End machine

The binding machine achieves synchronized operation of the driver and feed claw through a mechanical transmission mechanism, addressing coordination challenges in existing machines and ensuring reliable performance.

JP7842378B2Active Publication Date: 2026-04-08MAX CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-06-03
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Existing binding machines face challenges in coordinating the operation of the driver and feed pawl due to the need for synchronized control of separate drive sources, which can be disrupted by issues like air piping clogs.

Method used

A binding machine with a transmission mechanism that mechanically coordinates the operation of the driver and feed claw, ensuring synchronized operation without requiring separate drive source control.

Benefits of technology

Facilitates reliable and synchronized operation of the driver and feed claw, eliminating the need for complex timing control and enhancing operational stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a binding machine which enables a driver and a feed claw to operate in cooperation with each other easily.SOLUTION: A binding machine 10 includes: a driver 30 which pushes out a staple 80 toward a bag BG; a clincher 400 which sandwiches the staple 80 pushed out with the driver 30 to deform the staple 80; a feed claw 282 which feeds a connected body 800, formed by connecting the multiple staples 80 to each other, to a predetermined position in a movable range of the driver 30; and a transmission mechanism which transmits a force from the driver 30 to the feed claw 282 to operate the feed claw 282 in conjunction with an operation of the driver 30.SELECTED DRAWING: Figure 12
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Description

Technical Field

[0001] The present invention relates to a binding machine for binding an object to be bound.

Background Art

[0002] A binding machine is a device for binding, for example, the entrance portion of a bag containing fruits and vegetables using staples. The binding machine includes a driver that operates to push out staples toward the object to be bound, and a clincher that sandwiches and deforms the staples together with the driver. A plurality of staples are pre-connected to each other so that the object to be bound can be continuously bound, and are sequentially fed into a predetermined position in the binding machine. Patent Document 1 below describes a device for feeding staples (clip assemblies) in a connected state.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] The device described in Patent Document 1 above includes a feed pawl for feeding out a clip assembly and an air cylinder for driving the feed pawl. The air cylinder is a dedicated drive source for driving the feed pawl and is separate from the drive source for driving the driver. Therefore, in order to operate the driver and the feed pawl at appropriate timings, it is necessary to control the respective drive sources in cooperation with each other. However, when, for example, the air piping becomes clogged, the operation timings of the driver and the feed pawl change respectively. For this reason, it is considered difficult to always operate the driver and the feed pawl in appropriate cooperation.

[0005] The present invention aims to provide a binding machine that can easily coordinate the operation of a driver and a feed claw. [Means for solving the problem]

[0006] The strapping machine according to the present invention is a strapping machine that straps objects to be strapped together with staples, and comprises a driver that pushes staples toward the objects to be strapped, a clincher that deforms staples by gripping the pushed-out staples together with the driver, a feed claw that feeds a bundle of staples connected to each other toward a predetermined position within the movable range of the driver, and a transmission mechanism that transmits force from the driver to the feed claw, thereby operating the feed claw in conjunction with the operation of the driver.

[0007] The strapping machine with the above configuration is equipped with a transmission mechanism for operating the feed claws in conjunction with the operation of the driver. The transmission mechanism operates the feed claws by transmitting force from the driver to them. In such a configuration, the coordinated operation of the driver and feed claws is achieved solely by the transmission of mechanical power. Therefore, the driver and feed claws can be easily and reliably coordinated without the need for control to synchronize the operating timing of multiple drive sources. [Effects of the Invention]

[0008] The present invention provides a binding machine that can easily coordinate the operation of a driver and a feed claw. [Brief explanation of the drawing]

[0009] [Figure 1] Figure 1 shows the external appearance of a strapping machine according to the first embodiment. [Figure 2] Figure 2 shows the external appearance of the strapping machine according to the first embodiment. [Figure 3] Figure 3 shows the external appearance of the strapping machine according to the first embodiment. [Figure 4] Figure 4 shows the bundled items with their entrances secured. [Figure 5]Figure 5 shows the configuration of the staples. [Figure 6] Figure 6 shows the configuration of a connected body in which multiple staples are linked together. [Figure 7] Figure 7 shows the external appearance of the strapping machine according to the first embodiment. [Figure 8] Figure 8 shows the configuration of the part that guides the connecting body in the binding machine according to the first embodiment. [Figure 9] Figure 9 shows the internal configuration of the strapping machine according to the first embodiment. [Figure 10] Figure 10 shows the internal configuration of the strapping machine according to the first embodiment. [Figure 11] Figure 11 shows the mechanism for operating the driver. [Figure 12] Figure 12 shows the link member for operating the feed claw and the surrounding configuration. [Figure 13] Figure 13 shows the state of the feed pawl and the check pawl. [Figure 14] Figure 14 shows the link member for operating the feed claw and the surrounding configuration. [Figure 15] Figure 15 shows the state of the feed pawl and the check pawl. [Figure 16] Figure 16 shows the link member for operating the feed claw and the surrounding configuration. [Figure 17] Figure 17 shows the state of the feed pawl and the check pawl. [Figure 18] Figure 18 is a schematic diagram illustrating the operation of the feed claws, check claws, and other components of a binding machine according to a comparative example. [Figure 19] Figure 19 is a schematic diagram showing the operation of the feed claws, check claws, etc., of the strapping machine according to the second embodiment. [Modes for carrying out the invention]

[0010] Hereinafter, this embodiment will be described with reference to the accompanying drawings. For ease of understanding the description, the same reference numerals are given to the same components in each drawing as much as possible, and redundant descriptions are omitted.

