Polishing device for wear-resistant pure flat glaze ceramic tile
By introducing a dust-collecting and atomizing structure into the polishing device, the problems of uneven gloss and health threats caused by dust adhesion are solved, achieving efficient dust removal and environmentally friendly polishing results.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2026-03-31
AI Technical Summary
When polishing flat glazed ceramic tiles, dust particles easily adhere to the tile surface, forming tiny bumps or depressions, resulting in uneven gloss or color differences. Furthermore, the dust poses a threat to the health of the operators.
A polishing device including a dust-collecting structure and an atomizing structure was designed. The dust-collecting structure improves dust absorption efficiency through a dust-collecting cone orifice and auxiliary components, while the atomizing structure is used to reduce the dust content in the air.
It improves the uniformity of tile surface gloss and appearance quality, reduces the health threat of dust, and reduces environmental pollution and equipment blockage.
Smart Images

Figure CN224059389U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ceramic tile grinding technology, specifically a grinding device for wear-resistant flat glazed ceramic tiles. Background Technology
[0002] As the requirements for durability of building decoration materials increase, plain glazed ceramic tiles need to have higher surface wear resistance to cope with friction and impact in daily use.
[0003] The polishing device for flat glazed tiles is an important tool in tile processing and decoration for improving the flatness and gloss of tile surfaces and repairing surface defects. When using it, first place the flat glazed tile to be polished stably on the worktable. Then, select the appropriate polishing head according to the tile material and surface defects. Usually, a high-precision flexible polishing head is used to adapt to the slight undulations of the tile surface. After starting the polishing device, slowly and gently touch the polishing head to the tile surface. Adjust the polishing head through the pressure control system equipped with the device to polish the surface of the flat glazed tile.
[0004] However, when polishing plain glazed tiles, the high-speed friction of the polishing head causes stress breakage between the glaze and the substrate, generating dust particles. The glaze is brittle and fragile, and the substrate releases powder from its pores. Low humidity and poor ventilation exacerbate dust suspension. Dust adhering to the tile surface can form tiny bumps or depressions, resulting in a grainy texture, uneven gloss, or color difference on the polished tile surface, which seriously affects the product's appearance quality. Moreover, dust particles can enter the human body through the respiratory tract, posing a threat to the health of operators. Utility Model Content
[0005] The purpose of this invention is to provide a grinding device for wear-resistant flat glazed ceramic tiles to solve the problems mentioned in the background art.
[0006] To solve the above-mentioned technical problems, this utility model provides the following technical solution: a grinding device for wear-resistant flat glazed ceramic tiles, comprising,
[0007] The grinding structure includes a fixed plate and a rotating shaft that rotates inside the fixed plate;
[0008] The vacuuming structure includes a seal movably connected to the surface of the rotating shaft, a vacuuming assembly fixed to the seal, and an auxiliary assembly fixed to the surface of the rotating shaft and located inside the seal.
[0009] The seal includes a left sealing shell rotatable on the surface of the shaft, and a right sealing shell rotatable on the surface of the shaft; and,
[0010] The snap-fit structure includes a right connecting plate fixed to the side of the right sealing shell, a left connecting plate fixed to the side of the left sealing shell, and a snap-fit assembly fixed to the surface of the right connecting plate.
[0011] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, the dust collection assembly includes a nut fixed to the surface of a sealing element, a threaded rod rotating on the inner surface of the nut, and a dust collection cylinder fixed to the surface of the threaded rod, wherein the diameter of the cross-section of the dust collection cylinder is called the cylinder diameter.
[0012] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, wherein: the surface of the dust collection cylinder is provided with a plurality of dust collection cone holes, the plurality of dust collection cone holes are arranged in a linear array circumferentially on the surface of the dust collection cylinder, and the cross-section of the dust collection cone holes is in the shape of an equilateral trapezoid.
