Anti-skidding and anti-tearing conveying belt
By installing steel wire rope reinforcement components and high-temperature resistant, anti-slip components in the conveyor belt, the problems of insufficient structural strength of the conveyor belt and material slippage are solved, achieving efficient and stable material conveying.
Patent Information
- Application Number
- CN202520258477.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-18
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-18
AI Technical Summary
Existing conveyor belts have low structural strength during ore mining, are prone to deformation due to localized pressure, and materials are easily slipped or fallen, affecting work efficiency.
The conveyor belt is equipped with a steel wire rope reinforcement component inside the belt core, and is covered with a high-temperature resistant component and an anti-slip component, including a high-temperature resistant adhesive coating, a carbon fiber cloth layer, and V-shaped strip blocks and protrusions, to enhance tensile strength and friction.
It improves the structural strength and high-temperature resistance of the conveyor belt, prevents deformation and slippage, extends service life, and ensures the smoothness and efficiency of the conveying process.
Smart Images

Figure CN223891721U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of conveyor belt technology, and in particular to an anti-slip and tear-resistant conveyor belt. Background Technology
[0002] Conveyor belts are essential mechanical devices used for material handling, widely applied in numerous industrial sectors and logistics transportation scenarios. They are typically constructed from various materials such as rubber, canvas, and steel wire rope, possessing a certain level of strength, flexibility, and wear resistance. Through continuous operation, conveyor belts can efficiently transport materials of various forms and properties, such as ores, coal, grains, and building materials, between different locations, significantly improving production and logistics efficiency, reducing labor costs, and making them an indispensable key piece of equipment in modern industrial production and freight transportation.
[0003] Conveyor belts on the market today are generally composed of an upper cover layer, a skeleton layer, and a lower cover layer. During ore mining, the ore is placed on the conveyor belt, and the conveyor belt is driven by a drive mechanism. The conveyor belt smoothly transports the ore from one location to another through the friction between its surface and the transported object, thereby improving production efficiency.
[0004] However, when the above-mentioned conveyor belt is used, it will be subjected to pressure from the ore and tension from other factors. Due to the low structural strength of the conveyor belt, it is easy to deform due to local pressure during operation, which reduces the working efficiency. In addition, due to the complex working environment of the conveyor belt, it is easy to deform due to high temperature. At the same time, during the conveying process, the material on the conveyor belt will slide or even fall off due to the movement of the conveyor belt. Therefore, those skilled in the art have proposed an anti-slip and tear-resistant conveyor belt to solve the above problems. Utility Model Content
[0005] To overcome the above shortcomings, this utility model provides an anti-slip and tear-resistant conveyor belt, which aims to improve the problem that the existing conveyor belts have low structural strength and are prone to deformation due to local pressure during operation, resulting in low work efficiency.
[0006] To achieve the above objectives, this utility model provides the following technical solution: an anti-slip and tear-resistant conveyor belt, comprising a conveyor belt body, a belt core disposed inside the conveyor belt body, a reinforcing component disposed inside the belt core, the reinforcing component being used to enhance the tensile strength of the conveyor belt body, high-temperature resistant components being disposed on both the upper and lower surfaces of the belt core, the high-temperature resistant components being used to improve the high-temperature resistance of the conveyor belt body, and anti-slip components being disposed on the surface of the high-temperature resistant components, the anti-slip components being used to reduce slippage when transporting objects;
[0007] The reinforcing component includes multiple steel wire ropes, which are disposed inside the core of the belt. A protective layer is disposed outside the steel wire ropes, which is disposed inside the core of the belt.
[0008] Furthermore, the high-temperature resistant component includes an upper heat-resistant layer and a lower heat-resistant layer, the upper heat-resistant layer being fixedly connected to the upper surface of the core, and the lower heat-resistant layer being fixedly connected to the lower surface of the core.
[0009] Furthermore, an upper covering layer is fixedly connected to the upper surface of the upper heat-resistant layer, and a lower covering layer is fixedly connected to the lower surface of the lower heat-resistant layer.
[0010] Furthermore, the core is bonded to both the upper and lower heat-resistant layers by a high-temperature resistant adhesive, and a rigid cloth is provided inside the adhesive.
