Fireproof coating automatic coating mechanism
Patent Information
- Application Number
- CN202521679787.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-08
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-08-08
AI Technical Summary
[0003]现有技术中,防火涂料自动涂布机构的滚轴高度不可调节存在诸多弊端,由于不同施工场景中被涂布物体的表面高度和形状各异,固定高度的滚轴无法灵活适应,这会导致涂料涂布不均匀,出现厚薄不一的情况,影响防火性能的发挥,同时,在面对复杂形状的物体时,滚轴会无法精准接触,造成涂料浪费或涂布遗漏,此外,缺乏高度调节功能也限制了涂布机构的通用性,降低了设备的适用范围和工作效率,难以满足多样化施工需求
[0013] 1. In existing technologies, the non-adjustable roller height of automatic fire-retardant coating mechanisms has many drawbacks. Because the surface height and shape of the objects to be coated vary in different construction scenarios, a fixed-height roller cannot flexibly adapt, leading to uneven coating thickness and affecting fire-retardant performance. Furthermore, the roller cannot accurately contact objects with complex shapes, resulting in paint waste or missed areas. In addition, the lack of height adjustment limits the versatility of the coating mechanism, reducing its applicability and efficiency, and making it difficult to meet diverse construction needs. To address these issues, this invention adopts an adjustable roller structure, significantly improving the height adjustment function. The roller can accurately adapt to objects with different surface heights and shapes, ensuring uniform coating and avoiding uneven thickness, thus fully utilizing the protective performance of the fire-retardant coating. Secondly, the roller can accurately contact objects with complex shapes, reducing paint waste and missed areas, improving paint utilization and construction quality. Furthermore, the versatility of the equipment is greatly improved, its applicability is wider, it can meet diverse construction needs, and improve work efficiency.
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Figure CN224724361U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of automatic coating mechanism technology, and in particular to an automatic coating mechanism for fireproof coating. Background Technology
[0002] An automated fire-retardant coating system is a device used for the efficient application of fire-retardant coatings. Through automated operation, it achieves uniform coating, significantly improving construction efficiency and quality. This system is typically equipped with rollers or sprayers, enabling it to quickly and evenly apply fire-retardant coatings to surfaces such as building structures and steel structures according to different construction needs. Its automated design reduces manual intervention and labor intensity while ensuring uniformity and consistency of coating, effectively enhancing the protective performance of the fire-retardant coating. Furthermore, some advanced coating systems also feature height adjustment and speed control functions, better adapting to construction objects of different shapes and sizes. Widely used in construction, industry, and other fields, it provides reliable protection for fire safety.
[0003] In existing technologies, the non-adjustable roller height of automatic fire-retardant coating mechanisms has many drawbacks. Due to the varying surface heights and shapes of objects to be coated in different construction scenarios, rollers with fixed heights cannot adapt flexibly. This leads to uneven coating, resulting in inconsistent thickness and affecting the fire-retardant performance. Furthermore, when dealing with objects with complex shapes, the rollers may not make precise contact, causing paint waste or missed areas. In addition, the lack of height adjustment also limits the versatility of the coating mechanism, reduces the applicability and efficiency of the equipment, and makes it difficult to meet diverse construction needs. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing an automatic fire-retardant coating mechanism.
[0005] To achieve the above objectives, this utility model adopts the following technical solution: an automatic fire-retardant coating application mechanism, including a workbench, a conveyor belt device on the top of the workbench, the conveyor belt device being driven by an external motor, support columns fixed on both sides of the workbench, two sliding grooves on one side of each of the two support columns, a first support frame on one side of each support column, two sliding blocks fixed on both sides of each first support frame, the sliding blocks sliding against the inner wall of the sliding groove, a second support frame fixed on one side of the first support frame, two first support plates fixed at the bottom of the second support frame, rollers rotatably connected to one side of each first support plate, the first support frame... A first sliding member is fixed at the bottom, and a second sliding member is slidably connected to the surface of the first sliding member. A drive base is fixed at the bottom of the second sliding member. A second support plate and a third support plate are fixed at the top of the workbench. Two sliding rods are fixed on one side of the third support plate, and the other ends of the two sliding rods are fixed to one side of the second support plate. A first lead screw is rotatably connected to one side of the third support plate, and the other end of the first lead screw is rotatably connected to one side of the second support plate. A first bevel gear is fixed to one end of the first lead screw, and a second bevel gear meshes with the surface of the first bevel gear. The second bevel gear is driven to rotate by a first motor, and the first motor is fixed to one side of the second support plate.
