Bag loading device and control method for bag loading device

The bag loading device optimizes bag stacking by using multiple conveying sections and controlled stacking units to achieve uniform height and reduce time, addressing the inefficiencies of individual suction and orientation changes in existing technologies.

JP7770677B2Active Publication Date: 2025-11-17HORIZON CO LTD
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Patent Information

Application Number
JP2022008657
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-24
Publication Date
2025-11-17
Estimated Expiration
2042-01-24

AI Technical Summary

Technical Problem

Existing bag loading devices require individual suction and orientation change of bags, leading to prolonged stacking times and reduced productivity.

Method used

A bag loading device with multiple conveying sections and controlled stacking units that allow simultaneous stacking of bags with different thickness directions, eliminating the need for individual orientation changes and optimizing the stacking process.

Benefits of technology

The device achieves uniform height in stacked bags and reduces the time required to form a bundle, enhancing productivity by streamlining the stacking process.

✦ Generated by Eureka AI based on patent content.

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Abstract

To uniformize height of a bundle stacked with a plurality of bags at each position and to shorten the time required to stack the plurality of bags to form the bundle.SOLUTION: There is provided a bag stacking device 100 including: a first stacking part 21 for stacking a first row of bags, a second stacking part 22 for stacking a second row of bags, a discharge part 24, and a control unit, in which the control unit controls the first stacking part 21 to drop a plurality of bags in the first row from the first stacking part 21 to the discharge part 24, and controls the discharge part 24 to move the plurality of bags in the first row that have dropped onto the discharge part 24 to below the plurality of bags in the second row that are stacked on the second stacking part 22, and controls the second stacking part 22 to drop the plurality of bags in the second row from the second stacking part 22 above the plurality of bags in the first row.SELECTED DRAWING: Figure 13
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Description

[Technical Field]

[0001] The present invention relates to a bag loading device and a method for controlling the bag loading device. [Background technology]

[0002] Conventionally, there is known an apparatus that loads multiple bags supplied from a bag making machine and uses a bundling machine to bundle the multiple bags (see, for example, Patent Document 1). The apparatus disclosed in Patent Document 1 uses suckers to suck the bags discharged in multiple rows onto a bag discharge conveyor, transport them to a bag accumulation conveyor, and then bundles the bundles accumulated in an accumulation pocket from the bag accumulation conveyor using a bundling machine. The apparatus disclosed in Patent Document 1 changes the orientation of some of the bags when transporting them using suckers to prevent bags that are thicker at the bottom than at the mouth from collapsing when stacked. This allows the bundle of multiple bags to be of a uniform height at each position. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Utility Model Application Publication No. 5-26808 Summary of the Invention [Problem to be solved by the invention]

[0004] However, in Patent Document 1, the bag must be sucked one by one by the sucker and transported from the bag discharge conveyor to the bag accumulation conveyor, which increases the time required to stack multiple bags. Furthermore, the orientation of some of the bags must be changed when transporting them by the sucker, which increases the time required to change the orientation of the bags. Thus, while Patent Document 1 can achieve a uniform height for each position in a bundle of multiple stacked bags, it takes a long time to stack multiple bags to form a bundle, which reduces productivity.

[0005] In response to the above problems, the object is to provide a bag loading device and a control method for a bag loading device that can make a bundle on which multiple bags are loaded a uniform height at each position and can shorten the time required to load multiple bags to form a bundle. [Means for solving the problem]

[0006] A bag loading device according to one embodiment of the present invention comprises a conveying section that conveys the bag bodies in multiple rows along a conveying direction, a first loading section that loads the bag bodies in a first row conveyed by the conveying section, a second loading section that loads the bag bodies in a second row conveyed by the conveying section, a discharge section that is arranged below the first loading section and the second loading section, and a control section that controls the bag loading device, wherein the control section controls the first loading section to drop the plurality of bag bodies in the first row from the first loading section to the discharge section, controls the discharge section to move the plurality of bag bodies in the first row that have dropped to the discharge section below the plurality of bag bodies in the second row that are loaded on the second loading section, and controls the second loading section to drop the plurality of bag bodies in the second row from the second loading section above the plurality of bag bodies in the first row.

[0007] In a bag loading device according to one aspect of the present invention, a first row of bags transported by a transport unit and loaded on a first stacking unit drops from the first stacking unit to a discharge unit. The first row of bags that dropped on the discharge unit move below a second row of bags loaded on a second stacking unit. The second row of bags loaded on the second stacking unit drops above the first row of bags, forming a bundle in which the first row of bags and the second row of bags are stacked one on top of the other.

[0008] According to a bag loading device according to one aspect of the present invention, when the thickness of one width direction of the bags in the first row is thicker than the thickness of the other width direction of the bags in the second row and the thickness of one width direction of the bags in the second row is thinner than the thickness of the other width direction of the bags in the first row, the overall thickness of the plurality of bags in the first row is thicker than the other width direction of the bags in the second row, and the overall thickness of the plurality of bags in the second row is thinner than the other width direction of the bags in the first row. Then, in a bundle formed by overlapping the entire plurality of bags in the first row and the entire plurality of bags in the second row, the difference between the thickness in one width direction and the thickness in the other width direction is equalized.

[0009] Thus, with the bag stacking device according to one aspect of the present invention, even if the thickness of one side of the bags in the first row in the width direction is thicker than the thickness of the other side of the width direction and the thickness of the bags in the second row in the width direction is thinner than the thickness of the other side of the width direction, it is possible to make the bundle in which multiple bags are stacked have a uniform height at each position. Furthermore, because it is not necessary to change the orientation of the bags one by one, it is possible to reduce the time required to stack multiple bags and form a bundle.

[0010] A bag loading device according to one embodiment of the present invention includes a third loading section that loads the bag bodies transported by the conveying section in multiple rows and is positioned above the first loading section and the second loading section, and the control section controls to switch between a first loading mode in which the bag bodies transported by the conveying section are loaded onto the first loading section and the second loading section, and a second loading mode in which the bag bodies transported by the conveying section are loaded onto the third loading section, and in the second loading mode, controls the first loading section to drop the multiple bag bodies in the first row from the first loading section onto the discharge section, controls the second loading section to drop the multiple bag bodies in the second row from the second loading section to the discharge section, and controls the third loading section to drop the multiple bag bodies loaded on the third loading section onto the first loading section and the second loading section.

