Stretch-resistant joint belt
Through the multi-layer structure and tightly arranged metal braided mesh design, the tensile deformation and wear problems of the joint belt under high load and harsh environments are solved, and higher tensile resistance and stability are achieved, and the service life is extended.
Patent Information
- Application Number
- CN202422444148.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-10
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-10-10
AI Technical Summary
The existing joint belts are prone to tensile deformation, wear and even fracture under high load, high speed operation or harsh environments, affecting the normal operation and production efficiency of the equipment.
Using a multi-layer structural design, including connecting layer, inner layer, composite metal mesh and graphene layer, the stress distribution is optimized through the design of tightly arranged metal braided mesh and specific grooves to enhance tensile resistance and stability.
It improves the tensile resistance and overall stability of the joint belt, extends the service life, adapts to complex deformation needs, and improves the operating reliability of the equipment.
Smart Images

Figure CN223076120U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of operations, and particularly relates to a stretch-resistant link belt. Background Art
[0002] In mechanical transmission and conveying systems, the link belt, as an important transmission component, undertakes the key task of transmitting power and torque. With the continuous development of industrial technology, the performance requirements for link belts are getting higher and higher, especially in terms of tensile strength, wear resistance, corrosion resistance, and service life.
[0003] The existing link belt designs often have problems such as tensile deformation, increased wear, and even fracture under high load, high-speed operation, or harsh environments, seriously affecting the normal operation of equipment and production efficiency. Summary of the Utility Model
[0004] The purpose of the utility model is to solve at least one of the technical problems existing in the prior art, and provide a stretch-resistant link belt, which can solve the problems of tensile deformation, increased wear, and even fracture under high load, high-speed operation, or harsh environments, seriously affecting the normal operation of equipment and production efficiency.
[0005] To achieve the above purpose, the utility model provides the following technical solution: A stretch-resistant link belt includes a connection layer, an inner layer, a first composite metal mesh, a middle layer, a second composite metal mesh, an outer layer, a graphene layer, and two belts. The outer walls of the two belts are adhesively connected to the lower inner wall of the connection layer, and the upper surface of the graphene layer is adhesively connected to the upper inner wall of the connection layer;
[0006] Wherein, the upper surface of the outer layer is adhesively connected to the lower surface of the graphene layer, the upper surface of the second composite metal mesh is adhesively connected to the lower surface of the outer layer, the lower surface of the inner layer is adhesively connected to the inner wall of the connection layer, and the lower surface of the first composite metal mesh is adhesively connected to the upper surface of the inner layer.
[0007] Preferably, a first metal woven mesh is arranged inside the first composite metal mesh;
[0008] Wherein, the first metal woven mesh is arranged in a cross shape, and the design of the first metal woven mesh forms a more compact structure.
[0009] Preferably, a plurality of long grooves are formed on the outer wall of the graphene layer;
[0010] Wherein, the design of the long grooves helps to optimize the stress distribution during the stretching process of the link belt.
[0011] Preferably, the upper surface of the middle layer is adhesively connected to the lower surface of the second composite metal mesh, and the upper surface of the first composite metal mesh is adhesively connected to the lower surface of the middle layer;
[0012] Among them, a second metal braided mesh is arranged inside the second composite metal mesh.
[0013] Preferably, the second metal braided mesh is arranged in an S shape.
[0014] Preferably, a plurality of elliptical grooves are formed on the outer wall of the inner layer;
[0015] Among them, the design of the plurality of elliptical grooves makes the distribution of materials in the link belt more uniform.