[0011] The first embodiment will be described. The bundling machine 10 according to this embodiment is a device for bundling the entrance part of a bag containing fruits and vegetables, etc., and is used, for example, in the backyard of a supermarket or the like. FIGS. 1 to 3 show the appearance of the bundling machine 10.

[0012] FIG. 4 shows the bag BG after bundling using the bundling machine 10. The bag BG contains fruits and vegetables, etc. inside, and its entrance part is bundled by staples 80. The staples80 are, for example, substantially rod-shaped members formed of resin. The staples 80 are wound around the entrance part of the bag BG by the bundling machine 10 to bundle the entrance part. Note that the object to be bundled may be the bag BG as in this embodiment, or other objects. The configuration of the bundling machine 10 described below can also be applied to, for example, a bundling machine for bundling a plurality of members together.

[0013] FIG. 5 shows the shape of the staples 80 in the initial state before bundling. As shown in the figure, the staples 80 have a shape in which a pair of legs 81 are connected by a connecting portion 82, and the whole is substantially U-shaped. On the opposite side of the connecting portion 82, the space between the respective legs 81 is open.

[0014] To enable continuous fastening by the fastening machine 10, multiple staples 80 are arranged in a line along the depth direction of the paper in Figure 5, with each staple connected to the others via connecting parts 83. In other words, the entire assembly is molded as a single unit so that multiple staples 80 are connected to each other via connecting parts 83 to form a single string. The multiple staples 80 that are connected to each other to form a string will also be referred to as the "connecting body 800" below. The connecting body 800 is held by the connecting body holding part 170 (see Figure 1) of the fastening machine 10 while wound around a bobbin 700 as shown in Figure 6.

[0015] The configuration of the strapping machine 10 will be explained with reference to Figure 1 and other figures. In Figure 1, the direction from left to right on the page is defined as the x-direction, and the x-axis is set along this direction. The direction perpendicular to the x-direction, from the back of the page to the front of the page, is defined as the y-direction, and the y-axis is set along this direction. Furthermore, the direction perpendicular to both the x-direction and the y-direction, from the bottom of the page to the top of the page, is defined as the z-direction, and the z-axis is set along this direction. In the other figures, the x-axis, y-axis, and z-axis are set to correspond to those in Figure 1. In the following explanation, the terms "x-direction," "y-direction," and "z-direction" will be used as appropriate. Figure 1 is a view of the strapping machine 10 from the y-direction side, Figure 2 is a view of the strapping machine 10 from the -y-direction side, and Figure 3 is a view of the strapping machine 10 from the x-direction side.

[0016] First, let me explain the components of the strapping machine 10 that are visible externally. The strapping machine 10 comprises a main frame 100, a connecting body holding part 170, a motor unit 20, a battery unit 60, and a cutter unit 500.

[0017] The main frame 100 is the main body portion of the strapping machine 10 and holds each component of the strapping machine 10. The main frame 100 is constructed by combining multiple substantially flat plate-shaped members, etc., which are parallel to the plane of the paper in Figure 1. A handle 150 is provided at the upper end of the main frame 100 for gripping by the user of the strapping machine 10.

[0018] A guide groove 110 is formed in the main frame 100 so as to extend downward from its upper end. A switch member 111 is provided at the lower end of the guide groove 110. The user of the strapping machine 10 passes the portion of the bag BG to be strapped through the guide groove 110 and lowers the bag BG along the guide groove 110. When the bag BG hits the switch member 111 and rotates the switch member 111, an internal driver 30 (not shown in Figure 1, see Figure 9) etc. operates as will be explained later, and the opening portion of the bag BG is strapped with staples 80.

[0019] The connecting body holder 170 is the part that holds the bobbin 700 around which the connecting body 800 is wound. The connecting body holder 170 is formed as a rod-shaped shaft extending along the y-direction (i.e., the width direction of the strapping machine 10), and its rear end in Figure 1 is connected to the main frame 100. As shown in Figure 6, a through hole 701 is formed in the center of the bobbin 700. As shown in Figure 1, the bobbin 700 is attached to the strapping machine 10 by passing the through hole 701 through the connecting body holder 170. As a result, the connecting body 800 is held wound around the connecting body holder 170. When the strapping machine 10 is in use, as shown in Figure 7, the connecting body 800 pulled out from the bobbin 700 extends to the roller 161 and guide rail 162, but this is omitted from the illustration in Figures 1 to 3.

[0020] The roller 161 and the guide rail 162 are both components that guide the connecting body 800, which has been pulled out from the bobbin 700 as described above, to a predetermined position on the main frame 100. As shown in Figures 1 and 3, the roller 161 and the guide rail 162 are provided at positions on the y-direction side of the main frame 100.