[0011] According to the bag loading device of this configuration, in the second loading mode in which bags transported by the transport unit are loaded onto the third stacking unit, the first row of bags drops from the first stacking unit onto the discharge unit, and the second row of bags drops from the second stacking unit onto the discharge unit. Therefore, when dropping the bags from the first stacking unit and the second stacking unit onto the discharge unit, the bags transported from the transport unit can be loaded onto the third stacking unit without stopping the transport operation of the bags by the transport unit.

[0012] Furthermore, according to the bag loading device of this configuration, in the second loading mode, a plurality of bags loaded on the third loading section are dropped onto the first loading section and the second loading section, so that bags transported from the conveying section to the third loading section during the operation of dropping the bags from the first loading section and the second loading section onto the discharge section can be guided to the first loading section and the second loading section.

[0013] In one embodiment of the bag loading device of the present invention, a binding unit is provided that binds a bundle formed by stacking a plurality of the bag bodies in the first row and a plurality of the bag bodies in the second row with cable ties, and the control unit may be configured to control the discharge unit to discharge the bundle into the binding unit.

[0014] With the bag loading device of this configuration, bundles in which the difference between the thickness in one direction in the width direction and the thickness in the other direction in the discharge section has been equalized can be discharged from the discharge section to the bundling section and bundled with a bundling band.

[0015] In a control method for a bag loading device according to one aspect of the present invention, the bag loading device includes a conveying unit that conveys the bag bodies in a plurality of rows along a conveying direction, a first stacking unit that stacks the bag bodies in a first row conveyed by the conveying unit, a second stacking unit that stacks the bag bodies in a second row conveyed by the conveying unit, and a discharging unit that is disposed below the first stacking unit and the second stacking unit, and The method includes a conveying process for controlling a conveying unit, a first dropping process for controlling the first loading unit to drop the plurality of bag bodies in the first row from the first loading unit to the discharge unit, a moving process for controlling the discharge unit to move the plurality of bag bodies in the first row that have dropped to the discharge unit below the plurality of bag bodies in the second row that are loaded on the second loading unit, and a second dropping process for controlling the second loading unit to drop the plurality of bag bodies in the second row from the second loading unit above the plurality of bag bodies in the first row.

[0016] In a method for controlling a bag loading device according to one aspect of the present invention, a first row of bags transported by a transport unit and loaded on a first stacking unit drops from the first stacking unit to a discharge unit. The first row of bags that dropped on the discharge unit move below a second row of bags loaded on a second stacking unit. The second row of bags loaded on the second stacking unit drops above the first row of bags, forming a bundle in which the first row of bags and the second row of bags are stacked one on top of the other.

[0017] According to a method for controlling a bag loading device according to one aspect of the present invention, when the thickness of one side of the bag bodies in the first row in the width direction is thicker than the thickness of the other side of the width direction and the thickness of one side of the bag bodies in the second row in the width direction is thinner than the thickness of the other side of the width direction, the overall thickness of the plurality of bag bodies in the first row is thicker than the other side of the width direction, and the overall thickness of the plurality of bag bodies in the second row is thinner than the other side of the width direction. Then, in a bundle formed by overlapping the entire plurality of bag bodies in the first row and the entire plurality of bag bodies in the second row, the difference between the thickness in one side of the width direction and the thickness in the other side of the width direction is equalized.

[0018] Thus, according to the control method for a bag loading device of one aspect of the present invention, even if one widthwise thickness of the bags in the first row is thicker than the other widthwise thickness and one widthwise thickness of the bags in the second row is thinner than the other widthwise thickness, it is possible to make the bundle of multiple stacked bags have a uniform height at each position. Furthermore, because it is not necessary to change the orientation of the bags one by one, it is possible to reduce the time required to stack multiple bags and form a bundle.

[0019] In one embodiment of the control method for a bag loading device of the present invention, the bag loading device includes a third loading section that loads multiple rows of the bag bodies transported by the conveying section and is positioned above the first loading section and the second loading section, and includes a switching process (S103) for switching from a first loading mode in which the bag bodies transported by the conveying section are loaded onto the first loading section and the second loading section to a second loading mode in which the bag bodies transported by the conveying section are loaded onto the third loading section, and a third dropping process (S107) for controlling the third loading section to drop the multiple bag bodies loaded on the third loading section onto the first loading section and the second loading section, and the first dropping process, the second dropping process, and the third dropping process may be executed in the second loading mode.

[0020] According to the control method for the bag loading device of this configuration, in the second loading mode in which bags transported by the transport unit are loaded onto the third stacking unit, the first row of bags drops from the first stacking unit to the discharge unit, and the second row of bags drops from the second stacking unit to the discharge unit. Therefore, when dropping the bags from the first stacking unit and the second stacking unit to the discharge unit, the bags transported from the transport unit can be loaded onto the third stacking unit without stopping the bag transport operation by the transport unit.

[0021] Furthermore, according to the control method for the bag loading device of this configuration, in the second loading mode, a plurality of bags loaded on the third loading section are dropped onto the first loading section and the second loading section, so that bags transported from the conveying section to the third loading section during the operation of dropping the bags from the first loading section and the second loading section onto the discharge section can be guided to the first loading section and the second loading section.

[0022] In a control method for a bag loading device according to one embodiment of the present invention, the bag loading device may be configured to include a binding unit that binds a bundle formed by stacking the plurality of bag bodies in the first row and the plurality of bag bodies in the second row with cable ties, and to include a discharge process that controls the discharge unit to discharge the bundle into the binding unit.

