A copper material feeding auxiliary device
By designing a copper feeding auxiliary device, which utilizes rolling rollers, motor-driven rolling wheels, and diverting plates, automated feeding of copper tubing has been achieved. This solves the safety hazards and inefficiencies caused by manual operation, and improves production efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGXI YISHENG COPPER FINISHING PROCESSING CO LTD
- Filing Date
- 2025-08-06
- Publication Date
- 2026-05-26
AI Technical Summary
In the existing technology, the production and feeding process of copper tubing relies on manual operation, which poses safety hazards, is labor-intensive, and results in low work efficiency.
A copper material feeding auxiliary device was designed, which utilizes components such as rolling rollers, lifting blocks, motor-driven rolling wheels and diverting plates to achieve automated feeding, avoid contact and collision of pipes and improve clamping effect.
It has enabled automated feeding of copper tubing, improving work efficiency, reducing labor intensity, enhancing safety, and reducing safety hazards associated with manual operation.
Smart Images

Figure CN224278510U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of copper processing equipment, and in particular to a copper feeding auxiliary device. Background Technology
[0002] Copper materials are made of pure copper or copper alloys and come in various shapes, including rods, wires, plates, strips, bars, tubes, and foils. Copper materials are processed by rolling, extrusion, and drawing. Copper plates and strips are hot-rolled and cold-rolled; while strips and foils are cold-rolled; tubes and rods are divided into extruded and drawn products; and wires are all drawn.
[0003] In the production and feeding process of copper tubing, long strips of tubing are manually fed into the tubes for processing. This method is labor-intensive, not suitable for long-term processing, resulting in low work efficiency. Moreover, it can easily pose safety hazards to workers during feeding.
[0004] Therefore, an auxiliary device for feeding copper tubular materials is proposed. Utility Model Content
[0005] (a) Technical problems to be solved
[0006] To overcome the shortcomings of existing technologies, a copper material feeding auxiliary device is proposed to solve the problems of low safety, high labor intensity, and low work efficiency caused by manual hand-feeding in the current copper pipe processing production process.
[0007] (II) Technical Solution
[0008] This utility model is achieved through the following technical solution: This utility model proposes a copper material feeding auxiliary device, including side mounting plates arranged on both sides, and a row of rolling rollers rotatably mounted inside the side mounting plates.
[0009] It also includes lifting block one and lifting block two installed at the front and rear of the upper end of the rolling roller, and the lifting block one and lifting block two are connected by a side connecting plate on the side. The side mounting plate is equipped with a lifting component and connected to the side connecting plate.
[0010] The lifting block has a vertically penetrating sliding groove inside, and a lead screw is rotatably installed inside the sliding groove. A first motor is installed on the outside of the lifting block and connected to the lead screw. Several sliding blocks are slidably connected inside the sliding groove. The sliding blocks have threaded holes inside and are connected to the lead screw. A flow divider is provided at the lower end of the sliding blocks, and a rolling wheel is rotatably installed inside the flow divider.
[0011] The second lifting block has a downward-through rotating groove inside, and a rotating wheel is rotatably installed inside the rotating groove. A second motor is installed on the outside of the second lifting block and connected to the rotating wheel.
[0012] Furthermore, a bottom plate is connected to the bottom of the side mounting plate, and a controller is mounted on the side of the side mounting plate.
[0013] Furthermore, the lifting assembly includes mounting cavities symmetrically arranged inside the side mounting plate, and an electric push rod is installed inside the mounting cavity, with the output end of the electric push rod connected to the side connecting plate.
[0014] Furthermore, telescopic rods are installed on both sides of the side mounting plate and connected to the side connecting plate.
[0015] Furthermore, the inner side of the movable slide groove is provided with several limiting plates corresponding to the movable slider, and the limiting plates are provided with through sliding holes that are connected to the lead screw.
[0016] Furthermore, a hanging plate is provided at the top of the movable slider, which is slidably connected to one top surface of the lifting block.
[0017] Furthermore, the bottom end of the diverter plate is configured in an arc shape.
[0018] (III) Beneficial Effects
[0019] Compared with the prior art, this utility model has the following advantages:
[0020] 1. In this utility model, by placing the copper tubing at the upper end of the rolling roller, multiple pieces can be prevented, resulting in a larger feeding quantity and higher work efficiency. Then, the electric push rod pulls the side connecting plate, causing the lifting block one and lifting block two to move downward. During the downward movement, the diverting plate separates the copper tubing. Under the rotation of the lead screw driven by the first motor, the moving slider can rotate the diverting plate, thereby clamping the copper tubing. This prevents the copper tubing from contacting and colliding with each other during feeding, resulting in better feeding effect and better subsequent processing quality.