[0021] Figure 8 shows an enlarged view of the roller 161, guide rail 162, and their vicinity from Figure 3, along with the connecting body 800 that they guide. In Figure 8, some of the structures shown in Figure 3 have been omitted to make the connecting body 800 easier to see.

[0022] The roller 161 is a roughly cylindrical rotating body positioned with its axis of rotation aligned with the z-direction. The connecting body 800 is pulled out from the bobbin 700 and generally towards the x-direction, and then guided along the side of the roller 161 to change direction generally towards the -y-direction. As shown in Figure 8, the connecting body 800 is guided by the roller 161 with the connecting portions 82 of each staple 80 facing inward and the tips of the leg portions 81 facing outward.

[0023] As shown in Figure 1, the guide rail 162 is positioned slightly to the x-direction of the roller 161. As shown in Figure 8, the guide rail 162 extends linearly from the vicinity of the roller 161 toward the -y-direction. The guide rail 162 is a generally flat plate-shaped member, positioned with its normal direction aligned with the z-direction.

[0024] The connecting body 800 is configured such that the guide rail 162 is inserted from the x-direction side between the pair of legs 81 of the staple 80. This holds the connecting body 800 in a state where it can slide along the guide rail 162 in the -y-direction. The staple 80 at the very front of the connecting body 800 is positioned in the area of ​​the main frame 100 through which the driver 30 (described later) passes (i.e., within the range of motion of the driver 30), and is used to fasten the bag BG in the next operation. The guide rail 162 can be said to guide the connecting body 800, which has been pulled out from the connecting body holding part 170, into the range of motion of the driver 30 along the width direction (y-direction).

[0025] As shown in Figure 8, a feed member 280 is provided on the upper side of the guide rail 162, and a check member 290 is provided on the lower side of the guide rail 162.

[0026] The feed member 280 is a plate-shaped member with a feed claw 282 formed at its tip. The feed member 280 is attached to the link member 270 via a shaft 281. The feed member 280 is rotatable around the shaft 281 and is biased in the clockwise direction in Figure 8 by a spring (not shown).

[0027] The link member 270 is a member that is attached to the main frame 100 in a movable state. The portion of the link member 270 to which the feed member 280 is attached (the folded portion 274 described later) is biased toward the -y direction by a spring (not shown in Figure 8). The feed member 280 is biased toward the -y direction as described above, with the feed claw 282 inserted into a part of the connecting body 800. Therefore, the connecting body 800 is also biased toward the -y direction by the force from the feed claw 282.

[0028] When the binding is performed by the binding machine 10, the staple 80 that was at the very tip of the connecting body 800 disappears, and the force from the feed claw 282 feeds the connecting body 800 toward the -y direction. Subsequently, the link member 270 moves toward the y direction by a mechanism which will be described later. As the feed claw 282 moves toward the y direction together with the link member 270, it detaches from the connecting body 800 once, and then re-enters a part of the connecting body 800 at a position one step further toward the y direction than before.

[0029] The check valve member 290 is a plate-shaped member with a check claw 292 formed at its tip. The check valve member 290 is attached to the base member 102 via a shaft 291. The base member 102 is a member attached to the main frame 100. The check valve member 290 is rotatable around the shaft 291 and is biased in the counterclockwise direction in Figure 8 by a spring (not shown). The check valve member 290 is in a state where the check claw 292 is inserted into a part of the connecting body 800.

[0030] When the binding machine 10 performs the binding, the feed claws 282 operate as described above, and the connecting body 800 is fed in the -y direction. The check member 290 is a member that prevents the connecting body 800 from moving in the reverse direction at that time, by the check claws 292.

[0031] As described above, when the driver 30 operates for fastening, the link member 270 and feed claw 282, etc., operate in conjunction with it, feeding the connecting body 800 into the main frame 100. The feed claw 282 can be described as a component that works in conjunction with the driver 30 to feed each staple 80 contained in the connecting body 800 toward a predetermined position within the movable range of the driver 30. The specific configuration for coordinating the operation of the driver 30 and the feed claw 282 will be described later.

[0032] Let's return to Figure 1 and continue the explanation. The motor unit 20 houses the electric motor 50 and other components inside. The electric motor 50 is a rotating electric machine provided as a drive source for operating the binding machine 10. The electric motor 50 operates by receiving power from the battery unit 60 and drives the driver 30, which will be described later. Inside the motor unit 20, in addition to the electric motor 50, there is also a control board (not shown) for controlling the operation of the binding machine 10.

[0033] The motor unit 20 is located on the lower part of the main frame 100, on the y-direction side. A switch 25 is provided on the y-direction side of the motor unit 20. When the user operates the switch 25, the control board is activated, and the bundling machine 10 enters standby mode.

[0034] The battery unit 60 is a unitized system combining a battery (e.g., a lithium-ion battery) for storing the power necessary for the operation of the strapping machine 10 with a control board 62 (see Figure 3) for controlling the charging and discharging of the battery. The battery unit 60 is pre-charged by an external charger and then installed in the battery mounting section 600 of the strapping machine 10. The power supplied from the battery unit 60 via the battery mounting section 600 is supplied to the electric motor 50 and also to the control board for controlling the operation of the strapping machine 10. As shown in Figure 3, a display unit 61 is provided on the outer surface of the battery unit 60. The display unit 61 displays information such as the remaining battery charge by the illumination status of LEDs.

