Raw material transfer box for ribbon production

By designing a transfer box for cable tie production with a splicing structure, and utilizing positioning and driving components to achieve rapid splicing and disassembly, the problems of complex structure and laborious unloading in existing technologies are solved, maintenance costs are reduced, and operational efficiency is improved.

CN223962460UActive Publication Date: 2026-03-03WUXI JINGKE ELECTRONICS CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

The existing transfer boxes used in cable tie production have a complex structure, resulting in high maintenance costs. Furthermore, the bottom packaging bags are difficult to retrieve during unloading, which is both laborious and inconvenient.

Method used

Design a transfer box with a splicing structure. The box can be quickly spliced ​​and disassembled by positioning and driving components, avoiding the use of complex mechanical equipment. The box body two and box body three are designed to fit together, and the sliding components of the insertion block and hollow box are used to achieve stable splicing.

Benefits of technology

The structure of the transfer box has been simplified, maintenance costs have been reduced, unloading efficiency has been improved, and it is easy to assemble and disassemble, making it suitable for mass production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a raw material transfer box for ribbon production, which comprises a box seat, a first box body is fixed at the top of the box seat, a sliding block slides in a slide way at the top of the first box body, the sliding block is fixed at the bottom of a second box body, a third box body is mounted on one side of the second box body at the top of the first box body, and the third box body and the second box body are both U-shaped and are attached to each other. Laminating plates are fixed to the edges of the lower ends of the two sides of the third box body and attached to long plates fixed to the edges of the upper ends of the two sides of the first box body. According to the raw material transfer box for ribbon production, the transfer box is designed to be of a spliced structure, the problems that packaging bags at the lower end of the interior of the box are inconvenient to take and labor is wasted due to the large height are effectively solved, too many complex lifting devices are not used, the problem of inconvenient maintenance is avoided, meanwhile, disassembly and assembly are convenient and fast, and the production efficiency is improved. The working efficiency is very high and the practicability is very good.
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Description

Technical Field

[0001] This utility model relates to the field of cable tie production technology, and in particular to a raw material transfer box for cable tie production. Background Technology

[0002] Cable ties, also known as wire ties, cable bundles, or lock straps, are straps used to bundle things together. During production, appropriate plastic raw materials are selected according to the type and purpose of the cable ties, such as nylon 66, polypropylene (PP), and polyethylene (PE). These raw materials usually have excellent physical and chemical properties. Currently, most raw materials need to be transported in mobile transfer boxes during workshop transportation.

[0003] However, most current transfer boxes are designed as a single unit. If the stacking height of the raw material bags is relatively high, the depth of the box will also be relatively deep. This makes it inconvenient and laborious to retrieve the packaging bags at the bottom of the box when unloading. Therefore, although the raw material transfer box for nylon cable tie production disclosed in patent number CN214730725U is designed with a lifting structure, the lifting structure usually involves multiple mechanical components, such as motors, transmission devices, screws, connecting blocks, etc. The integration and coordinated operation of these components increases the complexity of the structure. The complex structure means higher maintenance costs, including regular inspection, lubrication, and replacement of worn parts. All of these increase production and operating costs, and increase the overall weight and volume of the transfer box, making it inconvenient for widespread production and use.

[0004] Therefore, the applicant proposed a raw material transfer box for cable tie production to solve the problem. Utility Model Content

[0005] This utility model provides a raw material transfer box for cable tie production, which solves the problems mentioned in the background.

[0006] To solve the above-mentioned technical problems, this utility model provides a raw material transfer box for cable tie production, including a box base, a box body one fixed to the top of the box base, a slider sliding in the top slide of the box body one and fixed to the bottom of the box body two, a box body three installed on the top of the box body one on one side of the box body two, the box body three and the box body two are both "U" shaped and fit together, the lower edges of both sides of the box body three are fixed with a bonding plate, the bonding plate fits with the long plate fixed to the upper edges of both sides of the box body one, and a row of insert rods fixed at the bottom of the bonding plate is inserted into the rod holes of the long plate. The box body two and the box body three are connected by a positioning component to restrict the box body three from moving upward.

[0007] Preferably, the positioning component includes hollow boxes fixed to both sides of the second housing and insertion blocks fixed to both sides of the third housing. The insertion blocks and hollow boxes are in a fitted state during installation. Four slide rails on the inner wall of the hollow box have sliding strips. The slide rails are fixed to both sides of the hollow block. The hollow block has an opening design on both sides, and insertion blocks are fitted inside the openings on both sides. The insertion blocks slide through the sliding openings of the hollow box and are inserted into the corresponding insertion slots of the insertion blocks. There are rollers on both sides of the insertion blocks, and the rollers slide in the inclined openings on both sides inside the hollow block.

