Conveying module of flat plate type mesh belt
By using a torsion spring connection structure in the flat mesh belt module, the problem of mesh belt deformation during heavy load conveying is solved, achieving stable material conveying and improving conveying efficiency.
Patent Information
- Application Number
- CN202520045373.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-09
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2035-01-09
AI Technical Summary
Existing flat mesh belts are prone to deformation when conveying heavy objects, causing adjacent modules to rotate, affecting the stability of the material, and potentially leading to slippage, tipping, or accumulation, thus reducing conveying efficiency and material quality.
The torsion spring connection structure stores and releases mechanical energy. The elastic potential energy of the torsion spring keeps the adjacent mesh belts flat, ensuring stable movement of materials during the conveying process.
It improves the stability of materials during the conveying process, enhances conveying efficiency and material quality, and prevents slippage and accumulation.
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Figure CN223645532U_ABST
Abstract
Description
Technical Field
[0001] The technical field of this utility model is specifically related to a flat mesh belt conveyor module. Background Technology
[0002] Flatbed conveyor belts are a common type of equipment used in product transportation. Items are placed on the flatbed conveyor belt, and friction enables short-distance movement of the items, reducing the workload of manual handling and improving work efficiency.
[0003] Currently, conveyor belt modules are usually assembled from several individual modules. They can be adjusted according to the size requirements of the equipment. Adjacent individual modules are connected by a pin. However, when conveying heavy materials, the conveyor belt is prone to deformation, causing relative rotation between adjacent individual modules. This results in reduced flatness, making it difficult for the material to maintain a stable movement during the conveying process. Problems such as slippage, tipping, or accumulation may occur, thus affecting conveying efficiency and material quality. Utility Model Content
[0004] This invention proposes a flat mesh belt conveyor module. Two adjacent mesh belts are connected by a connecting structure. The torsion spring in the connecting structure primarily stores and releases mechanical energy. During conveying, the adjacent flat mesh belts experience slight angular changes due to the weight of the material. At this time, the torsion spring releases its stored elastic potential energy, applying a torsional force to the fixed rod, keeping the two adjacent flat mesh belts relatively flat. This ensures the material maintains a stable movement state during conveying, improving conveying efficiency and material quality.
[0005] Therefore, the technical solution adopted is as follows:
[0006] A flat mesh belt conveyor module includes a mesh belt module comprising multiple mesh belt structures connected sequentially by a connecting mechanism. The connecting mechanism includes a connecting rod and a set of fixed rods located at both ends of the connecting rod and rotatably connected to it coaxially. The connecting rod and the fixed rods are respectively fixedly connected to two adjacent mesh belt structures. A fixed shaft is fixed to the end of the fixed rod connected to the connecting rod, and a rotating block is fixed to the other end of the fixed shaft away from the fixed rod. A torsion spring is sleeved on the fixed shaft. A spring groove is formed at the end of the connecting rod, and a limiting groove is formed on the inner wall of the spring groove. The rotating block is inserted into the limiting groove and rotatably connected to it. The two force-bearing ends of the torsion spring are respectively fixedly connected to the rotating block and the inner wall of the spring groove.
[0007] A further technical solution is that the mesh belt structure includes a flat mesh belt, and several arrayed first connecting blocks and second connecting blocks are respectively installed on both sides of the flat mesh belt. The first connecting blocks and second connecting blocks are provided with pin holes, and the connecting structure passes through the pin holes and connects to the flat mesh belt.
[0008] A further technical solution is that the first connecting block and the second connecting block are staggered on both sides of the flat mesh belt.
[0009] A further technical solution is that both the first connecting block and the second connecting block are provided with fixing holes, and both the connecting rod and the fixing rod are provided with positioning holes. The positions of the fixing holes and the positioning holes correspond one-to-one and are connected by fasteners.
[0010] A further technical solution is that the fixing rod is fixedly connected to the flat mesh belt by fasteners, and the connecting rod is fixedly connected to another adjacent flat mesh belt by fasteners.
[0011] A further technical solution is that the fastener includes a fastening block and a sleeve, one end of the fastening block is equipped with a bolt, the end of the sleeve is provided with a threaded hole, and the bolt is threadedly matched with the threaded hole.
[0012] The working principle and beneficial effects of this application are as follows:
[0013] The two adjacent mesh belt structures are connected by a connecting structure. The torsion spring in the connecting structure mainly stores and releases mechanical energy. During the conveying process, the two adjacent flat mesh belts will have slight angle changes due to the gravity of the material. At this time, the torsion spring releases the stored elastic potential energy and applies a torsional force to the fixed rod, so that the two adjacent flat mesh belts remain relatively flat. This allows the material to maintain a stable movement state during the conveying process, improving conveying efficiency and material quality. Attached Figure Description
[0014] The present application will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0015] Figure 1 This is a schematic diagram of the overall structure of this application;
[0016] Figure 2 This is a partial structural diagram of this application;
[0017] Figure 3 This is a schematic diagram of the connection structure described in this application;
[0018] Figure 4 This is a partial structural diagram of the connection structure described in this application;
[0019] Figure 5This is a partial exploded view of the connection structure described in this application;
[0020] Figure 6 This is a schematic diagram of the structure of the fastener described in this application.