[0035] In this embodiment, the battery mounting section 600 is provided on the bundling machine 10 as part of the motor unit 20. Specifically, the portion of the motor unit 20 that is on the x-direction side and the -y-direction side is configured as the battery mounting section 600. As shown in Figure 3, a space for arranging the battery unit 60 is formed between the battery mounting section 600 and the main frame 100. The user can attach the battery unit 60 to the battery mounting section 600 by sliding the battery unit 60 towards the -x direction while facing the battery mounting section 600 from the -y-direction side. The battery unit 60 is held by the battery mounting section 600 with its internal control board 62 perpendicular to the y-direction (width direction).

[0036] The cutter unit 500 is used to cut off the excess portion of the bag BG beyond the staples 80 after the bag BG has been secured. The cutter unit 500 has a straight groove 501 formed therein, and a blade 510 is provided along the inner surface of the groove 501.

[0037] Once the bag BG is secured, the user can pull the bag BG up along the guide groove 110, then move the bag BG inside the groove 501, and cut off the excess portion of the bag BG with the blade 510. Alternatively, the bag BG may be configured to automatically cut off after the securing is complete by a mechanism not shown.

[0038] The internal configuration of the strapping machine 10 will be explained with reference primarily to Figure 9. As shown in the figure, the strapping machine 10 includes reduction gears 210 and 220, a cam gear 230, a crank 240, a coupling link 250, a driver 30, and a clincher 400. All of these are located inside the main frame 100 and are held in place by the main frame 100.

[0039] The reduction gears 210 and 220 are a pair of gears that mesh with each other, and they transmit the rotation of the drive shaft 51 of the electric motor 50 to the cam gear 230, which will be described later, while reducing its speed. The drive shaft 51 is provided with its longitudinal direction aligned with the width direction (y direction), and a part of it is embedded inside the main frame 100. The portion of the drive shaft 51 embedded inside the main frame 100 is equipped with a gear that meshes with the reduction gear 210, but this gear is not shown in Figure 9.

[0040] The cam gear 230 rotates upon receiving force from the reduction gear 220 and is a component that operates the crank 240. The crank 240 is rotatably mounted to the vicinity of the outer circumference of the cam gear 230 via a shaft 231. As the cam gear 230 rotates, the crank 240 reciprocates along the x-axis, changing its angle as appropriate. Figure 9 shows the state when the crank 240 is furthest towards the -x direction, and Figure 10 shows the state when the crank 240 is furthest towards the x direction. In the standby state before binding is performed, the state is as shown in Figure 9.

[0041] The connecting link 250 is a component that connects the crank 240 and the driver 30. One end of the connecting link 250 is rotatably attached to the end of the crank 240 opposite to the shaft 231 via the shaft 251. The other end of the connecting link 250 is rotatably attached to the end of the driver 30 on the -x direction side via the shaft 261. Force from the crank 240 is transmitted to the driver 30 via the connecting link 250.

[0042] The driver 30 is a component for pushing the staple 80 toward the bag BG (object to be stapled) which is passed through the guide groove 110. Inside the main frame 100, a pair of guide members 121 and 122 are provided, facing each other along the z direction, and a part of the driver 30 is sandwiched between them. The guide members 121 and 122 hold the driver 30 in a state where it can move only in the direction along the x axis. In other words, the direction of movement of the driver 30 is along the x axis. The position where the guide members 121 and 122 are provided is the position where the tip portion of the driver 30 on the x-direction side is sandwiched from above and below in the state shown in Figure 9, and corresponds to the position of the guide rail 162 mentioned earlier.

[0043] When the crank 240 is operated by the driving force of the electric motor 50, the driver 30 moves from the position in Figure 9 to the position in Figure 10. At this time, the x-side end of the driver 30 strikes the staple 80 at the very front (i.e., the -y side) of the connecting body 800, pushing the staple 80 toward the x-side. After the staple 80 is separated from the other staples by the cutting of the connecting portion 83, it moves toward the x-side together with the tip of the driver 30.

[0044] The clincher 400 is a component that deforms the staple 80 by clamping it together with the driver 30 as described above. As shown in Figure 9, the position where the clincher 400 is provided is opposite the tip of the driver 30 from the x-direction side, and is further towards the x-direction than the guide groove 110. On the -x-direction side of the clincher 400, that is, the side opposite the tip of the driver 30, a groove (not shown) is formed to guide the deformation of the leg portion 81 of the staple 80.

[0045] The staple 80 is pushed out in the x-direction by the driver 30 with the tip of its leg portion 81 facing the clincher 400. When the driver 30 reaches the position furthest to the x-direction within its range of motion, the tip of the leg portion 81 comes into contact with the clincher 400 and deforms into a predetermined shape while being guided by the groove. At this time, the opening portion of the bag BG is sandwiched between the legs 81. Therefore, the opening portion of the bag BG is fastened by the deformed staple 80, resulting in the state shown in Figure 4.

[0046] Inside the main frame 100, in addition to the driver 30 and clincher 400 described above, a convergence member 300 and a link member 260 are further provided.