[0008] Preferably, a limiting rod is fixed inside the hollow box, and the limiting rod slides in the opening on the inner end face of the insert block. The limiting rod also passes through the opening on one side of the hollow block and does not contact the inner wall of the opening.

[0009] Preferably, a driving assembly for driving the hollow block to slide is installed on one side of the hollow box, including two support plates fixed to the side wall of the hollow box, a screw rod rotatably connected between the two support plates, a driving block threaded to the outside of the screw rod, and the driving block passing through the opening of the hollow box and fixedly engaging with the hollow block through a connecting block, and the connecting block sliding in the opening of the hollow box.

[0010] A knob for connecting the lead screw shaft is installed on one side wall of the support plate.

[0011] Preferably, the middle of the bevel is designed to be inclined, while the two ends are designed to be vertical.

[0012] Preferably, a lower partition plate is installed in the middle of the interior of the first box, and an upper partition plate is installed on the inner side of the second box. The lower and upper partition plates are aligned and have a gap between them.

[0013] Preferably, two protruding strips are fixed on one side of the box body three, and the protruding strips can be inserted from the upper end of the recess on one side of the box body two to form an up-and-down sliding connection.

[0014] Compared with related technologies, the raw material transfer box for cable tie production provided by this utility model has the following beneficial effects:

[0015] 1. This utility model provides a raw material transfer box for cable tie production. The transfer box is designed with a splicing structure, which effectively solves the problem of inconvenience in taking out the packaging bags at the bottom of the box and the difficulty in taking them out due to their height. It does not use too many complicated lifting equipment, thus avoiding the problem of inconvenient maintenance. At the same time, it is convenient and quick to assemble and disassemble, with high work efficiency and good practicality, which is more conducive to mass production.

[0016] 2. This utility model provides a raw material transfer box for cable tie production. By designing a positioning component, after the sides of the second and third boxes are attached, the insertion block and the hollow box will also be attached. The hollow block is driven to move upward inside the hollow box via a slider, moving to the top of the hollow box. This drives the insertion block to move horizontally outward inside the hollow box, and the insertion block is finally inserted into the corresponding insertion port of the insertion block. In this way, the third box cannot move upward, and it cannot move in a plane via the insertion rod, thus realizing the overall splicing of the box, which is very fast and stable. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention. Figure 1 ;

[0018] Figure 2 This is a schematic diagram of the overall three-dimensional structure of the present invention. Figure 2 ;

[0019] Figure 3 This is a schematic diagram of the three-dimensional structure of box body two and box body three of this utility model;

[0020] Figure 4 This is a partial three-dimensional structural schematic diagram of the present invention;

[0021] Figure 5 This is a three-dimensional structural diagram of the positioning component of this utility model;

[0022] Figure 6 This is a three-dimensional sectional view of the hollow box structure of this utility model;

[0023] Figure 7 This is a schematic diagram of the three-dimensional cross-sectional structure of the hollow block of this utility model. Figure 1 ;

[0024] Figure 8 This is a schematic diagram of the three-dimensional cross-sectional structure of the hollow block of this utility model. Figure 2 .

[0025] Numbered in the diagram: 1. Box base; 2. Box body one; 3. Slider; 4. Box body two; 5. Box body three; 6. Positioning assembly; 601. Hollow box; 602. Insertion block; 603. Insertion block; 604. Hollow block; 605. Sliding strip; 606. Roller; 607. Angled opening; 608. Limiting square rod; 7. Drive assembly; 701. Support plate; 702. Lead screw; 703. Drive block; 8. Adhesive plate; 9. Long plate; 10. Insertion rod; 11. Lower partition plate; 12. Upper partition plate; 13. Protruding strip. Detailed Implementation

[0026] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.

[0027] Depend on Figures 1-8 This utility model provides a raw material transfer box for cable tie production, including a box base 1, a box body 2 fixed on the top of the box base 1, a slider 3 sliding in the top slide of the box body 2, and the slider 3 fixed to the bottom of the box body 4, a box body 5 installed on the top of the box body 2 on one side of the box body 4, the box body 5 and the box body 2 are both U-shaped and fit together, that is, the transfer box is composed of the box body 2, the box body 4 and the box body 5 spliced ​​together, the box body 2, the box body 2, and the box body 5 are all set to the same height, the box body 2 and the box body 3 are the same size, the lower edge of both sides of the box body 3 is fixed with a bonding plate 8, the bonding plate 8 fits with the long plate 9 fixed on the upper edge of both sides of the box body 2, and a row of insert rods 10 fixed at the bottom of the bonding plate 8 is inserted into the rod holes of the long plate 9. The box body 2 and the box body 3 are connected with a positioning component 6 to restrict the box body 3 5 from moving upward.