[0011] Furthermore, the anti-slip component includes multiple strip blocks, which are fixedly connected to the surface of the upper cover layer, and multiple protrusions are fixedly connected between the strip blocks near the surface of the upper cover layer.
[0012] Furthermore, multiple strip blocks are evenly disposed on the surface of the upper cover layer, and the strip blocks are V-shaped.
[0013] Furthermore, the surface of the bump is provided with fine granular protrusions, and the bumps are evenly distributed on the surface of the upper cover layer.
[0014] Furthermore, both sides of the conveyor belt body are fixedly connected with edging, and the upper and lower ends of the edging are respectively connected to the surfaces of the upper and lower covering layers.
[0015] This utility model has the following beneficial effects:
[0016] 1. In this utility model, multiple steel wire ropes set in the belt core can effectively bear and disperse the stress generated during material conveying, ensuring that the conveyor belt is not easily deformed or broken, greatly extending the service life of the conveyor belt. In addition, the steel wire ropes are wrapped with high-temperature resistant canvas, and a heat-resistant layer made of carbon fiber cloth is bonded to the outside of the belt core, which can ensure that it will not deform due to high temperature, further enhancing the overall rigidity and structural strength of the conveyor belt.
[0017] 2. In this utility model, the contact area of the object is increased when it comes into contact with the conveyor belt through the strip-shaped block. Furthermore, the protrusions on the surfaces of the multiple protrusions can prevent the object from sliding during transportation, ensuring the stability of the transportation process and improving work efficiency. Attached Figure Description
[0018] Figure 1This is a perspective view of an anti-slip and tear-resistant conveyor belt proposed in this utility model;
[0019] Figure 2 This is a cross-sectional view of the conveyor belt body of an anti-slip and tear-resistant conveyor belt proposed in this utility model;
[0020] Figure 3 for Figure 2 Enlarged view of point A in the middle.
[0021] Legend:
[0022] 1. Conveyor belt body; 2. Upper cover layer; 3. Lower cover layer; 4. Upper heat-resistant layer; 5. Lower heat-resistant layer; 6. Belt core; 7. Steel wire rope; 8. Protective layer; 9. Edge binding; 10. Strip block; 11. Protrusion. Detailed Implementation
[0023] 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.
[0024] Reference Figure 1 and Figure 3 This utility model provides an embodiment of an anti-slip and tear-resistant conveyor belt, comprising a conveyor belt body 1, with a belt core 6 disposed inside the conveyor belt body 1. The belt core 6 is the core load-bearing part of the conveyor belt, playing a key role in bearing tension and transmitting power. The belt core 6 is provided with a reinforcing component, which enhances the tensile strength of the conveyor belt body 1, enabling the belt core 6 to maintain structural stability in complex working environments, preventing deformation and breakage, thereby extending the service life of the conveyor belt and ensuring the continuity and reliability of conveying operations. High-temperature resistant components are provided on both the upper and lower surfaces of the belt core 6, which enhance the high-temperature resistance of the conveyor belt body 1. Anti-slip components are provided on the surface of the high-temperature resistant components, which reduce slippage when transporting objects. Edge wrapping 9 is fixedly connected to both sides of the conveyor belt body 1. The upper and lower ends of the edge wrapping 9 are connected to the surfaces of the upper cover layer 2 and the lower cover layer 3, respectively. The edge wrapping 9 can prevent edge damage, extend the overall service life of the conveyor belt, and prevent material leakage from the edge of the conveyor belt, reducing material waste and environmental pollution.
[0025] The reinforcing component includes multiple steel wire ropes 7, which are installed inside the belt core 6. During the operation of the conveyor belt, the steel wire ropes 7 bear most of the tensile stress, effectively enhancing the tensile strength of the belt core 6 and preventing the conveyor belt from breaking under heavy loads or high-speed operation, thus ensuring the strength and reliability of the conveyor belt. A protective layer 8 is installed on the outside of the steel wire ropes 7, which is installed inside the belt core 6. The protective layer 8 can improve the heat resistance of the steel wire ropes 7, enabling them to maintain good performance and stability in high-temperature environments, while reducing wear and damage to the steel wire ropes 7 and further extending their service life.