[0047] The converging member 300 is a member used to pre-converge the portion of the bag BG (object to be bound) that passes through the guide groove 110 so that it is sized to be sandwiched between the legs 81 of the staple 80 before binding. The converging member 300 is a substantially flat plate parallel to the xz plane. One end of the converging member 300 along its longitudinal direction is provided with a pressing portion 320 that abuts against and presses against the bag BG. The other end of the converging member 300 along its longitudinal direction has a rotating hole through which the shaft 311 passes. The shaft 311 is a cylindrical shaft extending along the y direction, and its y-direction end is attached to the main frame 100. The converging member 300 is supported in a state that allows it to rotate around the shaft 311.

[0048] The convergent member 300, which is roughly flat, has an elongated hole 312 that penetrates it in the y-direction. The elongated hole 312 is a long, narrow hole formed to extend from the shaft 311 side toward the pressing part 320 side. The shaft 262, provided on the link member 260 described later, is inserted through the elongated hole 312. The convergent member 300 rotates around the shaft 311 due to the force it receives from the shaft 262. In the standby state before the binding operation is performed (Figure 9), the convergent member 300 is in standby position at the most clockwise position within its range of motion due to the force from the spring 351. In this state, the entire convergent member 300 does not overlap with the guide groove 110, and the pressing part 320 is positioned above the guide groove 110.

[0049] The link member 260 is a component for operating the converging member 300 in conjunction with the operation of the driver 30. The link member 260 is held in a state in which it can be moved parallel only in the direction along the x-axis. Like the converging member 300, the link member 260 is a substantially flat plate parallel to the xz plane. One end of the link member 260 along its longitudinal direction overlaps a part of the converging member 300 from the y-direction side. The shaft 262 described above is provided in this portion, and this shaft 262 is inserted through the elongated hole 312.

[0050] A circular hole is formed in the other end of the link member 260 along its longitudinal direction, and a shaft 261 is inserted through this hole. As mentioned earlier, the shaft 261 is the shaft that rotatably connects the coupling link 250 and the driver 30.

[0051] In the configuration described above, when the driver 30 moves in the x-direction, the link member 260 also moves in the x-direction along with the driver 30. The shaft 262 of the link member 260 moves in the x-direction while remaining inserted through the elongated hole 312 of the converging member 300. The converging member 300 rotates in the counterclockwise direction in Figure 9, resisting the force of the spring 351 due to the force that the edge of the elongated hole 312 receives from the link member 260. As a result, the pressing portion 320 of the converging member 300 moves downward along the guide groove 110, reaching the state shown in Figure 10.

[0052] The sequence of operations when the strapping machine 10 straps the bag BG will now be explained again. When the user passes the bag BG through the guide groove 110 and lowers it, and rotates the switch member 111, the electric motor 50 is driven. The driving force of the electric motor 50 causes the cam gear 230 and crank 240 to operate, moving the driver 30 in the x direction. The driver 30 moves from the standby position shown in Figure 9 to the strapping completed position shown in Figure 10.

[0053] Simultaneously, the link member 260 moves toward the x-direction along with the driver 30, causing the converging member 300 to rotate counterclockwise. The pressing portion 320 of the converging member 300 moves downward along the guide groove 110, and its tip comes into contact with the bag BG. The portion of the bag BG that passes through the guide groove 110 is deformed by the pressure from the pressing portion 320, and becomes pre-converged before the staples 80 reach it.

[0054] As described above, the driver 30 moves toward the x-direction, pushing the staple 80 that was at the tip of the connector 800 toward the x-direction. The staple 80 moves toward the bag BG located toward the x-direction, with the tip of its leg portion 81 pointed toward the clincher 400.

[0055] By the time the staple 80 reaches the position of the bag BG, the bag BG has converged due to being pressed by the pressing part 320 as described above, and is small enough to be sandwiched between the legs 81. Therefore, the staple 80 reaches the position of the clincher 400 while inserting the bag BG between the legs 81. After that, the staple 80 is deformed by being sandwiched between the driver 30 and the clincher 400, and the bag BG is fastened together.

[0056] Even after the binding is complete, the electric motor 50 continues to operate. The driver 30 moves from the position shown in Figure 10 toward the -x direction. Consequently, the converging member 300 rotates clockwise. Finally, each member returns to the standby position shown in Figure 9, at which point the electric motor 50 stops operating. During the period from when the electric motor 50 starts operating for binding until it stops, the cam gear 230 rotates 360 degrees.

[0057] The configuration for operating the feed claw 282 will now be described. First, the specific shape of the link member 260 will be described. As mentioned earlier, the link member 260 is a component that moves together with the driver 30 to operate the converging member 300. Figure 11 shows the link member 260 and the driver 30 and coupling link 250 connected to it in a perspective view. As shown in the figure, at the -z-direction end of the link member 260, a folded portion 263 is formed by folding back a part of a plate-shaped member so that it protrudes in the y-direction. A roller 264 is provided on the folded portion 263. The roller 264 is a substantially cylindrical component and is held in a state in which it can rotate around the rotation axis with its central axis aligned along the z-direction.

