Ceramic tile chamfering plate

By combining the roller frame formed by mold stretching with the rotating hole in an integrated design and with the limiting support, the problems of accuracy and stability of the roller mounting hole of the tile chamfering tool are solved, achieving higher stability and ease of operation.

CN223864038UActive Publication Date: 2026-02-03金华市半尊科技有限公司
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Patent Information

Application Number
CN202520084172.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-14
Publication Date
2026-02-03
Estimated Expiration
2035-01-14

AI Technical Summary

Technical Problem

The existing roller mounting holes of tile chamfering tools are drilled manually, which makes it difficult to guarantee installation accuracy and stability, affecting the overall performance.

Method used

The roller frame and rotating hole are designed as a single unit through a die stretching process, ensuring that the roller frame and rotating hole are formed in the same manufacturing process, thus improving flatness accuracy. The movement of the roller frame is restricted by limiting components and support parts, thereby enhancing stability.

Benefits of technology

It significantly improves the stability and user experience of the tile chamfering tool, reduces manufacturing errors, and enhances overall performance and reliability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of ceramic tile chamfering devices, and particularly relates to a ceramic tile chamfering plate which comprises a plate body, a plurality of installation grooves are formed in the bottom of the plate body, rolling assemblies are arranged in the installation grooves, each rolling assembly comprises a rolling wheel frame and a plurality of rolling wheels arranged on the rolling wheel frame, and the lower ends of the rolling wheels protrude out of the bottom face of the plate body. A plurality of rotating holes are formed in the two sides of the roller carrier, a rotating shaft is arranged on the roller, the two sides of the rotating shaft penetrate through the rotating holes, and the roller carrier and the rotating holes are integrally formed, located at the upper end of the roller carrier and consistent in height. The rotating holes are formed at a time in the same manufacturing process, it is ensured that the position deviation between the rotating holes is controlled within a very small range through the manufacturing mode, the ceramic tile chamfering device is more stable and smoother in the using process, and the operation experience of a user is greatly improved.
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Description

Technical Field

[0001] This utility model belongs to the technical field of ceramic tile beveling tools, specifically referring to a ceramic tile beveling board. Background Technology

[0002] Tiles are a commonly used material in the building decoration industry. In actual decoration, due to the diversity of walls, when encountering interior and exterior corners, corner columns, window sills, etc., two tiles are often joined at a 90-degree right angle at the corner. However, because tiles have a certain thickness, if the side of the two tiles is in contact with the bottom surface when joined at a 90-degree angle, the side of one tile will be exposed. Therefore, the tiles need to be cut and polished to create a chamfer of about 45 degrees to facilitate the splicing and combination of two tiles, so that the shape of the tiles meets the decoration requirements and improves the aesthetics of the decoration.

[0003] In practical use, the operator only needs to place the plate flat on the surface of the tile and use the positioning plate to accurately determine the specific cutting position. The operator can then push the cutting machine to perform precise corner cutting along the processing direction of the tile chamfer. To make the chamfering tool more flexible and easier to move during use, the designers have specially installed several rollers on the base plate. These rollers not only help the chamfering tool slide smoothly on different working surfaces but also greatly reduce the operator's labor intensity. However, currently, the rollers are directly mounted on the base plate via a rotating shaft. The base plate has a mounting groove, and mounting holes are opened on the side of the mounting groove for fixing the rotating shaft. These mounting holes are usually drilled manually. However, when working by manually drilling, some problems are often encountered, such as the difficulty in maintaining a consistent drilling angle and height. This inconsistency may negatively affect the overall installation accuracy and stability. Due to the limitations of manual operation, it is difficult for the operator to guarantee a completely consistent effect every time when drilling, which may lead to deviations between hole positions. To ensure the installation accuracy and stability of the rollers, a new roller installation method is now provided. Summary of the Invention

[0004] The purpose of this invention is to provide a tile beveling plate with a simple structure and a new roller installation method, which can significantly improve the overall performance and user experience of the tile beveling tool.

[0005] The purpose of this utility model is achieved as follows:

[0006] A ceramic tile chamfering plate includes a plate body. Several mounting grooves are formed on the bottom of the plate body, and a rolling assembly is provided within each mounting groove. The rolling assembly includes a roller frame and several rollers mounted on the roller frame, with the lower ends of the rollers protruding beyond the bottom surface of the plate body. Several rotating holes are formed on both sides of the roller frame, and rotating shafts are provided on the rollers. The two sides of the rotating shafts pass through the rotating holes. The roller frame and the rotating holes are integrally formed, both located at the upper end of the roller frame, and are at the same height.

