Electroplating equipment for tin plate processing
By introducing a buffer mechanism of springs and limit posts into the electroplating equipment for tinplate processing, the problem of rigid collision between the load-bearing rod and the load-bearing crossbeam is solved, extending the service life of the equipment components and improving operational stability and ease of operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGYIN KEMAO METAL PROD
- Filing Date
- 2025-05-28
- Publication Date
- 2026-04-21
AI Technical Summary
During the tinplate processing, the rigid collision between the load-bearing rod and the load-bearing beam leads to a shortened service life of equipment components due to the lack of a buffer structure.
An elastic buffer mechanism consisting of a spring and a limiting post is adopted. The spring inside the fixed post cooperates with the limiting post to reduce the damage to the equipment caused by rigid collisions, and the lateral displacement of the spring is limited by the contact of the inner wall of the slide, thus ensuring the stability of the buffering process.
It extends the service life of mechanical components, improves the stability and flexibility of equipment operation, and enhances the support stability and ease of operation of the equipment.
Smart Images

Figure CN224148214U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of tinplate technology, and in particular to an electroplating equipment for tinplate processing. Background Technology
[0002] Tinplate possesses characteristics such as high strength, good formability, excellent corrosion resistance, strong weldability, and a bright appearance. It also exhibits good printability and colorability. Furthermore, the tin plating layer is non-toxic, making it widely used in the food industry and in the manufacture of various containers, stamped products, packaging materials, and other non-food products. With the development of related industries, the requirements for the quantity and quality of tinplate are constantly increasing, driving the technological development of electroplating equipment for tinplate processing.
[0003] During the electroplating process of tinplate, the load-bearing rod will have a rigid collision with the load-bearing beam due to repeated lifting. Because there is no buffer structure, the service life of the parts will be shortened. Utility Model Content
[0004] The purpose of this utility model is to provide an electroplating equipment for tinplate processing. The spring inside the fixed column and the limiting column form an elastic buffer mechanism. When the load-bearing rod is driven by hydraulic pressure or subjected to external impact, the spring reduces the damage to the equipment caused by rigid collision. The limiting column restricts the lateral displacement of the spring by abutting against the inner wall of the slide, ensuring the stability of the buffering process and extending the service life of the mechanical parts.
[0005] To achieve the above objectives, an electroplating device for tinplate processing is provided, comprising: a first support plate, a load-bearing rod provided on the lower surface of the first support plate, connecting grooves on both the left and right sides of the inner surface of the load-bearing rod, and fixed posts fixedly connected to both the left and right sides of the upper surface of the load-bearing rod. A sliding groove is provided on the upper surface of the fixed post, and a spring is sleeved on the inner surface of the sliding groove. The upper surface of the spring abuts against a limiting post, and the upper surface of the limiting post abuts against the inner surface of the sliding groove. A sliding post is fixedly connected to the upper surface of the limiting post. This enhances support stability, provides spring buffering and shock absorption, and the sliding post ensures smooth and flexible operation of the device.
[0006] The lower surface of the connecting groove is connected to the lower surface of the load-bearing rod, and the interior of the connecting groove is connected to the interior of the sliding groove. This interconnected design facilitates material flow and signal transmission, improving the efficiency of component collaboration.
[0007] The number of connecting slots corresponds to the number of fixed posts, and the sliding post is located above the spring. This corresponding arrangement ensures structural symmetry and stability, and the position of the sliding post facilitates the spring's buffering effect.
[0008] The first support plate has a movable groove inside, and positioning posts are fixedly connected to both the left and right sides of the upper surface of the first support plate. The movable groove allows the components to slide, and the positioning posts provide precise positioning, ensuring the accuracy of equipment installation and operation.
[0009] A fixing plate is fixedly connected between the two positioning columns. A hydraulic pump and a controller are fixedly connected to the upper surface of the fixing plate, and the hydraulic pump extends to the lower surface of the fixing plate. The fixing plate securely mounts the hydraulic pump and controller, facilitating equipment operation and improving operational convenience.
[0010] A hydraulic rod is fixedly connected to the output end of the hydraulic pump, and the outer surface of the hydraulic rod is slidably connected to the movable groove. The lower surface of the hydraulic rod is fixedly connected to the load-bearing rod. The hydraulic pump drives the hydraulic rod to move the load-bearing rod, thereby enabling flexible adjustment of the equipment height.
[0011] A second support plate is fixedly connected to both the left and right sides of the lower surface of the first support plate. The lower surface of the second support plate has mounting grooves on both the front and rear sides, and casters are installed inside the mounting grooves. The second support plates enhance stability, while the casters facilitate movement and improve the flexibility of equipment use.
