the positioning unit moves from the proximity position to the retracted position, reliably preventing the first blade from coming into contact with the positioning unit. Therefore, the cutting device according to one aspect of the present invention can perform cutting while positioning the stack of sheets, and can appropriately prevent the cutting blade from coming into contact with other components and causing the device to malfunction.

[0009] In one embodiment of the present invention, a cutting device includes a paper stack guide section that is arranged alongside the conveying section in a width direction perpendicular to the conveying direction and that forms a guide surface that supports the paper stack and guides it along the conveying direction, and the second moving mechanism may be configured to move the paper stack guide section along the conveying direction by the second driving force so that when the first blade is in the non-cutting position, the downstream end of the paper stack guide section in the conveying direction is positioned at a first position close to the opposing position, and when the first blade is in the cutting position, the downstream end of the paper stack guide section in the conveying direction is positioned at a second position that is upstream of the first position in the conveying direction.

[0010] According to the cutting device having the above configuration, when the first blade is in the non-cutting position, the downstream end of the paper stack guide in the transport direction is located at a first position close to the opposing position, so the paper stack transported by the transport unit can be supported by the guide surface and the paper stack can be transported reliably. Also, when the first blade is in the cutting position, the downstream end of the paper stack guide in the transport direction is located at a second position that is upstream of the first position in the transport direction, so it is possible to reliably avoid contact of the first blade with the paper stack guide when moving from the non-cutting position to the cutting position.

[0011] In one embodiment of the cutting device of the present invention, the positioning section may be configured to include a moving member that moves along the conveying direction by the second moving mechanism, a contact member that contacts the edge portion of the paper stack, and a drive mechanism that moves the contact member along the conveying direction relative to the moving member.

[0012] According to the cutting device of this configuration, by converting the first driving force generated by the first moving mechanism into a second driving force in the conveying direction and moving the moving member along the conveying direction, it is possible to reliably prevent the first blade from contacting the positioning unit when the first blade moves from the non-cutting position to the cutting position. Also, by moving the contact member along the conveying direction relative to the moving member, it is possible to move the contact member along the conveying direction at the positioning unit located in the vicinity and position the paper stack so that it contacts the stopper.

[0013] In the cutting device having the above configuration, the retracted position may be a position where the contact member is spaced upstream of the first blade in the conveyance direction. According to the cutting device of this embodiment, when the first blade is in the cutting position, the contact member of the positioning section is positioned upstream of the first blade, thereby reliably preventing the first blade from coming into contact with the contact member.

[0014] In a cutting method for a cutting device according to one aspect of the present invention, the cutting device includes a first blade, a second blade fixed at a predetermined position, a conveying section that conveys the sheet bundle along a conveying direction that intersects with the predetermined direction toward an opposing position where the first blade and the second blade face each other in the predetermined direction, a stopper against which a downstream end of the sheet bundle conveyed by the conveying section in the conveying direction abuts, and a positioning section that positions the sheet bundle by pressing a fore-edge portion arranged at an upstream end of the sheet bundle in the conveying direction along the conveying direction to bring the sheet bundle into contact with the stopper, and a non-cutting blade spaced from the second blade. The method includes a cutting process for cutting the stack of sheets by generating a first driving force that moves the tip of the first blade along the predetermined direction between a cutting position and a cutting position where the tip has passed the second blade; and a moving process for converting the first driving force generated by the cutting process into a second driving force in the transport direction, and moving the positioning unit along the transport direction by the second driving force so that when the first blade is in the non-cutting position, the positioning unit is positioned at a proximity position that is close to the opposing position, and when the first blade is in the cutting position, the positioning unit is positioned at a retracted position upstream of the proximity position in the transport direction.

[0015] According to a cutting method of one aspect of the present invention, the sheet stack, whose downstream end in the conveying direction is abutted against the stopper by the conveying unit, is positioned by the positioning unit so that it contacts the stopper. Then, the edge of the sheet stack, which is positioned so that the first blade faces the second blade, is cut when the first blade moves from the non-cutting position to the cutting position.

