An environmentally friendly art paint and method of use
By combining water-based resins, pigments, and other ingredients, and using a feeding device, the problem of layered preparation of environmentally friendly water-based paints during construction has been solved, achieving efficient application and excellent performance of environmentally friendly artistic paints, including waterproofing, oil resistance, mildew resistance, and antibacterial properties.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ANHUI LANGDUN BUILDING MATERIALS TECH CO LTD
- Filing Date
- 2024-04-10
- Publication Date
- 2026-07-24
AI Technical Summary
Existing environmentally friendly water-based paints are not convenient to be mixed in layers during construction, and it is difficult to increase the strength after the paint is applied and formed. They also lack the flexibility to be applied properly.
It uses a combination of water-based resin, pigment, rosin resin, rheology modifier, film-forming agent, protective agent, defoamer and pure water. The rheology modifier improves rheological properties, the film-forming agent forms a protective layer, the protective agent provides anti-corrosion and anti-mildew properties, and the antibacterial agent provides antibacterial properties. A feeding device is used to achieve precise addition of the additives.
It achieves good flowability of environmentally friendly artistic paint during painting, and after molding, it has waterproof, oil-proof, mildew-proof and antibacterial properties, improves coating hardness and adhesion, reduces the amount of additives used, and meets the painting needs of different wall layers.
Smart Images

Figure CN118421202B_ABST
Abstract
Description
Technical Field
[0001] This invention mainly relates to the technical field of environmentally friendly artistic paint, specifically to an environmentally friendly artistic paint and its application method. Background Technology
[0002] Environmentally friendly artistic paint provides customers with the desired coating effect without containing irritating ingredients, thus bringing a good user experience.
[0003] According to patent application CN201910531569.3, a high-performance environmentally friendly water-based paint and its preparation method are disclosed. The environmentally friendly water-based paint is composed of the following raw materials in parts by weight: 500-1000 parts of water-based resin dispersion, 100-200 parts of deionized water, 5-15 parts of additives, 28-56 parts of film-forming aid, 5-30 parts of defoamer, 1-20 parts of thickener, and 3-10 parts of dispersant. The water-based paint provided by this invention exhibits excellent comprehensive performance in terms of acid and alkali resistance, abrasion resistance, and strength. Simultaneously, the water-based paint has good application tolerance, producing a glossy and smooth paint film surface on the coated object, less prone to various defects. Furthermore, the environmental performance of the water-based paint facilitates large-scale promotion and application. This invention also discloses a method for preparing a high-performance environmentally friendly water-based paint.
[0004] The paints in the aforementioned patents have excellent comprehensive properties such as acid and alkali resistance, abrasion resistance, and strength. At the same time, water-based paints have good application tolerance, but they are not convenient for layering during application and are not convenient for increasing the strength of the paint after it has been applied and formed. Summary of the Invention
[0005] Therefore, the purpose of this invention is to provide an environmentally friendly artistic paint and its application method to solve the technical problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: an environmentally friendly artistic paint, comprising the following components: water-based resin, pigment, rosin resin, rheology modifier, film-forming agent, protective agent, defoamer, and pure water.
[0007] Preferably, the rheology modifier is sodium alginate and bentonite, the film-forming agent is a protein film-forming agent, the protective agent is a preservative and mildew inhibitor and an antibacterial agent, the preservative and mildew inhibitor is an isothiazolinone derivative, and the antibacterial agent is metallic silver ions with zeolite as a carrier. In this preferred embodiment, the rheology modifier facilitates the modification of the rheological properties of the paint to meet the painting requirements of different wall layers, the film-forming agent facilitates the formation of a protective layer on the paint surface after the paint has been formed, thereby improving the waterproof and oil-proof properties of the formed paint, the preservative and mildew inhibitor achieves the preservative and mildew resistance of the paint, and the antibacterial agent achieves the antibacterial properties of the paint.