[0006] Preferably, the bottom of the worktable is provided with a support groove, and a support seat is slidably connected to the inner wall of the support groove. Multiple casters are fixed to the bottom of the support seat. A second lead screw is rotatably connected to the inner wall of the support groove, and the support seat is threaded onto the surface of the second lead screw. The second lead screw is driven to rotate by a second motor, which is fixed to the inner wall of the support groove. In the prior art, the automatic fire-retardant coating mechanism itself cannot be easily moved. This drawback brings many inconveniences to construction. Because the machine is fixed in a certain position and cannot be moved flexibly, construction personnel need to frequently disassemble and reinstall the equipment when facing large or scattered coating areas, which is time-consuming, labor-intensive, and inefficient. Furthermore, in complex construction environments, the equipment is difficult to quickly adjust its position to adapt to the coating needs of different areas, which can hinder the construction progress. This lack of mobility limits the applicability and convenience of the equipment, making it difficult to meet the requirements of modern efficient construction and increasing construction costs and labor intensity. To address these problems, this utility model adopts a simple moving structure. When movement is required, the second motor is started. Driven by the motor, the second lead screw rotates, causing the support seat on the threaded connection surface to move the caster wheel downwards. When the caster wheel fully contacts the ground and supports the machine, it can be moved, significantly improving construction efficiency and flexibility. The equipment can move quickly and easily between different areas without frequent disassembly and reinstallation, greatly saving time and labor costs. In complex construction environments, the machine can quickly adjust its position to adapt to various coating needs, ensuring smooth progress of construction. This improvement will enhance the applicability of the equipment, enabling it to better handle coating tasks in large or dispersed areas, meeting the requirements of modern high-efficiency construction, while reducing construction costs and labor intensity, providing a more efficient and convenient solution for fire-retardant coating construction.
[0007] Preferably, the roller is detachably connected to one side of the two first support plates. In the prior art, the non-detachable rollers of the automatic fire-retardant coating mechanism have many drawbacks. Because the rollers are fixedly connected to the equipment, repair and replacement are extremely inconvenient when the rollers are worn or damaged, requiring professional personnel, which is time-consuming, labor-intensive, and costly. Furthermore, non-detachable rollers are difficult to clean, making it difficult to completely remove residual coating, which can easily lead to coating accumulation and deterioration, affecting subsequent coating effects and equipment lifespan. This design lacks flexibility, making it impossible to replace rollers of different specifications according to different construction needs, limiting the equipment's versatility and adaptability, making it difficult to meet the requirements of diverse construction scenarios, and reducing costs. To enhance the equipment's usability and economic benefits, this utility model addresses these issues by employing a detachable roller connection. This makes roller replacement and maintenance more convenient, allowing for quick operation without the need for professional personnel, significantly saving time and costs. Secondly, the disassembled rollers are easy to thoroughly clean, effectively removing residual paint, preventing accumulation and deterioration, thereby extending equipment lifespan and ensuring coating quality. Furthermore, rollers of different specifications can be replaced, enabling the equipment to flexibly adapt to diverse construction needs, improving versatility and applicability, enhancing the equipment's economic benefits and usability, and better meeting the high-efficiency and diverse requirements of modern construction.
[0008] Preferably, both the sliding groove and the sliding block are trapezoidal in shape. This effectively enhances the stability and guidance of their cooperation. The trapezoidal structure allows the sliding block to fit more closely when moving in the sliding groove, effectively preventing deviation or shaking during sliding, thus ensuring the accuracy and reliability of the equipment operation. At the same time, the trapezoidal contact surface can distribute the force, reduce local wear, extend the service life of components, and improve the overall performance and durability of the equipment.