[0028] As described above, this device designs the transfer box as a modular structure. When placing the packaging bag, before box body 5 is installed, the packaging bag is first placed in the space on one side of box body 2, which is located near the top surface of box body 2. Then, box body 4 is slid to the side where it was placed. Figure 4 In the state shown, place the box on the other side of the space so that all the space inside box 2 is filled with packaging bags, and box 2 is only half the height of the entire box. This makes it easier to place the packaging bags at the bottom of the box without having to lift them too high, and also makes it easier to put them down. Then, put box 2 back in place, and place box 3 5 on top of box 2, on one side of box 2 and attach it. The attaching plate 8 is attached to the long plate 9 fixed to the upper edge of both sides of box 2. At the same time, the insert rod 10 is inserted into the rod hole of the long plate 9. Box 3 5 cannot move horizontally at this time. Then, by fixing... The installation of the entire box is completed by restricting the third box 5 from moving upwards using component 6. Then, the remaining packaging bags are placed inside. During unloading, when the stacked packaging bags are close to the top surface of the first box 2, the third box 5 is removed. First, take the packaging bags from one side of the space in the second box 4. After taking them, slide the second box 4 to the side where they were taken, and then take them from the other side. This effectively solves the problem of inconvenience in taking the packaging bags at the bottom of the box due to their height and the difficulty of taking them. It is very practical. At the same time, both the second box 4 and the third box 5 have handrails on both sides for easy operation.

[0029] See Figures 5-8The positioning component 6 includes a hollow box 601 fixed on both sides of the second box 4 and an insertion block 602 fixed on both sides of the third box 5. The insertion block 602 and the hollow box 601 are in a close fit during installation. Four slide rails on the inner wall of the hollow box 601 have slide strips 605. The slide strips 605 are fixed on both sides of the hollow block 604. The hollow block 604 has an open design on both sides, and an insertion block 603 is attached to both sides of the opening. The insertion block 603 slides through the sliding opening of the hollow box 601 and is inserted into the corresponding insertion port of the insertion block 602. There are rollers 606 on both sides of the insertion block 603. The rollers 606 slide in the inclined openings 607 on both sides of the hollow block 604. The inclined opening 607 is inclined in the middle and vertical at both ends.

[0030] By designing the positioning component 6, after the sides of the second box 4 and the third box 5 are attached, the insertion block 602 and the hollow box 601 will also be attached. At this time, the hollow block 604 is driven to move upward inside the hollow box 601 via the slide bar 605, moving to the top of the hollow box 601. During this process, the roller 606 rolls and moves in the inclined opening 607. The inclined opening 607 is designed to be inclined towards the insertion block 602, which drives the insertion block 603 to move horizontally outward in the hollow box 601. The insertion block 603 is finally inserted into the corresponding insertion port of the insertion block 602. In this way, the third box 5 cannot move upward, and it cannot move in a plane via the insertion rod 10, thus realizing the overall splicing of the boxes. At the same time, the two ends of the inclined opening 607 are designed vertically, making the position of the roller 606 more stable after splicing.

[0031] A limiting rod 608 is fixed inside the hollow box 601. The limiting rod 608 slides in the opening on the inner end face of the insert block 603. The limiting rod 608 also passes through the opening on one side of the hollow block 604 and does not contact the inner wall of the opening.

[0032] The limiting rod 608 can enhance the stability of the horizontal movement of the insert block 603. Note that the opening on one side of the hollow block 604 does not contact the limiting rod 608, while the opening on the other side contacts and fits with the insert block 603 for sliding.

[0033] A drive assembly 7 for driving the hollow block 604 to slide is installed on one side of the hollow box 601. It includes two support plates 701 fixed to the side wall of the hollow box 601, and a lead screw 702 rotatably connected between the two support plates 701. A drive block 703 is externally threaded to the lead screw 702. The drive block 703 passes through the opening of the hollow box 601 and is fixed to the hollow block 604. The connecting block slides in the opening of the hollow box 601. A knob for connecting the shaft of the lead screw 702 is installed on the side wall of one of the support plates 701.