[0008] Preferably, the water-based resin accounts for 65%, the pigment accounts for 15%, the sodium alginate accounts for 1.5%, the bentonite accounts for 1.5%, the film-forming agent accounts for 2.5%, the preservative and mildew inhibitor accounts for 0.5%, the antibacterial agent accounts for 0.5%, the defoamer accounts for 0.5%, the rosin resin accounts for 3%, and the pure water accounts for 10%. In this preferred embodiment, the paint formulated with this method has good fluidity during application and good waterproof, oil-proof, mildew-proof, and antibacterial properties after molding.
[0009] Based on the above technical solution for an environmentally friendly artistic paint, a method for using the environmentally friendly artistic paint will also be provided, including the following steps: Step 1: Wall surface pretreatment; Clean the wall surface of dust. Step 2, Inner Layer Painting: Mix water-based resin, pigment, rosin resin, defoamer, and pure water to obtain initial paint material one. Add one-fifth of the initial paint material one to the mixing tank, and add the corresponding additives to the feeding device at the top of the mixing tank. The feeding device adds one-third of the film-forming agent to the mixing tank and mixes it with the initial paint material one to obtain the inner layer painting material. The wall surface can then be painted. After painting, allow it to air dry naturally to obtain the inner wall surface. Step 3, intermediate layer painting: Add three-fifths of the initial paint to the mixing bucket. The feeding device adds one-third of the film-forming agent, two-thirds of the sodium alginate, and two-thirds of the bentonite to the mixing bucket and mixes them with the initial paint in the mixing bucket to obtain the intermediate layer painting material. The wall can then be painted. After painting, let it air dry naturally to obtain the intermediate wall surface. Step 4: Outer layer painting; Add one-fifth of the initial paint to the mixing bucket. The feeding device adds the preservative and mildew inhibitor, antibacterial agent, one-third of the film-forming agent, one-third of the sodium alginate, and one-third of the bentonite to the mixing bucket and mixes them with the initial paint to obtain the outer layer painting material. The wall can then be painted. After painting, allow it to air dry naturally to obtain the finished wall surface.
[0010] Preferably, the feeding device includes a base tube sleeved on the top of the side wall of the mixing tank; a rotating tube rotatably connected to the top of the mixing tank at its bottom and rotatably connected to the top of the inner wall of the base tube and communicating with the base tube; a through hole passing through the side wall of the rotating tube; a plurality of limiting electromagnetic blocks arranged in a ring array on the side wall of the mixing tank and contacting the bottom of the rotating tube at their top; a rotating ring rotatably connected to the inner wall of the base tube; a base ring located inside the base tube and connected to the upper surface of the rotating ring at its bottom by a plurality of support columns; a plurality of material collection boxes arranged in a ring array on the base ring; an electromagnetic component located at the bottom of the base ring for driving the material collection boxes to move horizontally; a driving component located at the bottom of the inner wall of the base tube for driving the rotating ring to rotate; and a guide component located on the inner wall of the mixing tank and below the through hole. In this preferred embodiment, the feeding device facilitates the addition of an appropriate amount of additives to the initial paint according to the paint usage requirements, so as to meet the painting needs of different wall layers.
[0011] Preferably, the electromagnetic component includes a strip-shaped through hole passing through the base ring, a positioning block located at the bottom of the base ring and near the end of the strip-shaped through hole close to the mixing tank, two guide rods horizontally disposed on one side of the positioning block, a moving block whose top is connected to the bottom of the material container and whose bottom is slidably connected to the guide rods, a spring sleeved on the outer wall of the guide rods and located between the positioning block and the moving block, a supporting electromagnetic block disposed on the side wall of the positioning block and located between the two guide rods, and a driving electromagnetic block disposed at the bottom of the base ring and on the side of the moving block away from the positioning block. In this preferred embodiment, the electromagnetic component facilitates the movement of a suitable material container into the through hole for additive addition.