[0013] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, wherein: the opening direction of the dust suction cone hole gradually decreases from the outside to the inside along the cylinder diameter direction and does not form a closed state; the surface of the dust suction cone hole is provided with an inclined groove; and the end of the dust suction cone hole located on the outside of the dust suction cylinder is set as an arc surface.
[0014] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, the surface of the dust collection cylinder is provided with a ventilation groove, a fixed shaft is fixed inside the dust collection cylinder, a connecting plate is rotatably mounted on the surface of the fixed shaft, and two arc-shaped blades are fixed at both ends of the connecting plate, with the opening directions of the two arc-shaped blades being opposite.
[0015] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, the auxiliary components include: fan blades fixed to the surface of the rotating shaft, and an absorption plate rotating on the surface of the rotating shaft.
[0016] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, the snap-fit assembly includes a support column fixed to the right connecting plate, a snap-fit ball fixed to the top of the support column, and a snap-fit sleeve movably connected to the surface of the snap-fit ball.
[0017] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, wherein: an adjusting block is fixed to the surface of the snap-fit sleeve, a positioning ring is fixed to the surface of the adjusting block, and one end of the positioning ring is fixed to the inside of the left connecting plate.
[0018] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, it further includes:
[0019] The atomizing structure includes a liquid storage tank fixed to the fixed plate and an atomizing nozzle fixed to the fixed plate;
[0020] One end of the rotating shaft is equipped with a motor, and the other end of the rotating shaft is fixed with a grinding head. A fixing frame is fixed to the surface of the motor.
[0021] As a preferred embodiment of the grinding device for wear-resistant flat glazed ceramic tiles described in this utility model, wherein: sliders are fixed at both ends of the fixed plate, a driving screw slides on the surface of the slider, a slide rail slides on the surface of the slider, anti-detachment blocks are fixed at both ends of the slide rail, a motor rotates at one end of the driving screw, and a mounting plate is fixed on the surface of the slide rail;
[0022] A mounting plate is fixed to the surface of the mounting plate, a bracket is fixed to the surface of the mounting plate, and a data control box is fixed to the surface of the bracket.
[0023] The beneficial effects of this utility model are as follows: by increasing the amount of dust absorbed through the suction cone hole, the amount of dust in the surrounding air of the working environment is reduced, which can reduce the adhesion of dust to the surface of the tile, thereby improving the surface quality of the tile after polishing, avoiding uneven gloss or color difference caused by dust, reducing the amount of suspended dust in the working environment, and reducing the threat of dust to the health of operators. Attached Figure Description
[0024] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0025] Figure 1 This is a schematic diagram of the grinding structure of the grinding device for wear-resistant flat glazed ceramic tiles according to this utility model.
[0026] Figure 2 This is a cross-sectional view of the dust collection structure of the grinding device for wear-resistant flat glazed ceramic tiles according to this utility model.
[0027] Figure 3 This is a cross-sectional plan view of the dust collection structure of the grinding device for wear-resistant flat glazed ceramic tiles according to this utility model.
[0028] Figure 4 This is a schematic diagram of the dust collection cylinder structure of the grinding device for wear-resistant flat glazed ceramic tiles according to this utility model.
[0029] Figure 5 This is a cross-sectional view of the dust collection cylinder of the grinding device for wear-resistant flat glazed ceramic tiles according to this utility model.
[0030] Figure 6 for Figure 5 Enlarged diagram of point A in the middle.
[0031] Figure 7 This is a schematic diagram of the snap-fit component structure of the grinding device for wear-resistant flat glazed ceramic tiles according to this utility model.
[0032] Figure 8 This is a schematic diagram of the overall structure of the grinding device for wear-resistant flat glazed ceramic tiles according to this utility model.
[0033] Figure 9 This is a side view schematic diagram of the overall structure of the grinding device for wear-resistant flat glazed ceramic tiles according to this utility model. Detailed Implementation
[0034] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.
[0035] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.
[0036] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it an embodiment that is mutually exclusive, either alone or selectively, with other embodiments.