[0058] Next, the specific shape of the link member 270 will be described. As mentioned earlier, the link member 270 is a member that holds the feed member 280 via the shaft 281. As shown in Figure 12, the link member 270 is a substantially flat member that extends generally along the x-direction. The link member 270 is supported by the shaft 271 at a position approximately in the center along the x-direction. The shaft 271 is fixed to the main frame 100 and extends along the z-direction. The link member 270 is supported in a manner that allows it to rotate around the shaft 271.

[0059] The link member 270 has a biased portion 272 and a folded portion 274.

[0060] The biased portion 272 extends from a position near the -x end of the link member 270 toward the -y direction. A spring 273 is inserted through the biased portion 272 from the -y direction side. The -y end of the spring 273 abuts against the main frame 100, and the y end abuts against the link member 270. Since the spring 273 is compressed, it biases the biased portion 272 toward the y direction. As a result, the link member 270 is biased to rotate counterclockwise around the axis 271 in the direction shown in Figure 12.

[0061] The folded portion 274 is the part of the link member 270 that is closest to the x-direction and is folded back so as to protrude toward the z-direction. As previously described with reference to Figure 8, the feed member 280 is attached to the x-direction side of the folded portion 274 via the shaft 281.

[0062] As shown in Figure 12, the roller 264 of the link member 260 is located near the link member 270. The roller 264 is positioned opposite the edge 275 of the link member 270 on the -y side, along the y direction. The edge 275 is slightly inclined with respect to the x-axis, so that it moves toward the -y direction as it moves toward the x-direction.

[0063] In Figure 12, the binding machine 10 is in a standby state before binding (state as in Figure 9). In the standby state, the roller 264 is near the biased section 272, and there is a gap between the roller 264 and the edge 275.

[0064] Figure 13 shows the state of the feed member 280 and the check member 290 in the standby state shown in Figure 12. As shown in Figure 13, in the standby state, the feed claw 282 and the check claw 292 are inserted between a pair of adjacent staples 80 in the connecting body 800.

[0065] Since the link member 270 is biased by the spring 273 in Figure 12, the folding portion 274 is attempting to move toward the -y direction together with the feed member 280. Also, the feed claw 282 of the feed member 280 is inserted into a part of the connecting body 800. Therefore, a force toward the -y direction is applied to the connecting body 800 from the feed claw 282. However, in the standby state shown in Figures 12 and 13, the connecting body 800 is inserted all the way to the innermost part (-y direction). Therefore, the folding portion 274, the feed member 280, and the connecting body 800 are stationary in the position shown in Figure 13.

[0066] Figures 14 and 15 depict the state of the stapling machine 10 immediately after the driver 30 has operated and driven the staple 80 toward the x-direction, from the same viewpoint as in Figures 12 and 13. Note that at this point, neither the tip of the driver 30 nor the staple 80 has yet reached the position of the clincher 400.

[0067] When the staple 80 at the tip of the connecting body 800 is ejected by the driver 30, the force from the feed claw 282 causes the connecting body 800 to move toward the -y direction. As shown in Figure 14, the link member 270 rotates slightly counterclockwise around the axis 271. Also, as shown in Figure 15, the folded portion 274 and the feed claw 282 move toward the -y direction by approximately the length of one staple 80. The check member 290 rotates clockwise in Figure 15 as the check claw 292 receives force from the connecting body 800. As a result, the check claw 292 is temporarily detached from the connecting body 800 while it is moving. Once the movement of the connecting body 800 is complete, the check claw 292 re-enters part of the connecting body 800.

[0068] Furthermore, in the standby state shown in Figure 12, the edge of the check claw 292 on the -y direction side is perpendicular to the feed direction (y direction) of the connecting body 800, while the edge of the check claw 292 on the y direction side is oblique to the feed direction (y direction) of the connecting body 800. The above-mentioned operation of the check member 290 in conjunction with the movement of the connecting body 800 is caused by the shape of the check claw 292.

[0069] As shown in Figure 14, when the driver 30 moves from the standby state to the x-direction, the link member 260 and the roller 264 also move to the x-direction. In the state shown in Figure 14, the roller 264 is in contact with the edge 275 of the link member 270 due to the rotation of the link member 270 in a counterclockwise direction and the movement of the roller 264 to the x-direction.

[0070] Figures 16 and 17 show the state of the stapling machine 10 at the point when the driver 30 has moved further in the x-direction and the stapling of the bags BG with the staples 80 is complete, from the same viewpoint as in Figures 12 and 13.

[0071] As the driver 30 moves further in the x-direction from the state shown in Figure 14, the link member 260 and the roller 264 also move in the x-direction. As shown in Figure 16, the link member 270 rotates clockwise around the axis 271 due to the force received by the roller 264 on its edge 275. As a result, the folded portion 274 of the link member 270 moves in the y-direction together with the feed member 280.

[0072] As shown in Figure 17, the feed member 280 rotates in the counterclockwise direction in Figure 15 due to the force the feed claw 282 receives from the connecting body 800. This causes the feed claw 282 to temporarily detach from the connecting body 800.

