A copper slag recycling device for processing copper artware
By using a bidirectional shearing crushing component and auxiliary mechanism, the problem of uneven crushing of copper slag was solved, enabling efficient recycling of copper slag, improving the stability and ease of operation of the device, and extending the service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QUANZHOU LIANCI CULTURAL CREATIVITY CO LTD
- Filing Date
- 2025-08-07
- Publication Date
- 2026-07-07
AI Technical Summary
In existing copper slag recycling equipment for copper art processing, the crushing mechanism is simple and difficult to adapt to different forms of copper slag, resulting in poor crushing effect, affecting recycling efficiency and increasing energy consumption.
The crushing assembly and auxiliary mechanism employ bidirectional shearing force, including a sliding component, motor, connecting block, and crushing blade. It achieves efficient crushing of thin flakes and agglomerated copper slag through reverse rotation. It is also equipped with a transparent tempered glass observation window and a PVC wear-resistant layer to improve the stability and ease of operation of the device.
It improves the uniformity and efficiency of copper slag crushing, reduces equipment vibration and wear, extends service life, and enhances the overall operational efficiency and equipment durability of copper slag recycling.
Smart Images

Figure CN224462848U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of recycling device technology, specifically a copper slag recycling device for processing copper artworks. Background Technology
[0002] As is well known, copper handicrafts refer to handicrafts made of copper. Examples of copper handicrafts include bronze ware and the Simuwu Ding (a famous bronze vessel). In terms of the scale of use, casting techniques, artistic style, and variety of copper artifacts, no other region in the world can compare with ancient Chinese copperware. Currently, the recycling of copper slag requires crushing, necessitating the use of crushing equipment.
[0003] However, in existing copper slag recycling devices for copper art processing, the crushing mechanism usually relies on a single crushing component (such as a fixed-direction crushing blade) for crushing operations. Since the copper slag produced from copper art processing has a variety of forms (including flakes, fragments, small clumps, etc.), a single crushing mechanism is difficult to crush copper slag of different forms in a targeted manner. Large clumps may not be crushed sufficiently due to insufficient force, while thin copper slag is easily driven by the blades and cannot be effectively cut. Ultimately, this results in uneven particle size of the crushed copper slag. This problem of poor crushing effect not only affects the purification efficiency of subsequent copper slag recycling, but may also increase the operation time and energy consumption due to the need for secondary crushing, thereby reducing the practical value of the entire device. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] To address the shortcomings of existing technologies, this utility model provides a copper slag recycling device for the processing of copper artworks.
[0006] (II) Technical Solution
[0007] To achieve the above objectives, this utility model provides the following technical solution: a copper slag recycling device for processing copper artworks, comprising a box, a support base, a cover plate, and an auxiliary mechanism. The support base is located at the bottom of the box, and there are several support bases. A discharge component is located at the center of the bottom of the box. The cover plate is connected to the box through the auxiliary mechanism. A crushing component is located at the top of the cover plate, and a feeding component is located on one side of the top of the cover plate. The auxiliary mechanism includes a sliding component, a long plate, bolts, a motor, a connecting block, a limiting block, a connecting rod, and crushing blades. The sliding component is located on the side of the box. The long plate is connected to the sliding component through the bolts. The motor is located on the long plate, and the output end of the motor is connected to the center of the connecting block. The bottom of the connecting block is connected to the top of the cover plate. There are two sliding components. The bottom of the limiting block is connected to the top wall of the box, and one side of the limiting block contacts the side wall of the cover plate. The connecting rod is connected to the bottom of the cover plate. Several crushing blades are located on the connecting rod.
[0008] To improve stability, this invention features an improvement where the two sliding components are symmetrically arranged.
[0009] To facilitate observation of the interior of the enclosure, this utility model is improved by providing an observation window at the rear of the enclosure, which is embedded in the rear of the enclosure.
[0010] To improve the strength of the observation window, this utility model is improved by using transparent tempered glass as the observation window material.