[0021] Furthermore, during the downward process, the rotating wheel contacts the upper end of the copper tube. Driven by the second motor, the copper tube is conveyed to one side by the rotational force, thereby achieving automatic feeding. This avoids the inefficiency of manual feeding and reduces labor, making it easier to work for extended periods and increasing work efficiency. With the copper tubes on both sides under stress, the copper is safer during processing, reducing potential safety hazards. Attached Figure Description
[0022] Other features, objects, and advantages of this invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:
[0023] Figure 1 This is a schematic diagram of the internal structure of the side of this utility model;
[0024] Figure 2 This is a schematic diagram of the internal structure of lifting block one and lifting block two of this utility model from a bottom view;
[0025] Figure 3 This is a schematic diagram of the internal structure of the lifting block 2 of this utility model.
[0026] Figure 4 This is a top view schematic diagram of the installation structure of the rolling roller of this utility model;
[0027] In the diagram: Bottom plate-1, Side mounting plate-2, Controller-3, Rolling roller-4, Mounting cavity-5, Electric push rod-6, Lifting block one-7, Side connecting plate-8, Moving slide rail-9, Lead screw-10, First motor-11, Moving slider-12, Threaded hole-13, Hanging plate-14, Limiting plate-15, Through slide hole-16, Diverter plate-17, Rolling wheel-18, Lifting block two-19, Rotating groove-110, Rotating wheel-111, Second motor-112, Telescopic rod-113. Detailed Implementation
[0028] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this utility model and are not intended to limit this utility model.
[0029] Please see Figures 1-4 This utility model provides a copper material feeding auxiliary device, including side mounting plates 2 arranged on both sides. The spacing between the side mounting plates 2 can be set according to the requirements of subsequent processing equipment to facilitate subsequent processing. A bottom plate 1 is covered and connected to the bottom end of the side mounting plates 2, thereby improving the stability of the side mounting plates 2 and the support effect. A controller 3 is installed on the side of the side mounting plates 2, which is purchased from the outside, making it convenient for the staff to operate the electrical components in the device, making the operation more convenient. A row of rolling rollers 4 is rotatably installed inside the side mounting plates 2. The rolling of the rolling rollers 4 facilitates the movement of the copper tube placed on it, making the feeding effect better.
[0030] It also includes lifting blocks 1 7 and 2 19 installed at the front and rear of the upper end of the rolling roller 4, and the lifting blocks 1 7 and 2 19 are connected by a side connecting plate 8 on their sides, so that the lifting blocks 1 7 and 2 19 can be moved up and down together under the action of the side connecting plate 8, making the operation more convenient. The side mounting plate 2 is equipped with a lifting component connected to the side connecting plate 8. The lifting component includes mounting cavities 5 symmetrically arranged inside the side mounting plate 2. An electric push rod 6 is installed inside the mounting cavity 5, and the output end of the electric push rod 6 is connected to the side connecting plate 8. The electric push rod 6 pulls the side connecting plate 8 to realize the up and down movement of lifting blocks 1 7 and 2 19, avoiding manual up and down operation. An externally purchased synchronous controller can be set in the electric push rod 6 to control the up and down movement at the same time, or it can be set to synchronous by mechanical setting. Telescopic rods 113 are installed on both sides of the side mounting plate 2 and connected to the side connecting plate 8. The telescopic rods 113 help to enhance the stability of lifting blocks 1 7 and 2 19 during the up and down process.