[0016] According to the cutting method of one aspect of the present invention, the first driving force generated in the cutting process is converted into the second driving force in the movement process, so that when the first driving force moves the first blade from the non-cutting position to the cutting position, the positioning unit moves from the proximity position to the retracted position, reliably preventing the first blade from contacting the positioning unit. Therefore, according to the cutting method of one aspect of the present invention, cutting is performed with the stack of sheets positioned, and it is possible to appropriately prevent the cutting blade from contacting other components and causing the device to malfunction. [Effects of the Invention]

[0017] According to the present invention, it is possible to provide a cutting device and cutting method that can perform cutting while positioning a stack of paper and appropriately prevent the cutting blade from coming into contact with other components and causing the device to malfunction. [Brief explanation of the drawings]

[0018] [Figure 1] 1 is a side view showing a cutting device according to an embodiment of the present invention, illustrating a state in which a stack of sheets is being conveyed toward a stopper. [Figure 2] 2 is a plan view of the cutting device shown in FIG. 1 as seen from above. [Figure 3] 1 is a side view showing a cutting device according to an embodiment of the present invention, illustrating a state in which a stack of sheets is abutted against a stopper. [Figure 4] 4 is a plan view of the cutting device shown in FIG. 3 as seen from above. [Figure 5] FIG. 2 is a side view showing the cutting device according to the embodiment of the present invention, showing a state in which the upper blade is at the cutting position. [Figure 6] FIG. 6 is a plan view of the cutting device shown in FIG. 5 as seen from above. [Figure 7] 1 is a block diagram showing a schematic configuration of a cutting device according to an embodiment of the present invention; [Figure 8] 4 is a flowchart showing a cutting method executed by the cutting device of the present embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0019] A cutting device 100 according to an embodiment of the present invention will be described with reference to the drawings. Fig. 1 is a side view showing cutting device 100 according to an embodiment of the present invention, illustrating a state in which a stack of sheets B is being transported toward a stopper 60. Fig. 2 is a plan view of cutting device 100 shown in Fig. 1 as seen from above.

[0020] As shown in Figures 1 and 2, the cutting device 100 of this embodiment includes an upper blade (first blade) 10, a lower blade (second blade) 20 fixed at a predetermined position in the vertical direction (predetermined direction) VD, a pressing unit 30 to which the upper blade 10 is fixed, a cutting blade moving mechanism (first moving mechanism) 40, a conveying unit 50, a paper stack guide unit 55, a stopper 60, a positioning unit 70, a drive force conversion mechanism (second moving mechanism) 80, and a control unit 90.

[0021] The pressing unit 30 has the upper blade 10 fixed thereto and moves in the vertical direction VD by the cutting blade movement mechanism 40. The pressing unit 30 generates a pressing force that presses the stack of paper B placed on the lower blade 20 toward the lower blade 20 when the upper blade 10 is in the cutting position. The pressing unit 30 has a fixed member 31, a pressing member 32, a connecting member 33, and a spring 34.

[0022] The fixed member 31 is attached to the cutting blade moving mechanism 40 and is a member to which the upper blade 10 is fixed. The pressing member 32 is a member that presses the stack of paper B placed on the lower blade 20 toward the lower blade 20 when the upper blade 10 is in the cutting position. The connecting member 33 is a member that connects the pressing member 32 to the fixed member 31 so that it can be displaced along the vertical direction VD. The spring 34 is a member that generates a pressing force that presses the pressing member 32, which is in contact with the stack of paper B, toward the lower blade 20.

[0023] The cutting blade moving mechanism 40 is a mechanism that moves the upper blade 10 in the vertical direction VD between a non-cutting position (see FIG. 1) spaced apart from the lower blade 20 and a cutting position (see FIG. 5, described later) past the lower blade 20. The cutting blade moving mechanism 40 generates a first driving force by a driving source (not shown), such as an electric motor, that moves the pressing unit 30 in the vertical direction VD, and moves the upper blade 10 fixed to the fixed member 31 in the vertical direction VD. The control unit 90 transmits a movement command to the cutting blade moving mechanism 40, causing the cutting blade moving mechanism 40 to move the upper blade 10 in the vertical direction VD between the non-cutting position and the cutting position.