[0023] According to the control method for the bag loading device of this configuration, bundles in which the difference between the thickness in one direction in the width direction and the thickness in the other direction in the discharge section has been equalized can be discharged from the discharge section to the bundling section and bundled with a bundling band. [Effects of the Invention]

[0024] According to the present invention, it is possible to provide a bag loading device and a control method for a bag loading device that can make a bundle on which multiple bag bodies are loaded have a uniform height at each position and shorten the time required to load multiple bag bodies and form a bundle. [Brief explanation of the drawings]

[0025] [Figure 1] 1 is a perspective view showing a bag loading device according to an embodiment of the present invention; [Figure 2] 2 is a plan view of the bag loading device shown in FIG. 1 as seen from above. [Figure 3] FIG. 2 is a perspective view of the bag body shown in FIG. [Figure 4] FIG. 2 is a perspective view of the transport unit shown in FIG. [Figure 5] 2 is a perspective view of the loading unit shown in FIG. 1, showing a state in which a first loading mode is being executed. FIG. [Figure 6] FIG. 6 is a right side view of the loading unit shown in FIG. 5. [Figure 7] FIG. 6 is a left side view of the loading unit shown in FIG. 5. [Figure 8] 4 is a flowchart showing a control method for the bag loading device according to one embodiment of the present invention. [Figure 9] 2 is a perspective view of the loading unit shown in FIG. 1, showing a state in which a second loading mode is being executed. FIG. [Figure 10] FIG. 10 is a side view of the loading unit shown in FIG. 9. [Figure 11] 2 is a perspective view of the loading unit shown in FIG. 1, showing a state in which a bag has been dropped from a first loading section to a discharge section. FIG. [Figure 12] FIG. 12 is a side view of the loading unit shown in FIG. [Figure 13] 2 is a perspective view of the loading unit shown in FIG. 1, showing a state in which a bag body has been moved from below a first loading section to below a second loading section. FIG. [Figure 14] 2 is a perspective view of the loading unit shown in FIG. 1, showing a state in which a bag has been dropped from a second loading section to a discharge section. FIG. [Figure 15] FIG. 15 is a side view of the loading unit shown in FIG. [Figure 16] 15 is a view of the bundle shown in FIG. 14 as seen from the transport unit side. [Figure 17] 2 is a perspective view of the loading unit shown in FIG. 1, showing a state in which bundles have been discharged from a discharge section to a bundling unit. FIG. [Figure 18] 2 is a perspective view of the loading unit shown in FIG. 1, showing a state in which bags have been dropped from the third loading section onto the first loading section and the second loading section. FIG. [Figure 19] FIG. 19 is a side view of the loading unit shown in FIG. 18. DETAILED DESCRIPTION OF THE INVENTION

[0026] A bag loading device 100 according to one embodiment of the present invention will be described with reference to the drawings. Fig. 1 is a perspective view showing the bag loading device 100 according to one embodiment of the present invention. Fig. 2 is a plan view of the bag loading device 100 shown in Fig. 1, viewed from above. Fig. 3 is a perspective view of a bag body 200 shown in Fig. 1.

[0027] The bag loading device 100 of this embodiment is an apparatus that stacks and loads a plurality of bag bodies 200 manufactured by a bag making machine 300, and binds the stacked bag bodies 200 with a binding band. As shown in Fig. 1, the bag loading device 100 of this embodiment includes a conveying unit (conveying section) 10, a loading unit 20, a binding unit (binding section) 30, and a control unit (control section) 40.

[0028] The conveying unit 10 is a device that conveys the bag bodies 200 along the conveying direction TD1. As shown in Fig. 2, the conveying unit 10 receives the bag bodies 200 manufactured by the bag making machine 300 and supplies them to the loading unit 20 along the conveying direction TD1. As shown in Fig. 2, the conveying unit 10 conveys the bag bodies 200 in multiple rows, i.e., a first row Co1 and a second row Co2, along the conveying direction TD1.

[0029] 3, bag 200 is made by overlapping a pair of films to form mouth 210 at one end, inserting a folded base material in half at the other end to form bottom 220, and joining both side edges to form seals 230, 240. This type of bag 200 is called a three-sided stand bag.

[0030] Because a base material is inserted into the bottom portion 220 of the bag body 200, the thickness T2 of the bottom portion 220 is thicker than the thickness T1 of the mouth portion 210. As shown in Fig. 3, the bag body 200 is conveyed by the conveying unit 10 with the extension directions of the mouth portion 210 and the bottom portion 220 coinciding with the conveying direction TD1 and the extension directions of the seal portions 230, 240 coinciding with the width direction WD. The length L2 of the bag body 200 along the width direction WD is longer than the length L1 along the conveying direction TD1.

[0031] In this embodiment, the bag body 200 is a three-sided stand bag as shown in FIG. 3 , but the bag loading device 100 of this embodiment can also transport and load bag bodies of other shapes. For example, the bag body may be a three-sided bag made by overlapping a pair of films to form a mouth on one side and joining the other three sides to form a sealed portion. It may also be another bag body whose bottom is thicker than its mouth. It may also be a bag whose mouth and bottom are uniform in thickness. The bag loading device 100 of this embodiment is particularly effective when stacking and loading bag bodies whose bottom is thicker than their mouths, but is also effective when stacking and loading bag bodies whose mouths are thicker than their bottoms.

[0032] This is also effective when stacking bags with uniform thickness at the top and bottom. As will be described later, the bags 200 are transported in two rows by the transport unit 10 to the loading unit 20, and the two rows of bags 200 are accumulated as a single bundle 400 and bundled by the bundling unit 30.

[0033] 2, the conveying unit 10 conveys the bags 200 in a state in which the bag bodies 200 in the first row Co1 and the bag bodies 200 in the second row Co2 are adjacent to each other along the width direction WD at the same position in the conveying direction TD1. The bag bodies 200 in the first row Co1 and the bag bodies 200 in the second row Co2 are arranged so that the mouth portions 210 of the bag bodies 200 in the first row Co1 and the mouth portions 210 of the bag bodies 200 in the second row Co2 are positioned close to each other in the width direction WD. Furthermore, the bag bodies 200 in the first row Co1 and the bag bodies 200 in the second row Co2 are arranged so that the bottom portions 220 of the bag bodies 200 in the first row Co1 and the bottom portions 220 of the bag bodies 200 in the second row Co2 are positioned apart from each other in the width direction WD.

[0034] The thickness of the bottom 220 (one side in the width direction WD) of the bag bodies 200 in the first row Co1 is thicker than the thickness of the mouth 210 (the other side in the width direction WD). The thickness of the mouth 210 (one side in the width direction WD) of the bag bodies 200 in the second row Co2 is thinner than the thickness of the bottom 220 (the other side in the width direction WD). In this way, the conveying unit 10 conveys a plurality of bag bodies 200 with the mouth 210 and the bottom 220 of a pair of adjacent bag bodies 200 in the width direction WD facing in different directions.

[0035] Fig. 4 is a perspective view of the transport unit 10 shown in Fig. 1. As shown in Fig. 4, the transport unit 10 includes a first conveyor 11, a second conveyor 12, and a feed roller 13.