[0021] In the diagram: 1. Mesh belt structure; 11. Flat mesh belt; 12. First connecting block; 13. Pin hole; 14. Second connecting block; 15. Fixing hole; 2. Connecting structure; 21. Connecting rod; 22. Fixing rod; 23. Fastener; 231. Fastening block; 232. Bolt; 233. Sleeve; 24. Positioning hole; 25. Fixing shaft; 26. Torsion spring; 27. Rotating block; 28. Spring groove; 29. Restricting groove. Detailed Implementation
[0022] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.
[0023] like Figures 1-6 As shown, a flat mesh belt conveyor module includes: a mesh belt module, the mesh belt module including multiple mesh belt structures 1 connected sequentially by a connecting mechanism 2; the connecting structure 2 includes a connecting rod 21 and a set of fixed rods 22 located at both ends of the connecting rod 21 and rotatably connected to it coaxially, and the connecting rod 21 and the fixed rods 22 are fixedly connected to two adjacent mesh belt structures 1 respectively, the end of the fixed rod 22 connected to the connecting rod 21 is fixed with a fixed shaft 25, the other end of the fixed shaft 25 away from the fixed rod 22 is fixed with a rotating block 27, a torsion spring 26 is sleeved on the fixed shaft 25, a spring groove 28 is opened at the end of the connecting rod 21, a limiting groove 29 is opened on the inner wall of the spring groove 28, the rotating block 27 is inserted into the limiting groove 29 and rotatably connected to it, and the two force-bearing ends of the torsion spring 26 are fixedly connected to the rotating block 27 and the inner wall of the spring groove 28 respectively.
[0024] In this embodiment, the solution is a flat conveyor belt module assembled from several individual modules. Items are placed on the conveyor belt module, and short-distance movement of the items is achieved through friction.
[0025] In this system, two adjacent mesh belt structures 1 are connected by a connecting structure 2, and a pair of fixed rods 22 are connected to the mesh belt structure 1. A connecting rod 21 is connected to the adjacent mesh belt structure 1, allowing the two adjacent flat mesh belts 11 to rotate relative to each other. A torsion spring 26 is sleeved on the outer wall of the fixed shaft 25. The main function of the torsion spring 26 is to store and release mechanical energy. During the conveying process, the two adjacent flat mesh belts 11 will experience slight angular changes due to the gravity of the material. At this time, the torsion spring 26 releases the stored elastic potential energy and applies a torsional force to the fixed rod 22, keeping the two adjacent flat mesh belts 11 relatively flat. This ensures that the material maintains a stable motion state during the conveying process, improving conveying efficiency and material quality.
[0026] In addition, the fixed rod 22 and the connecting rod 21 can rotate relative to each other. When the mesh belt module turns, the fixed rod 22 and the connecting rod 21 rotate relative to each other by a large amplitude. At this time, the rotating block 27 rotates synchronously in the limiting groove 29, and the resulting force is sufficient to overcome the elastic force of the torsion spring 26 and compress the torsion spring 26, ensuring that the two adjacent flat mesh belts 11 can rotate, thus not affecting the normal operation of the mesh belt module.
[0027] like Figures 1-5 As shown, the mesh belt structure 1 includes a flat mesh belt 11. Several arrayed first connecting blocks 12 and second connecting blocks 14 are respectively installed on both sides of the flat mesh belt 11. Each of the first connecting blocks 12 and second connecting blocks 14 has a pin hole 13. The connecting structure 2 passes through the pin hole 13 and connects to the flat mesh belt 11. The first connecting blocks 12 and second connecting blocks 14 are staggered on both sides of the flat mesh belt 11.
[0028] Furthermore, both the first connecting block 12 and the second connecting block 14 are provided with fixing holes 15, and both the connecting rod 21 and the fixing rod 22 are provided with positioning holes 24. The positions of the fixing holes 15 and the positioning holes 24 correspond one-to-one and are connected by fasteners 23. The fixing rod 22 is fixedly connected to the flat mesh belt 11 by the fasteners 23, and the connecting rod 21 is fixedly connected to another adjacent flat mesh belt 11 by the fasteners 23.
