High-stability conveying belt

By setting bending grooves and tooth grooves on the inner wall of the conveyor belt, and adding heat dissipation components and reinforcing ribs in the biting teeth, the problems of small bending range and heat accumulation of the conveyor belt are solved, resulting in smoother bending and extended service life.

CN223645530UActive Publication Date: 2025-12-09NINGBO LOUIS TRANSMISSION BELT CO LTD
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Patent Information

Application Number
CN202423284465.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-12-09
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

Existing conveyor belts have limited bending range when bent, which increases friction intensity, shortens service life, and is prone to accelerated aging due to heat accumulation during transmission.

Method used

A curved groove and tooth groove are set on the inner side wall of the conveyor belt to connect with the tooth groove, and a heat dissipation component is added in the biting teeth. The internal reinforcing ribs are embedded, and heat dissipation is carried out by internal and external heat dissipation copper sheets.

Benefits of technology

The bending radius of the conveyor belt has been increased, friction has been reduced, anti-friction performance has been improved, service life has been extended, and heat dissipation components have been used to prevent aging caused by heat accumulation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a conveyor belt with high stability, which is applied to the field of conveyor belts and comprises a conveyor belt, a plurality of tooth grooves are arranged on the inner side wall of the conveyor belt, a plurality of bent grooves are arranged inside the conveyor belt, and the tooth grooves are communicated with the bent grooves. A plurality of meshing teeth are integrally machined on the inner side wall of the conveying belt. Due to the fact that the bent grooves are communicated with the tooth grooves, the bendable amplitude of the tooth grooves is enlarged, due to the bent grooves, the conveyor belt can be bent more smoothly, and in the working process of the conveyor belt, the bendable amplitude of the conveyor belt is increased through the bent grooves, friction force is reduced, and the service life of the conveyor belt is prolonged. Therefore, the anti-friction performance of the conveyor belt is improved; the service life of the conveyor belt is prolonged; and the heat dissipation assembly is arranged for dissipating heat and cooling the conveying belt, and the situation that the aging speed of the conveying belt is increased due to excessive heat accumulation in the conveying process of the conveying belt is avoided.
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Description

Technical Field

[0001] This utility model relates to the field of conveyor belts, and in particular to a highly stable conveyor belt. Background Technology

[0002] A conveyor belt is a type of synchronous belt that combines the advantages of belt drive, chain drive, and gear drive. During transmission, power is transmitted through the meshing of the synchronous belt teeth with the grooves of the synchronous pulleys. It requires no lubrication, produces no pollution, and is considered a relatively ideal conveyor belt. In current industrial production, it is frequently used as a conveyor belt to transport goods and products.

[0003] Currently, conveyor belts have grooves on their inner walls. These grooves have limited bending range and are not smooth enough when bending. During transmission, the friction intensity of the conveyor belt increases due to the limited bending range, and its service life is relatively shortened as the friction intensity increases. Utility Model Content

[0004] To overcome the limitation of the current conveyor belt's bending range, this utility model provides a highly stable conveyor belt.

[0005] The technical solution of this utility model to solve its technical problem is: a high-stability conveyor belt, including a conveyor belt, the inner sidewall of the conveyor belt is provided with a plurality of tooth grooves, the inside of the conveyor belt is provided with a plurality of bending grooves, the tooth grooves and the bending grooves are interconnected; the inner sidewall of the conveyor belt is integrally machined with a plurality of interlocking teeth, and two heat dissipation components are embedded inside the interlocking teeth.

[0006] By adopting the above technical solution, the bending range of the tooth groove is expanded by setting the bending groove and the tooth groove to be connected. The presence of the bending groove makes the conveyor belt bend more smoothly. Moreover, during the operation of the conveyor belt, the bending groove increases the bending range of the conveyor belt, which helps to reduce friction, thereby improving the anti-friction performance of the conveyor belt and increasing its service life. By setting a heat dissipation component to dissipate heat and cool the conveyor belt, it is possible to avoid the excessive heat accumulation of the conveyor belt during transmission, which would cause the conveyor belt to age faster.

[0007] A further configuration is that the two heat dissipation components inside the biting teeth are symmetrically arranged.