[0011] To improve the wear resistance, the present invention is improved by providing a wear-resistant layer at the bottom of the support base, and the wear-resistant layer is fixedly connected to the bottom of the support base.
[0012] To improve the wear resistance, the present invention is improved by using PVC material for the wear-resistant layer.
[0013] (III) Beneficial Effects
[0014] Compared with the prior art, this utility model provides a copper slag recycling device for the processing of copper artworks, which has the following beneficial effects:
[0015] This copper slag recycling device for processing copper artworks has the following beneficial effects:
[0016] In terms of crushing efficiency, the crushing components and auxiliary mechanisms rotate in opposite directions to form bidirectional shearing force, which solves the problem of poor performance of a single crushing mechanism. It can adapt to various forms of copper slag such as flakes and lumps, and improve the uniformity of crushing.
[0017] In terms of ease of operation, the tempered glass observation window embedded at the rear of the cabinet allows for real-time observation of the internal status, facilitating timely adjustments; the symmetrically arranged sliding components, combined with the bolt connection structure, enable quick lifting and disassembly of the cover, facilitating internal cleaning and component maintenance;
[0018] In terms of structural stability, the PVC wear-resistant layer fixed at the bottom of the support reduces ground friction and extends service life; the limiting block and the symmetrical sliding component work together to limit the movement, ensuring stable rotation of the crushing blade and reducing the impact of equipment vibration.
[0019] The overall design balances crushing effect with operational practicality, making it suitable for copper slag recycling scenarios and improving operational efficiency and equipment durability. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the structure of this utility model;
[0021] Figure 2 This utility model Figure 1 A magnified schematic diagram of the partial structure at point A in the middle;
[0022] Figure 3 This is a schematic diagram of the axial structure of this utility model;
[0023] Figure 4 This utility model Figure 1 A frontal view of the internal structure;
[0024] In the diagram: 1. Box body; 2. Support base; 3. Cover plate; 4. Crushing assembly; 5. Feeding assembly; 6. Discharging assembly; 7. Auxiliary mechanism; 8. Sliding assembly; 9. Long plate; 10. Bolt; 11. Motor; 12. Connecting block; 13. Limiting block; 14. Connecting rod; 15. Crushing blade. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0026] Please see Figure 1-4A copper slag recycling device for processing copper artworks includes a housing 1, a support base 2, a cover plate 3, and an auxiliary mechanism 7. The support base 2 is located at the bottom of the housing 1, and several support bases 2 are provided. A discharge component 6 is located at the center of the bottom of the housing 1. The cover plate 3 is connected to the housing 1 via the auxiliary mechanism 7. A crushing component 4 is located on the top of the cover plate 3, and a feeding component 5 is located on one side of the top of the cover plate 3. The auxiliary mechanism 7 includes a sliding component 8, a long plate 9, bolts 10, a motor 11, a connecting block 12, a limiting block 13, a connecting rod 14, and a crushing blade 15. A sliding assembly 8 is disposed on the side of the housing 1. The long plate 9 is connected to the sliding assembly 8 by the bolt 10. The motor 11 is disposed on the long plate 9. The output end of the motor 11 is connected to the center of the connecting block 12. The bottom of the connecting block 12 is connected to the top of the cover plate 3. There are two sliding assemblies 8. The bottom of the limiting block 13 is connected to the top wall of the housing 1. One side of the limiting block 13 contacts the side wall of the cover plate 3. The connecting rod 14 is connected to the bottom of the cover plate 3. The crushing blade 15 is disposed on the connecting rod 14. There are several crushing blades 15.
[0027] Working principle: After the equipment is placed in the designated working position, it is stably supported by the support base 2 to prevent the equipment from shifting due to vibration during operation; then, the external mains power is connected to power the equipment.
[0028] During the crushing operation:
[0029] The copper slag to be processed is poured into the box 1 through the feeding component 5, and the crushing component 4 is started. It consists of a drive motor 11, a connecting shaft and a crushing blade 15, which can initially crush the copper slag.
