Anti-wear belt structure of tile conveyor belt
By designing an anti-wear belt structure on the tile conveyor belt and using fasteners and waste polished tiles to achieve the anti-wear effect, the problem of conveyor belt wear is solved, and the service life and safety are improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN SHI WAN YING BRAND CERAMICS CO LTD
- Filing Date
- 2025-05-29
- Publication Date
- 2026-05-26
AI Technical Summary
The existing tile conveyor belt suffers severe wear due to friction with the metal support beam, affecting its service life and safety.
Design an anti-wear belt structure for a ceramic tile conveyor belt. Used fasteners to install waste polished tiles as anti-wear material. The anti-wear effect is achieved through support grooves and elastic rubber strips. The fasteners are fixed to the crossbeam, and wing screws enhance stability.
It effectively reduces the probability of conveyor belt wear, improves service life and safety, has low maintenance costs, is easy to install, and has a simple and reliable structure.
Smart Images

Figure CN224278533U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ceramic tile production machinery, and in particular to an anti-wear belt structure for ceramic tile conveyor belts. Background Technology
[0002] Currently, after being polished by polishing equipment, most tiles are transported to the next process via conveyor belts. To facilitate workers' inspection of the polishing quality from the side of the conveyor belt, the vertical components of the conveyor belt are often compacted to position the tiles at a lower level for easier observation. For example... Figure 1 As shown, while this arrangement facilitates worker observation of polishing quality, it also results in the lower half of the conveyor belt 100 being extremely close to the support beam 200. Furthermore, since the conveyor belt 100 is a flexible structure and will stretch over time, it will directly rub against the support beam 200. Because most existing support beams 200 are made of metal and are not polished, this friction between the conveyor belt 100 and the support beam 200 leads to significant wear on the conveyor belt, severely impacting its lifespan and safety. Therefore, it is essential to design an anti-wear belt structure for the tile conveyor belt to address these technical problems. Utility Model Content
[0003] The purpose of this utility model is to solve the above-mentioned problems and shortcomings, and to provide an anti-wear belt structure for a ceramic tile conveyor belt. This anti-wear belt structure not only has a very simple and reliable structure, but also uses waste polished bricks to achieve the anti-wear effect. Its use and maintenance costs are very low, and its installation and use are very convenient. It can achieve a very good anti-wear effect, thereby reducing the probability of wear on the conveyor belt, and thus improving the service life and safety of the conveyor belt.
[0004] The technical solution of this utility model is implemented as follows:
[0005] A wear-resistant belt structure for a ceramic tile conveyor belt is characterized by including a crossbeam and a fastener, wherein the fastener is fastened to the crossbeam, and a support groove for holding waste polished tiles is provided on the top surface of the fastener.
[0006] Preferably, the bottom surface of the fastener has a fastening notch, and a wing screw is screwed onto the outer wall of the fastener, so that the inner end of the wing screw can enter the fastening notch as it is tightened, and the wing screw can press against the side wall of the crossbeam.
[0007] Preferably, the outer wall of the buckle is provided with a reinforcing protrusion, and the wing screw is also screwed into the inner hole of the reinforcing protrusion.
[0008] Preferably, the opening of the buckle notch is a flared opening.
[0009] Preferably, at least one groove wall of the support slot is adhered with an elastic adhesive strip.
[0010] Preferably, the elastic strip is an elastic rubber strip.
[0011] Preferably, a polished brick is embedded in the support slot, with the polished surface of the polished brick facing upwards, and the front and rear top corners of the polished brick are rounded corners.
[0012] Preferably, the fastener includes a support strip and two fastening strips. The two fastening strips are arranged side by side and are parallel to each other. The support strip is horizontally arranged between the two fastening strips, and the front and rear ends of the support strip are respectively connected to the upper ends of the two fastening strips. The support groove is formed by the upper ends of the two fastening strips and the top surface of the support strip.
[0013] Preferably, the supporting strip and the two snap-fit strips are integrally formed.