[0007] Furthermore, a limiting member is formed protruding from the top of the roller frame. The limiting member is made of a soft material. A limiting part extends inward from the opening of the mounting groove. When the roller frame is installed in the mounting groove, the limiting part abuts against the limiting member and restricts the movement of the roller frame relative to the mounting groove.

[0008] Furthermore, both ends of the roller frame are provided with a picking part, and the roller frame can be removed from the mounting slot by driving the picking part.

[0009] Furthermore, a support portion is provided between the two rollers, and the two ends of the support portion are connected to the two sides of the roller frame. The support portion is located at the lower end of the limiting member and there is a space between the support portion and the limiting member.

[0010] Furthermore, the upper surface of the plate is provided with a mounting base for connecting the bottom plate of the cutting machine. The mounting base is provided with a mounting slope, and locking blocks are provided at both ends of the mounting slope. The locking blocks are provided with locking rods for locking. Driving the locking rods can lock or release the locking blocks. The bottom plate is placed on the mounting slope, the locking blocks clamp one side of the bottom plate and lock it by the locking rods, thereby tilting the cutting machine on the mounting base.

[0011] Furthermore, the locking block includes a clamping part and a connecting part, which are integrally formed. The clamping part abuts against the mounting inclined surface. A connecting groove is provided at the upper end of the mounting base. The connecting part is located in the connecting groove. A locking hole is provided in the connecting groove. The locking rod is located on the connecting part and passes through the locking hole.

[0012] Furthermore, the plate body is provided with a positioning plate perpendicular to the plate body, and a sliding groove is provided on the side of the plate body near the positioning plate. A sliding member is provided between the positioning plate and the bottom plate. The sliding member includes a fixing part and a tile bonding plate. The fixing part is located in the sliding groove, and the tile bonding plate is in close contact with the inner side of the positioning plate.

[0013] Furthermore, a plurality of anti-slip strips are protruding on the mounting slope, and the anti-slip strips are spaced apart on the mounting slope.

[0014] The outstanding and beneficial technical effects of this utility model compared to the prior art are:

[0015] The purpose of this utility model is to provide a tile beveling plate with a simple structure and a novel roller installation method, which can significantly improve the overall performance and user experience of the tile beveling tool. The plate includes a body with several mounting grooves on its bottom. Rolling components are installed within these grooves, allowing the plate to move more flexibly. The rolling components mainly include a roller frame and several rollers mounted on the roller frame. The lower ends of these rollers protrude from the bottom surface of the plate, allowing them to contact the ground and roll, making the plate move more smoothly. Several rotating holes are provided on both sides of the roller frame, and rotating shafts are provided on the rollers. The rotating shafts pass through the rotating holes on both sides, allowing the rollers to rotate freely on the rotating shafts. Currently, most similar plate structures on the market have mounting grooves on the bottom plate, and then mounting holes are made on the sides of the mounting grooves to fix the rotating shafts. However, because such mounting holes are... The sides of the mounting slot are usually drilled manually later, which makes it difficult to control the position of the rotating holes during drilling. This invention solves this problem by setting a roller frame inside the mounting slot. The roller frame and the rotating holes are formed by mold stretching, meaning they are formed in one step during the same manufacturing process. This manufacturing method ensures that the positional deviation between the rotating holes is controlled within a very small range. Therefore, when the roller frame is installed on the rotating shaft, the flatness accuracy between the rollers can be significantly improved. This high-precision design further improves the overall performance of the rolling assembly, making the tile chamfering tool more stable and smooth during use, greatly enhancing the user's operating experience. Through this one-piece molding design, manufacturing errors are greatly reduced, thereby improving overall reliability and performance. Attached Figure Description

[0016] Figure 1 This is a perspective view of the present invention.

[0017] Figure 2 This is the intended connection structure between the plate and the mounting base of this utility model.

[0018] Figure 3 This is a three-dimensional view of the plate body of this utility model.

[0019] Figure 4 yes Figure 3 Enlarged view of point A in the middle.

[0020] Figure 5 This is a cross-sectional view of the plate body of this utility model.

[0021] Figure 6 This is an exploded view of the plate body of this utility model.

[0022] Figure 7 This is a schematic diagram of the structure of the plate body of this utility model.

[0023] Figure 8 yes Figure 6 Enlarged view of point B in the middle.

[0024] Figure 9 This is a schematic diagram of the structure of the rolling component of this utility model.

