A copper wire compression capacity reduction and automatic sorting integrated recovery machine

The integrated copper wire compression and automatic sorting recycling machine, which combines tubular wire strippers and winding drums, solves the problems of large copper wire winding size and low recycling efficiency, and achieves the effects of tight winding and automatic sorting.

CN224590408UActive Publication Date: 2026-08-04SHANGHAI SUIYI RENEWABLE RESOURCES UTILIZATION CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANGHAI SUIYI RENEWABLE RESOURCES UTILIZATION CO LTD
Filing Date
2025-07-25
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

In the existing copper wire recycling process, the coiled wire is too large to be easily untangled, and only one group of copper wires can be recycled, resulting in low efficiency.

Method used

A copper wire compression and reduction and automatic sorting integrated recycling machine was designed. It adopts a combination of tubular wire strippers and winding drum. The winding drum is driven to rotate and move by a rotary motor. Combined with sprocket assembly and lifting assembly, it realizes the tight winding and automatic sorting of multiple sets of copper wires.

Benefits of technology

It achieves tight winding and compression of copper wires, reducing volume, and can automatically sort and strip multiple sets of copper wires, improving recycling efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224590408U_ABST
    Figure CN224590408U_ABST
Patent Text Reader

Abstract

This utility model belongs to the field of copper wire, and in particular, it is an integrated recycling machine for copper wire compression, volume reduction, and automatic sorting. It includes a base box and a support frame bolted to the top of the base box. The integrated recycling machine also includes: five tubular wire strippers, each threaded into holes on the surface of the support frame, which strip the copper wire; and a stabilizing frame bolted to the inside of the support frame. The stabilizing frame includes a horizontal plate and six side plates, the bottom of which is bolted to the top of the horizontal plate. In this utility model, five groups of copper wire can be wound simultaneously using the tubular wire strippers and the winding drum. The pulling action of the tubular wire strippers ensures tight winding, reduces the overall size, and achieves compression and volume reduction. Furthermore, the up-and-down movement of the winding drum allows for uniform winding while simultaneously stripping and automatic sorting.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of copper wire technology, and in particular to an integrated recycling machine for copper wire compression, volume reduction and automatic sorting. Background Technology

[0002] After prolonged use, copper wires need to be recycled using a recycling machine. For example, in the prior art, Chinese patent document with application number 202111204203.9 discloses a recycling device for discarded cable copper wires.

[0003] However, due to structural defects, the above technical solution still has the following problems:

[0004] 1. During the copper wire recycling process, the winding roller is used to wind the copper wire. After winding, the copper wire is too large and is not effectively compressed, making it difficult to quickly peel off the wound copper wire.

[0005] 2. There is only one winding roller, which can only recycle one group of copper wires, resulting in low recycling efficiency. Utility Model Content

[0006] The purpose of this invention is to address the shortcomings of existing technologies, such as the large size of the wound copper wires, the inconvenience of stripping them, and the limitation that only one set of cable copper wires can be recycled. This invention proposes a copper wire compression and capacity reduction integrated recycling machine with automatic sorting.

[0007] To achieve the above objectives, the present invention adopts the following technical solution:

[0008] A copper wire compression, volume reduction, and automatic sorting integrated recycling machine includes a base box and a support frame bolted to the top of the base box. The integrated copper wire compression, volume reduction, and automatic sorting recycling machine also includes:

[0009] The tubular wire stripper has five parts, all of which are threaded into the holes on the surface of the support frame. The tubular wire stripper is used to strip the copper wire.

[0010] The stabilizing frame is bolted to the inside of the supporting frame. The stabilizing frame includes a horizontal plate and six side plates. The bottom of each of the six side plates is bolted to the top of the horizontal plate, and the two ends of the horizontal plate and the top of the side plates are bolted to the inside of the supporting frame.