[0030] The motor 11 on the long plate 9 is started synchronously. The motor 11 drives the connecting block 12 to rotate, which in turn drives the cover plate 3 to rotate along a stable trajectory (the limiting block 13 on the top of the box 1 can provide lateral support for the cover plate 3 to prevent it from shaking).
[0031] When the cover plate 3 rotates, the crushing blade 15 on the bottom connecting rod 14 rotates synchronously with it, and the motor 11 and the drive motor 11 of the crushing component 4 rotate in opposite directions - the two sets of crushing blades 15 form opposite shearing forces, which can crush copper slag more efficiently (the design ensures that the movement trajectories of the connecting rod 14 and the crushing blade 15 are completely staggered with those of the crushing component 4 to avoid mutual interference).
[0032] After completing the assignment:
[0033] Open the discharge structure of the discharge component 6 to discharge the crushed copper slag;
[0034] If the equipment needs to be cleaned, the two symmetrically arranged sliding components 8 are activated by the control button on the housing 1. These components consist of a slide, a slider, a drive motor 11, a threaded rod, etc., which can simultaneously drive the long plate 9 and the cover plate 3 to rise, so that the cover plate 3 is separated from the housing 1 and the top opening is exposed. Then, the external rinsing equipment is used to clean the inside of the housing 1 and the crushing components 4.
[0035] When crushing component 4 needs maintenance (e.g.) Figure 1 (as shown)
[0036] Use a screwdriver to unscrew the bolt 10 connecting the long plate 9 and the sliding component 8 (the bolt 10 has been coated with thread-locking adhesive beforehand and needs to be tightened).
[0037] Lifting the long plate 9 upwards will completely separate the cover plate 3 from the box body 1 (the crushing component 4, which is fixed on the cover plate 3, can be removed along with it), making it convenient for staff to carry out maintenance operations.
[0038] The bottom wall of the box 1 in the text is "conical funnel-shaped" (cone angle 60°), which uses gravity to guide the copper slag to gather towards the center and reduce corner residue; the bottom of the cover plate 3 in the text is equipped with a sealing ring, which can improve the sealing performance between the cover plate 3 and the box 1.
[0039] To improve the stability of the equipment during operation and prevent tilting or jamming due to uneven force during the lifting or supporting of the long plate 9 and cover plate 3 by the sliding components 8, in this embodiment, the two sliding components 8 are symmetrically arranged on both sides of the housing 1. This symmetrical design allows the driving force of the two sliding components 8 to be evenly applied to both ends of the long plate 9, ensuring that the cover plate 3 remains horizontal when rising, falling or rotating, reducing component wear caused by excessive force on one side. At the same time, the symmetrically distributed sliding components 8 can form a synergistic limiting effect with the limiting block 13, further restricting the lateral sway of the cover plate 3, providing a structural basis for the stable rotation of the crushing blade 15, and ensuring the continuity and safety of the crushing operation.
[0040] To facilitate real-time observation of the crushing status of copper slag inside the chamber 1 (such as crushing uniformity and material accumulation), and to adjust equipment operating parameters in a timely manner to avoid affecting work efficiency due to material blockage or insufficient crushing, in this embodiment, an observation window is provided at the rear of the chamber 1. The observation window is fixedly connected to the rear of the chamber 1 by an embedded method. This embedded design ensures that the observation window fits tightly with the chamber 1, preventing copper slag dust from leaking out due to gaps and preventing the observation window from loosening and falling off when the equipment vibrates. At the same time, the staff can intuitively judge whether it is necessary to stop the machine for cleaning or replenishing materials through the observation window, improving the convenience and accuracy of operation.