[0016] Compared with the prior art, the beneficial effects of the present utility model are:
[0017] 1. For the tensile-resistant link belt, a first metal braided mesh is arranged inside the first composite metal mesh, and the first metal braided mesh is arranged in a cross shape. The design of the first metal braided mesh forms a more compact structure, effectively improving the overall stability of the link belt. When the metal mesh is subjected to tensile force, it can more effectively disperse and withstand the tensile force, thereby improving the tensile resistance performance of the link belt. At the same time, the contact area between metal wires is increased, so that more metal wires participate in the force-bearing process during the stretching process, thereby improving the overall tensile strength. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present utility model will be further described below in conjunction with the drawings and embodiments:
[0019] Figure 1 is a three-dimensional structural schematic diagram of the present utility model;
[0020] Figure 2 is a structural schematic diagram outside the graphene layer of the present utility model;
[0021] Figure 3 is a structural schematic diagram inside the graphene layer of the present utility model;
[0022] Figure 4 is a structural schematic diagram outside the second composite metal mesh of the present utility model;
[0023] Figure 5 is a structural schematic diagram outside the inner layer of the present utility model.
[0024] Reference numerals: 1, connecting layer; 2, belt; 3, inner layer; 4, first composite metal mesh; 5, middle layer; 6, second composite metal mesh; 7, outer layer; 8, graphene layer; 9, long groove; 10, second metal braided mesh; 11, first metal braided mesh; 12, elliptical groove. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0025] This section will describe in detail the specific embodiments of the present utility model. The preferred embodiments of the present utility model are shown in the accompanying drawings. The function of the drawings is to supplement the description of the text part of the specification, enabling people to intuitively and vividly understand each technical feature and the overall technical solution of the present utility model. However, it should not be construed as a limitation on the protection scope of the present utility model.
[0026] In the description of the present utility model, it should be understood that for the orientation description, such as the upper, lower, front, rear, left, right, etc., the orientation or positional relationship indicated is based on the orientation or positional relationship shown in the accompanying drawings. It is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation on the present utility model.
[0027] In the description of the present utility model, "greater than", "less than", "exceeding", etc. are understood as not including the number itself, and "above", "below", "within", etc. are understood as including the number itself. If the first and second are described only for the purpose of distinguishing technical features, it should not be construed as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features or the sequence relationship of the indicated technical features.
[0028] In the description of the present utility model, unless otherwise clearly defined, words such as "set", "installed", "connected", etc. should be understood in a broad sense. Those skilled in the art can reasonably determine the specific meanings of the above words in the present utility model in combination with the specific content of the technical solution.
[0029] Please refer to Figures 1-5 , the present utility model provides a technical solution: a tensile-resistant link belt, including a connecting layer 1, an inner layer 3, a first composite metal mesh 4, a middle layer 5, a second composite metal mesh 6, an outer layer 7, a graphene layer 8 and two belts 2. The outer walls of the two belts 2 are adhesively connected to the lower inner wall of the connecting layer 1. The upper surface of the graphene layer 8 is adhesively connected to the upper inner wall of the connecting layer 1. The upper surface of the outer layer 7 is adhesively connected to the lower surface of the graphene layer 8. The upper surface of the second composite metal mesh 6 is adhesively connected to the lower surface of the outer layer 7. The lower surface of the inner layer 3 is adhesively connected to the inner wall of the connecting layer 1. The lower surface of the first composite metal mesh 4 is adhesively connected to the upper surface of the inner layer 3.
[0030] Among them, a first metal woven mesh 11 is arranged inside the first composite metal mesh 4. The first metal woven mesh 11 is arranged in a cross shape. The design of the first metal woven mesh 11 forms a more compact structure, effectively improving the overall stability of the link belt, enabling the metal mesh to more effectively disperse and withstand the tensile force when being stretched, thereby improving the tensile-resistant performance of the link belt.
[0031] Among them, a plurality of elongated grooves 9 are formed on the outer wall of the graphene layer 8. The design of the elongated grooves 9 helps to optimize the stress distribution of the joint belt during the stretching process, and can guide the stress to be distributed in a wider area, thereby prolonging the service life of the joint belt.