[0024] Although the cutting blade moving mechanism 40 is a mechanism that moves the upper blade 10 along the vertical direction VD between the non-cutting position and the cutting position, other embodiments are also possible. For example, the cutting blade moving mechanism 40 may be a mechanism that moves the upper blade 10 along another direction that intersects with the vertical direction VD (a direction inclined from the vertical direction VD). Also, for example, the cutting blade moving mechanism 40 may be a mechanism that moves the upper blade 10 in a direction along an arc-shaped trajectory.

[0025] The conveying unit 50 is a device that conveys the sheet stack B along a conveying direction TD that is horizontal and intersects with the vertical direction VD. The conveying unit 50 conveys the sheet stack B in a state in which the folded portion Ba of the sheet stack B is located downstream of the conveying direction TD and the fore-edge portion Bb of the sheet stack B is located upstream of the conveying direction TD. The conveying unit 50 has a first conveying belt 51 and a second conveying belt 52.

[0026] The first conveyor belt 51 is a device that conveys the stack of sheets B along the conveying direction TD toward an opposing position X1 where the upper blade 10 and the lower blade 20 face each other in the vertical direction VD. The opposing position X1 is a position on an axis X that extends in the horizontal direction HD parallel to the conveying direction TD. As shown in FIG. 2, the cutting device 100 has a pair of first conveyor belts 51 that are spaced apart along the width direction WD.

[0027] The second conveyor belt 52 is disposed downstream of the first conveyor belt 51 in the conveying direction TD and conveys the stack of sheets B toward the stopper 60. The second conveyor belt 52 also discharges the stack of sheets B, whose edge portion Bb has been cut by the upper blade 10 and the lower blade 20, along the conveying direction TD. As shown in FIG. 2, the cutting device 100 has a pair of second conveyor belts 52 disposed at an interval along the width direction WD.

[0028] The conveying section 50 operates in response to a conveying instruction transmitted from the control section 90, and conveys and stops the folded portion Ba of the sheet stack B to stop position X2 shown in Fig. 1. Stop position X2 shown in Fig. 1 is a position that is set in advance in accordance with the length of the sheet stack B in the conveying direction TD so that the fore edge portion Bb of the sheet stack B is positioned at a position where it is cut by the leading edge 10a of the upper blade 10. The second conveying belt 52 operates in response to a conveying instruction transmitted from the control section 90, and conveys the sheet stack B whose fore edge portion Bb has been cut by the upper blade 10 and the lower blade 20, and discharges it to the outside.

[0029] The paper stack guide 55 is a member that is arranged alongside the first conveyor belt 51 in the width direction WD perpendicular to the conveying direction TD, and that forms a guide surface Gs that supports the paper stack B from below in the vertical direction VD and guides it along the conveying direction TD. As shown in Fig. 2, the paper stack guide 55 has a first guide 55a that is arranged in the center of the width direction WD, a second guide 55b that is arranged on one end side of the first guide 55a, and a third guide 55c that is arranged on the other end side of the first guide 55a.

[0030] The first guide portion 55a, the second guide portion 55b, and the third guide portion 55c are each connected to the positioning portion 70. The paper stack guide portion 55 moves along the transport direction TD together with the positioning portion 70 by the second driving force generated by the driving force conversion mechanism 80.

[0031] The stopper 60 is a device against which the folded portion Ba, which is the downstream end portion in the conveying direction TD of the sheet stack B conveyed by the conveying unit 50, abuts. The stopper 60 has a stopper member 61 that is disposed to protrude above the second conveying belt 52 and against which the folded portion Ba of the sheet stack B abuts, and a stopper movement mechanism 62 that moves the stopper member 61 along the conveying direction TD and the vertical direction VD.