[0011] The moving mechanism has five parts, which are rotatably connected to the side of the horizontal plate;

[0012] The copper wire compression and capacity reduction mechanism comprises five parts, including:

[0013] A rotary motor is bolted to the top of the movable mechanism;

[0014] The winding cylinder is keyed to the output end of the rotary motor;

[0015] The square block is bolted to the bottom of the winding cylinder. Five sets of copper wires can be wound simultaneously by the tubular wire stripper and the winding cylinder. The pulling of the tubular wire stripper can ensure the tightness of the winding, reduce the overall size, and achieve the effect of compression and volume reduction. Moreover, by moving the winding cylinder up and down, the stripping can be completed while winding evenly, and the sorting can be done automatically.

[0016] As a preferred embodiment of this utility model, the active mechanism includes:

[0017] The power source is bolted to the side of the side plate;

[0018] The sprocket assembly is keyed to the output end of the power source;

[0019] The lifting assembly is keyed to the shaft of the sprocket assembly.

[0020] Furthermore, the power source can drive the sprocket assembly to rotate, and the sprocket assembly can drive the lifting assembly to rotate.

[0021] In a preferred embodiment of this utility model, the power source includes a power motor, and the surface of the power motor is bolted to the side of the side plate.

[0022] Furthermore, the motor is fixed to the side plate, allowing it to operate continuously and stably.

[0023] As a preferred embodiment of this utility model, the sprocket assembly includes:

[0024] The main sprocket is keyed to the output end of the power motor;

[0025] A chain that meshes with the teeth of the main sprocket;

[0026] There are two secondary sprockets that mesh with the inner side of the chain and are keyed to the lifting assembly.

[0027] Furthermore, the power motor can drive the main sprocket to rotate, the main sprocket can drive the chain to rotate, the chain can drive the two auxiliary sprockets to rotate, the radius of the main sprocket is larger than that of the auxiliary sprockets, which can produce an acceleration effect on the auxiliary sprockets, and the auxiliary sprockets can drive the lifting component to rotate.

[0028] As a preferred embodiment of this utility model, the lifting assembly includes:

[0029] Two lead screws are keyed to the shaft of the secondary sprocket, and the top and bottom ends of the lead screws are respectively rotatably engaged with the holes of the support frame and the cross plate.

[0030] Two sliders are threadedly connected to the surface of the lead screw, and the sides of the sliders are slidably connected to the sides of the side plate.

[0031] The mounting plate is bolted between the surfaces of the two sliders, and the bottom of the rotary motor is bolted to the top of the mounting plate.

[0032] Furthermore, the secondary sprocket can drive the lead screw to rotate. The lead screw is connected to the support frame and the cross plate on the left side to ensure the smooth rotation of the lead screw. The lead screw can drive the slider to move downward using the thread. The slider is slidably set with the side plate through the slide rail to guide the slider up and down. The slider can drive the mounting plate to move downward, and the mounting plate can drive the rotary motor to move downward.

[0033] As a preferred embodiment of this utility model, a placement plate is bolted to the top of the surface of the base box, and a collection box is snapped onto the top of the placement plate.

[0034] Furthermore, the collection box can be paired with a tubular wire stripper. The copper wire stripped off by the tubular wire stripper can fall into the inside of the collection box, and the placement plate can support the collection box.

[0035] As a preferred embodiment of this utility model, the top of the inner side of the base box is bolted with a sorting hopper, and there are five sorting hoppers, each corresponding to one of the five winding cylinders.

[0036] Furthermore, the sorting bin can receive and integrate copper wires in coils, making it easier to guide the copper wires outwards, thus allowing for direct sorting of the copper wires.

[0037] Beneficial effects:

[0038] 1. The rotary motor winds the copper wire through the winding drum and square block. The tubular wire stripper generates resistance during the stripping process, which increases the resistance of the winding drum and square block to rotate and wind, making the copper wire wind more tightly.

[0039] 2. It can only move the winding drum upwards. By limiting the horizontal plate, it can automatically strip the copper wire. The five sets of tubular wire strippers and winding drums can simultaneously recover five sets of copper wire.