[0032] Among them, the upper surface of the middle layer 5 is adhesively connected to the lower surface of the second composite metal mesh 6, the upper surface of the first composite metal mesh 4 is adhesively connected to the lower surface of the middle layer 5, and a second metal woven mesh 10 is arranged inside the second composite metal mesh 6. The second metal woven mesh 10 is arranged in an S shape. The designed structure of the second metal woven mesh 10 enables the second composite metal mesh 6 to absorb and disperse energy through its own deformation when subjected to an external force, thereby maintaining the structural stability of the joint belt.
[0033] Among them, a plurality of elliptical grooves 12 are formed on the outer wall of the inner layer 3. The design of the plurality of elliptical grooves 12 makes the distribution of materials in the joint belt more uniform, avoids local stress concentration, enables more effective utilization of the materials, and helps to prolong the service life of the joint belt.
[0034] By arranging a first metal woven mesh 11 inside the first composite metal mesh 4, the first metal woven mesh 11 is arranged in a cross shape. The design of the first metal woven mesh 11 forms a more compact structure, effectively improving the overall stability of the joint belt. When the metal mesh is stretched, it can more effectively disperse and bear the tensile force, thereby improving the tensile resistance of the joint belt. At the same time, the contact area between the metal wires is increased, so that more metal wires participate in the stress-bearing process during the stretching process, thereby improving the overall tensile strength. By arranging a second metal woven mesh 10 inside the second composite metal mesh 6, the second metal woven mesh 10 is arranged in an S shape. The designed structure of the second metal woven mesh 10 enables the second composite metal mesh 6 to absorb and disperse energy through its own deformation when subjected to an external force, thereby maintaining the structural stability of the joint belt. At the same time, while maintaining a certain strength, the second metal woven mesh 10 has better flexibility and can adapt to more complex deformations such as bending and twisting, so as to meet more diverse usage requirements.
[0035] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the knowledge scope of those of ordinary skill in the art in the said technical field, various changes can be made without departing from the gist of the present invention.
Claims
1. A tensile-resistant link belt, comprising a connecting layer (1), an inner layer (3), a first composite metal mesh (4), a middle layer (5), a second composite metal mesh (6), an outer layer (7), a graphene layer (8) and two belts (2), characterized in that: The outer walls of the two belts (2) are adhesively connected to the inner wall of the lower end of the connecting layer (1), and the upper surface of the graphene layer (8) is adhesively connected to the inner wall of the upper end of the connecting layer (1); Among them, the upper surface of the outer layer (7) is adhesively connected to the lower surface of the graphene layer (8), the upper surface of the second composite metal mesh (6) is adhesively connected to the lower surface of the outer layer (7), the lower surface of the inner layer (3) is adhesively connected to the inner wall of the connecting layer (1), and the lower surface of the first composite metal mesh (4) is adhesively connected to the upper surface of the inner layer (3).
2. The joint belt with tensile resistance according to claim 1, characterized in that: A first metal woven mesh (11) is arranged inside the first composite metal mesh (4); Among them, the first metal woven mesh (11) is arranged in a cross shape, and the design of the first metal woven mesh (11) forms a more compact structure.
3. The joint belt with tensile resistance according to claim 1, characterized in that: A plurality of long grooves (9) are formed in the outer wall of the graphene layer (8); Among them, the design of the long grooves (9) helps to optimize the stress distribution during the stretching process of the joint belt.
4. The anti-tensile joint belt according to claim 1, characterized in that: The upper surface of the middle layer (5) is adhesively connected to the lower surface of the second composite metal mesh (6), and the upper surface of the first composite metal mesh (4) is adhesively connected to the lower surface of the middle layer (5); Among them, a second metal woven mesh (10) is arranged inside the second composite metal mesh (6).
5. The anti-tensile joint belt according to claim 4, characterized in that: The second metal woven mesh (10) is arranged in an S shape.
6. The anti-tensile link belt according to claim 1, characterized in that: A plurality of elliptical grooves (12) are formed in the outer wall of the inner layer (3); Among them, the design of the plurality of elliptical grooves (12) makes the distribution of the material in the joint belt more uniform.