[0032] When determining the position of the folded portion Ba of the sheet stack B in the conveying direction TD, the stopper movement mechanism 62 moves the stopper member 61 to the stop position X2 based on information indicating the stop position X2 corresponding to the size of the sheet stack B in the conveying direction TD, which is transmitted from the control unit 90. When discharging the sheet stack B with the fore edge portion Bb cut, the stopper movement mechanism 62 moves the stopper member 61 to a retracted position so that the upper end of the stopper member 61 in the vertical direction VD does not protrude from above the second conveyor belt 52.

[0033] The positioning unit 70 is a device that presses the edge Bb, which is located at the upstream end of the sheet stack B in the conveying direction TD, along the conveying direction TD to bring the sheet stack B into contact with the stopper 60 and position it at the stop position X2. The positioning unit 70 has a moving member 71, a contact member 72, and a drive mechanism 73.

[0034] The moving member 71 is a member that moves along the conveying direction TD by a second driving force along the conveying direction TD that is generated by the driving force conversion mechanism 80. The contact member 72 is a member that comes into contact with the fore edge portion Bb of the paper-sheet stack B, and is attached to the moving member 71 and is capable of swinging around a swing shaft 72a. As shown by the dotted line in Fig. 1, when the paper-sheet stack B is not being conveyed upward, the contact member 72 is biased clockwise around the swing shaft 72a by a spring (not shown) so as to protrude above the guide surface Gs of the paper-sheet stack guide section 55.

[0035] 1, when the sheet stack B is being transported upward, the contact member 72 is rotated counterclockwise around the swing shaft 72a so that the upper end approaches the guide surface Gs of the sheet stack guide section 55. In this way, before the sheet stack B passes above, the contact member 72 rotates counterclockwise around the swing shaft 72a so that the sheet stack B is transported toward the stopper 60, and after the sheet stack B passes above, the contact member 72 swings clockwise around the swing shaft 72a and is positioned to face the fore edge Bb of the sheet stack B in the transport direction TD.

[0036] Here, an operation will be described in which contact member 72 is moved in conveyance direction TD relative to movable member 71 to bring sheet stack B into contact with stopper 60 and position it at stop position X2. Fig. 3 is a side view showing cutting device 100 according to one embodiment of the present invention, showing a state in which sheet stack B is abutted against stopper 60. Fig. 4 is a plan view of cutting device 100 shown in Fig. 3 as seen from above.

[0037] 3 and 4, when the upper blade 10 is in the non-cutting position, the downstream end of the movable member 71 in the conveying direction TD is located at position X3. The drive mechanism 73 moves the contact member 72 along the conveying direction TD relative to the movable member 71 so that the contact member 72 reciprocates between position X4 (shown by a solid line in FIG. 3) where it contacts the fore-edge portion Bb of the sheet stack B and position X5 (shown by a dotted line in FIG. 3) upstream of position X4 in the conveying direction TD. The drive mechanism 73 reciprocates the contact member 72 between positions X4 and X5, thereby positioning the folded portion Ba of the sheet stack B by bringing it into contact with the stopper 60.

[0038] The driving force converting mechanism 80 is a device that converts a first driving force along the vertical direction VD generated by the cutting blade moving mechanism 40 into a second driving force in the conveying direction TD, and moves the positioning unit 70 along the conveying direction TD. As shown in FIGS. 1 and 3, the driving force converting mechanism 80 has a connecting member 81 and a support member 82.

[0039] The connecting member 81 is a plate-like member having a predetermined length, and has a first end 81a swingably fixed to a swing shaft 31a formed on the fixed member 31, and a second end 81b swingably fixed to a swing shaft 71a formed on the moving member 71. The support member 82 is a member that supports the moving member 71 movably along the conveying direction TD. As shown in Fig. 2, the moving member 71 is supported by a pair of support members 82 that are spaced apart in the width direction WD.