[0040] In this invention, five groups of copper wires can be wound simultaneously using a tubular wire stripper and a winding drum. The pulling action of the tubular wire stripper ensures tight winding, reduces the overall size, and achieves compression and volume reduction. Furthermore, the up-and-down movement of the winding drum allows for uniform winding while simultaneously stripping the coiled copper wires and automatically sorting them. Attached Figure Description

[0041] Figure 1 This is a three-dimensional schematic diagram of an integrated copper wire compression, volume reduction, and automatic sorting recycling machine proposed in this utility model.

[0042] Figure 2 This is a front cross-sectional view of the support frame of a copper wire compression, volume reduction, and automatic sorting integrated recycling machine proposed in this utility model.

[0043] Figure 3 This is a rear view schematic diagram of the slider of a copper wire compression and automatic sorting integrated recycling machine proposed in this utility model.

[0044] Figure 4 This is a top view schematic diagram of the power motor of a copper wire compression and automatic sorting integrated recycling machine proposed in this utility model.

[0045] In the diagram: 1. Base box; 2. Support frame; 3. Tube wire stripper; 4. Power motor; 5. Main sprocket; 6. Chain; 7. Secondary sprocket; 8. Lead screw; 9. Slider; 10. Mounting plate; 11. Rotary motor; 12. Winding drum; 13. Square block; 14. Horizontal plate; 15. Side plate; 16. Placement plate; 17. Collection box; 18. Sorting hopper. Detailed Implementation

[0046] 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.

[0047] Example

[0048] Reference Figure 1-4 A copper wire compression, volume reduction, and automatic sorting integrated recycling machine includes a base box 1 and a support frame 2 bolted to the top of the base box 1. The integrated copper wire compression, volume reduction, and automatic sorting recycling machine also includes:

[0049] The tubular wire stripper 3 has five holes, all of which are threaded to the surface of the support frame 2. The tubular wire stripper 3 strips the copper wire.

[0050] The stabilizing frame is bolted to the inside of the support frame 2. The stabilizing frame includes a horizontal plate 14 and side plates 15. There are six side plates 15. The bottom of each of the six side plates 15 is bolted to the top of the horizontal plate 14. The two ends of the horizontal plate 14 and the top of the side plates 15 are bolted to the inside of the support frame 2.

[0051] The moving mechanism consists of five parts, which are rotatably connected to the side of the horizontal plate 14.

[0052] The copper wire compression and capacity reduction mechanism comprises five parts, including:

[0053] Rotary motor 11 is bolted to the top of the movable mechanism;

[0054] The winding drum 12 is keyed to the output end of the rotary motor 11;

[0055] The square block 13 is bolted to the bottom of the winding drum 12. Five sets of copper wires can be wound simultaneously by the tubular wire stripper 3 and the winding drum 12. The pulling of the tubular wire stripper 3 can ensure the tightness of the winding, reduce the overall size, and achieve the effect of compression and volume reduction. Moreover, by moving the winding drum 12 up and down, it can complete the stripping while winding evenly and automatically sort the wires.

[0056] To facilitate the lifting and lowering of the winding drum 12, such as Figure 3 As shown, the movable mechanism includes: a power source, bolted to the side of the side plate 15; a sprocket assembly, keyed to the output end of the power source; and a lifting assembly, keyed to the shaft of the sprocket assembly. The power source can drive the sprocket assembly to rotate, and the sprocket assembly can drive the lifting assembly to rotate.

[0057] To facilitate the transmission of the structure, such as Figure 3 As shown, the power source includes a power motor 4. The surface of the power motor 4 is bolted to the side of the side plate 15. The power motor 4 is fixed by the side plate 15, so that the power motor 4 can operate continuously and stably.