[0026] Specifically, multiple steel wire ropes 7 are installed in the belt core 6 inside the conveyor belt body 1. Due to their high strength and high toughness, the steel wire ropes 7 can effectively bear and disperse the stress generated by the weight of the material during material transportation, as well as the tension caused by various factors during the operation of the conveyor belt. This makes the belt core 6 less prone to deformation and breakage under complex working environments and stress conditions, greatly extending the service life of the conveyor belt. At the same time, a protective layer 8 is installed on the outside of the steel wire ropes 7, and high-temperature resistant canvas material is used to prevent the steel wire ropes 7 from directly rubbing against other materials inside the belt core 6 or external objects, reducing the wear of the steel wire ropes 7. Furthermore, the high-temperature resistant canvas can effectively block the heat from affecting the steel wire ropes 7, ensuring that the steel wire ropes 7 can maintain stable performance under high temperature conditions, thereby ensuring the stability and reliability of the entire conveyor belt structure.
[0027] Reference Figure 2 The high-temperature resistant component includes an upper heat-resistant layer 4 and a lower heat-resistant layer 5. The upper heat-resistant layer 4 is fixedly connected to the upper surface of the belt core 6, and the lower heat-resistant layer 5 is fixedly connected to the lower surface of the belt core 6. Both the upper heat-resistant layer 4 and the lower heat-resistant layer 5 are made of carbon fiber cloth, which has excellent high-temperature resistance. In high-temperature working environments, it can effectively block heat transfer to the belt core 6. The upper surface of the upper heat-resistant layer 4 is fixedly connected to an upper cover layer 2, and the lower surface of the lower heat-resistant layer 5 is fixedly connected to a lower cover layer 3. The belt core 6 is bonded to the upper heat-resistant layer 4 and the lower heat-resistant layer 5 by a high-temperature resistant adhesive. The adhesive has a rigid cloth inside. The high-temperature resistant adhesive not only plays a bonding role, ensuring that the upper heat-resistant layer 4, the lower heat-resistant layer 5 and the belt core 6 are tightly bonded, but also further enhances the overall rigidity and structural strength of the conveyor belt, making the conveyor belt less prone to deformation when subjected to external forces and transporting materials.
[0028] Specifically, the upper heat-resistant layer 4 and the lower heat-resistant layer 5, which cover the upper and lower surfaces of the belt core 6 respectively, are both made of carbon fiber cloth. In high-temperature environments, they can effectively block heat from being transferred to the belt core 6 and other internal components, so that the conveyor belt can still maintain its normal structural integrity and performance stability under high-temperature working conditions, and will not deform, age or degrade due to high temperatures. The upper cover layer 2 can be made of rubber material with high hardness and high coefficient of friction, thereby reducing the slippage of objects and enhancing the wear resistance of the conveyor belt. The lower cover layer 3 can be made of wear-resistant and flexible rubber material, which can reduce the coefficient of friction with the roller, thereby reducing energy loss, improving conveying efficiency and extending the service life of the conveyor belt.
[0029] Reference Figure 1 The anti-slip components include multiple strip blocks 10, which are fixedly connected to the surface of the upper cover layer 2. The main function of the strip blocks 10 is to increase the friction between the conveyor belt and the conveyed object, effectively preventing the object from sliding on the conveyor belt. Multiple protrusions 11 are fixedly connected between the strip blocks 10 near the surface of the upper cover layer 2. The multiple strip blocks 10 are evenly arranged on the surface of the upper cover layer 2. The protrusions 11 further enhance the roughness and friction of the conveyor belt surface. The fine granular protrusions can increase the friction with the object at the microscopic level. The strip blocks 10 are V-shaped, and the surface of the protrusions 11 is provided with fine granular protrusions. The protrusions 11 are evenly distributed on the surface of the upper cover layer 2.