[0012] Preferably, the bottom of the inner wall of the container is provided with a discharge hole, and the bottom of the inner wall of the container is sloped. In this preferred embodiment, the sloped design of the bottom of the inner wall of the container and the design of the discharge hole facilitate the automatic removal of the additives from the container under the action of gravity.
[0013] Preferably, the driving component includes a toothed wall ring disposed at the bottom of the rotating ring, a driving motor disposed at the bottom of the inner wall of the base tube, and a toothed disc disposed at the actuating end of the driving motor and meshing with the toothed wall ring. In this preferred embodiment, the driving component facilitates the movement of the material container to be fed to correspond to the position of the through hole.
[0014] Preferably, the flow guiding component includes a plurality of locking blocks arranged in a ring array on the inner wall of the mixing tank, a sloping top flow guiding ring that engages the locking blocks, and a plurality of protrusions arranged in a ring array on the top of the sloping top flow guiding ring, the top of the protrusions being flush with the bottom of the through hole. In this preferred embodiment, the flow guiding component facilitates the flow guiding of the additive discharged from the material container, so as to ensure that the additive is evenly added to the mixing tank.
[0015] Preferably, the bottom of the mixing tank is connected to the base box via a rubber ring. The bottom of the mixing tank is equipped with a U-shaped frame located within the base box. A weighing sensor is located on the bottom inner wall of the base box, with its top connected to the bottom of the U-shaped frame. A power motor with its actuator extending into the mixing tank is located at the bottom of the mixing tank, and a stirring rod is located at the actuator end of the power motor. In this preferred embodiment, the weighing sensor facilitates the acquisition of the paint weight information within the mixing tank, and the power motor and stirring rod achieve uniform mixing of the paint and additives.
[0016] In summary, the present invention has the following main beneficial effects: The artistic paint of this invention has good fluidity during application and excellent waterproof, oil-proof, mildew-proof, and antibacterial properties after molding. The water-based resin in the paint can firmly adhere pigments and other additives together, while also improving the hardness, adhesion, and wear resistance of the coating. The thickener can change the rheological properties of the paint to meet different application needs. The film-forming agent facilitates the formation of a protective layer on the paint surface after molding, thereby improving the waterproof and oil-proof properties of the molded paint. The anti-corrosion and mildew-proof agent achieves the anti-corrosion and mildew-proof properties of the paint. The antibacterial agent achieves the antibacterial properties of the paint. The defoamer achieves the defoaming of the paint, effectively preventing air bubbles from affecting the painting quality during application. The rosin resin facilitates the improvement of the paint's antioxidant properties. When using the paint in this invention, it needs to be applied in three layers: inner, middle and outer. The inner layer is used to smooth out uneven and rough initial wall surfaces. The middle layer is the main layer of the paint, which perfectly expresses the decorative effect. The outer layer is the protective layer. The paint formulas for the inner, middle and outer layers are different, which effectively reduces the amount of additives used in the paint and makes the paint more environmentally friendly. During paint application, a feeding device allows for the addition of appropriate amounts of additives to the initial paint according to the paint's usage requirements, thus meeting the painting needs of different wall layers. The feeding device features a sloping bottom design on the inner wall of the feeding box and a discharge hole, which facilitates the automatic removal of additives from the feeding box under gravity. A drive component moves the feeding box to be added to correspond with the position of the through hole. An electromagnetic component moves the appropriate feeding box into the through hole for additive addition. A flow guiding component guides the additives discharged from the feeding box to ensure even addition to the mixing tank. A weighing sensor acquires the weight information of the paint in the mixing tank. A power motor and a stirring rod achieve uniform mixing of the paint and additives. Attached Figure Description
[0017] Figure 1 This is a flowchart of the paint application method of the present invention; Figure 2This is an isometric view of the mixing tank structure of the present invention; Figure 3 This is an exploded view of the mixing tank structure of the present invention; Figure 4 This is an exploded view of the feeding device structure of the present invention; Figure 5 This is an exploded view of the electromagnetic component structure of the present invention; Figure 6 This is a top view of the mixing tank structure of the present invention; Figure 7 This is a cross-sectional view of the overall structure of the present invention; Figure 8 This is an enlarged view of the structure at point A of the present invention.