[0058] To smoothly move both sides downwards or upwards, such as Figure 3 As shown, the sprocket assembly includes:

[0059] The main sprocket 5 is keyed to the output end of the power motor 4;

[0060] Chain 6 meshes with the teeth of main sprocket 5;

[0061] There are two secondary sprockets 7, which mesh with the inner side of the chain 6. The secondary sprockets 7 are keyed to the lifting assembly. The power motor 4 can drive the main sprocket 5 to rotate, the main sprocket 5 can drive the chain 6 to rotate, and the chain 6 can drive the two secondary sprockets 7 to rotate. The radius of the main sprocket 5 is larger than that of the secondary sprockets 7, which can produce an acceleration effect on the secondary sprockets 7. The secondary sprockets 7 can drive the lifting assembly to rotate.

[0062] In order to drive the lifting and lowering of the rotary motor 11, such as Figure 3 As shown, the lifting assembly includes:

[0063] Two lead screws 8 are keyed to the shaft of the secondary sprocket 7. The top and bottom ends of the lead screws 8 are respectively rotatably connected to the holes of the support frame 2 and the cross plate 14.

[0064] Two sliders 9 are threaded to the surface of the lead screw 8, and the side of the sliders 9 is slidably connected to the side of the side plate 15.

[0065] Mounting plate 10 is bolted between the surfaces of two sliders 9. The bottom of rotary motor 11 is bolted to the top of mounting plate 10. Secondary sprocket 7 can drive lead screw 8 to rotate. Lead screw 8 is connected to support frame 2 and cross plate 14 on the left side to ensure the smooth rotation of lead screw 8. Lead screw 8 can drive slider 9 to move downward using threads. Slider 9 is slidably set with side plate 15 through slide rail to guide slider 9 up and down. Slider 9 can drive mounting plate 10 to move downward. Mounting plate 10 can drive rotary motor 11 to move downward.

[0066] To facilitate the collection of copper wire sheaths, such as Figure 1 As shown, the collection box 17 can correspond to the tubular wire stripper 3. The copper wire stripped off by the tubular wire stripper 3 can fall into the collection box 17, and the placement plate 16 can support the collection box 17.

[0067] To facilitate the unloading of coiled copper wire, such as Figure 2 As shown, a sorting bucket 18 is bolted to the top of the inner side of the base box 1. There are five sorting buckets 18, which correspond to five winding cylinders 12 respectively. The sorting buckets 18 can receive the copper wires of the integrated roll and facilitate the outward guidance of the copper wires, so that the copper wires can be sorted directly.

[0068] It should be noted that the specific type of tubular wire stripper 3, power motor 4, and rotary motor 11 used should be selected by those skilled in the art. Furthermore, the tubular wire stripper 3, power motor 4, and rotary motor 11 mentioned above are all existing technologies and will not be elaborated upon in this solution.

[0069] The operating steps of this utility model are as follows: Insert one end of the copper wire to be recycled into the tube-type wire stripper 3, pull it into the support frame 2, and then wrap it around the square block 13 of the winding drum 12. The shape of the square block 13 is used to increase the friction with the copper wire. During the rotation of the winding drum 12 and the square block 13, the copper wire can be wound up. Turn on the power of the rotary motor 11. The power supply can be external or internal. The rotary motor 11 is controlled by a controller. The rotary motor 11 can drive the winding drum 12 to rotate. The winding drum 12 can drive the square block 13 to rotate. The rotating square block 13 can initially wind the copper wire. At the same time, turn on the power of the drive motor 4. The power supply can be external or internal. It is controlled by a controller. The drive motor 4 is fixed by the side plate 15. The drive motor 4 can drive the main sprocket 5 to rotate. The main sprocket 5 can drive the chain 6 to rotate. The chain 6 can drive the two auxiliary sprockets 7 to rotate. The radius of the main sprocket 5 is larger than that of the auxiliary sprockets 7, which can produce an acceleration effect on the auxiliary sprockets 7. The screw 8 is driven to rotate. The screw 8 is connected to the support frame 2 and the horizontal plate 14 on the left side to ensure the smooth rotation of the screw 8. The screw 8 can drive the slider 9 to move downward by means of the thread. The slider 9 is slidably set with the side plate 15 through the slide rail to guide the slider 9 up and down. The slider 9 can drive the mounting plate 10 to move downward. The mounting plate 10 can drive the rotary motor 11 to move downward. The rotary motor 11 can drive the winding drum 12 and the square block 13 to move downward. The tubular wire stripper 3 has a large stripping resistance, which can ensure the tightness of the winding and achieve the effect of compressing and reducing the volume of the copper wire. As the winding drum 12 moves downward, the winding can be more even. After the winding is completed, it drives the winding drum 12 to move upward. The copper wire wound on the winding drum 12 is limited by the horizontal plate 14 and detaches from the winding drum 12. The detached coiled copper wire falls into the sorting bucket 18. The sorting bucket 18 can guide the copper wire outward. The collection box 17 can be placed on top of the placement plate 16. The collection box 17 can collect the copper wire sheath stripped from the copper wire for easy subsequent cleaning.