[0040] The driving force conversion mechanism 80 converts a first driving force along the vertical direction VD generated by the cutting blade moving mechanism 40 into a second driving force that moves the moving member 71 along the conveying direction TD via a connecting member 81 and a support member 82. As shown in FIGS. 1 and 3, the driving force conversion mechanism 80 moves the moving member 71 of the positioning unit 70 so that the moving member 71 is positioned at a position X3 (proximate position) that is proximate to the opposing position X1 when the upper blade 10 is in a non-cutting position in the vertical direction VD.

[0041] Here, a state in which the upper blade 10 is in the cutting position will be described with reference to Figures 5 and 6. Figure 5 is a side view showing the cutting device 100 according to one embodiment of the present invention, showing the state in which the upper blade 10 is in the cutting position. Figure 6 is a plan view of the cutting device 100 shown in Figure 5 as seen from above.

[0042] When cutting the fore edge Bb of the paper-sheet stack B, the cutting blade movement mechanism 40 moves the pressing unit 30 downward in the vertical direction VD so that the upper blade 10 moves from the non-cutting position shown in Fig. 3 to the cutting position shown in Fig. 5. As shown in Fig. 5, when the upper blade 10 passes through the fore edge Bb and reaches the cutting position, a portion of the fore edge Bb is cut off and cutting chips C are removed.

[0043] When the upper blade 10 is at the cutting position in the vertical direction VD, the driving force converting mechanism 80 moves the movable member 71 of the positioning unit 70 so that the movable member 71 is located at a position X6 (retracted position) upstream in the conveying direction TD of the position X3 where the movable member 71 is closer to the opposing position X1. As shown in Fig. 5, the position X6 where the movable member 71 is located is a position where the position X7 of the downstream end of the contact member 72 is located further upstream in the conveying direction TD than the position X8 of the upstream end of the upper blade 10.

[0044] 1 and 2, when the upper blade 10 is in the non-cutting position, the drive force conversion mechanism 80 moves the sheet stack guide 55 along the conveying direction TD so that the downstream end of the sheet stack guide 55 in the conveying direction TD is located at position X9 (first position) close to the opposing position X1. As shown in Figures 5 and 6, when the upper blade 10 is in the cutting position, the drive force conversion mechanism 80 moves the sheet stack guide 55 along the conveying direction TD so that the downstream end of the sheet stack guide 55 in the conveying direction TD is located at position X10 (second position) which is upstream of position X9 in the conveying direction TD.

[0045] Next, a cutting method executed by the cutting device 100 of this embodiment will be described with reference to Fig. 7 and Fig. 8. Fig. 7 is a block diagram showing a schematic configuration of the cutting device 100 according to one embodiment of the present invention. Fig. 8 is a flowchart showing the cutting method executed by the cutting device 100 of this embodiment. Each process shown in Fig. 8 is executed by the control unit 90.

[0046] 7 is a device that controls each part of the cutting device 100. The control part 90 has a conveyance control part 91, a cutting control part 92, and a positioning control part 93. The conveyance control part 91 controls the first conveyor belt 51 and the second conveyor belt 52 of the conveyor part 50. The cutting control part 92 controls the cutting blade moving mechanism 40. The positioning control part 93 controls the drive mechanism 73.

[0047] Next, the processing executed by the control unit 90 will be described with reference to the flowchart of FIG. In step S101, the conveying control unit 91 controls the first conveying belt 51 and the second conveying belt 52 to convey the sheet stack B supplied from the upstream side of the first conveying belt 51 until it contacts the stopper 60, as shown in FIG.

[0048] In step S102, the positioning control section 93 moves the contact member 72 relative to the moving member 71 in the transport direction TD, as shown in FIG. 3, to position the sheet stack B at the stop position X2 where the stopper 60 is located.

[0049] In step S103, the cutting control unit 92 controls the cutting blade moving mechanism 40 to move the upper blade 10 from the non-cutting position to the cutting position. When the upper blade 10 moves from the non-cutting position to the cutting position, the state changes from that shown in FIG. 3 to that shown in FIG. 5, and the fore edge Bb of the stack of paper-sheets B is cut by the upper blade 10 and the lower blade 20.