[0030] Specifically, the strip block 10 is fixedly connected to the surface of the upper cover layer 2 in a V-shape. This special shape design increases the contact area when the object comes into contact with the conveyor belt and forms multiple support points at different angles. When the object tends to slide, the V-shaped strip block 10 can increase the contact area when the object comes into contact with the conveyor belt. The surface of the protrusion 11 is also provided with small granular protrusions, which further increase the friction between the object and the conveyor belt and prevent the object from sliding during transportation. The synergistic effect of the strip block 10 and the protrusion 11 can effectively prevent the object from sliding on the conveyor belt and ensure the stability of the conveying process.
[0031] Working principle: When using this conveyor belt to transport objects, the multiple strip blocks 10 and protrusions 11 evenly arranged on the surface of the upper cover layer 2 can increase the friction of the conveyor belt surface, effectively preventing the objects from sliding and ensuring the smoothness of the transport. The surface of the lower cover layer 3 is in contact with the rollers, and its smooth and flat surface can reduce friction and extend the service life of the conveyor belt. Secondly, the belt core 6 inside the conveyor belt body 1 contains multiple steel wire ropes 7, which improves the tensile strength of the belt core 6 and makes it less prone to deformation, further extending the service life of the conveyor belt. The protective layer 8 wrapped around the steel wire ropes 7 is made of high-temperature resistant canvas, which can improve the heat resistance of the steel wire ropes 7 and ensure the stability of the steel wire ropes 7 during use. Then, the upper heat-resistant layer 4 and the lower heat-resistant layer 5 covering the upper and lower surfaces of the belt core 6 are both made of carbon fiber cloth, which greatly improves the high temperature resistance of the conveyor belt and adapts it to a variety of complex working environments.
[0032] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A non-slip and tear-resistant conveyor belt, comprising a conveyor belt body (1), characterized in that: The conveyor belt body (1) is provided with a belt core (6) inside. The belt core (6) is provided with a reinforcing component inside. The reinforcing component is used to enhance the tensile strength of the conveyor belt body (1). The upper and lower surfaces of the belt core (6) are provided with high temperature resistant components. The high temperature resistant components are used to improve the high temperature resistance of the conveyor belt body (1). The surface of the high temperature resistant components is provided with anti-slip components. The anti-slip components are used to reduce slippage when transporting objects. The reinforcing component includes multiple steel wire ropes (7), which are disposed inside the core (6). A protective layer (8) is disposed outside the steel wire ropes (7) and inside the core (6).
2. The anti-slip and tear-resistant conveyor belt according to claim 1, characterized in that: The high-temperature resistant component includes an upper heat-resistant layer (4) and a lower heat-resistant layer (5). The upper heat-resistant layer (4) is fixedly connected to the upper surface of the core (6), and the lower heat-resistant layer (5) is fixedly connected to the lower surface of the core (6).
3. The anti-slip and tear-resistant conveyor belt according to claim 2, characterized in that: The upper surface of the upper heat-resistant layer (4) is fixedly connected to the upper cover layer (2), and the lower surface of the lower heat-resistant layer (5) is fixedly connected to the lower cover layer (3).
4. The anti-slip and tear-resistant conveyor belt according to claim 2, characterized in that: The core (6) is bonded to the upper heat-resistant layer (4) and the lower heat-resistant layer (5) by a high-temperature resistant adhesive, and a rigid cloth is provided inside the adhesive.
5. The anti-slip and tear-resistant conveyor belt according to claim 1, characterized in that: The anti-slip component includes multiple strip blocks (10), which are fixedly connected to the surface of the upper cover layer (2), and multiple protrusions (11) are fixedly connected between the strip blocks (10) near the surface of the upper cover layer (2).
6. The anti-slip and tear-resistant conveyor belt according to claim 5, characterized in that: Multiple strip blocks (10) are evenly disposed on the surface of the upper cover layer (2), and the strip blocks (10) are V-shaped.
7. The anti-slip and tear-resistant conveyor belt according to claim 5, characterized in that: The surface of the bump (11) is provided with fine granular protrusions, and the bump (11) is evenly distributed on the surface of the upper cover layer (2).
8. The anti-slip and tear-resistant conveyor belt according to claim 1, characterized in that: Both sides of the conveyor belt body (1) are fixedly connected with edging (9), and the upper and lower ends of the edging (9) are respectively connected to the surfaces of the upper cover layer (2) and the lower cover layer (3).