[0070] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A copper wire compression capacity reduction and automatic sorting integrated recovery machine, comprising a base box (1) and a support frame (2) bolted on the top of the base box (1), characterized in that, The integrated copper wire compression, volume reduction, and automatic sorting recycling machine also includes: Tube-type wire stripper (3) is provided with five tube-type wire strippers (3), all of which are threaded to the holes on the surface of the support frame (2). The tube-type wire stripper (3) strips the copper wire. The stabilizing frame is bolted to the inside of the support frame (2). The stabilizing frame includes a horizontal plate (14) and side plates (15). There are six side plates (15). The bottom of each of the six side plates (15) is bolted to the top of the horizontal plate (14). The two ends of the horizontal plate (14) and the top of the side plates (15) are bolted to the inside of the support frame (2). The moving mechanism has five parts, which are rotatably connected to the side of the horizontal plate (14); The copper wire compression and capacity reduction mechanism comprises five parts, including: A rotary motor (11) is bolted to the top of the movable mechanism; The winding cylinder (12) is keyed to the output end of the rotary motor (11); A square block (13) is bolted to the bottom end of the winding cylinder (12).

2. The copper wire compression capacity reduction and automatic sorting integrated recovery machine according to claim 1, characterized in that, The organizations involved in the activities include: The power source is bolted to the side of the side plate (15); The sprocket assembly is keyed to the output end of the power source; The lifting assembly is keyed to the shaft of the sprocket assembly.

3. The copper wire compression, volume reduction, and automatic sorting integrated recycling machine according to claim 2, characterized in that, The power source includes a power motor (4), the surface of which is bolted to the side of the side plate (15).

4. The copper wire compression, volume reduction, and automatic sorting integrated recycling machine according to claim 3, characterized in that, The sprocket assembly includes: The main sprocket (5) is keyed to the output end of the power motor (4); Chain (6) meshes with the teeth of the main sprocket (5); There are two secondary sprockets (7), which mesh with the inner side of the chain (6) and are keyed to the lifting assembly.

5. The copper wire compression, volume reduction, and automatic sorting integrated recycling machine according to claim 4, characterized in that, The lifting assembly includes: Two lead screws (8) are keyed to the shaft of the secondary sprocket (7), and the top and bottom ends of the lead screws (8) are respectively rotatably connected to the holes of the support frame (2) and the cross plate (14); Two sliders (9) are threaded to the surface of the lead screw (8), and the side of the slider (9) is slidably connected to the side of the side plate (15). Mounting plate (10) is bolted between the surfaces of the two sliders (9), and the bottom of the rotary motor (11) is bolted to the top of the mounting plate (10).

6. The integrated copper wire compression, volume reduction, and automatic sorting recycling machine according to claim 1, characterized in that, The top of the base box (1) is bolted to a placement plate (16), and a collection box (17) is snapped onto the top of the placement plate (16).

7. The integrated copper wire compression, volume reduction, and automatic sorting recycling machine according to claim 1, characterized in that, The top of the inner side of the base box (1) is bolted with a sorting bucket (18), and there are five sorting buckets (18), which correspond to five winding cylinders (12) respectively.