[0036] The first conveyor 11 is a device that transports the bag bodies 200 in the first row Co1 and the second row Co2 that are supplied from the bag making machine 300 along the transport direction TD1 to the second conveyor 12. The first conveyor 11 transports the bag bodies 200 to the second conveyor 12 by rotating, along the transport direction TD1, resin belts 11a that are arranged at multiple locations along the width direction WD.

[0037] The second conveyor 12 is a device that conveys the bag bodies 200 in the first row Co1 and the second row Co2, which are supplied from the first conveyor 11 along the conveying direction TD1, to the feed rollers 13 along the conveying direction TD1. The second conveyor 12 conveys the bag bodies 200 to the feed rollers 13 by rotating, along the conveying direction TD1, resin belts 12a that are arranged at multiple locations along the width direction WD.

[0038] As the belt 12a advances along the conveyance direction TD1, it conveys the bag bodies 200 in the first row Co1 and the bag bodies 200 in the second row Co2 so that the distance in the width direction WD between the bag bodies 200 in the first row Co1 and the bag bodies 200 in the second row Co2 increases. As shown in Fig. 2, the distance in the width direction WD between the bag bodies 200 in the first row Co1 and the bag bodies 200 in the second row Co2 supplied from the bag making machine 300 to the conveyance unit 10 is CL1. The distance in the width direction WD between the bag bodies 200 in the first row Co1 and the bag bodies 200 in the second row Co2 increases from CL1 to CL2, and then from CL2 to CL3.

[0039] The feed rollers 13 are rollers that transport the bag bodies 200 in the first row Co1 and the second row Co2, which are supplied from the second conveyor 12 along the transport direction TD1, to the stacking unit 20.

[0040] The loading unit 20 is a device that stacks and loads a plurality of bags 200 transported from the transport unit 10, and discharges a bundle 400 made up of the plurality of bags 200 to the bundling unit 30. FIG. 5 is a perspective view of the loading unit 20 shown in FIG. 1, showing a state in which a first loading mode, which will be described later, is being executed. FIG. 6 is a right side view of the loading unit 20 shown in FIG. 5. FIG. 7 is a left side view of the loading unit 20 shown in FIG. 5.

[0041] As shown in FIG. 5, the stacking unit 20 has a first stacking section 21, a second stacking section 22, a third stacking section 23, a discharge section 24, a first guide 25, and a second guide 26.

[0042] The first stacking unit 21 is a device that temporarily stacks the bag bodies 200 in the first row Co1 that have been transported by the transport unit 10. The first stacking unit 21 is disposed at a position farther away from the bundling unit 30 in the width direction WD than the second stacking unit 22. As shown in FIG. 5, the first stacking unit 21 has a plurality of rod-shaped forks 21a that extend along the transport direction TD1. The first stacking unit 21 forms a loading surface on which the bag bodies 200 are loaded by arranging the plurality of forks 21a at intervals along the width direction WD.

[0043] 6, the first stacker 21 has a horizontal movement mechanism 21b that moves the multiple forks 21a along the conveying direction TD1 and a vertical movement mechanism 21c that moves the multiple forks 21a along the vertical direction VD. The first stacker 21 operates the horizontal movement mechanism 21b and the vertical movement mechanism 21c in response to a control signal transmitted from the control unit 40.

[0044] The second stacking unit 22 is a device that temporarily stacks the bag bodies 200 in the second row Co2 that have been transported by the transport unit 10. The second stacking unit 22 is disposed at a position closer to the bundling unit 30 in the width direction WD than the first stacking unit 21. As shown in FIG. 5, the second stacking unit 22 has a plurality of rod-shaped forks 22a that extend along the transport direction TD1. The second stacking unit 22 forms a loading surface on which the bag bodies 200 are loaded by arranging the plurality of forks 22a at intervals along the width direction WD.

[0045] 7, the second loading section 22 has a horizontal movement mechanism 22b that moves the multiple forks 22a along the transfer direction TD1 and a vertical movement mechanism 22c that moves the multiple forks 22a along the vertical direction VD. The second loading section 22 operates the horizontal movement mechanism 22b and the vertical movement mechanism 22c in response to a control signal transmitted from the control unit 40.

[0046] The third stacking section 23 is a device that temporarily stacks the bag bodies 200 in the first row Co1 and the bag bodies 200 in the second row Co2 that have been transported by the transport unit 10. The third stacking section 23 is disposed above the first stacking section 21 and the second stacking section 22 in the vertical direction VD. As shown in FIGS. 5 and 6, the third stacking section 23 has a plurality of rod-shaped forks 23a that extend along the transport direction TD1. The third stacking section 23 forms a loading surface on which the bag bodies 200 are loaded by arranging the plurality of forks 23a at intervals along the width direction WD.

[0047] 6 and 7, the third stacker 23 has a horizontal movement mechanism 23b that moves the multiple forks 23a along the conveying direction TD1 and a vertical movement mechanism 23c that moves the multiple forks 23a along the vertical direction VD. The third stacker 23 operates the horizontal movement mechanism 23b and the vertical movement mechanism 23c in response to a control signal transmitted from the control unit 40.

[0048] Discharge unit 24 is disposed below first stacker 21 and second stacker 22, and is a device that stacks bag bodies 200 that drop from first stacker 21 and second stacker 22. Discharge unit 24 bundles bag bodies 200 that have dropped from first stacker 21 and second stacker 22 into one bundle 400, and discharges it to bundling unit 30 along conveying direction TD2 that is perpendicular to conveying direction TD1.

[0049] The discharge unit 24 has a plurality of tubular members 24a extending along the width direction WD, a discharge pusher 24b, and a slide mechanism 24c. The discharge unit 24 forms a loading surface on which the bag bodies 200 are loaded by arranging the plurality of tubular members 24a at intervals along the conveyance direction TD1.

[0050] The discharge pusher 24b is a plate-like member arranged to extend along the vertical direction VD. The discharge pusher 24b is driven by a slide mechanism 24c to move along the width direction WD. The discharge pusher 24b moves the plurality of bags 200 that have fallen from the first stacking section 21 below the second stacking section 22. The discharge pusher 24b also discharges the bundle 400, which is made up of the bags 200 that have moved below the second stacking section 22 and the bags 200 that have fallen above the first bags 200 from the second stacking section 22, to the bundling unit 30.