[0012] The above-mentioned solution has the following beneficial effects:
[0013] This utility model is equipped with a load-bearing rod, a connecting groove, a fixed column, a sliding groove, and a spring. The spring in the fixed column and the limiting column form an elastic buffer mechanism. When the load-bearing rod is driven by hydraulic pressure or subjected to external impact, the spring reduces the damage to the equipment caused by rigid collision. The limiting column restricts the lateral displacement of the spring by abutting against the inner wall of the sliding groove, ensuring the stability of the buffering process and extending the service life of the mechanical parts. Attached Figure Description
[0014] Figure 1 This is a perspective view of an electroplating equipment for tinplate processing according to the present invention.
[0015] Figure 2 This is a front view of an electroplating equipment for tinplate processing according to the present invention.
[0016] Figure 3 This is a cross-sectional perspective view of an electroplating equipment for tinplate processing according to the present invention.
[0017] Figure 4 For utility model Figure 3 Enlarged view of the structure at point A in the middle.
[0018] Legend:
[0019] 1. First support plate; 2. Movable groove; 3. Second support plate; 4. Mounting groove; 5. Caster wheel; 6. Positioning column; 7. Fixing plate; 8. Hydraulic pump; 9. Controller; 10. Hydraulic rod; 11. Load-bearing rod; 12. Connecting groove; 13. Fixing column; 14. Sliding column; 15. Limiting column; 16. Slide groove; 17. Spring. Detailed Implementation
[0020] Reference Figure 1-4 This utility model relates to an electroplating equipment for tinplate processing, which includes a first support plate 1. A load-bearing rod 11 is provided on the lower surface of the first support plate 1. The load-bearing rod 11 supports the first support plate 1 and distributes the force on it, ensuring the stability of the first support plate 1. Connecting grooves 12 are provided on both the left and right sides of the interior of the load-bearing rod 11. The connecting grooves 12 provide channels for possible subsequent component connections or liquid / gas flow, and cooperate with other components to achieve specific functions. Fixing columns 13 are fixedly connected to both the left and right sides of the upper surface of the load-bearing rod 11. The fixing columns 13 are used to fix and support the components above them, providing stable support points for the entire structure. A sliding groove 16 is provided on the upper surface of the fixing column 13. The sliding groove 16 is a spring... The sliding of components such as spring 17 and limiting post 15 provides space for them to move along a specified path. Spring 17 is sleeved on the inner surface of slide groove 16. Spring 17 can play the role of buffering and elastic support. It deforms when subjected to external force and returns to its original shape after the external force is removed. The upper surface of spring 17 abuts against limiting post 15, and the upper surface of limiting post 15 abuts against the inner surface of slide groove 16. Limiting post 15 restricts the position of spring 17 to prevent it from shifting during movement and ensures that spring 17 works normally. Sliding post 14 is fixedly connected to the upper surface of limiting post 15. Sliding post 14 can slide in slide groove 16 with limiting post 15 to realize specific mechanical movement and cooperate with other components to complete corresponding functions.
[0021] The lower surface of the connecting groove 12 is connected to the lower surface of the load-bearing rod 11. This connection design facilitates connection with components below the load-bearing rod 11 or enables the flow of materials, enhancing the cooperation between components. The interior of the connecting groove 12 is connected to the interior of the sliding groove 16, allowing the transmission of materials or signals between the connecting groove 12 and the sliding groove 16, facilitating collaborative work between components. The number of connecting grooves 12 corresponds to the number of fixed columns 13, ensuring that there is a corresponding connecting groove 12 near each fixed column 13, guaranteeing the symmetry and stability of the structure. The sliding column 14 is located above the spring 17. This positional relationship allows the sliding column 14 to... Under the elastic action of the 17, it slides up and down to achieve a specific mechanical function. The first support plate 1 has a movable groove 2 inside, which provides space for the sliding of the hydraulic rod 10, allowing the hydraulic rod 10 to move freely inside the first support plate 1, thereby driving the movement of related components. Positioning posts 6 are fixedly connected to both the left and right sides of the upper surface of the first support plate 1. The positioning posts 6 are used to fix and position the fixing plate 7, ensuring the accurate position of the fixing plate 7 and providing a stable installation base for other components. The fixing plate 7 is fixedly connected between the two positioning posts 6. The fixing plate 7 provides an installation platform for components such as the hydraulic pump 8 and the controller 9, ensuring the stable operation of these components. A hydraulic pump 8 and a controller 9 are fixedly connected to the upper surface of plate 7, and the hydraulic pump 8 extends to the lower surface of the fixed plate 7. The hydraulic pump 8 provides power to the entire system, and the controller 9 controls the working state of the hydraulic pump 8. The two work together to achieve precise control of the hydraulic system. A hydraulic rod 10 is fixedly connected to the output end of the hydraulic pump 8, and the outer surface of the hydraulic rod 10 is slidably connected to the movable groove 2. The hydraulic pump 8 drives the hydraulic rod 10 to slide in the movable groove 2, converting hydraulic energy into mechanical energy, which drives the load-bearing rod 11 and other components to move. The lower surface of the hydraulic rod 10 is fixedly connected to the load-bearing rod 11, and the movement of the hydraulic rod 10 can be directly transmitted to the load-bearing rod 11, causing the load-bearing rod to move. The first support plate 11 can move up and down with the extension and retraction of the hydraulic rod 10, thereby adjusting the height or position of the equipment. The lower surface of the first support plate 1 is fixedly connected to the left and right sides of the second support plate 3. The second support plate 3 further enhances the stability of the first support plate 1, shares the force of the first support plate 1, and ensures the smooth operation of the entire equipment. The lower surface of the second support plate 3 is provided with mounting grooves 4 on both the front and rear sides. The mounting grooves 4 provide space for the installation of casters 5, which facilitates the movement and position adjustment of the equipment. The casters 5 are installed inside the mounting grooves 4, which enable the equipment to move flexibly and facilitate the conversion between different working positions, thereby improving the flexibility of the equipment.