[0025] Figure 10 This is a schematic diagram of the connection structure between the roller frame and the rotating shaft of this utility model.

[0026] Figure 11 This is a structural schematic diagram of the roller frame of this utility model.

[0027] Figure 12 This is a schematic diagram of the connection structure between the mounting base and the locking block of this utility model.

[0028] Figure 13 This is a structural schematic diagram of the mounting base of this utility model.

[0029] Figure 14 This is a schematic diagram of the locking block of this utility model.

[0030] The meaning of the labels in the diagram:

[0031] 1-Plate body; 2-Mounting groove; 3-Rolling assembly; 4-Roller frame; 5-Roller; 6-Rotating hole; 7-Rotating shaft; 8-Limiting component; 9-Limiting part; 11-Removing part; 14-Supporting part; 15-Positioning plate; 17-Mounting base; 18-Mounting inclined surface; 19-Locking block; 20-Locking rod; 21-Clamping part; 22-Connecting part; 23-Connecting groove; 24-Locking hole; 25-Slide groove; 26-Sliding component; 27-Fixing part; 28-Tile adhesive board; 29-Anti-slip strip. Detailed Implementation

[0032] The present invention will be further described below with reference to specific embodiments:

[0033] A ceramic tile chamfering plate includes a plate body 1. The bottom of the plate body 1 has several mounting grooves 2. A rolling assembly 3 is provided in the mounting grooves 2. The rolling assembly 3 includes a roller frame 4 and several rollers 5 disposed on the roller frame 4. The lower ends of the rollers 5 protrude from the bottom surface of the plate body 1. Several rotating holes 6 are provided on both sides of the roller frame 4. A rotating shaft 7 is provided on the rollers 5. The two sides of the rotating shaft 7 pass through the rotating holes 6. The roller frame 4 and the rotating holes 6 are integrally formed and are both located at the upper end of the roller frame 4 and have the same height.

[0034] The purpose of this utility model is to provide a tile beveling plate with a simple structure and a novel roller 5 installation method, which can significantly improve the overall performance and user experience of the tile beveling tool. The plate includes a body 1 with several mounting grooves 2 on its bottom. These mounting grooves 2 contain rolling components 3, allowing the plate 1 to move more flexibly. The rolling components 3 mainly include a roller frame 4 and several rollers 5 mounted on the roller frame 4. The lower ends of these rollers 5 protrude from the bottom surface of the plate 1, allowing them to contact the ground and roll, making the plate 1 move more smoothly. Several rotating holes 6 are provided on both sides of the roller frame 4, and rotating shafts 7 are provided on the rollers 5. The rotating shafts 7 pass through the rotating holes 6 on both sides, allowing the rollers 5 to rotate freely on the rotating shafts 7. Currently, most similar plate 1 structures on the market have mounting grooves 2 on the bottom plate, and then mounting holes are made on the sides of the mounting grooves 2 to fix the rotating shafts. However, due to… The mounting holes are located on the side of the mounting groove 2. In most cases, these holes are drilled manually later, making it difficult to control the position of the rotating holes 6 during drilling. This invention addresses this by setting a roller frame 4 within the mounting groove 2. The roller frame 4 and the rotating holes 6 are designed using a die-stretching process, meaning they are formed in one step during the same manufacturing process. This manufacturing method ensures that the positional deviation between the rotating holes 6 is controlled within a very small range. Therefore, when the roller frame 4 is installed on the rotating shaft 7, the flatness accuracy between the rollers 5 can be significantly improved. This high-precision design further improves the overall performance of the rolling assembly 3, making the tile chamfering tool more stable and smooth during use, greatly enhancing the user's operating experience. Through this one-piece molding design, manufacturing errors are greatly reduced, thereby improving overall reliability and performance.

[0035] Preferably, the top of the roller frame 4 has a protruding limiting member 8, which is made of a soft material. The main function of the limiting member 8 is to prevent unnecessary movement or sliding of the roller frame 4 during use. A limiting part 9 extends inward from the opening of the mounting groove 2. When the roller frame 4 is placed in the mounting groove 2, the limiting part 9 abuts against the limiting member 8, restricting the movement of the roller frame 4 relative to the mounting groove 2. The limiting part 9 is designed to cooperate with the limiting member 8 on the roller frame 4, thereby achieving the positioning and fixing of the roller frame 4. When the roller frame 4 is correctly installed in the mounting slot 2, the limiting part 9 will abut against the limiting member 8, forming a physical contact and interaction. This abutting structure design can effectively limit the movement of the roller frame 4 relative to the mounting slot 2. Whether it is horizontal or vertical movement, the interaction between the limiting part 9 and the limiting member 8 can play an effective limiting role. In this way, the roller frame 4 can remain stable during use and will not be displaced due to external forces, thereby ensuring the normal operation of the equipment and the safety of operation.