[0051] The first guide 25 is a member that positions the bag body 200 in the conveying direction TD1 as it is conveyed to the stacking unit 20 along the conveying direction TD1. The first guide 25 has a plurality of pin guides 25a extending along the vertical direction VD and a pin bracket 25b to which the plurality of pin guides 25a are connected. The plurality of pin guides 25a are arranged at intervals along the width direction WD. The plurality of pin guides 25a are arranged so as to penetrate between the plurality of forks 21a, the plurality of forks 22a, and the plurality of forks 23a in the vertical direction VD.

[0052] The bag body 200 conveyed from the conveying unit 10 to the first stacking section 21 is positioned in the conveying direction TD1 by its leading edge contacting the pin guide 25a. The bag body 200 conveyed from the conveying unit 10 to the second stacking section 22 is positioned in the conveying direction TD1 by its leading edge contacting the pin guide 25a. The bag body 200 conveyed from the conveying unit 10 to the third stacking section 23 is positioned in the conveying direction TD1 by its leading edge contacting the pin guide 25a.

[0053] The second guide 26 is a member that positions the bag body 200 in the width direction WD that is transported to the stacking unit 20 along the transport direction TD1. The second guide 26 has a central guide plate 26a, lateral alignment guide plates 26b, 26c, and a pair of slide shafts 26d. The central guide plate 26a, the lateral alignment guide plates 26b, and the lateral alignment guide plates 26c are inserted into the pair of slide shafts 26d.

[0054] The second guide 26 positions the bag bodies 200 in the first row Co1 in the width direction WD by moving the lateral alignment guide plate 26b along the width direction WD toward the central guide plate 26a using a first movement mechanism (not shown). Also, the second guide 26 positions the bag bodies 200 in the second row Co2 in the width direction WD by moving the lateral alignment guide plate 26c along the width direction WD toward the central guide plate 26a using a second movement mechanism (not shown).

[0055] The bundling unit 30 is an apparatus that bundles a bundle 400, which is a stack of a plurality of bag bodies 200 in a first row Co1 and a plurality of bag bodies 200 in a second row Co2, with a bundling band 410. As shown in FIG. 1 , the bundling unit 30 includes a transport conveyor 31 and a bundling mechanism 32.

[0056] As shown in FIGS. 1 and 2, the transport conveyor 31 is a device that transports the bundles 400 discharged from the discharge section 24 of the loading unit 20 along the transport direction TD2. The transport conveyor 31 transports the bundles 400 along the transport direction TD2 and temporarily stops them at a position where the binding mechanism 32 is located. The binding mechanism 32 binds the bundles 400 with binding bands 410 (e.g., resin tape, paper tape, etc.). The bundles 400 bound with the binding bands 410 by the binding mechanism 32 are transported along the transport direction TD2 by the transport conveyor 31 and supplied to the accumulation unit 500.

[0057] The control unit 40 is a device that controls the bag loading device 100. The control unit 40 controls each part of the bag loading device 100, including the transport unit 10, the loading unit 20, and the bundling unit 30. The control unit 40 controls to switch between a first loading mode in which the bag bodies 200 transported by the transport unit 10 are loaded onto the first loading section 21 and the second loading section 22, and a second loading mode in which the bag bodies 200 transported by the transport unit 10 are loaded onto the third loading section 23.

[0058] The control unit 40 is composed of, for example, a CPU (Central Processing Unit), RAM (Random Access Memory), ROM (Read Only Memory), and a computer-readable storage medium. A series of processes for realizing various functions is stored in a storage medium, for example, in the form of a program. The CPU reads this program into RAM and executes information processing and arithmetic operations to realize various functions. The program may be pre-installed in a ROM or other storage medium, provided in a state stored in a computer-readable storage medium, or distributed via wired or wireless communication means. Examples of computer-readable storage media include magnetic disks, magneto-optical disks, CD-ROMs, DVD-ROMs, and semiconductor memories.

[0059] Next, a control method for the bag stacking device 100 executed by the control unit 40 of this embodiment will be described with reference to Fig. 8. Fig. 8 is a flowchart showing a control method for the bag stacking device 100 according to one embodiment of the present invention.

[0060] In step S101 (transportation process), the control unit 40 controls the transport unit 10, the first stacking section 21, the second stacking section 22, and the third stacking section 23 to execute the first loading mode. The first loading mode is a mode in which the bag bodies 200 transported by the transport unit 10 are loaded onto the first stacking section 21 and the second stacking section 22.

[0061] 6 and 7, the control unit 40 adjusts the positions of the first stacking section 21, the second stacking section 22, and the third stacking section 23 in the vertical direction VD so that the bag bodies 200 supplied to the stacking unit 20 by the feed roller 13 are loaded onto the first stacking section 21 and the second stacking section 22. The control unit 40 transmits control signals to the vertical movement mechanisms 21c, 22c, and 23c so as to adjust the positions of the first stacking section 21, the second stacking section 22, and the third stacking section 23 in the vertical direction VD.

[0062] In step S102, the control unit 40 determines whether a preset number of bag bodies 200 have been loaded on the first loading section 21 and the second loading section 22, and if YES, proceeds to step S103, and if NO, executes the processing of step S101 again.

[0063] In step S103, the control unit 40 controls the first stacking unit 21, the second stacking unit 22, and the third stacking unit 23 to execute the second stacking mode. The second stacking mode is a mode in which the bag bodies 200 transported by the transport unit 10 are loaded onto the third stacking unit 23.

[0064] FIG. 9 is a perspective view of the stacking unit 20 shown in FIG. 1 , illustrating a state in which the second stacking mode is being executed. FIG. 10 is a side view of the stacking unit 20 shown in FIG. 9 . As shown in FIGS. 9 and 10 , the control unit 40 adjusts the positions of the first stacking section 21, the second stacking section 22, and the third stacking section 23 in the vertical direction VD so that the bags 200 supplied to the stacking unit 20 by the feed roller 13 are loaded onto the third stacking section 23. The control unit 40 transmits control signals to the vertical movement mechanisms 21c, 22c, and 23c so as to adjust the positions of the first stacking section 21, the second stacking section 22, and the third stacking section 23 in the vertical direction VD.