[0037] Secondly, this utility model is described in detail with reference to the schematic diagrams. When describing the embodiments of this utility model, for ease of explanation, the cross-sectional views illustrating the device structure may be partially enlarged, not adhering to the usual scale. Furthermore, the schematic diagrams are merely examples and should not limit the scope of protection of this utility model. In addition, actual manufacturing should include the three-dimensional spatial dimensions of length, width, and depth.
[0038] Example 1, referring to Figure 1 - Figure 6 This is the first embodiment of the present invention, which provides a grinding device for wear-resistant plain glazed ceramic tiles. The device includes:
[0039] The grinding structure 100 includes a fixed plate 101 and a rotating shaft 102 that rotates inside the fixed plate 101;
[0040] The vacuuming structure 200 includes a seal movably connected to the surface of the rotating shaft 102, a vacuuming assembly 204 fixed to the seal, and an auxiliary assembly 205 fixed to the surface of the rotating shaft 102 and located inside the seal. The seal is movably connected to the rotating shaft 102 to ensure that dust does not leak to the outside during vacuuming and to improve vacuuming efficiency.
[0041] The seal includes a left sealing shell 201 rotatable on the surface of the shaft 102, and a right sealing shell 202 rotatable on the surface of the shaft 102; and,
[0042] The snap-fit structure 300 includes a right connecting plate 301 fixed to the side of the right sealing shell 202, a left connecting plate 302 fixed to the side of the left sealing shell 201, and a snap-fit assembly 303 fixed to the surface of the right connecting plate 301. The snap-fit structure 300 enables quick connection and disassembly of the left and right sealing shells 202, improving assembly efficiency. The snap-fit assembly 303 ensures a firm connection between the left and right sealing shells 202, preventing loosening or detachment during operation.
[0043] The vacuum assembly 204 includes a nut 2041-2 fixed to the surface of the seal, a threaded rod 2041-1 rotatable on the inner surface of the nut 2041-2, and a vacuum tube 2041 fixed to the surface of the threaded rod 2041-1. The diameter of the cross-section of the vacuum tube 2041 is called the tube diameter. By rotating the threaded rod 2041-1 on the nut 2041-2, the vacuum tube 2041 can be installed on the seal.
[0044] The vacuum cleaner cylinder 2041 has several suction cone holes 2042 on its surface. These suction cone holes 2042 are arranged in a linear array around the surface of the vacuum cleaner cylinder 2041, and the cross-section of each suction cone hole 2042 is in the shape of an equilateral trapezoid. The equilateral trapezoidal shape of the suction cone holes 2042 results in a larger suction area and higher suction efficiency. The linear array arrangement ensures uniform suction and avoids insufficient or excessive suction in certain areas.
[0045] The opening of the suction cone 2042 gradually decreases in size from the outside to the inside along the cylinder diameter and is not completely closed. An inclined groove 2043 is formed on the surface of the suction cone 2042, and the end of the suction cone 2042 located outside the suction cylinder 2041 is designed as an arc surface 2044. The opening direction and the inclined groove 2043 design guide airflow more smoothly into the suction cylinder 2041, improving suction efficiency. The arc surface 2044 design reduces airflow resistance at the inlet of the suction cone 2042, lowering energy consumption.
[0046] The auxiliary component 205 includes a fan blade 205-1 fixed to the surface of the rotating shaft 102 and an absorption plate 205-2 rotating on the surface of the rotating shaft 102. The fan blade 205-1 is driven to rotate by the rotating shaft 102, thereby forming a fan structure within the seal. The airflow generated by the rotation of the fan blade 205-1 can draw dust from the working environment of the grinder into the absorption plate 205-2 through the dust suction cylinder 2041, awaiting subsequent processing. In addition, the absorption plate 205-2 is divided into two parts, which are fixed to the left connecting plate 302 and the right connecting plate 301 respectively, and close together with the sealing.