[0022] Working Principle: First, using the casters 5 in the mounting groove 4 on the lower surface of the second support plate 3, the equipment is flexibly moved to a suitable working position. Due to the presence of the casters 5, the equipment can easily switch between different working areas. After positioning, it is ready for subsequent operations. The hydraulic pump 8 is started via the controller 9 on the fixed plate 7. The positioning column 6 ensures the accurate position of the fixed plate 7, providing a stable mounting platform for the hydraulic pump 8 and controller 9, ensuring their stable operation. After the hydraulic pump 8 starts working, its output end drives the hydraulic rod 10 to slide in the movable groove 2 inside the first support plate 1. The movable groove 2 provides space for the sliding of the hydraulic rod 10, ensuring its smooth movement. The lower surface of the hydraulic rod 10 is fixedly connected to the load-bearing rod 11, so the hydraulic rod 10... The telescopic movement of the load-bearing rod 11 allows for the adjustment of the equipment's height or position. During this movement, the spring 17 and the limiting post 15 within the groove 16 on the upper surface of the fixed post 13 function. The spring 17 provides cushioning and elastic support, while the limiting post 15 restricts the position of the spring 17 to prevent it from shifting. The sliding post 14 is fixed to the upper surface of the limiting post 15 and can slide within the groove 16 with the limiting post 15, cooperating with other components to complete corresponding functions. The connecting groove 12 inside the load-bearing rod 11 connects with the groove 16, facilitating the transmission of materials or signals between components and enhancing collaboration. After adjusting the equipment through the above operations, the equipment remains stable under the support of the load-bearing rod 11 and the second support plate 3, and the electroplating operation for tinplate processing can begin.
Claims
1. An electroplating equipment for tinplate processing, characterized in that: The first support plate (1) is provided with a load-bearing rod (11) on its lower surface. The load-bearing rod (11) has a connecting groove (12) on both the left and right sides inside. The load-bearing rod (11) has a fixed column (13) fixedly connected to both the left and right sides on its upper surface. The fixed column (13) has a sliding groove (16) on its upper surface. The inner surface of the sliding groove (16) is fitted with a spring (17). The upper surface of the spring (17) abuts against a limiting column (15). The upper surface of the limiting column (15) abuts against the inner surface of the sliding groove (16). The upper surface of the limiting column (15) is fixedly connected with a sliding column (14).
2. The electroplating apparatus for processing a tinplate according to claim 1, wherein: The lower surface of the connecting groove (12) is connected to the lower surface of the load-bearing rod (11), and the interior of the connecting groove (12) is connected to the interior of the sliding groove (16).
3. The electroplating apparatus for processing of tinplate as claimed in claim 1 wherein: The number of the connecting grooves (12) and the number of the fixed columns (13) are set in a corresponding manner, and the sliding column (14) is located above the spring (17).
4. The electroplating apparatus for processing a tinplate according to claim 1, wherein: The first support plate (1) has an open groove (2) inside, and positioning columns (6) are fixedly connected to the left and right sides of the upper surface of the first support plate (1).
5. The electroplating apparatus for processing a tinplate as recited in claim 4, wherein: A fixing plate (7) is fixedly connected between the two positioning columns (6). A hydraulic pump (8) and a controller (9) are fixedly connected to the upper surface of the fixing plate (7), and the hydraulic pump (8) extends to the lower surface of the fixing plate (7).
6. The electroplating apparatus for processing a tinplate according to claim 5, wherein: The output end of the hydraulic pump (8) is fixedly connected to a hydraulic rod (10), and the outer surface of the hydraulic rod (10) is slidably connected to the movable groove (2), while the lower surface of the hydraulic rod (10) is fixedly connected to the load-bearing rod (11).
7. The electroplating apparatus for processing of tinplate as recited in claim 1, wherein: The lower surface of the first support plate (1) is fixedly connected to the left and right sides of the second support plate (3). The lower surface of the second support plate (3) is provided with mounting grooves (4) on both the front and rear sides. The mounting grooves (4) are provided with casters (5).