[0018] Figure Descriptions: 10. Mixing tank; 11. Rubber ring; 12. Base box; 13. U-shaped frame; 14. Weighing sensor; 15. Power motor; 16. Mixing rod; 20. Feeding device; 21. Base tube; 22. Rotating tube; 221. Through hole; 222. Limiting electromagnetic block; 23. Rotating ring; 24. Base ring; 25. Material box; 251. Discharge hole; 26. Electromagnetic component; 261. Strip-shaped through hole; 262. Positioning block; 263. Guide rod; 264. Moving block; 265. Spring; 266. Supporting electromagnetic block; 267. Driving electromagnetic block; 27. Driving component; 271. Toothed wall ring; 272. Drive motor; 273. Toothed disc; 28. Flow guiding component; 281. Locking block; 282. Slanted top flow guiding ring; 283. Boss. Detailed Implementation
[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0020] The embodiments of the present invention will now be described. Example
[0021] In a preferred embodiment of the present invention, an environmentally friendly artistic paint comprises the following components: water-based resin, pigment, rosin resin, rheology modifier, film-forming agent, protective agent, defoamer, and pure water. The rheology modifier is sodium alginate and bentonite. The film-forming agent is a protein film-forming agent. The protective agent is a preservative and mildew inhibitor and an antibacterial agent. The preservative and mildew inhibitor is an isothiazolinone derivative. The antibacterial agent is metallic silver ions with zeolite as a carrier. The water-based resin accounts for 65%, the pigment accounts for 15%, the sodium alginate accounts for 1.5%, the bentonite accounts for 1.5%, the film-forming agent accounts for 2.5%, the preservative and mildew inhibitor accounts for 0.5%, the antibacterial agent accounts for 0.5%, the defoamer accounts for 0.5%, the rosin resin accounts for 3%, and the pure water accounts for 10%.
[0022] It should be noted that, in this embodiment, all raw materials used in the present invention are non-polluting substances. The water-based resin in the paint can firmly adhere pigments and other additives together, while also improving the hardness, adhesion, and wear resistance of the coating. Pigments can give the paint different colors and also improve its hiding power and aesthetics. Thickeners can change the rheological properties of the paint to meet different painting needs. Film-forming agents facilitate the formation of a protective layer on the paint surface after the paint is formed, thereby improving the waterproof and oil-proof properties of the formed paint. Anti-corrosion and anti-mildew agents achieve the anti-corrosion and anti-mildew properties of the paint. Antibacterial agents achieve the antibacterial properties of the paint. Defoamers defoam the paint, effectively preventing bubbles from affecting the painting quality during paint application. Rosin resin facilitates the improvement of the paint's antioxidant properties.
[0023] Based on the above embodiments and appendices Figure 1 , 2 As shown, a method for using environmentally friendly artistic paint will also be provided, including the following steps: Step 1: Wall surface pretreatment; Clean the wall surface of dust. Step 2, Inner Layer Painting: Mix water-based resin, pigment, rosin resin, defoamer, and pure water to obtain initial paint material one. Add one-fifth of the initial paint material one to the mixing tank 10, and add the corresponding additives to the feeding device 20 at the top of the mixing tank 10. The feeding device 20 adds one-third of the film-forming agent to the mixing tank 10 and mixes it with the initial paint material one to obtain the inner layer painting material. The wall surface can then be painted. After painting, allow it to air dry naturally to obtain the inner wall surface. Step 3, intermediate layer painting: Add three-fifths of the initial paint to the mixing tank 10. The feeding device 20 adds one-third of the film-forming agent, two-thirds of the sodium alginate, and two-thirds of the bentonite to the mixing tank 10 and mixes them with the initial paint in the mixing tank 10 to obtain the intermediate layer painting material. The wall can then be painted. After painting, let it air dry naturally to obtain the intermediate layer wall surface. Step 4: Outer layer painting; Add one-fifth of the initial paint to the mixing tank 10. The feeding device 20 adds the preservative and mildew inhibitor, antibacterial agent, one-third of the film-forming agent, one-third of the sodium alginate, and one-third of the bentonite to the mixing tank 10 and mixes them with the initial paint in the mixing tank 10 to obtain the outer layer painting material. The wall can then be painted. After painting, allow it to air dry naturally to obtain the finished wall surface.