[0014] Preferably, the supporting strip and the two snap-fit strips are an integral stainless steel structure.
[0015] The beneficial effects of this utility model are as follows: The use of snap-fit components in this anti-wear belt structure facilitates quick and easy installation and positioning on the crossbeam, offering high convenience and efficiency. A support groove is provided on the top surface of the snap-fit component for holding waste polished bricks. This groove allows for the holding of waste polished bricks with low surface roughness, achieving an anti-wear effect using these bricks. This results in excellent anti-wear performance, reducing the likelihood of conveyor belt wear and thus improving the conveyor belt's lifespan and safety. Furthermore, this design minimizes maintenance costs and is very convenient to install and use. Additionally, the overall structure of this anti-wear belt is simple and reliable. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of an existing conveyor belt device.
[0017] Figure 2 This is a schematic diagram of the anti-wear belt structure in this utility model.
[0018] Figure 3 This is a schematic diagram of the fastener in this utility model.
[0019] Figure 4 This is a structural diagram of the present invention in use. Detailed Implementation
[0020] like Figure 2 and Figure 3 As shown, the wear-resistant belt structure of the ceramic tile conveyor belt of this utility model includes a crossbeam 1 and a fastener 2, wherein the fastener 2 is fastened on the crossbeam 1, and a support groove 21 for holding waste polished bricks is provided on the top surface of the fastener 2.
[0021] In this anti-wear belt structure, the fastener 2 facilitates quick installation and positioning on the crossbeam 1, offering high convenience and efficiency. A support groove 21 is provided on the top surface of the fastener 2 for holding waste polished bricks. This groove allows for the holding of waste polished bricks with low surface roughness, achieving an anti-wear effect. This effectively reduces the likelihood of conveyor belt wear, thereby improving its lifespan and safety. Furthermore, this design minimizes maintenance costs and is very convenient to install and use. The overall structure of this anti-wear belt is also simple and reliable.
[0022] like Figure 2 and Figure 3 As shown, a snap-fit notch 22 is provided on the bottom surface of the snap-fit component 2, and a wing screw 23 is screwed onto the outer wall of the snap-fit component 2, so that the inner end of the wing screw 23 can enter into the snap-fit notch 22 as it is tightened, and the wing screw 23 can press against the side wall of the crossbeam 1. This not only facilitates the installation and positioning of the snap-fit component 2, but also helps to achieve a more stable and reliable positioning effect, thereby helping to further improve the reliability and applicability of the anti-wear belt structure.
[0023] like Figure 3 As shown, a reinforcing protrusion 24 is provided on the outer wall of the buckle 2, and the wing screw 23 is screwed into the inner hole of the reinforcing protrusion 24. This provides more threading depth for the wing screw 23, thereby improving the stability and reliability of the wing screw 23's installation and positioning, and further enabling the wing screw 23 to exert a more stable and reliable locking effect. This helps to further improve the reliability and applicability of the anti-wear belt structure.
[0024] like Figure 3 As shown, the opening of the buckle notch 22 is a flared shape. This facilitates the installation of the buckle component 2.
[0025] like Figure 2 and Figure 3As shown, at least one wall of the support groove 21 is attached with an elastic adhesive strip 25. This allows the elastic adhesive strip 25 to provide elastic pressure and positioning for the waste polished brick, which not only improves the convenience of installing and positioning the waste polished brick, but also enhances the stability of its installation and positioning.
[0026] The elastic strip 25 is an elastic rubber strip. This not only gives the elastic strip 25 a good elastic pressing effect, but also gives it high durability, thereby helping to further improve the reliability and applicability of the anti-wear belt structure.
[0027] like Figure 2 and Figure 4 As shown, a polished brick 3 is embedded in the support groove 21 with the smooth surface of the polished brick 3 facing upwards. The front and rear apex corners of the polished brick 3 are rounded corners 31. The smooth surface of the polished brick 3 can be contacted by the lower half of the conveyor belt 10, which helps to achieve a good anti-wear effect, thereby helping to further improve the reliability and applicability of the anti-wear belt structure.