[0009] Preferably, the bottom of the workbench is provided with anti-slip grooves. This significantly enhances the friction between the workbench and the ground, effectively preventing the equipment from sliding or shifting due to slippery ground or external forces during use, thereby improving the stability and safety of the equipment. This anti-slip measure is particularly suitable for various complex construction environments, ensuring that the automatic fire-retardant coating mechanism remains stable during operation, avoiding uneven coating or construction accidents caused by equipment slippage, and ensuring construction quality and personnel safety.
[0010] Preferably, both the support groove and the support base are X-shaped. This significantly improves the stability and load-bearing capacity of the structure. The X-shaped geometry has excellent resistance to deformation in mechanics, effectively dispersing and bearing forces from all directions during equipment operation, ensuring the stability of the support components during long-term use. At the same time, this shape optimizes space utilization, making the overall structure of the equipment more compact, facilitating installation and maintenance, and further improving the performance and reliability of the automatic fire-retardant coating mechanism.
[0011] Preferably, the roller surface is smooth. This significantly reduces the frictional resistance between the roller and the fire-retardant coating, allowing the coating to flow and distribute more evenly on the roller surface, thereby improving the uniformity and consistency of the coating effect. The smooth surface also reduces coating residue, facilitates cleaning and maintenance, extends the service life of the roller, and ensures that the automatic fire-retardant coating mechanism maintains efficient and stable performance during long-term operation.
[0012] Beneficial effects:
[0013] 1. In existing technologies, the non-adjustable roller height of automatic fire-retardant coating mechanisms has many drawbacks. Because the surface height and shape of the objects to be coated vary in different construction scenarios, a fixed-height roller cannot flexibly adapt, leading to uneven coating thickness and affecting fire-retardant performance. Furthermore, the roller cannot accurately contact objects with complex shapes, resulting in paint waste or missed areas. In addition, the lack of height adjustment limits the versatility of the coating mechanism, reducing its applicability and efficiency, and making it difficult to meet diverse construction needs. To address these issues, this invention adopts an adjustable roller structure, significantly improving the height adjustment function. The roller can accurately adapt to objects with different surface heights and shapes, ensuring uniform coating and avoiding uneven thickness, thus fully utilizing the protective performance of the fire-retardant coating. Secondly, the roller can accurately contact objects with complex shapes, reducing paint waste and missed areas, improving paint utilization and construction quality. Furthermore, the versatility of the equipment is greatly improved, its applicability is wider, it can meet diverse construction needs, and improve work efficiency.
[0014] 2. In existing technologies, the automatic fire-retardant coating application mechanism itself cannot be easily moved, which brings many inconveniences to construction. Because the machine is fixed in a certain position and cannot be moved flexibly, construction personnel need to frequently disassemble and reinstall the equipment when facing large or scattered coating areas, which is time-consuming, labor-intensive, and inefficient. In addition, in complex construction environments, the equipment is difficult to quickly adjust its position to adapt to the coating needs of different areas, which will hinder the construction progress. This lack of mobility limits the applicability and convenience of the equipment, making it difficult to meet the requirements of modern efficient construction, and increasing construction costs and labor intensity. To address these problems, this utility model adopts a simple moving structure, which significantly improves construction efficiency and flexibility. The equipment can move quickly and conveniently between different areas without frequent disassembly and reinstallation, greatly saving time and labor costs. In complex construction environments, the machine can quickly adjust its position to adapt to various coating needs, ensuring the smooth progress of construction. This improvement will enhance the applicability of the equipment, enabling it to better handle coating tasks in large or scattered areas, meet the requirements of modern efficient construction, and reduce construction costs and labor intensity, providing a more efficient and convenient solution for fire-retardant coating construction.