[0008] By adopting the above technical solution, the heat dissipation component is placed inside the meshing teeth, which will not affect the bending range of the conveyor belt itself. Furthermore, the heat dissipation component will not come into contact with the pulley during the transmission process, and will not affect the normal use of the conveyor belt.

[0009] The heat dissipation component is further configured to include an inner heat-absorbing copper sheet and an outer heat-dissipating copper sheet, wherein the inner heat-absorbing copper sheet and the outer heat-dissipating copper sheet are integrally processed.

[0010] The outer heat dissipation copper sheet extends to the outer side of the conveyor belt from the side away from the inner heat absorption copper sheet.

[0011] By adopting the above technical solution, the heat dissipation components are used to dissipate heat from the conveyor belt during the transmission process, thereby reducing the impact of high temperature on the conveyor belt and slowing down the aging rate of the conveyor belt affected by high temperature.

[0012] Further configured, the conveyor belt has several reinforcing ribs embedded inside.

[0013] The above technical solution uses reinforcing ribs to increase the tensile strength of the conveyor belt.

[0014] Further configured, the reinforcing rib is located between two internal heat-absorbing copper sheets.

[0015] By adopting the above technical solution, the reinforcing rib is placed between two internal heat-absorbing copper sheets. The presence of the two internal heat-absorbing copper sheets will not affect the increase of the reinforcing rib in the strength of the conveyor belt.

[0016] In use, the interlocking teeth on the inner wall of the conveyor belt engage with the pulley, and the rotation of the pulley can pull the conveyor belt for rotational transmission through the interlocking teeth.

[0017] During the conveyor belt installation process, the bending groove can assist the conveyor belt to bend more significantly, thus preventing the conveyor belt from experiencing increased friction during transmission. This helps to reduce the friction intensity of the conveyor belt during transmission and reduce the increase in tensile strength that would occur due to increased friction.

[0018] As the conveyor belt operates, friction generates heat. The internal heat-absorbing copper sheet absorbs the heat from the conveyor belt and dissipates it to the outside through the external heat-dissipating copper sheet. By dissipating the heat from the conveyor belt, heat accumulation can be avoided, thus preventing the accelerated aging caused by the fixed accumulation of heat.

[0019] The beneficial effects of this utility model are as follows: 1. By setting the bending groove and the tooth groove to be connected, the bending range of the tooth groove is expanded, and the presence of the bending groove makes the conveyor belt bend more smoothly; 2. During the operation of the conveyor belt, the bending groove increases the bending range of the conveyor belt, which helps to reduce friction, thereby improving the anti-friction performance of the conveyor belt and increasing its service life; 3. By setting the heat dissipation component to dissipate heat and cool the conveyor belt, it is possible to avoid the situation where excessive heat accumulation on the conveyor belt during transmission will cause the conveyor belt to age faster. Attached Figure Description

[0020] Figure 1 This is a three-dimensional structural view of the present invention.

[0021] Figure 2 This is a partial structural cross-sectional view of the conveyor belt of this utility model.

[0022] Figure 3 This is a utility model Figure 2 Enlarged view of the structure at point A in the middle.

[0023] Figure 4 This is a schematic diagram of the heat dissipation component of this utility model. Detailed Implementation

[0024] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments.

[0025] Example 1:

[0026] Combination Figure 1 , Figure 2 and Figure 3 A highly stable conveyor belt is described. By connecting a bending groove 3 to a tooth groove 2, the bending range of the tooth groove 2 is expanded. The presence of the bending groove 3 allows the conveyor belt 1 to bend more smoothly. Furthermore, during operation, the increased bending range of the conveyor belt 1, achieved through the bending groove 3, helps reduce friction, thereby improving the anti-friction performance and extending the service life of the conveyor belt 1. A heat dissipation component 4 is incorporated to cool the conveyor belt 1, preventing excessive heat accumulation during transmission, which could accelerate the aging of the conveyor belt 1. The bending groove 3, connected to the tooth groove 2, expands the bending range of the tooth groove 2. The bending groove 3 allows for smoother bending of the conveyor belt 1. During operation, the increased bending range of the conveyor belt 1, achieved through the bending groove 3, helps reduce friction, thereby improving the anti-friction performance and extending the service life of the conveyor belt 1. The heat dissipation component 4 is incorporated to cool the conveyor belt 1, preventing excessive heat accumulation during transmission, which could accelerate the aging of the conveyor belt 1.