[0041] To improve the structural strength of the observation window and prevent it from breaking due to external impacts during equipment operation (such as vibration of the housing 1 or splashing of copper slag) or routine maintenance, and to ensure that staff can continuously and stably observe the internal conditions of the housing 1, in this embodiment, the observation window is made of transparent tempered glass. Tempered glass itself has high impact resistance and pressure resistance, and its strength is 3-5 times that of ordinary glass. Even if it is accidentally damaged, it will form fragments without sharp edges, which can reduce safety hazards. At the same time, the transparency can ensure a clear field of view, which not only meets the strength requirements, but also does not affect the observation function, and is suitable for the equipment operating environment when copper slag is crushed.
[0042] To reduce frictional wear between the bottom of the support base 2 and the ground, extend the service life of the support base 2, and prevent wear and deformation of the bottom of the support base 2 due to long-term placement or equipment vibration (which would affect the overall stability of the equipment), in this embodiment, the bottom of the support base 2 is provided with a wear-resistant layer, and the wear-resistant layer is fixedly connected to the bottom of the support base 2. This design allows the wear-resistant layer to directly bear the friction with the ground, which can effectively reduce the wear of the support base 2 body. At the same time, the fixed connection can prevent the wear-resistant layer from falling off or shifting when the equipment moves or vibrates, ensuring that the wear-resistant effect is continuously reliable and providing a long-term stable support foundation for the equipment.
[0043] To further improve the wear resistance of the wear-resistant layer and ensure that it can withstand the wear caused by friction between the support base 2 and the ground and the vibration of the equipment for a long time, and to avoid wear and deformation of the bottom of the support base 2 due to premature damage to the wear-resistant layer, in this embodiment, the wear-resistant layer is made of PVC material. PVC material itself has good wear resistance and anti-aging properties, and can adapt to the vibration environment and ground friction scenario during the operation of the copper slag recycling device. At the same time, its texture is tough and not easy to crack, and it can maintain stable wear resistance for a long time, thereby extending the service life of the support base 2, ensuring the stability of the equipment when it is placed, and providing a reliable basic support for the continuous operation of copper slag crushing.
[0044] 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 copper slag recycling device for processing copper artworks, comprising a housing (1), a support base (2), a cover plate (3), and an auxiliary mechanism (7), characterized in that: The support base (2) is located at the bottom of the box (1), and there are several support bases (2). The bottom center of the box (1) is provided with a discharge component (6). The cover plate (3) is connected to the box (1) through the auxiliary mechanism (7). The top of the cover plate (3) is provided with a crushing component (4), and one side of the top of the cover plate (3) is provided with a feeding component (5). The auxiliary mechanism (7) includes a sliding component (8), a long plate (9), a bolt (10), a motor (11), a connecting block (12), a limiting block (13), a connecting rod (14), and a crushing blade (15). The sliding component (8) is located on the side of the box (1). The long plate (9) is connected to the sliding assembly (8) by the bolt (10). The motor (11) is set on the long plate (9). The output end of the motor (11) is connected to the center of the connecting block (12). The bottom of the connecting block (12) is connected to the top of the cover plate (3). There are two sliding assemblies (8). The bottom of the limiting block (13) is connected to the top wall of the box (1). One side of the limiting block (13) is in contact with the side wall of the cover plate (3). The connecting rod (14) is connected to the bottom of the cover plate (3). The crushing blade (15) is set on the connecting rod (14). There are several crushing blades (15).
2. The copper slag recycling device for processing copper artworks according to claim 1, characterized in that: The two sliding components (8) are symmetrically arranged.
3. A copper slag recycling device for processing copper artworks according to claim 2, characterized in that: An observation window is provided at the rear of the box (1), and the observation window is embedded at the rear of the box (1).
4. A copper slag recycling device for processing copper artworks according to claim 3, characterized in that: The observation window is made of transparent tempered glass.
5. A copper slag recycling device for processing copper artworks according to claim 4, characterized in that: The bottom of the support base (2) is provided with a wear-resistant layer, and the wear-resistant layer is fixedly connected to the bottom of the support base (2).
6. A copper slag recycling device for processing copper artworks according to claim 5, characterized in that: The wear-resistant layer is made of PVC.