[0029] In this embodiment, multiple flat mesh belts 11 can be spliced together sequentially, and adjacent flat mesh belts 11 can be connected by passing the connecting rod 21 and the fixing rod 22 through the pin hole 13. Then, the fixing rod 22 is fixed to the flat mesh belt 11 by passing the fastener 23 through the positioning hole 24, and the connecting rod 21 is fixed to the adjacent flat mesh belt 11, thereby completing the splicing of the flat mesh belts 11, so that adjacent flat mesh belts 11 can rotate around the axis of the connecting rod 21.
[0030] like Figure 6 As shown, the fastener 23 includes a fastening block 231 and a sleeve 233. A bolt 232 is installed at one end of the fastening block 231, and a threaded hole is opened at the end of the sleeve 233. The bolt 232 is threadedly matched with the threaded hole.
[0031] In this embodiment, since the fixing hole 15 and the positioning hole 24 are positioned opposite each other, the fastening block 231 and the sleeve 233 can be inserted into the fixing hole 15 and the positioning hole 24 from the top and bottom respectively. Then, the fastening block 231 is rotated to make the bolt 232 threadedly connected to the screw hole on the sleeve 233, thereby completing the fixing work, fixing the fixing rod 22 relative to the flat mesh belt 11, and fixing the connecting rod 21 relative to the adjacent flat mesh belt 11.
[0032] It should be noted that the cross-section of the fixing hole 15 is I-shaped, and the cross-sections of the fastening block 231 and the sleeve 233 are T-shaped, so that the fastener 23 can complete the fixing work between the connecting structure 2 and the mesh belt structure 1.
[0033] Working principle:
[0034] By sequentially splicing multiple flat mesh belts 11, and connecting adjacent flat mesh belts 11 by passing connecting rods 21 and fixing rods 22 through pin holes 13, the splicing of flat mesh belts 11 is completed. Then, fixing rods 22 and flat mesh belts 11 are fixed by passing fasteners 23 through positioning holes 24, and connecting rods 21 are fixed to adjacent flat mesh belts 11. During the conveying process, the angle between adjacent flat mesh belts 11 will change slightly due to the gravity of the material. At this time, torsion springs 26 release the stored elastic potential energy and apply torsional force to fixing rods 22, so that adjacent flat mesh belts 11 remain relatively flat, thereby keeping the material in a stable motion state during the conveying process.
[0035] It is worth noting that this application does not restrict the material of each component. When plastic material is used, threaded fasteners can be replaced with snap-fit fasteners.
[0036] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. A flat mesh belt conveyor module, comprising: The mesh belt module is characterized in that: the mesh belt module includes multiple mesh belt structures (1) connected in sequence by a connecting structure (2); The connecting structure (2) includes a connecting rod (21) and a set of fixed rods (22) located at both ends of the connecting rod (21) and rotatably connected to it coaxially. The connecting rod (21) and the fixed rods (22) are fixedly connected to two adjacent mesh belt structures (1). The end of the fixed rod (22) connected to the connecting rod (21) is fixed with a fixed shaft (25). The other end of the fixed shaft (25) away from the fixed rod (22) is fixed with a rotating block (27). A torsion spring (26) is sleeved on the fixed shaft (25). A spring groove (28) is opened at the end of the connecting rod (21). A limiting groove (29) is opened on the inner wall of the spring groove (28). The rotating block (27) is inserted into the limiting groove (29) and rotatably connected to it. The two force-bearing ends of the torsion spring (26) are fixedly connected to the rotating block (27) and the inner wall of the spring groove (28) respectively.
2. The flat mesh belt conveyor module according to claim 1, characterized in that, The mesh belt structure (1) includes a flat mesh belt (11). Several arrayed first connecting blocks (12) and second connecting blocks (14) are respectively installed on both sides of the flat mesh belt (11). Pin holes (13) are opened on the first connecting blocks (12) and the second connecting blocks (14). The connecting structure (2) passes through the pin holes (13) and connects to the flat mesh belt (11).
3. The flat mesh belt conveyor module according to claim 2, characterized in that, The first connecting block (12) and the second connecting block (14) are staggered on both sides of the flat mesh belt (11).
4. The flat mesh belt conveyor module according to claim 2, characterized in that, The first connecting block (12) and the second connecting block (14) are provided with fixing holes (15), and the connecting rod (21) and the fixing rod (22) are provided with positioning holes (24). The positions of the fixing holes (15) and the positioning holes (24) correspond one-to-one and are connected by fasteners (23).
5. The flat mesh belt conveyor module according to claim 2, characterized in that, The fixing rod (22) is fixedly connected to the flat mesh belt (11) by fasteners (23), and the connecting rod (21) is fixedly connected to another adjacent flat mesh belt (11) by fasteners (23).
6. The flat mesh belt conveyor module according to claim 5, characterized in that, The fastener (23) includes a fastening block (231) and a sleeve (233). A bolt (232) is installed at one end of the fastening block (231), and a threaded hole is provided at the end of the sleeve (233). The bolt (232) is threadedly matched with the threaded hole.