[0050] In step S104, the driving force conversion mechanism 80 converts the first driving force in the vertical direction VD generated by the cutting blade moving mechanism 40 into a second driving force in the conveying direction TD, and moves the positioning section 70 from position X3 (proximity position) to position X6 (retraction position).

[0051] In step S105, the cutting control unit 92 controls the cutting blade moving mechanism 40 to move the upper blade 10 from the cutting position to the non-cutting position. When the upper blade 10 moves from the cutting position to the non-cutting position, the state shown in FIG. 5 changes to the state shown in FIG.

[0052] In step S106, the driving force conversion mechanism 80 converts the first driving force in the vertical direction VD generated by the cutting blade moving mechanism 40 into a second driving force in the conveying direction TD, and moves the positioning section 70 from position X6 (retracted position) to position X3 (proximity position).

[0053] In step S107, the conveyance control unit 91 controls the second conveyor belt 52 to discharge the sheet stack B with the edge portion Bb cut. Prior to discharging the sheet stack B, the control unit 90 controls the stopper movement mechanism 62 to move the upper end of the stopper member 61 in the vertical direction VD to a retracted position without protruding from above the second conveyor belt 52.

[0054] In step S108, the control section 90 determines whether or not to continue the cutting process of the sheet stack B. If YES, the process from step S101 onwards is executed again, and if NO, the process of this flowchart is terminated.

[0055] The actions and effects of the cutting device 100 of the present embodiment described above will be described. According to the cutting device 100 of this embodiment, the sheet stack B, whose downstream end in the conveying direction TD has been abutted against the stopper 60 by the conveying section 50, is positioned by the positioning section 70 so as to contact the stopper 60. Then, the fore-edge portion Bb of the sheet stack B, which is positioned at the opposing position X1 where the upper blade 10 and the lower blade 20 face each other, is cut when the upper blade 10 moves from the non-cutting position to the cutting position.

[0056] According to cutting device 100 of this embodiment, drive force conversion mechanism 80 converts the first drive force in the vertical direction VD generated by cutting blade movement mechanism 40 into a second drive force in the transport direction TD, so when upper blade 10 is moved from the non-cutting position to the cutting position by the first drive force, positioning unit 70 moves from position X3 (proximate position) to position X6 (retracted position), reliably preventing upper blade 10 from contacting positioning unit 70. Therefore, according to cutting device 100 of this embodiment, cutting is performed with stack of paper B positioned, and it is possible to appropriately prevent the cutting blade from contacting other components and causing the device to break down.

[0057] According to the cutting device 100 of this embodiment, when the upper blade 10 is in the non-cutting position, the downstream end of the paper stack guide 55 in the conveying direction TD is located at position X9 (first position) close to the opposing position X1, so that the paper stack B conveyed by the conveying section 50 can be supported by the guide surface Gs and can be reliably conveyed. Also, when the upper blade 10 is in the cutting position, the downstream end of the paper stack guide 55 in the conveying direction TD is located at position X10 (second position) which is upstream of position X9 (first position) in the conveying direction TD, so that the upper blade 10 can be reliably prevented from coming into contact with the paper stack guide 55 when moving from the non-cutting position to the cutting position.

[0058] Furthermore, according to the cutting device 100 of this embodiment, by converting the first driving force in the vertical direction VD generated by the cutting blade moving mechanism 40 into a second driving force in the transport direction TD and moving the moving member 71 along the transport direction TD, it is possible to reliably prevent the upper blade 10 from contacting the positioning unit 70 when the upper blade 10 moves from the non-cutting position to the cutting position. Furthermore, by moving the contact member 72 along the transport direction TD relative to the moving member 71, it is possible to move the contact member 72 along the transport direction TD at the positioning unit 70 located at position X3 (proximate position) and position the sheet stack B so that it contacts the stopper 60. [Explanation of symbols]