[0065] In step S104 (first dropping process), the control unit 40 controls the first stacking unit 21 to drop the plurality of bags 200 in the first row Co1 from the first stacking unit 21 to the discharge unit 24. The control unit 40 controls the horizontal movement mechanism 21b to move the plurality of forks 21a away from the first guide 25 along the conveying direction TD1.

[0066] Even if the forks 21a move in the conveying direction TD1 away from the first guide 25, the bag bodies 200 do not move in the conveying direction TD1. This is because the movement of the bag bodies 200 in the conveying direction TD1 is restricted by the first guide 25. The bag bodies 200 loaded on the forks 21a fall into the discharge section 24 when the forks 21a are pulled out of the first guide 25.

[0067] When the bags 200 loaded on the multiple forks 21a drop into the discharge section 24, the state shown in Figures 11 and 12 is reached. Figure 11 is a perspective view of the loading unit 20 shown in Figure 1, showing a state in which the bags 200 have been dropped from the first loading section 21 to the discharge section 24. Figure 12 is a side view of the loading unit 20 shown in Figure 11. After the bag bodies 200 loaded on the multiple forks 21a drop into the discharge section 24, the control unit 40 controls the horizontal movement mechanism 21b to return the multiple forks 21a to the position shown in Figure 10.

[0068] In step S105 (moving process), the control unit 40 controls the discharge section 24 to move the plurality of bag bodies 200 in the first row Co1 that have dropped onto the discharge section 24 below the plurality of bag bodies 200 in the second row Co2 that are stacked on the second stacking section 22. The control unit 40 controls the slide mechanism 24c to move the discharge pusher 24b along the width direction WD, and moves the plurality of bag bodies 200 that have dropped from the first stacking section 21 below the second stacking section 22.

[0069] When the plurality of bags 200 that have fallen from the first stacking section 21 move below the second stacking section 22, the state shown in Fig. 13 is reached. Fig. 13 is a perspective view of the stacking unit 20 shown in Fig. 1, and illustrates the state in which the bags 200 have been moved from below the first stacking section 21 to below the second stacking section 22.

[0070] In step S106 (second dropping step), the control unit 40 controls the second stacker 22 to drop the plurality of bags 200 in the second row Co2 from the second stacker 22 onto above the plurality of rows of bags 200 in the first row Co1. The control unit 40 controls the horizontal movement mechanism 22b to move the plurality of forks 22a away from the first guide 25 along the conveying direction TD1.

[0071] Even if the forks 22a move in the conveying direction TD1 away from the first guide 25, the bag bodies 200 do not move in the conveying direction TD1. This is because the movement of the bag bodies 200 in the conveying direction TD1 is restricted by the first guide 25. The bag bodies 200 loaded on the forks 22a fall into the discharge section 24 when the forks 22a are pulled out of the first guide 25.

[0072] When the bags 200 loaded on the multiple forks 22a drop into the discharge section 24, the state shown in Figures 14 and 15 is reached. Figure 14 is a perspective view of the loading unit 20 shown in Figure 1, showing a state in which the bags 200 have been dropped from the second loading section 22 to the discharge section 24. Figure 15 is a side view of the loading unit 20 shown in Figure 14. After the bag bodies 200 loaded on the multiple forks 22a have been dropped into the discharge section 24, the control unit 40 controls the horizontal movement mechanism 22b to return the multiple forks 22a to the position shown in Figure 7.

[0073] Fig. 16 is a view of the bundle 400 shown in Fig. 14 as seen from the conveying unit 10 side. As shown in Fig. 16, the first row Co1 of multiple bag bodies 200 stacked on the lower side of the discharge section 24 has the mouth 210 disposed on the left side in the width direction WD and the bottom 220 disposed on the right side. The thickness T2 of the bottom 220 of each bag body 200 is thicker than the thickness T1 of the mouth 210. Therefore, the height of the multiple stacked bag bodies 200 in the first row Co1 (six bags in the example shown in Fig. 16) is H1 on the mouth 210 side, and H2 on the bottom 220 side, which is higher than H1.

[0074] On the other hand, the plurality of bags 200 in the second row Co2 stacked above the discharge section 24 have their mouths 210 disposed on the right side in the width direction WD and their bottoms 220 disposed on the left side. Therefore, the height of the plurality of bags 200 (six in the example shown in FIG. 16) stacked in the second row Co2 is H1 on the mouth 210 side, while the height of the bottom 220 side is H2, which is higher than H1.

[0075] When the plurality of bags 200 in the second row Co2 are stacked on top of the plurality of bags 200 in the first row Co1, the height on the right side in the width direction WD is the sum of H1 and H2, and the height on the left side in the width direction WD is also the sum of H1 and H2. Therefore, the height of the bundle 400 is equal on the right and left sides in the width direction WD, and the bundle 400 has a uniform height at each position.

[0076] The control unit 40 controls the discharge section 24 to discharge a bundle 400, which is made up of a plurality of bag bodies 200 in the second row Co2 stacked on top of a plurality of bag bodies 200 in the first row Co1, from the discharge section 24 to the bundling unit 30. When the bundle 400 is discharged to the bundling unit 30, it reaches the state shown in Fig. 17. Fig. 17 is a perspective view of the loading unit 20 shown in Fig. 1, showing the state in which the bundle 400 has been discharged from the discharge section 24 to the bundling unit 30.

[0077] In step S107 (third dropping process), the control unit 40 controls the third stacking unit 23 to drop the plurality of bag bodies 200 loaded on the third stacking unit 23 onto the first stacking unit 21 and the second stacking unit 22. The control unit 40 controls the horizontal movement mechanism 23b to move the plurality of forks 23a away from the first guide 25 along the conveying direction TD1.

[0078] Even if the forks 23a move in the conveying direction TD1 away from the first guide 25, the bag bodies 200 do not move in the conveying direction TD1. This is because the movement of the bag bodies 200 in the conveying direction TD1 is restricted by the first guide 25. When the forks 23a are pulled out of the first guide 25, the bag bodies 200 loaded on the forks 23a fall onto the first stacking section 21 and the second stacking section 22.

[0079] When the bags 200 loaded on the multiple forks 23a fall onto the first stacking section 21 and the second stacking section 22, the state shown in Figures 18 and 19 is reached. Figure 18 is a perspective view of the loading unit 20 shown in Figure 1, showing the state in which the bags have been dropped from the third stacking section 23 onto the first stacking section 21 and the second stacking section 22. Figure 19 is a side view of the loading unit 20 shown in Figure 18.