[0073] Furthermore, in the standby state shown in Figure 12, the edge of the feed claw 282 on the -y direction side is perpendicular to the feed direction (y direction) of the connecting body 800, while the edge of the feed claw 282 on the y direction side is oblique to the feed direction (y direction) of the connecting body 800. The above-mentioned movement of the feed member 280 accompanying the movement of the folding portion 274 is caused by the shape of the feed claw 282.

[0074] When the feed member 280 moves toward the y-direction along with the folding portion 274, there is a concern that the connecting body 800 may also move toward the y-direction due to the force received from the feed claw 282. However, at this point, the check claw 292 is engaged with a part of the connecting body 800, so the movement of the connecting body 800 as described above is prevented. Thus, the check claw 292 is provided to prevent the connecting body 800 from moving toward the y-direction (i.e., toward the direction away from the range of motion of the driver 30).

[0075] Once the bag BG is secured, the driver 30 and roller 264 move toward the -x direction. This returns the securing machine 10 to the standby state shown in Figures 12 and 13.

[0076] As described above, in the binding machine 10 according to this embodiment, force from the driver 30 is transmitted to the feed claws 282 via the rollers 264 and link member 270 of the link member 260, and as a result, the feed claws 282 are operated in conjunction with the driver 30. The rollers 264 and link member 270 constitute a "transmission mechanism" that operates the feed claws 282 in conjunction with the operation of the driver 30.

[0077] In this configuration, the coordinated operation of the driver 30 and the feed pawl 282 is achieved solely by the transmission of mechanical power. Therefore, it is possible to easily and reliably coordinate the operation of the driver 30 and the feed pawl 282 without the need for control to synchronize the operating timing of multiple drive sources.

[0078] In this embodiment, the transmission mechanism transmits force from the driver 30 to the feed pawl 282 as the link member 270 rotates around the axis 271, which is the rotation axis. This causes the feed pawl 282 to operate in a direction (y direction) perpendicular to the operating direction (x direction) of the driver 30. However, a different configuration may be adopted as long as mechanical interlocking between the driver 30 and the feed pawl 282 is achieved.

[0079] In realizing the functions described above, the arrangement of the feed claw 282 and the check claw 292 is not limited to the configuration shown in Figure 8, and various arrangements can be adopted. For example, both the feed claw 282 and the check claw 292 may be positioned on the z-direction side of the connecting body 800.

[0080] In that case, the feed member 280 and the check member 290 would be aligned along the y-direction. Such a configuration is undesirable because it would increase the dimensions of the strapping machine 10 along the width direction (y-direction), potentially creating constraints on the installation location of the strapping machine 10.

[0081] Therefore, in the strapping machine 10 according to this embodiment, the check claw 292 is positioned on the opposite side of the connecting body 800 from the feed claw 282. As a result of the feed member 280 and the check member 290 being positioned to be generally opposite each other along the z direction, the dimensions of the strapping machine 10 along the width direction (y direction) can be suppressed. Note that the "position on the opposite side of the connecting body 800 from the feed claw 282" in the above description includes not only the position of the check claw 292 where the y coordinate of the check claw 292 and the y coordinate of the feed claw 282 are generally the same, but also the position of the check claw 292 where the y coordinate of the check claw 292 and the y coordinate of the feed claw 282 are different.

[0082] The arrangement of the feed claws 282 and the check claws 292 is not limited to the above configuration, and various arrangements can be adopted. For example, the entire check member 290 may be rotated 90 degrees around the y-axis, and the check member 290 may be positioned on the -x side of the connecting body 800.

[0083] The second embodiment will now be described. The following will primarily focus on the differences from the first embodiment, while common points will be omitted as appropriate.

[0084] First, let's describe the comparative example. Figure 18(A) schematically shows the configuration of the connecting body 800 and its surroundings in the binding machine 10 according to the comparative example. In the figure, the part labeled "123" is one of the members that guides the connecting body 800, and is a member that defines the position of the end on the -y direction side of the movable range of the connecting body 800. This member will also be referred to as the "guide member 123" below.

[0085] In this comparative example, similar to the first embodiment shown in Figure 8, the position of the feed claw 282 in the standby state is on the y-direction side of the check claw 292. Note that in Figure 18(A), the reference numeral "282A" indicates the position of the feed claw 282 when it has moved as far as the -y direction within its range of motion. In other words, it is the position where the feed claw 282 is stationary when the connecting body 800 is removed from the guide rail 162 and the folded portion 274 of the link member 270 is allowed to move freely. This position is on the -y direction side of the check claw 292. In other words, in this comparative example, the check claw 292 is positioned inside the range of motion of the feed claw 282 along the y direction.

[0086] In a comparative example of this configuration, as the bag BG is repeatedly bundled, the connecting body 800 gradually shortens. Eventually, as shown in Figure 18(B), the connecting body 800 no longer exists on the y-direction side of the feed claw 282. Figure 18(B) shows the state after the connecting body 800 has shortened as described above, and the feed claw 282 has moved to its furthest -y-direction side. In this state, the feed claw 282 is in a position on the -y-direction side of the check claw 292, so the check claw 292 does not penetrate the connecting body 800. The connecting body 800 is sandwiched between the feed claw 282 and the guide member 123.