[0015] 3. In existing technologies, the non-removable rollers of automatic fire-retardant coating mechanisms have many drawbacks. Because the rollers are fixedly connected to the equipment, repair and replacement are extremely inconvenient when the rollers wear out or are damaged. This requires professional personnel, is time-consuming, labor-intensive, and costly. Furthermore, cleaning non-removable rollers is difficult, making it hard to completely remove residual coating, which can lead to coating accumulation and deterioration, affecting subsequent coating effects and equipment lifespan. This design lacks flexibility, making it impossible to replace rollers of different specifications according to different construction needs, limiting the equipment's versatility and adaptability, and making it difficult to meet the requirements of diverse construction scenarios. The reduced usability and economic benefits of the equipment have led to this problem. To address this issue, this utility model adopts a detachable roller connection, making roller replacement and maintenance more convenient. It can be operated quickly without professional personnel, greatly saving time and costs. Secondly, the disassembled roller is easy to clean thoroughly, effectively removing residual paint, preventing accumulation and deterioration, thereby extending the service life of the equipment and ensuring coating quality. In addition, rollers of different specifications can be replaced, allowing the equipment to flexibly adapt to diverse construction needs, improving versatility and applicability, enhancing the economic benefits and usability of the equipment, and better meeting the high-efficiency and diversified requirements of modern construction. Attached Figure Description
[0016] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0017] Figure 2 This is a three-dimensional structural diagram of the simplified movable structure of this utility model;
[0018] Figure 3 This is an exploded view of the roller height adjustable structure of this utility model;
[0019] Figure 4 This is an exploded view of the roller height adjustable structure drive device of this utility model;
[0020] Figure 5 This is a cross-sectional view of the simplified movable structure of this utility model.
[0021] Legend:
[0022] 1. Workbench; 101. Conveyor belt device; 102. Support column; 103. Sliding groove; 104. First support frame; 105. Sliding block; 106. Second support frame; 107. First support plate; 108. Roller; 109. First sliding member; 110. Second sliding member; 111. Drive base; 112. Second support plate; 113. Third support plate; 114. First lead screw; 115. Sliding rod; 116. First bevel gear; 117. Second bevel gear; 118. First motor; 2. Support groove; 201. Support seat; 202. Universal wheel; 203. Second lead screw; 204. Second motor. Detailed Implementation
[0023] To make the technical means, creative features, and achieved objectives and effects of this utility model easier to understand, the present utility model is further described below with reference to specific embodiments and accompanying drawings. However, the following embodiments are merely preferred embodiments of this utility model and not all of them. Other embodiments obtained by those skilled in the art based on the embodiments described in the implementation plan without creative effort are all within the protection scope of this utility model.
[0024] The specific embodiments of this utility model are described below with reference to the accompanying drawings. Specific implementation examples:
[0026] Reference Figure 1-5An automatic fire-retardant coating application mechanism includes a work platform 1. A conveyor belt device 101 is mounted on top of the work platform 1, driven by an external motor. Support columns 102 are fixed on both sides of the work platform 1. Two sliding grooves 103 are formed on one side of each support column 102. A first support frame 104 is mounted on one side of each support column 102. Two sliding blocks 105 are fixed on both sides of the first support frame 104, sliding against the inner wall of the sliding grooves 103. A second support frame 106 is fixed on one side of the first support frame 104. Two first support plates 107 are fixed to the bottom of the second support frame 106. A roller 108 is rotatably connected to one side of each first support plate 107. A first sliding member 109 is fixed to the bottom of the first support frame 104. A second sliding member 110 is slidably connected to the surface of part 109. A drive base 111 is fixed to the bottom of the second sliding member 110. A second support plate 112 and a third support plate 113 are fixed to the top of the workbench 1. Two sliding rods 115 are fixed to one side of the third support plate 113. The other end of the two sliding rods 115 is fixed to one side of the second support plate 112. A first lead screw 114 is rotatably connected to one side of the third support plate 113. The other end of the first lead screw 114 is rotatably connected to one side of the second support plate 112. A first bevel gear 116 is fixed to one end of the first lead screw 114. A second bevel gear 117 meshes with the surface of the first bevel gear 116. The second bevel gear 117 is driven to rotate by a first motor 118. The first motor 118 is fixed to one side of the second support plate 112. In existing technologies, the non-adjustable roller height of automatic fire-retardant coating mechanisms presents numerous drawbacks. Because the surface height and shape of the objects being coated vary in different construction scenarios, a fixed-height roller cannot adapt flexibly. This leads to uneven coating application, resulting in inconsistent thickness and affecting fire-retardant performance. Furthermore, when dealing with objects with complex shapes, the roller may fail to make precise contact, causing paint waste or missed areas. In addition, the lack of height adjustment limits the versatility of the coating mechanism, reducing its applicability and efficiency, and making it difficult to meet diverse construction needs. To address this issue, the present invention employs an adjustable roller structure. When roller height adjustment is required, the first motor 118 is activated. Driven by the first motor 118, the second bevel gear 117 rotates, which in turn drives the first bevel gear 116 to rotate, causing the first lead screw 114 to rotate. This causes the drive base 111 to drive the second sliding member 110 to slide on the surface of the first sliding member 109. Due to its inclined design, the first sliding member 109 causes the first support frame 104 to drive the second support frame 106 to move upward, thereby achieving height adjustment of the roller 108.