[0036] Preferably, the mounting groove 2 extends through both ends of the mounting groove 2, forming a complete channel for easy installation and disassembly of various components. Both ends of the plate 1 are equipped with baffles to seal the ends of the mounting groove 2, preventing dust and debris from entering. Furthermore, the baffles also serve a limiting function, ensuring the stability of all rolling components 3 placed within the mounting groove 2 during operation, preventing them from falling off or shifting due to vibration or accidental collision. The baffles are detachably connected to the plate 1 and seal the ends of the mounting groove 2. The roller frame 4 is designed to be easy to disassemble and install. The baffle can be easily removed when needed. Both ends of the roller frame 4 are provided with a picking part 11. After removing the baffle, the roller frame 4 can be taken out of the mounting slot 2 by driving the picking part 11. The picking part 11 is designed to facilitate the operation of the roller frame 4 by the user after removing the baffle. After removing the baffle, the user can easily take the roller frame 4 out of the mounting slot 2 by holding the picking part 11. This design not only facilitates the user's use, but also improves the overall installation and disassembly efficiency.

[0037] Preferably, a support portion 14 is provided between the two rollers 5. The two ends of the support portion 14 are connected to the two sides of the roller frame 4 to ensure the stability of the overall structure. The support portion 14 is located at the lower end of the limiting member 8 and there is a space between it and the limiting member 8, which provides a certain buffer space for the limiting member 8 when it deforms. When the limiting member 8 is deformed by external force, the limiting member 8 can move or deform to a certain extent in this space because there is a certain space between the support portion 14 and the limiting member 8. This allows the roller frame 4 to be removed, making it easier to remove the roller frame 4 when needed, because the limiting member 8 is not subject to excessive restrictions during the deformation process, thus making the entire removal process of the roller frame 4 smoother and easier.

[0038] Preferably, the upper surface of the plate 1 is provided with a mounting base 17 for connecting the base plate of the cutting machine. The mounting base 17 is provided with a mounting inclined surface 18, and locking blocks 19 are provided at both ends of the mounting inclined surface 18. The locking blocks 19 are provided with locking rods 20 for locking. Driving the locking rods 20 can lock or release the locking blocks 19. The base plate is placed on the mounting inclined surface 18, and the locking blocks 19 clamp one side of the base plate and lock it by the locking rods 20, thereby tilting the cutting machine on the mounting base 17 to meet specific usage requirements. In practical applications, the base plate is placed on the mounting inclined surface 18, and then the locking blocks 19 clamp one side of the base plate. By operating and rotating the locking rods 20, the locking blocks 19 can be locked, thereby ensuring that the cutting machine is firmly installed on the base plate. This design allows the cutter to be mounted at an angle on the mounting base 17, thus meeting specific usage needs. For example, it provides more flexible and precise operation when performing cuts at special angles. The locking rod 20 is a threaded rod, and the locking block 19 is equipped with an internal thread that matches the threaded rod. A nut is provided at the lower end of the threaded rod, which is in close contact with and abuts against the lower surface of the mounting ramp 18, ensuring the stability and locking effect of the entire device.

[0039] Preferably, the locking block 19 includes a clamping part 21 and a connecting part 22, which are integrally formed. The two parts are manufactured by integral molding to ensure the integrity and strength of the structure. The function of the clamping part 21 is to abut tightly against the mounting inclined surface 18 to ensure the stability of the locking block 19 during use. The clamping part 21 abuts against the mounting inclined surface 18. The upper end of the mounting base 17 is provided with a connecting groove 23. The connecting part 22 is located in the connecting groove 23 to ensure the correct installation and fixation of the locking block 19. The connecting groove 23 is provided with a locking hole 24. The locking rod 20 is located on the connecting part 22 and passes through the locking hole 24, thereby locking the locking block 19 and facilitating clamping of the base plate.