[0034] With the design of the drive component 7, when driving the hollow block 604 to move, it is only necessary to turn the knob to drive the lead screw 702 to rotate, and the drive block 703 can drive the hollow block 604 to move for assembly or disassembly. Simultaneous operation on both sides can complete the operation within a few seconds, making the assembly or disassembly very fast, improving the efficiency of assembly and disassembly, and also improving stability. Because the hollow block 604 and the insert block 603 are linked by the inclined plate 607, a certain force is required to drive them. The vibration force during transportation is often insufficient to make the lead screw 702 rotate many times to drive the insert block 603 to move.

[0035] A lower partition plate 11 is installed in the middle of the interior of box 1 2, and an upper partition plate 12 is installed on the inside of box 2 4. The lower partition plate 11 and the upper partition plate 12 are aligned and there is a gap between them. Two protruding strips 13 are fixed on one side of box 3 5. The protruding strips 13 can be inserted from the upper end of the notch on one side of box 2 4 and form an upper and lower sliding connection.

[0036] Finally, the lower partition 11 and the upper partition 12 can separate two piles of packaging bags when they are placed inside the box, avoiding compression and overlap between the two piles, and also preventing tipping during placement. At the same time, the gap is left to prevent contact when the box body 4 moves. The protrusion 13 is used for alignment. When the box body 5 is placed from top to bottom, the protrusion 13 is inserted from the upper end of the notch on one side of the box body 4. After placing the box body 5 down, the insertion rod 10 can be accurately inserted into the rod hole of the long plate 9, which improves the convenience of assembly. Thus, the box structure is designed to be disassembled, and the assembly and disassembly are very fast and accurate, resulting in high efficiency.

[0037] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0038] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A raw material transfer box for a cable tie production, comprising a box seat (1), characterized in that: The box seat (1) top fixed with box one (2), the box one (2) top slide in the sliding block (3), and the sliding block (3) is fixed in the box two (4) bottom, the box one (2) top in the box two (4) one side installation box three (5), the box three (5) and the box two (4) are all "U” shape design and mutually adhere, the box three (5) both sides lower end edge fixed with the adhering plate (8), the adhering plate (8) and the long plate (9) adhering with the box one (2) both sides upper end edge, and the adhering plate (8) bottom fixed with a row of plug rod (10) inserts the long plate (9) rod hole, the box two (4) and the box three (5) are connected with the positioning assembly (6), for limiting the box three (5) can't move up.

2. The raw material transfer box for a cable tie production according to claim 1, wherein The positioning assembly (6) includes hollow box (601) fixed on both sides of the box two (4) and plug hole block (602) fixed on both sides of the box three (5), the plug hole block (602) and the hollow box (601) are in the state of adhesion when installed, the four slide strips (605) in the inner wall of the hollow box (601) slide, the slide strips (605) are fixed on both sides of the hollow block (604), both sides of the hollow block (604) are designed as openings, and the plug blocks (603) are adhered to both sides of the openings, the plug blocks (603) are slidably connected through the sliding openings of the hollow box (601), and the plug blocks (603) are inserted into the corresponding plug holes of the plug hole blocks (602), the plug blocks (603) have rollers (606) on both sides, and the rollers (606) slide in the inclined openings (607) on both sides of the hollow block (604).

3. The raw material transfer box for a cable tie production according to claim 2, wherein The limit square rod (608) is fixed inside the hollow box (601), the limit square rod (608) slides in the opening of the inner side end face of the plug block (603), and the limit square rod (608) also passes through one side opening of the hollow block (604) without contacting the inner wall of the opening.

4. The raw material transfer box for a cable tie production according to claim 3, wherein The hollow block (604) is driven to slide by the driving assembly (7) installed on one side of the hollow box (601), which includes two support plates (701) fixed on the side walls of the hollow box (601), a screw rod (702) rotatably connected between the two support plates (701), a driving block (703) threadedly connected to the outside of the screw rod (702), and a connecting block fixed to the driving block (703) and passing through the opening of the hollow box (601) to fixedly connect the hollow block (604), and the connecting block slides in the opening of the hollow box (601). A knob is installed on the side wall of one support plate (701) to connect the rotating shaft of the screw rod (702).

5. The raw material transfer box for a cable tie production according to claim 4, wherein The inclined opening (607) is designed as inclined in the middle and vertical at both ends.

6. The raw material transfer case for a cable tie production according to claim 1, wherein A lower partition plate (11) is installed at the middle position inside the box one (2), and an upper partition plate (12) is installed inside the box two (4).

7. The raw material transfer case for a cable tie production according to claim 1, wherein Two convex strips (13) are fixed on one side of the box three (5), which can be inserted into the notch upper end on one side of the box two (4) and form an upper and lower sliding connection.