[0027] The bottom of the worktable 1 is provided with a support groove 2. A support seat 201 is slidably connected to the inner wall of the support groove 2. Multiple casters 202 are fixed to the bottom of the support seat 201. A second lead screw 203 is rotatably connected to the inner wall of the support groove 2. The support seat 201 is threaded to the surface of the second lead screw 203. The second lead screw 203 is driven to rotate by a second motor 204. The second motor 204 is fixed to the inner wall of the support groove 2. In existing technologies, the automatic fire-retardant coating application mechanism itself cannot be easily moved, which brings many inconveniences to construction. Because the machine is fixed in a certain position and cannot be moved flexibly, construction personnel need to frequently disassemble and reinstall the equipment when facing large or scattered coating areas, which is time-consuming, labor-intensive, and inefficient. In addition, in complex construction environments, the equipment is difficult to quickly adjust its position to adapt to the coating needs of different areas, which will hinder the construction progress. This lack of mobility limits the applicability and convenience of the equipment, making it difficult to meet the requirements of modern efficient construction, and increasing construction costs and labor intensity. To address these problems, this utility model adopts a simple moving structure. When movement is required, the second motor 204 is started. Driven by the second motor 204, the second lead screw 203 rotates, causing the support seat 201 on the threaded connection surface to drive the caster wheel 202 downward. When the caster wheel 202 is in full contact with the ground and supports the machine, the machine can be pushed to move.
[0028] The roller 108 is detachably connected to one side of the two first support plates 107. In the prior art, the non-detachable rollers of the automatic fire-retardant coating mechanism have many drawbacks. Because the rollers are fixedly connected to the equipment, repair and replacement are extremely inconvenient when the rollers are worn or damaged, requiring professional personnel, which is time-consuming, labor-intensive, and costly. Furthermore, the non-detachable rollers are difficult to clean, making it difficult to completely remove residual coating, which can easily lead to coating accumulation and deterioration, affecting subsequent coating effects and equipment lifespan. This design lacks flexibility, making it impossible to replace rollers of different specifications according to different construction needs, limiting the equipment's versatility and adaptability, making it difficult to meet the requirements of diverse construction scenarios, and reducing the equipment's use value and economic benefits. To address these problems, this utility model adopts a detachable roller connection.
[0029] The sliding groove 103 and the sliding block 105 are both trapezoidal in shape, which effectively enhances the stability and guidance of their cooperation. The trapezoidal structure allows the sliding block to fit more closely when moving in the sliding groove, effectively preventing deviation or shaking during sliding, thus ensuring the accuracy and reliability of the equipment operation. Simultaneously, the trapezoidal contact surface can distribute force, reduce localized wear, extend the service life of components, and improve the overall performance and durability of the equipment. The bottom of the worktable 1 has anti-slip grooves, which significantly enhance the friction between the worktable and the ground, effectively preventing the equipment from sliding or shifting due to slippery ground or external forces during use, thereby improving the stability and safety of the equipment. This anti-slip measure is particularly suitable for various complex construction environments, ensuring that the automatic fire-retardant coating mechanism remains stable during operation, avoiding uneven coating or construction accidents caused by equipment slippage, and guaranteeing construction quality and... For personnel safety, both the support chute 2 and the support base 201 are X-shaped, which significantly improves the stability and load-bearing capacity of the structure. The X-shaped geometry has excellent anti-deformation performance in mechanics, and can effectively disperse and bear forces from all directions during equipment operation, ensuring that the support components remain stable during long-term use. At the same time, this shape can also optimize space utilization, making the overall structure of the equipment more compact, facilitating installation and maintenance, and further improving the performance and reliability of the automatic fire-retardant coating mechanism. The roller 108 has a smooth surface, which can significantly reduce the frictional resistance between the roller and the fire-retardant coating, allowing the coating to flow and distribute more evenly on the roller surface, thereby improving the uniformity and consistency of the coating effect. The smooth surface can also reduce coating residue, making it easier to clean and maintain, extending the service life of the roller, and ensuring that the automatic fire-retardant coating mechanism maintains efficient and stable performance during long-term operation.