[0027] Furthermore, the two heat dissipation components 4 inside the meshing teeth 5 are symmetrically arranged. The heat dissipation components 4 being located inside the meshing teeth 5 will not affect the bending amplitude of the conveyor belt 1 itself, and the heat dissipation components 4 will not contact the pulley during the transmission process of the conveyor belt 1, thus not affecting the normal use of the conveyor belt 1.

[0028] Furthermore, the heat dissipation component 4 includes an inner heat-absorbing copper sheet 41 and an outer heat-dissipating copper sheet 42, which are integrally machined. The outer heat-dissipating copper sheet 42 extends to the outer side of the conveyor belt 1 from the side away from the inner heat-absorbing copper sheet 41. The heat dissipation component 4 is used to dissipate heat from the conveyor belt 1 during the transmission process, thereby reducing the impact of high temperature on the conveyor belt 1 and slowing down the aging rate of the conveyor belt 1 due to high temperature.

[0029] Furthermore, the conveyor belt 1 has several reinforcing ribs 6 embedded inside, which are used to increase the tensile strength of the conveyor belt 1.

[0030] Furthermore, the reinforcing rib 6 is located between the two inner heat-absorbing copper sheets 41. By placing the reinforcing rib 6 between the two inner heat-absorbing copper sheets 41, the presence of the two inner heat-absorbing copper sheets 41 will not affect the increase in strength of the conveyor belt 1 by the reinforcing rib 6.

[0031] In use, the interlocking teeth 5 on the inner wall of the conveyor belt 1 are used to engage with the pulley. The rotation of the pulley can pull the conveyor belt 1 to rotate and transmit power through the interlocking teeth 5.

[0032] During the wearing process, the bending groove 3 can assist the conveyor belt 1 to bend more, so that the conveyor belt 1 will not experience increased friction during transmission, which helps to reduce the friction intensity of the conveyor belt 1 during transmission and reduce the increase in tensile strength that the conveyor belt 1 will experience due to increased friction.

[0033] As the conveyor belt 1 operates, friction will cause the conveyor belt 1 to generate heat. As heat is generated, the internal heat-absorbing copper sheet 41 can absorb the heat generated by the conveyor belt 1 and transfer heat to the outside through the external heat-dissipating copper sheet 42. By dissipating the heat of the conveyor belt 1 to the outside, heat accumulation on the conveyor belt 1 can be avoided, thus preventing the accelerated aging phenomenon caused by the fixed accumulation of heat on the conveyor belt 1.

[0034] The beneficial effects of this utility model are as follows: 1. By setting the bending groove and the tooth groove to be connected, the bending range of the tooth groove is expanded, and the presence of the bending groove makes the conveyor belt bend more smoothly; 2. During the operation of the conveyor belt, the bending groove increases the bending range of the conveyor belt, which helps to reduce friction, thereby improving the anti-friction performance of the conveyor belt and increasing its service life; 3. By setting the heat dissipation component to dissipate heat and cool the conveyor belt, it is possible to avoid the situation where excessive heat accumulation on the conveyor belt during transmission will cause the conveyor belt to age faster.

Claims

1. A highly stable conveyor belt, comprising a conveyor belt, characterized in that: The inner wall of the conveyor belt has several tooth grooves, and the inside of the conveyor belt has several curved grooves. The tooth grooves and curved grooves are interconnected. The inner wall of the conveyor belt is integrally machined with several interlocking teeth, and two heat dissipation components are embedded inside the interlocking teeth.

2. The highly stable conveyor belt according to claim 1, characterized in that: The two heat dissipation components inside the biting teeth are symmetrically arranged.

3. The highly stable conveyor belt according to claim 1, characterized in that: The heat dissipation component includes an inner heat-absorbing copper sheet and an outer heat-dissipating copper sheet, which are integrally processed. The outer heat dissipation copper sheet extends to the outer side of the conveyor belt from the side away from the inner heat absorption copper sheet.

4. The highly stable conveyor belt according to claim 1, characterized in that: The conveyor belt has several reinforcing ribs embedded inside.

5. A highly stable conveyor belt according to claim 4, characterized in that: The reinforcing rib is located between two internal heat-absorbing copper sheets.