[0024] It should be noted that in this embodiment, the water-based resin, pigment, rosin resin, defoamer and pure water are mixed according to the raw material components to obtain the initial paint. During painting, the inner layer consists of the initial paint and some film-forming agents, which has good rheological properties, which is conducive to the rapid painting of the inner layer and makes it easy to efficiently paint and smooth uneven and rough initial wall surfaces. The middle layer consists of initial paint, film-forming agent, sodium alginate and bentonite, and has good plasticity, resulting in good visual expression after molding. The outer layer consists of initial paint, anti-corrosion and anti-mildew agent, antibacterial agent, film-forming agent, sodium alginate and bentonite. The outer layer has good protective properties, and the paint surface has good protective properties. Furthermore, water-based resins can be freely changed according to the different objects being painted, such as acrylic resins, polyurethane resins, cellulose resins, etc.
[0025] Please refer to the appendix carefully. Figure 3-8As shown, in another preferred embodiment of the present invention, the feeding device 20 includes a base tube 21 sleeved on the top of the side wall of the mixing tank 10, a rotating tube 22 rotatably connected to the top of the mixing tank 10 at its bottom and rotatably connected to the top of the inner wall of the base tube 21 and communicating with the base tube 21, a through hole 221 passing through the side wall of the rotating tube 22, a plurality of limiting electromagnetic blocks 222 arranged in a ring array on the side wall of the mixing tank 10 and contacting the bottom of the rotating tube 22 at their top, a rotating ring 23 rotatably connected to the inner wall of the base tube 21, a base ring 24 located inside the base tube 21 and connected to the upper surface of the rotating ring 23 at its bottom by a plurality of support columns, and a plurality of material collection boxes 25 arranged in a ring array on the base ring 24. The base ring 24 has an electromagnetic component 26 at its bottom for driving the material container 25 to move horizontally; a driving component 27 located at the bottom of the inner wall of the base tube 21 for driving the rotating ring 23 to rotate; and a guide component 28 located on the inner wall of the mixing tank 10 and below the through hole 221. The electromagnetic component 26 includes a strip-shaped through hole 261 passing through the base ring 24; a positioning block 262 located at the bottom of the base ring 24 and near one end of the strip-shaped through hole 261 near the mixing tank 10; two guide rods 263 horizontally arranged on one side of the positioning block 262; a moving block 264 connected at the top to the bottom of the material container 25 and slidably connected to the guide rods 263 at the bottom; and a guide component 28 sleeved on the outer wall of the guide rods 263 and located below the through hole 221. The spring 265 between the positioning block 262 and the moving block 264, the supporting electromagnetic block 266 located on the side wall of the positioning block 262 and between the two guide rods 263, and the driving electromagnetic block 267 located at the bottom of the base ring 24 and on the side of the moving block 264 away from the positioning block 262, the bottom of the inner wall of the material container 25 is provided with a discharge hole 251, the bottom of the inner wall of the material container 25 is inclined, the driving component 27 includes a toothed wall ring 271 located at the bottom of the rotating ring 23, a driving motor 272 located at the bottom of the inner wall of the base tube 21, and a toothed disc 273 located at the actuating end of the driving motor 272 and meshing with the toothed wall ring 271, and the flow guiding component 28 includes an annular ring. Multiple locking blocks 281 are arrayed on the inner wall of the mixing tank 10, and a sloping top guide ring 282 is locked onto the locking blocks 281. Multiple protrusions 283 are arranged in a ring array on the top of the sloping top guide ring 282. The top of the protrusions 283 is flush with the bottom of the through hole 221. The bottom of the mixing tank 10 is connected to the base box 12 through a rubber ring 11. The bottom of the mixing tank 10 is provided with a U-shaped frame 13 located inside the base box 12. A weighing sensor 14 is provided on the bottom of the inner wall of the base box 12. The top of the weighing sensor 14 is connected to the bottom of the U-shaped frame 13. The bottom of the mixing tank 10 is provided with a power motor 15 whose execution end extends into the mixing tank 10. The execution end of the power motor 15 is provided with a stirring rod 16.