[0030] The working principle of this utility model is as follows: When the roller height needs to be adjusted, the first motor 118 is started. Driven by the first motor 118, the second bevel gear 117 rotates, which in turn drives the first bevel gear 116 to rotate, causing the first lead screw 114 to rotate. This causes the drive base 111 to drive the second sliding member 110 to slide on the surface of the first sliding member 109. Due to its inclined design, the first sliding member 109 causes the first support frame 104 to drive the second support frame 106 to move upward, thereby realizing the height adjustment of the roller 108. When movement is required, the second motor 204 is started. Driven by the second motor 204, the second lead screw 203 rotates, causing the support seat 201 on the threaded connection surface to drive the universal wheel 202 to move downward. When the universal wheel 202 is in full contact with the ground and supports the machine, the machine can be pushed to move.
[0031] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0032] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. An automatic fire-retardant coating application mechanism, comprising a workbench (1), wherein a conveyor belt device (101) is provided on the top of the workbench (1), and the conveyor belt device (101) is driven by an external motor, characterized in that: The workbench (1) is fixed with support columns (102) on both sides. Two sliding grooves (103) are opened on one side of each of the two support columns (102). A first support frame (104) is provided on one side of the support column (102). Two sliding blocks (105) are fixed on both sides of the first support frame (104). The sliding blocks (105) slide on the inner wall of the sliding groove (103). A second support frame (106) is fixed on one side of the first support frame (104). Two first support plates (107) are fixed at the bottom of the second support frame (106). A roller (108) is rotatably connected to one side of the first support plate (107). A first sliding member (109) is fixed at the bottom of the first support frame (104). A second sliding member (110) is slidably connected to the surface of the first sliding member (109). 10) A drive base (111) is fixed at the bottom. A second support plate (112) and a third support plate (113) are fixed at the top of the workbench (1). Two sliding rods (115) are fixed on one side of the third support plate (113). The other end of the two sliding rods (115) is fixed to one side of the second support plate (112). A first lead screw (114) is rotatably connected to one side of the third support plate (113). The other end of the first lead screw (114) is rotatably connected to one side of the second support plate (112). A first bevel gear (116) is fixed to one end of the first lead screw (114). A second bevel gear (117) meshes with the surface of the first bevel gear (116). The second bevel gear (117) is driven to rotate by a first motor (118). The first motor (118) is fixed to one side of the second support plate (112).
2. The automatic fire-retardant coating application mechanism according to claim 1, characterized in that: The worktable (1) has a support groove (2) at the bottom. A support seat (201) is slidably connected to the inner wall of the support groove (2). Multiple casters (202) are fixed at the bottom of the support seat (201). A second lead screw (203) is rotatably connected to the inner wall of the support groove (2). The support seat (201) is threaded to the surface of the second lead screw (203). The second lead screw (203) is driven to rotate by a second motor (204). The second motor (204) is fixed to the inner wall of the support groove (2).
3. The automatic fire-retardant coating application mechanism according to claim 1, characterized in that: The roller (108) is detachably connected to one side of the two first support plates (107).
4. The automatic fire-retardant coating application mechanism according to claim 1, characterized in that: The sliding groove (103) is trapezoidal in shape, and the sliding block (105) is trapezoidal in shape.
5. The automatic fire-retardant coating application mechanism according to claim 1, characterized in that: The bottom of the workbench (1) is provided with anti-slip texture.
6. The automatic fire-retardant coating application mechanism according to claim 2, characterized in that: Both the support groove (2) and the support base (201) are X-shaped.
7. The automatic fire-retardant coating application mechanism according to claim 1, characterized in that: The surface of the roller (108) is smooth.