[0047] During use, the power to motor 103 is turned on, and motor 103 starts to work, driving the rotation of shaft 102. Shaft 102 drives the grinding head 105 to grind the surface of the flat glazed ceramic tile. A large amount of dust is generated during the grinding process. At this time, shaft 102 drives fan blade 205-1 to rotate. The shaft 102 drives fan blade 205-1 to rotate, forming a fan structure through the sealing component. The wind force generated when fan blade 205-1 rotates can suck the dust in the surrounding environment of the grinder into the dust collection cylinder 2041 and adsorb it onto the absorption plate 205-2 for subsequent processing.
[0048] During the vacuuming process of the vacuum cleaner 2041, the traditional rectangular suction port is adjusted to an equilateral trapezoid with a wider outer edge and a narrower inner edge. The internal space of the suction port gradually contracts from the inlet to the inside, forcing the incoming airflow to accelerate and creating a stronger negative pressure area within the suction port, thereby directly improving the dust adsorption capacity. At the same time, the inclined groove 2043 on the surface of the suction cone 2042 guides the airflow to flow along a specific angle, causing the airflow to actively concentrate towards the center of the cone, further enhancing the concentration effect of negative pressure and making the suction range more efficient. The arc surface 2044 design at the cone inlet reduces friction loss caused by changes in airflow direction through a smooth transition, avoiding energy loss. Ultimately, while reducing energy consumption, the synergistic effect of airflow acceleration, enhanced negative pressure, and reduced resistance achieves a simultaneous improvement in dust absorption and suction efficiency.
[0049] It reduces the graininess, uneven gloss, and color difference on the surface of tiles, improving the appearance quality of the product. At the same time, it reduces the threat of dust to the health of operators, reduces secondary pollution and equipment blockage caused by dust escape, and achieves efficient, energy-saving, and environmentally friendly dust collection.
[0050] Example 2, refer to Figure 1 - Figure 5This is the second embodiment of the present invention. This embodiment differs from the first embodiment in that: the surface of the dust collection cylinder 2041 has a ventilation groove 2045; a fixed shaft 2046 is fixed inside the dust collection cylinder 2041; a connecting plate 2047 is rotatably mounted on the surface of the fixed shaft 2046; two arc-shaped blades 2048 are fixed at both ends of the connecting plate 2047, and the opening directions of the two arc-shaped blades 2048 are opposite. During rotation, the blades can continuously and efficiently guide the airflow, forming a more orderly and stable airflow field, reducing airflow turbulence, and making the airflow distribution inside the dust collection cylinder 2041 more uniform, thereby improving the ability to capture and collect dust in the working environment and enhancing the dust collection effect.
[0051] During use, the airflow generated by the rotation of the fan blade 205-1 creates a pressure difference with the outside air entering the dust collection cylinder 2041 through the ventilation slot 2045. When the airflow enters the dust collection cylinder 2041 through the ventilation slot 2045, the two arc-shaped blades 2048, with their openings facing opposite directions, will drive the connecting plate 2047 to rotate around the fixed axis 2046. During rotation, the connecting plate 2047 can continuously and efficiently guide the airflow, forming a stable and orderly airflow field inside the dust collection cylinder 2041, enhancing the internal negative pressure, significantly improving the dust adsorption capacity, increasing dust collection efficiency, and reducing the dust content in the surrounding environment of the grinder. At the same time, the orderly airflow can effectively reduce airflow turbulence and dust escape, preventing dust from accumulating near the opening of the dust collection cylinder 2041 and causing overflow, ensuring a stable and efficient dust collection process, significantly improving the dust collection effect and enhancing the anti-overflow performance.
[0052] The remaining structure is the same as that in Example 1.
[0053] Example 3, referring to Figure 1 - Figure 9 This is the third embodiment of the present invention. The difference between this embodiment and the second embodiment is that the snap-fit assembly 303 includes a support column 3031 fixed on the right connecting plate 301, a snap-fit ball 3032 fixed on the top of the support column 3031, and a snap-fit sleeve 3033 movably connected to the surface of the snap-fit ball 3032.