[0028] In actual use, polished tiles 3 with small roughness (roughness has reached the size of normal glossy ceramic tiles) and cracks are mainly used; then, the size is made suitable for installation in the support slot 21 by grinding and the rounded corner 31 is ground out, so as to ensure that the wear resistance and anti-wear effect is very good.
[0029] like Figure 3 As shown, the fastening element 2 includes a supporting strip 26 and two fastening strips 27. The two fastening strips 27 are arranged side by side and parallel to each other. The supporting strip 26 is horizontally arranged between the two fastening strips 27, with its front and rear ends connected to the upper ends of the two fastening strips 27 respectively. The supporting groove 21 is formed by the upper ends of the two fastening strips 27 and the top surface of the supporting strip 26. This fastening element 2 is very simple and reliable, which not only facilitates manufacturing but also helps to stably achieve fastening positioning and positioning of waste polished bricks. This helps to further improve the reliability and applicability of the anti-wear belt structure.
[0030] like Figure 3 As shown, the supporting strip 26 and the two snap-fit strips 27 are integrally formed. This allows the snap-fit component 2 to have a more reliable structure, thereby further improving the reliability and applicability of the anti-wear belt structure.
[0031] The supporting strip 26 and the two snap-fit strips 27 are an integral stainless steel structure. This not only effectively enhances the structural strength of the snap-fit component 2, but also effectively improves its durability, thereby helping to further improve the reliability and applicability of the anti-wear belt structure.
Claims
1. A wear strip structure for a tile conveyor belt, characterized by: It includes a crossbeam (1) and a fastener (2), wherein the fastener (2) is fastened to the crossbeam (1), and a support groove (21) for holding waste polished bricks is provided on the top surface of the fastener (2).
2. The wear strip structure for a tile conveyor belt according to claim 1, characterized in that: The bottom surface of the buckle (2) is provided with a buckle notch (22), and a wing screw (23) is screwed onto the outer wall of the buckle (2), so that the inner end of the wing screw (23) can enter into the buckle notch (22) as it is tightened, and the wing screw (23) can press against the side wall of the crossbeam (1).
3. The wear strip structure for a tile conveyor belt according to claim 2, characterized in that: The outer wall of the buckle (2) is provided with a reinforcing protrusion (24), and the wing screw (23) is also screwed into the inner hole of the reinforcing protrusion (24).
4. The wear strip structure for a tile conveyor belt according to claim 2 or 3, characterized in that: The opening of the buckle notch (22) is a flared opening.
5. The wear strip structure for a tile conveyor belt according to claim 1, characterized in that: At least one groove wall of the support slot (21) is attached with an elastic adhesive strip (25).
6. The wear strip structure for a tile conveyor belt according to claim 5, characterized in that: The elastic strip (25) is an elastic rubber strip.
7. The wear strip structure for a tile conveyor belt according to claim 1, characterized in that: The support slot (21) is fitted with a polished brick (3) with the polished surface of the polished brick (3) facing upwards, and the front and rear top corners of the polished brick (3) are rounded corners (31).
8. The wear strip structure for a tile conveyor belt according to claim 1, characterized in that: The fastener (2) includes a support strip (26) and two fastening strips (27). The two fastening strips (27) are arranged side by side and are parallel to each other. The support strip (26) is arranged horizontally between the two fastening strips (27) and the front and rear ends of the support strip (26) are connected to the upper ends of the two fastening strips (27) respectively. The support groove (21) is formed by the upper ends of the two fastening strips (27) and the top surface of the support strip (26).
9. The anti-wear belt structure of the ceramic tile conveyor belt according to claim 8, characterized in that: The supporting strip (26) and the two snap-fit strips (27) are integrally formed.
10. The anti-wear belt structure of the ceramic tile conveyor belt according to claim 8 or 9, characterized in that: The supporting strip (26) and the two snap-fit strips (27) are an integral stainless steel structure.