[0087] After the state shown in Figure 18(B), when the driver 30 operates and the next binding is performed, the connecting body 800 becomes even shorter, as shown in Figure 18(C). The connecting body 800 is now shorter than the distance from the feed claw 282 to the guide member 123 when it is moved furthest towards the -y direction. Furthermore, since the connecting body 800 is not held by either the feed claw 282 or the check claw 292, it is in a state where it can move freely, and its position along the y direction is unstable.

[0088] In this state, if the driver 30 operates again and the next fastening is performed, the staples 80 may get stuck within the range of motion of the driver 30. For example, if the staple 80 on the -y side of the connecting body 800 moves 0.5 staples in the -y direction from the state in Figure 18(C) and the fastening is performed, there is a high possibility that the staple 80 will get stuck.

[0089] Therefore, in the strapping machine 10 according to this embodiment, the above problem is prevented by changing the position of the feed claw 282 in the standby state.

[0090] Figure 19(A) schematically shows the configuration of the binding body 800 and its surroundings in the standby state of the binding machine 10 according to this embodiment, in the same manner as in Figure 18(A). In this embodiment, the position of the feed claw 282 in the standby state is on the -y side of the position of the check claw 292. When the binding operation is performed, the feed claw 282 moves further on the -y side from the position in Figure 19(A) to the position indicated by the reference numeral "282A" in the same figure. Thus, in this embodiment, the check claw 292 is positioned outside (on the y side) of the movable range of the feed claw 282 along the y direction.

[0091] In this embodiment as well, as the bags BG are repeatedly bundled, the connecting body 800 gradually shortens. Eventually, as shown in Figure 19(B), only the feed claw 282 is engaged in the connecting body 800, and the check claw 292 is not engaged. In this embodiment, the locking of both the feed claw 282 and the check claw 292 does not become disengaged, as in the comparative example (Figure 18(B)), because the locking by the check claw 292 disengages first, and no action occurs that would disengage the locking by the feed claw 282.

[0092] After the state shown in Figure 19(B), the driver 30 operates and the next stapling is performed sequentially, causing the connecting body 800 to become even shorter, as shown in Figure 19(C). However, even at this point, the feed claw 282 is still engaged with the connecting body 800, so the connecting body 800 does not move further in the -y direction. After Figure 19(C), the connecting body 800 moves in the y direction together with the feed claw 282. Even if the driver 30 operates after that, it will result in a so-called "dry firing," and no staples 80 will be ejected.

[0093] The user notices that the connector 800 has become shorter and replaces it with a new connector 800A. The user inserts the tip of the new connector 800A into the feed claw 282 and check claw 292 and presses it against the shortened end of the connector 800. Figure 19(D) shows the state after the connector 800A has been replaced in this way. In this state, the check claw 292 is engaged with the connector 800A, and the state is the same as in Figure 19(A), so the bag BG can be repeatedly tied as usual thereafter.

[0094] To achieve the above operation, in the standby state shown in Figure 19(A), the feed claw 282 should be positioned downstream of the check claw 292 (i.e., in the -y direction) along the direction in which the connecting body 800 is fed out, and in a position that at least one staple 80 included in the connecting body 800 is sandwiched between the feed claw 282 and the check claw 292.

[0095] The embodiments have been described above with reference to specific examples. However, this disclosure is not limited to these specific examples. Modifications made to these specific examples by those skilled in the art are also included within the scope of this disclosure, as long as they retain the features of this disclosure. The elements, their arrangement, conditions, shapes, etc., of each of the aforementioned specific examples are not limited to those illustrated and can be modified as appropriate. The elements of each of the aforementioned specific examples can be combined in different ways as appropriate, as long as no technical inconsistencies arise. [Explanation of Symbols]

[0096] 10: Binding machine 30: Driver 80: Staples 264: Roller 270: Link member 271: Axis 282: Feed Claw 400: Clincha 450: Contact member 800: Concatenation BG: Bag

Claims

1. A binding machine that binds objects to be bound together using staples, A driver that pushes the staple toward the object to be fastened, A clincher that deforms the staple by clamping it together with the driver after it has been pushed out, A feed claw that feeds a connected body, in which multiple staples are linked to each other, toward a predetermined position within the movable range of the driver, A transmission mechanism that transmits force from the driver to the feed pawl, thereby operating the feed pawl in conjunction with the operation of the driver, A check claw prevents the connecting body from moving away from the predetermined position, Equipped with, In the standby state before the staples are fed out by the driver, The aforementioned feed claw is The position is downstream of the check claw in the direction in which the connecting body is fed out, and The check claw is positioned to hold at least one of the staples included in the connecting body between itself and the check claw, The aforementioned check claw is A binding machine located upstream of the movable range of the feed claws in the direction from which the connecting body is fed out.

2. The aforementioned transmission mechanism is The binding machine according to claim 1, wherein the feed claw is operated in a direction perpendicular to the operating direction of the driver.

3. The binding machine according to claim 2, wherein the transmission mechanism includes a link member that rotates around a rotating shaft and transmits force from the driver to the feed claw.

4. The binding machine according to claim 3, wherein the check claw is positioned on the opposite side of the connecting body from the feed claw.

Citation Information

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