[0026] It should be noted that in this embodiment, when the mixing tank 10 and the feeding device 20 are working, the initial paint is added to the mixing tank 10, and various additives are added to the respective material boxes 25 in the feeding device 20. The controller receives the total amount information measured by the weighing sensor 14 and triggers the buzzer on the outer wall of the mixing tank 10 to provide a prompt when the weight of the initial paint or one of the additives reaches the set value. After the material is discharged, the feeding device 20 adds the additives one by one to the mixing tank 10. The actuator of the power motor 15 drives the stirring rod 16 to rotate. The stirring rod 16 mixes the raw materials evenly. When the feeding device 20 is working, the flip cover plate on the top of the base tube 21 is opened to add the additives. When the additives are added, the drive component 27 drives the rotating ring 23 and the base ring 24 to rotate, so as to move the corresponding material box 25 to the position corresponding to the through hole 221. The electromagnetic component 26 drives the material box 25 to move until the material box 25 moves into the inner ring of the rotating tube 22 through the through hole 221. When the limit electromagnetic block 222 is de-energized, the magnetic attraction limit on the rotating tube 22 is canceled. At this time, the drive component 27 can drive the rotating tube 22 to rotate through the material box 25, and the additive is discharged into the mixing tank 10 through the discharge hole 251. When the additive is discharged through the discharge hole 251, when the discharge hole 251 corresponds to the position of the boss 283, the boss 283 blocks the discharge hole 251, preventing the additive from being discharged. When the discharge hole 251 moves between two adjacent bosses 283, the additive falls onto the upper surface of the inclined top guide ring 282 and enters the mixing tank 10 under the guidance of the inclined top guide ring 282. The cooperation between the inclined top guide ring 282 and the boss 283 achieves the uniform addition of the additive. After rotating a unit number of times, the addition of the additive is completed. The inclined top guide ring 282 is connected to the mixing tank 10 through the locking block 281 for easy disassembly. Furthermore, when the electromagnetic component 26 is working, the movable block 264 is magnetic, driving the electromagnetic block 267 to generate a repulsive force with the same polarity as the movable block 264, and supporting the electromagnetic block 266 to generate an attractive force with the opposite polarity to the movable block 264. Under the action of the magnetic force, the movable block 264 slides on the guide rod 263 and magnetically attracts the supporting electromagnetic block 266. When the movable block 264 moves, it drives the material container 25 to move. When the material container 25 is reset, the driving electromagnetic block 267 and the supporting electromagnetic block 266 are de-energized, and the spring 265 drives the movable block 264 to reset. Furthermore, when the drive component 27 is working, the drive motor 272 drives the rotating ring 23 to rotate through the gear disk 273 and the tooth wall ring 271.