[0040] Preferably, the plate 1 is provided with a positioning plate 15 perpendicular to the plate 1. In actual use, the operator only needs to place the plate 1 flat on the tile surface and use the positioning plate 15 to determine the cutting position. Then, along the processing direction of the tile chamfer, the operator can easily push the cutting machine to perform precise corner cutting. The whole process is simple and easy to understand, and convenient to operate, which greatly improves the efficiency and accuracy of tile cutting. The plate 1 is provided with a sliding groove 25 on the side near the positioning plate 15. A sliding member 26 is provided between the positioning plate 15 and the base plate. The sliding member 26 includes a fixing part 27 and a tile bonding plate 28. The fixing part 27 is located in the sliding groove 25. The tile bonding plate 28 is close to the inner side of the positioning plate 15. The tile bonding plate 28 is used to reduce the friction between the positioning plate 15 and the tile, so that the positioning plate 15 can be more smooth and precise when performing positioning operations, which greatly improves work efficiency and ease of operation.

[0041] Preferably, a plurality of anti-slip strips 29 are protruding on the mounting slope 18, and the anti-slip strips 29 are spaced apart on the mounting slope 18. These anti-slip strips 29 are used to provide additional friction, thereby enhancing the stability of the equipment on the slope.

[0042] The above embodiments are merely preferred embodiments of the present utility model and are not intended to limit the scope of protection of the present utility model. Therefore, all equivalent changes made to the structure, shape, and principle of the present utility model should be covered within the scope of protection of the present utility model.

Claims

1. A ceramic tile chamfering board, characterized in that, The plate includes a plate body (1), and a plurality of mounting grooves (2) are provided at the bottom of the plate body (1). A rolling assembly (3) is provided in the mounting groove (2). The rolling assembly (3) includes a roller frame (4) provided in the mounting groove (2) and a plurality of rollers (5) provided on the roller frame (4). The lower end of the roller (5) protrudes from the bottom surface of the plate body (1). A plurality of rotating holes (6) are provided on both sides of the roller frame (4). A rotating shaft (7) is provided on the roller (5). The two sides of the rotating shaft (7) pass through the rotating holes (6).

2. The ceramic tile chamfering board according to claim 1, characterized in that: The lower end of the roller frame (4) is formed with a limiting member (8), which is made of elastic material. The groove of the mounting groove (2) extends inward to provide a limiting part (9). When the roller frame (4) is placed in the mounting groove (2), the limiting part (9) and the limiting member (8) abut against each other and restrict the roller frame (4) from moving relative to the mounting groove (2).

3. A ceramic tile chamfering board according to claim 1, characterized in that: Both ends of the roller frame (4) are provided with a picking part (11), and the roller frame (4) can be taken out from the mounting groove (2) by driving the picking part (11).

4. A ceramic tile chamfering board according to claim 2, characterized in that: A support part (14) is provided between the two rollers (5). The two ends of the support part (14) are connected to the two sides of the roller frame (4). The support part (14) is located at the lower end of the limiting member (8) and there is space between the support part (14) and the limiting member (8).

5. A ceramic tile chamfering plate according to any one of claims 1-4, characterized in that: The upper surface of the plate (1) is provided with a mounting base (17) for connecting the bottom plate of the cutting machine. The mounting base (17) is provided with a mounting inclined surface (18). The two ends of the mounting inclined surface (18) are provided with locking blocks (19). The locking blocks (19) are provided with locking rods (20) for locking. Driving the locking rods (20) can lock or release the locking blocks (19). The bottom plate is placed on the mounting inclined surface (18). The locking blocks (19) clamp one side of the bottom plate and lock it through the locking rods (20), thereby tilting the cutting machine on the mounting base (17).

6. A ceramic tile chamfering board according to claim 5, characterized in that: The locking block (19) includes a clamping part (21) and a connecting part (22). The clamping part (21) and the connecting part (22) are integrally formed. The clamping part (21) abuts against the mounting inclined surface (18). The upper end of the mounting base (17) is provided with a connecting groove (23). The connecting part (22) is located in the connecting groove (23). The connecting groove (23) is provided with a locking hole (24). The locking rod (20) is located on the connecting part (22) and passes through the locking hole (24).

7. A ceramic tile chamfering board according to claim 5, characterized in that: The plate (1) is provided with a positioning plate (15) perpendicular to the plate (1). A groove (25) is provided on the side of the plate (1) near the positioning plate (15). A sliding member (26) is provided between the positioning plate (15) and the bottom plate. The sliding member (26) includes a fixing part (27) and a tile bonding plate (28). The fixing part (27) is located in the groove (25). The tile bonding plate (28) is close to the inner side of the positioning plate (15).

8. A ceramic tile chamfering board according to claim 6, characterized in that: The mounting inclined surface (18) is provided with a plurality of anti-slip strips (29), which are spaced apart on the mounting inclined surface (18).