[0054] Compared to Embodiment 2, further, an adjusting block 3035 is fixed to the surface of the snap-fit sleeve 3033, and a positioning ring 3034 is fixed to the surface of the adjusting block 3035. One end of the positioning ring 3034 is fixed to the inside of the left connecting plate 302. Simply installing the snap-fit sleeve 3033 onto the snap-fit ball 3032 is sufficient to fix the left connecting plate 302 and the right connecting plate 301, achieving sealing. The movable connection design between the snap-fit ball 3032 and the snap-fit sleeve 3033 allows for initial fixing simply by fitting the snap-fit sleeve 3033 onto the snap-fit ball 3032, making the operation simple and quick. The cooperation between the adjusting block 3035 and the positioning ring 3034 allows for fine-tuning of the compression of the seal during installation, ensuring the seal operates in optimal condition and improving the sealing effect. The robust connection structure provided by the snap-fit assembly 303 effectively prevents the seal from loosening or falling off due to external factors such as vibration and impact, improving the reliability of the seal.
[0055] Furthermore, it also includes,
[0056] The atomizing structure 600 includes a liquid storage tank 601 fixed on a fixed plate 101 and an atomizing nozzle 602 fixed on the fixed plate 101. The atomizing nozzle 602 is connected to the liquid storage tank 601 through a pressurized pipe, which is located inside the fixed plate 101. The spray direction of the atomizing nozzle 602 is perpendicular to the fixed plate 101 and upwards. It is used to settle dust at high altitudes and reduce the dust content in the air. The working principle of this part is prior art and can be clearly understood by those skilled in the art. It will not be described in detail here. After the settled dust dries, it awaits secondary recycling treatment by the dust collection component 204.
[0057] One end of the rotating shaft 102 is equipped with a motor 103, and the other end of the rotating shaft 102 is fixed with a grinding head 105. A fixing bracket 104 is fixed to the surface of the motor 103.
[0058] Furthermore, sliders 401 are fixed at both ends of the fixed plate 101, a drive screw 402 slides on the surface of the slider 401, a slide rail 403 slides on the surface of the slider 401, anti-detachment blocks 404 are fixed at both ends of the slide rail 403, a motor 405 rotates at one end of the drive screw 402, and a mounting plate 406 is fixed on the surface of the slide rail 403.
[0059] Mounting plate 406 has a mounting plate 501 fixed to its surface, a bracket 502 fixed to its surface, and a data control box 503 fixed to its surface.
[0060] During use, motor 103 is securely mounted via bracket 104. Its output drives shaft 102 to rotate, causing grinding head 105 at the other end of shaft 102 to rotate at high speed for grinding the tile surface. Simultaneously, sliders 401 fixed at both ends of mounting plate 101 slide in conjunction with slide rail 403. Anti-detachment blocks 404 at both ends of slide rail 403 limit the stroke of sliders 401. Driven screw 402 rotates under the drive of motor 405, pushing slider 401 to reciprocate along slide rail 403 via threaded connection. This, in turn, moves mounting plate 101 and its grinding module as a whole, achieving... The grinding head 105 has planar displacement on the workpiece surface; in addition, the mounting plate 406 fixed on the surface of the slide rail 403 serves as a support platform, and the placement plate 501 fixed on it is used to support the workpiece to be processed or auxiliary equipment. The bracket 502 on the surface of the placement plate 501 further fixes the data control box 503. The data control box 503 can monitor the operating status of motor 103 and motor 205 in real time, and receive operation commands to coordinate the linkage between the rotation and movement modules of the grinding head 105 to complete the automated grinding process of the workpiece. The working principle of this part is the prior art, which can be clearly understood by those skilled in the art, and will not be described in detail here.
[0061] The remaining structure is the same as that in Example 2.
[0062] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.