[0080] After dropping the bags 200 loaded on the multiple forks 23a onto the first stacker 21 and the second stacker 22, the control unit 40 causes the multiple forks 23a to move to the position shown by the dotted line in Fig. 19 using the vertical movement mechanism 23c. The position shown by the dotted line in Fig. 19 is a position above the position in the vertical direction VD to which the bag bodies 200 transported by the transport unit 10 are guided. The control unit 40 also controls the horizontal movement mechanism 23b to return the multiple forks 23a to the position shown in Fig. 6.

[0081] 19, when the forks 23a are withdrawn from the first guide 25, the bag bodies 200 being transported from the transport unit 10 to the stacking unit 20 are loaded onto the first stacking section 21 and the second stacking section 22. In step S107, the control unit 40 switches from the second stacking mode to the first stacking mode by controlling the stacking unit 20 to drop the bag bodies 200 from the third stacking section 23 onto the first stacking section 21 and the second stacking section 22. Then, the control unit 40 transmits control signals to the vertical movement mechanisms 21c and 22c so that the positions of the first stacking section 21 and the second stacking section 22 in the vertical direction VD become the positions shown in FIG.

[0082] In step S108, the control unit 40 determines whether or not to end the processing of this flowchart. If YES, the processing of this flowchart ends, and if NO, the processing returns to step S101.

[0083] In the above description, an example has been described in which the conveying unit 10 conveys bag bodies 200 supplied from the bag making machine 300 in two rows, a first row Co1 and a second row Co2, along the conveying direction TD1. However, the conveying unit 10 of this embodiment can also convey bag bodies 200 supplied from the bag making machine 300 in a single row, either the first row Co1 or the second row Co2, along the conveying direction TD1. In this case, the stacking unit 20 loads the bag bodies 200 supplied in a single row onto the first stacking section 21 or the second stacking section 22, drops them to the discharge section 24, and discharges them to the bundling unit 30. The bag stacking device 100 of this embodiment can switch between a mode for processing bag bodies 200 supplied in two rows, the first row Co1 and the second row Co2, and a mode for processing bag bodies 200 supplied in a single row, either the first row Co1 or the second row Co2.

[0084] The actions and effects achieved by the bag loading device 100 of the present embodiment described above will be described. According to the bag stacking device 100 of this embodiment, the bag bodies 200 in the first row Co1, which are transported by the transport unit 10 and loaded on the first stacking section 21, drop from the first stacking section 21 to the discharge section 24. The plurality of bag bodies 200 in the first row Co1 that have dropped into the discharge section 24 move below the plurality of bag bodies 200 in the second row Co2 that are loaded on the second stacking section 22. The plurality of bag bodies 200 in the second row Co2 that are loaded on the second stacking section 22 drop above the plurality of bag bodies 200 in the first row Co1, and a bundle 400 is formed in which the plurality of bag bodies 200 in the first row Co1 and the plurality of bag bodies 200 in the second row Co2 are stacked one on top of the other.

[0085] According to the bag stacking device 100 of this embodiment, the thickness T2 of the bag bodies 200 in the first row Co1 on one side in the width direction WD is thicker than the thickness T1 of the bag bodies in the other side in the width direction WD, and the thickness T1 of the bag bodies in the second row Co2 on one side in the width direction WD is thinner than the thickness T2 of the bag bodies in the other side in the width direction WD. Therefore, the overall thickness of the plurality of bag bodies 200 in the first row Co1 is thicker on one side in the width direction WD than on the other side, and the overall thickness of the plurality of bag bodies 200 in the second row Co2 is thinner on one side in the width direction WD than on the other side. In addition, the bundle 400 in which the entire plurality of bag bodies 200 in the first row Co1 and the entire plurality of bag bodies 200 in the second row Co2 are stacked together has an equal difference in thickness between one side in the width direction WD and the other side in the width direction WD.

[0086] In this way, the bag stacking device 100 of this embodiment can make the bundle 400, which is made up of a plurality of stacked bag bodies 200, uniform in height at each position. Furthermore, since it is not necessary to change the orientation of the bag bodies 200 one by one, the time required to stack a plurality of bag bodies 200 and form the bundle 400 can be shortened.

[0087] According to the bag loading device 100 of this embodiment, in the second loading mode in which the bag bodies 200 transported by the transport unit 10 are loaded onto the third stacking section 23, the plurality of bag bodies 200 in the first row Co1 fall from the first stacking section 21 to the discharge section 24, and the plurality of bag bodies 200 in the second row Co2 fall from the second stacking section 22 to the discharge section 24. Therefore, when the operation of dropping the bag bodies 200 from the first stacking section 21 and the second stacking section 22 to the discharge section 24 is performed, the bag bodies transported from the transport unit 10 can be loaded onto the third stacking section 23 without stopping the transport operation of the bag bodies 200 by the transport unit 10.

[0088] Furthermore, according to the bag stacking device 100 of this embodiment, in the second stacking mode, a plurality of bag bodies 200 stacked on the third stacking section 23 are dropped onto the first stacking section 21 and the second stacking section 22. Therefore, during the operation of dropping the bag bodies 200 from the first stacking section 21 and the second stacking section 22 to the discharge section 24, the bag bodies transported from the transport unit 10 to the third stacking section 23 can be guided to the first stacking section 21 and the second stacking section 22.