[0031] The lifting block 7 has a vertically penetrating sliding groove 9 inside, with a lead screw 10 rotatably mounted inside the sliding groove 9. A first motor 11 is mounted on the outside of the lifting block 7 and connected to the lead screw 10. Several sliding blocks 12 are slidably connected inside the sliding groove 9. Each sliding block 12 has a threaded hole 13 connected to the lead screw 10. Under the rotation of the lead screw 10 driven by the first motor 11, the sliding blocks 12 are moved left and right by force, avoiding manual rotation of the lead screw 10 and thus improving work efficiency. A hanging plate 14 is provided at the top of the sliding block 12 and slidably connected to the top surface of the lifting block 7. The hanging plate 14 strengthens the lifting mechanism. To improve the stability of the lowering block 7 and reduce shaking during the pushing process, a flow divider 17 is provided at the lower end of the moving slider 12. The flow divider 17 separates the copper tubing during the downward movement, preventing collisions and improving processing results. The bottom end of the flow divider 17 is arc-shaped, facilitating easier separation of the copper tubing during downward movement and reducing surface damage. Furthermore, a groove is provided at the corresponding upper end of the rolling roller 4 to allow the flow divider 17 to enter, enabling processing of copper tubing of different sizes. A rolling wheel 18 is rotatably installed inside the flow divider 17, ensuring the copper is separated and clamped by the flow divider 17. To facilitate the forward movement of copper materials and make the work more convenient, the inner side of the moving slide 9 is provided with several limiting plates 15 corresponding to the moving slider 12. The limiting plates 15 have through sliding holes 16 connected to the lead screw 10, which restricts the movement of the moving slider 12 and prevents it from moving too much, thus facilitating force handling. The spacing between the moving sliders 12 is uniformly set to facilitate clamping of the same type of tubular copper materials during movement. Different flow dividers 17 are provided on both sides to facilitate force handling. The lifting block 2 19 has a downward through rotating groove 110 inside. A rotating wheel 111 is installed inside the lifting block 19. A second motor 112 is installed on the outside of the lifting block 19 and connected to the rotating wheel 111. The outer surface of the rotating wheel 111 can be made into a friction texture to increase the force in contact with the copper pipe. During the downward movement of the lifting block 19, the lower rotating wheel 111 contacts the copper pipe. Then, under the action of the second motor 112, the rotating wheel 111 rotates, thereby moving the copper pipe forward under the action of the rolling roller 4 and the rolling wheel 18. This realizes the feeding operation, avoids manual feeding, makes the work more efficient, saves manpower, and has better stability.
[0032] Working principle: In use, first connect the electric push rod 6, the first motor 11, the second motor 112 and the controller 3, and connect them to an external power supply. Then place the copper tube on the upper end of the rolling roller 4. When the electric push rod 6 pulls the side connecting plate 8 downward, the lifting block 7 and the lifting block 19 are pulled downward. During the downward movement, the bottom end of the diverting plate 17 separates the copper tube one by one. At the same time as the separation, the first motor 11 drives the lead screw 10, which causes the moving slider 12 to move under force, thereby moving the diverting plate 17. This causes the lower rolling wheel 18 to clamp the copper tube and then stop working. The rotating wheel 111 at the lower end of the other side lifting block 19 also contacts the copper tube, thus realizing the separation of the copper tube. Then, the second motor 112 drives the rotating wheel 111 to rotate, which pushes the copper tube forward under force, thus realizing the feeding operation.
[0033] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A copper material feeding auxiliary device, comprising side mounting plates (2) arranged on both sides, wherein a row of rolling rollers (4) is rotatably mounted inside the side mounting plates (2), characterized in that... ; It also includes lifting block one (7) and lifting block two (19) installed at the front and rear of the upper end of the rolling roller (4), and the lifting block one (7) and lifting block two (19) are connected by a side connecting plate (8) on the side. The side mounting plate (2) is equipped with a lifting component and connected to the side connecting plate (8). The lifting block (7) is provided with a vertically penetrating sliding groove (9). A lead screw (10) is rotatably installed inside the sliding groove (9). A first motor (11) is installed on the outside of the lifting block (7) and connected to the lead screw (10). Several sliding blocks (12) are slidably connected inside the sliding groove (9). A threaded hole (13) is provided inside the sliding block (12) and connected to the lead screw (10). A flow divider (17) is provided at the lower end of the sliding block (12), and a rolling wheel (18) is rotatably installed inside the flow divider (17). The lifting block 2 (19) has a downward through rotating groove (110) inside, and a rotating wheel (111) is rotatably installed inside the rotating groove (110). A second motor (112) is installed on the outside of the lifting block 2 (19) and connected to the rotating wheel (111).
2. The copper material feeding auxiliary device according to claim 1, characterized in that: The bottom plate (1) is covered and connected to the bottom end of the side mounting plate (2), and the controller (3) is installed on the side of the side mounting plate (2).
3. The copper material feeding auxiliary device according to claim 1, characterized in that: The lifting assembly includes mounting cavities (5) symmetrically arranged inside the side mounting plate (2). An electric push rod (6) is installed inside the mounting cavity (5), and the output end of the electric push rod (6) is connected to the side connecting plate (8).
4. The copper material feeding auxiliary device according to claim 3, characterized in that: The side mounting plate (2) is equipped with telescopic rods (113) on both sides, which are connected to the side connecting plate (8).
5. The copper material feeding auxiliary device according to claim 1, characterized in that: The inner side of the movable slide groove (9) is provided with several limiting plates (15) corresponding to the movable slider (12). The limiting plates (15) are provided with through sliding holes (16) and connected to the lead screw (10).
6. The copper material feeding auxiliary device according to claim 1, characterized in that: The top of the movable slider (12) is provided with a hanging plate (14) which is slidably connected to the top surface of the lifting block (7).
7. The copper material feeding auxiliary device according to claim 1, characterized in that: The bottom end of the diverter plate (17) is set in an arc shape.