[0059] 10 Upper blade (1st blade) 20 Lower blade (second blade) 30 Pressing section 31 Fixing member 31a Oscillating shaft 32 Pressing member 33 Connecting member 34 Spring 40 Cutting blade moving mechanism (first moving mechanism) 50 Conveying section 51 First conveyor belt 52 Second conveyor belt 55 Paper stack guide section 60 Stopper 61 Stopper member 62 Stopper movement mechanism 70 Positioning part 71 Moving parts 71a Oscillating shaft 72 Contact member 72a Oscillating shaft 73 Drive mechanism 80 Driving force conversion mechanism (second moving mechanism) 81 Connecting member 82 Support member 90 Control Unit 91 Transport control section 92 Cutting control section 93 Positioning control section 100 cutting device B Paper stack Ba fold Bb Edge C. Chips Gs guide surface HD horizontal TD conveying direction VD vertical direction WD Width direction X axis

Claims

1. A first blade; a second blade fixed in place; a first movement mechanism that generates a first driving force that moves a tip end of the first blade in a predetermined direction between a non-cutting position spaced apart from the second blade and a cutting position past the second blade; a conveying section that conveys a stack of paper sheets along a conveying direction that intersects with the predetermined direction toward an opposing position where the first blade and the second blade face each other in the predetermined direction; a stopper against which a downstream end of the sheet bundle conveyed by the conveying unit in the conveying direction abuts; a positioning unit that positions the sheet bundle by pressing a fore-edge portion disposed at an upstream end of the sheet bundle in the conveying direction against the stopper along the conveying direction; a second moving mechanism that converts the first driving force generated by the first moving mechanism into a second driving force in the conveying direction, and moves the positioning unit along the conveying direction by the second driving force so that when the first blade is in the non-cutting position, the positioning unit is positioned at a proximity position close to the opposing position, and when the first blade is in the cutting position, the positioning unit is positioned at a retracted position upstream of the proximity position in the conveying direction.

2. a paper stack guide section that is arranged alongside the transport section in a width direction perpendicular to the transport direction and that forms a guide surface that supports the paper stack and guides it along the transport direction, The cutting device according to claim 1, wherein the second moving mechanism moves the paper stack guide along the conveying direction by the second driving force so that when the first blade is in the non-cutting position, the downstream end of the paper stack guide in the conveying direction is positioned at a first position close to the opposing position, and when the first blade is in the cutting position, the downstream end of the paper stack guide in the conveying direction is positioned at a second position upstream of the first position in the conveying direction.

3. The positioning unit is a moving member that is moved along the transport direction by the second moving mechanism; a contact member that contacts the edge portion of the paper stack; The cutting device according to claim 1 or 2, further comprising: a drive mechanism that moves the contact member relative to the moving member along the transport direction.

4. The cutting device according to claim 3 , wherein the retracted position is a position where the contact member is spaced upstream of the first blade in the conveyance direction.

5. A cutting method for cutting a stack of paper sheets using a cutting device, comprising: The cutting device A first blade; a second blade fixed in place; a conveying section that conveys the sheet stack along a conveying direction that intersects with the predetermined direction toward an opposing position where the first blade and the second blade face each other in the predetermined direction; a stopper against which a downstream end of the sheet bundle conveyed by the conveying unit in the conveying direction abuts; a positioning unit that positions the paper stack by pressing a fore-edge portion disposed at an upstream end of the paper stack in the conveying direction against the stopper, along the conveying direction; a cutting process of cutting the stack of sheets by generating a first driving force that moves the tip of the first blade along the predetermined direction between a non-cutting position spaced apart from the second blade and a cutting position past the second blade; a moving process of converting the first driving force generated by the cutting process into a second driving force in the conveying direction, and moving the positioning unit along the conveying direction by the second driving force so that when the first blade is in the non-cutting position, the positioning unit is positioned at a proximity position close to the opposing position, and when the first blade is in the cutting position, the positioning unit is positioned at a retracted position upstream of the proximity position in the conveying direction.

Citation Information

Patent Citations

  • Pushing and moving device of edge of booklet with cover in three-side trimmer

    JP2013230530A