[0089] Furthermore, according to the bag loading device 100 of this embodiment, the bundle in which the difference between the thickness in one direction of the width direction WD and the thickness in the other direction of the width direction WD has been equalized in the discharge section 24 can be discharged from the discharge section 24 to the binding unit 30 and bound with a binding band 410. [Explanation of symbols]

[0090] 10. Transport unit (transport section) 20 Loading Unit 21 First loading section 21a fork 21b Horizontal movement mechanism 21c Vertical movement mechanism 22 Second loading section 22a fork 22b Horizontal movement mechanism 22c Vertical movement mechanism 23 Third Loading Section 23a fork 23b Horizontal movement mechanism 23c Vertical movement mechanism 24 Discharge section 24a Cylindrical member 24b Discharge pusher 24c slide mechanism 25 First Guide 26 Second Guide 30 Binding unit (binding part) 31 Transport conveyor 32 Binding mechanism 40 Control unit (control section) 100 bag loading device 200 bags 210 Mouth 220 Bottom 230,240 Seal part 300 Bag making machine 400 bundle 410 Cable Ties 500 integrated units Co1 1st row Co2 2nd column T1, T2 thickness TD1,TD2 conveying direction VD vertical direction WD Width direction

Claims

1. A bag loading device for loading a bag body having a mouth portion and a bottom portion thicker than the mouth portion, a conveying unit that conveys the bag bodies in a plurality of rows along a conveying direction; a first stacking unit that stacks the bag bodies in a first row transported by the transporting unit; a second loading section configured to load the bag bodies in a second row transported by the transport section; a discharge section disposed below the first stacking section and the second stacking section; a control unit that controls the bag loading device, The control unit controlling the conveying unit to convey the plurality of bag bodies in a state in which the orientations of the openings and the bottoms of the bag bodies in the first row and the bag bodies in the second row that are adjacent to each other in a width direction intersecting the conveying direction are different in the width direction; controlling the first stacking unit to drop the plurality of bags in the first row from the first stacking unit to the discharge unit; controlling the discharge unit to move the first row of bags dropped on the discharge unit below the second row of bags loaded on the second loading unit; A bag loading device that controls the second loading section so that the plurality of bag bodies in the second row are dropped from the second loading section above the plurality of bag bodies in the first row in a state where the positions of both widthwise ends of the plurality of bag bodies in the second row coincide with the positions of both widthwise ends of the plurality of bag bodies in the first row.

2. A bag loading device for loading bag bodies, a conveying unit that conveys the bag bodies in a plurality of rows along a conveying direction; a first stacking unit that stacks the bag bodies in a first row transported by the transporting unit; a second loading section configured to load the bag bodies in a second row transported by the transport section; a third stacking section that stacks the plurality of rows of the bag bodies transported by the transporting section and is disposed above the first stacking section and the second stacking section; a discharge section disposed below the first stacking section and the second stacking section; a control unit that controls the bag loading device, The control unit control to switch between a first loading mode in which the bag bodies transported by the transport unit are loaded onto the first loading unit and the second loading unit, and a second loading mode in which the bag bodies transported by the transport unit are loaded onto the third loading unit; in the first loading mode, controlling the first loading section to drop the plurality of bags in the first row from the first loading section to the discharge section, controlling the discharge section to move the plurality of bags in the first row that have dropped to the discharge section below the plurality of bags in the second row that are loaded on the second loading section, and controlling the second loading section to drop the plurality of bags in the second row from the second loading section above the plurality of bags in the first row; In the second loading mode, the bag loading device controls the first loading section to drop the plurality of bag bodies in the first row from the first loading section to the discharge section, controls the second loading section to drop the plurality of bag bodies in the second row from the second loading section to the discharge section, and controls the third loading section to drop the plurality of bag bodies loaded on the third loading section onto the first loading section and the second loading section.

3. a binding section that binds a bundle formed by stacking the plurality of bags in the first row and the plurality of bags in the second row with a binding band, 3. The bag stacking device according to claim 1, wherein the control unit controls the discharge unit to discharge the bundle to the bundling unit.

4. A method for controlling a bag loading device that loads a bag body having a mouth portion and a bottom portion that is thicker than the mouth portion, comprising: The bag loading device is a conveying unit that conveys the bag bodies in a plurality of rows along a conveying direction; a first stacking unit that stacks the bag bodies in a first row transported by the transporting unit; a second loading section configured to load the bag bodies in a second row transported by the transport section; a discharge section disposed below the first stacking section and the second stacking section, a conveying step of conveying a plurality of bag bodies in a state in which the orientations of the openings and the bottoms of the bag bodies in the first row and the bag bodies in the second row that are adjacent to each other in a width direction intersecting the conveying direction are different in the width direction, and controlling the conveying unit to load the plurality of bag bodies in the first row on the first stacking unit and load the plurality of bag bodies in the second row on the second stacking unit; a first dropping step of controlling the first stacking unit to drop the first row of the plurality of bags from the first stacking unit to the discharge unit; a moving step of controlling the discharge unit to move the first row of the bags dropped on the discharge unit below the second row of the bags loaded on the second loading unit; a second dropping process for controlling the second loading section so that the second row of bag bodies drops from the second loading section onto the first row of bag bodies in a state where the positions of both widthwise ends of the second row of bag bodies coincide with the positions of both widthwise ends of the first row of bag bodies.

5. A method for controlling a bag loading device that loads bag bodies, comprising: The bag loading device is a conveying unit that conveys the bag bodies in a plurality of rows along a conveying direction; a first stacking unit that stacks the bag bodies in a first row transported by the transporting unit; a second loading section configured to load the bag bodies in a second row transported by the transport section; a third stacking section that stacks the plurality of rows of the bag bodies transported by the transporting section and is disposed above the first stacking section and the second stacking section; a discharge section disposed below the first stacking section and the second stacking section, a conveying step of controlling the conveying unit so that the first row of the bag bodies is loaded on the first loading unit and the second row of the bag bodies is loaded on the second loading unit; a first dropping step of controlling the first stacking unit to drop the first row of the plurality of bags from the first stacking unit to the discharge unit; a moving step of controlling the discharge unit to move the first row of the bags dropped on the discharge unit below the second row of the bags loaded on the second loading unit; a second dropping step of controlling the second stacking unit to drop the second row of the plurality of bags from the second stacking unit onto above the first row of the plurality of bags; a switching step of switching from a first loading mode in which the bag bodies transported by the transport unit are loaded onto the first loading unit and the second loading unit to a second loading mode in which the bag bodies transported by the transport unit are loaded onto the third loading unit; a third dropping step of controlling the third stacking unit to drop the plurality of bags loaded on the third stacking unit onto the first stacking unit and the second stacking unit, In the first loading mode, the first dropping step, the moving step, and the second dropping step are executed, A control method for a bag loading device in which the first dropping step, the second dropping step, and the third dropping step are executed in the second loading mode.

6. the bag stacking device includes a bundling unit that ties together a bundle formed by stacking the plurality of bags in the first row and the plurality of bags in the second row with a bundling band, The method for controlling a bag stacking apparatus according to claim 4 or 5, further comprising a discharge step of controlling the discharge unit to discharge the bundle to the bundling unit.

Citation Information

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