Claims
1. A polishing device for wear-resistant pure flat enamel tiles, characterized by: Including, The polishing structure (100) comprises a fixed plate (101) and a rotating shaft (102) rotating inside the fixed plate (101); The dust collection structure (200) comprises a sealing element movably connected to the surface of the rotating shaft (102), a dust collection assembly (204) fixed to the sealing element, and an auxiliary assembly (205) fixed to the surface of the rotating shaft (102) and located inside the sealing element; The sealing element comprises a left sealing shell (201) rotating on the surface of the rotating shaft (102) and a right sealing shell (202) rotating on the surface of the rotating shaft (102); and The clamping structure (300) comprises a right clamping plate (301) fixed to the side of the right sealing shell (202), a left clamping plate (302) fixed to the side of the left sealing shell (201), and a clamping assembly (303) fixed to the surface of the right clamping plate (301).
2. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 1, characterized in that: The dust collection assembly (204) comprises a nut (2041-2) fixed to the surface of the sealing element, a threaded rod (2041-1) rotating on the inner surface of the nut (2041-2), and a dust collection cylinder (2041) fixed to the surface of the threaded rod (2041-1), wherein the cross-sectional diameter of the dust collection cylinder (2041) is referred to as the cylinder diameter.
3. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 2, characterized in that: A plurality of dust collection cone holes (2042) are formed on the surface of the dust collection cylinder (2041), and the plurality of dust collection cone holes (2042) are arranged in a linear array on the surface of the dust collection cylinder (2041), and the cross-section of the dust collection cone hole (2042) is in the shape of an isosceles trapezoid.
4. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 3, characterized in that: The opening direction of the dust collection cone hole (2042) gradually decreases from the outside to the inside along the cylinder diameter direction, and is not in a closed state, and a slant groove (2043) is formed on the surface of the dust collection cone hole (2042), and one end of the dust collection cone hole (2042) located on the outside of the dust collection cylinder (2041) is provided as an arc surface (2044).
5. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 4, characterized in that: An air passage (2045) is formed on the surface of the dust collection cylinder (2041), a fixed shaft (2046) is fixed inside the dust collection cylinder (2041), a connecting plate (2047) is rotatingly arranged on the surface of the fixed shaft (2046), two arc-shaped blades (2048) are fixed at both ends of the connecting plate (2047), and the opening directions of the two arc-shaped blades (2048) are opposite.
6. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 5, characterized in that: The auxiliary assembly (205) comprises a fan blade (2051) fixed to the surface of the rotating shaft (102) and an absorption plate (2052) rotating on the surface of the rotating shaft.
7. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 6, characterized in that: The clamping assembly (303) comprises a support column (3031) fixed to the right clamping plate (301), a clamping ball (3032) fixed to the top end of the support column (3031), and a clamping sleeve (3033) movably connected to the surface of the clamping ball (3032).
8. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 7, characterized in that: An adjusting block (3035) is fixed to the surface of the clamping sleeve (3033), a positioning ring (3034) is fixed to the surface of the adjusting block (3035), and one end of the positioning ring (3034) is fixed to the inside of the left clamping plate (302).
9. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 8, characterized in that: Further comprising, The atomization structure (600) comprises a liquid storage tank (601) fixed on the fixed plate (101), and an atomization nozzle (602) fixed on the fixed plate (101). One end of the rotating shaft (102) is rotatably provided with a motor (103), and the other end of the rotating shaft (102) is fixedly provided with a polishing head (105); the surface of the motor (103) is fixedly provided with a fixing frame (104).
10. The polishing apparatus for wear-resistant pure flat enamel tiles according to claim 9, characterized in that: Both ends of the fixed plate (101) are fixedly provided with sliding blocks (401); the surface of each sliding block (401) is slidably provided with a driving screw (402); the surface of each sliding block (401) is slidably provided with a sliding rail (403); both ends of each sliding rail (403) are fixedly provided with anti-coming-off blocks (404); one end of the driving screw (402) is rotatably provided with a motor (405); the surface of the sliding rail (403) is fixedly provided with a mounting plate (406). The surface of the mounting plate (406) is fixedly provided with a placing plate (501); the surface of the placing plate (501) is fixedly provided with a support (502); the surface of the support (502) is fixedly provided with a data control box (503).