[0027] The working principle of this invention is as follows: All electrical components in this invention are triggered to operate by a controller; Before applying paint, the wall surface must first be cleaned of dust. After completion, water-based resin, pigment, rosin resin, defoamer and pure water are mixed to obtain initial paint. One-fifth of the initial paint is added to the mixing tank 10, and the corresponding additives are added to the feeding device 20 at the top of the mixing tank 10. The feeding device 20 adds one-third of the film-forming agent to the mixing tank 10 and mixes it with the initial paint in the mixing tank 10 to obtain the inner layer painting material, which can then be used to paint the wall. After painting, it is allowed to air dry naturally to obtain the inner wall surface. After completion, add three-fifths of the initial paint to the mixing tank 10. The feeding device 20 adds one-third of the film-forming agent, two-thirds of the sodium alginate and two-thirds of the bentonite to the mixing tank 10 and mixes them with the initial paint in the mixing tank 10 to obtain the intermediate layer paint. The wall can then be painted. After painting, let it air dry naturally to obtain the intermediate layer wall surface. After completion, one-fifth of the initial paint is added to the mixing tank 10. The feeding device 20 adds the preservative and mildew inhibitor, antibacterial agent, one-third of the film-forming agent, one-third of the sodium alginate and one-third of the bentonite to the mixing tank 10 and mixes them with the initial paint in the mixing tank 10 to obtain the outer layer paint. The wall can then be painted. After painting, it is allowed to air dry naturally to obtain the finished wall surface. When the mixing tank 10 and the feeding device 20 are working, the initial paint is added to the mixing tank 10, and various additives are added to the respective material boxes 25 in the feeding device 20. The controller receives the total amount information measured by the weighing sensor 14 and triggers the buzzer on the outer wall of the mixing tank 10 to provide a prompt when the weight of the initial paint or one of the additives reaches the set value. After the material is discharged, the feeding device 20 adds the additives one by one to the mixing tank 10. The actuator of the power motor 15 drives the stirring rod 16 to rotate. The stirring rod 16 mixes the raw materials evenly. When the feeding device 20 is working, the flip cover plate on the top of the base tube 21 is opened to add the additives. When the additives are added, the drive component 27 drives the rotating ring 23 and the base ring 24 to rotate, so as to move the corresponding material box 25 to the position corresponding to the through hole 221. The electromagnetic component 26 drives the material box 25 to move until the material box 25 moves into the inner ring of the rotating tube 22 through the through hole 221. When the limit electromagnetic block 222 is de-energized, the magnetic attraction limit on the rotating tube 22 is canceled. At this time, the drive component 27 can drive the rotating tube 22 to rotate through the material box 25, and the additive is discharged into the mixing tank 10 through the discharge hole 251. When the additive is discharged through the discharge hole 251, when the discharge hole 251 corresponds to the position of the boss 283, the boss 283 blocks the discharge hole 251, preventing the additive from being discharged. When the discharge hole 251 moves between two adjacent bosses 283, the additive falls onto the upper surface of the inclined top guide ring 282 and enters the mixing tank 10 under the guidance of the inclined top guide ring 282. The cooperation between the inclined top guide ring 282 and the boss 283 achieves the uniform addition of the additive. After rotating a unit number of times, the addition of the additive is completed. The inclined top guide ring 282 is connected to the mixing tank 10 through the locking block 281 for easy disassembly. When the electromagnetic component 26 is working, the movable block 264 is magnetic, driving the electromagnetic block 267 to generate a repulsive force with the same polarity as the movable block 264, and supporting the electromagnetic block 266 to generate an attractive force with the opposite polarity to the movable block 264. Under the action of the magnetic force, the movable block 264 slides on the guide rod 263 and magnetically attracts the supporting electromagnetic block 266. When the movable block 264 moves, it drives the material box 25 to move. When the material box 25 is reset, the driving electromagnetic block 267 and the supporting electromagnetic block 266 are de-energized, and the spring 265 drives the movable block 264 to reset. When the drive component 27 is working, the drive motor 272 drives the rotating ring 23 to rotate through the gear plate 273 and the tooth wall ring 271.
[0028] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the invention and are not intended to limit it. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the invention, but such modifications, substitutions, and variations are protected by patent law as long as they are within the scope of the claims of the present invention.
Claims
1. A method for using an environmentally friendly artistic paint, characterized in that, Includes the following steps: Step 1: Wall surface pretreatment; Clean the wall surface of dust. Step 2, Inner layer painting: Mix water-based resin, pigment, rosin resin, defoamer and pure water to obtain initial paint material one. Add one-fifth of the initial paint material one into the mixing tank (10) and add the corresponding additives into the feeding device (20) at the top of the mixing tank (10). The feeding device (20) adds one-third of the film-forming agent into the mixing tank (10) and mixes it with the initial paint material one in the mixing tank (10) to obtain the inner layer painting material. The wall surface can then be painted. After painting, let it air dry naturally to obtain the inner wall surface. Step 3, intermediate layer painting; Add three-fifths of the initial paint to the mixing tank (10), and the feeding device (20) adds one-third of the film-forming agent, two-thirds of the sodium alginate and two-thirds of the bentonite to the mixing tank (10) and mixes them with the initial paint in the mixing tank (10) to obtain the intermediate layer painting material, which can then be used to paint the wall surface. After painting, allow it to air dry naturally to obtain the intermediate layer wall surface. Step 4, outer layer painting; Add one-fifth of the initial paint to the mixing tank (10). The feeding device (20) adds the preservative, mildew inhibitor, antibacterial agent, one-third of the film-forming agent, one-third of the sodium alginate, and one-third of the bentonite to the mixing tank (10) and mixes them with the initial paint in the mixing tank (10) to obtain the outer layer painting material, which can then be used to paint the wall surface. After painting, allow it to air dry naturally to obtain the finished wall surface. The feeding device (20) includes a base tube sleeved on the top of the side wall of the mixing tank (10). (21), a rotating tube (22) rotatably connected to the top of the mixing tank (10) at the bottom and rotatably connected to the top of the inner wall of the base tube (21) and communicating with the base tube (21), a through hole (221) passing through the side wall of the rotating tube (22), a plurality of limiting electromagnetic blocks (222) arranged in a ring array on the side wall of the mixing tank (10) and whose top contacts the bottom of the rotating tube (22), a rotating ring (23) rotatably connected to the inner wall of the base tube (21), located inside the base tube (21) and with multiple A support column connects to a base ring (24) on the upper surface of the rotating ring (23). Multiple material containers (25) are arranged in a ring array on the base ring (24). An electromagnetic component (26) is located at the bottom of the base ring (24) and is used to drive the material containers (25) to move horizontally. A driving component (27) is located at the bottom of the inner wall of the base tube (21) and is used to drive the rotating ring (23) to rotate. A flow guide component (28) is located on the inner wall of the stirring tank (10) and below the through hole (221). The bottom of the mixing drum (10) is connected to the base box (12) by a rubber ring (11). The bottom of the mixing drum (10) is provided with a U-shaped frame (13) located inside the base box (12). The bottom of the inner wall of the base box (12) is provided with a weighing sensor (14). The top of the weighing sensor (14) is connected to the bottom of the U-shaped frame (13). The bottom of the mixing drum (10) is provided with a power motor (15) whose execution end extends into the mixing drum (10). The execution end of the power motor (15) is provided with a stirring rod (16).
2. The method of using an environmentally friendly artistic paint according to claim 1, characterized in that, The electromagnetic component (26) includes a strip-shaped through hole (261) passing through the base ring (24), a positioning block (262) located at the bottom of the base ring (24) and at one end of the strip-shaped through hole (261) near the mixing tank (10), two guide rods (263) horizontally located on one side of the positioning block (262), a moving block (264) connected at the top to the bottom of the material box (25) and slidably connected at the bottom to the guide rods (263), a spring (265) sleeved on the outer wall of the guide rods (263) and located between the positioning block (262) and the moving block (264), a supporting electromagnetic block (266) located on the side wall of the positioning block (262) and between the two guide rods (263), and a driving electromagnetic block (267) located at the bottom of the base ring (24) and on the side of the moving block (264) away from the positioning block (262).
3. The method of using an environmentally friendly artistic paint according to claim 1, characterized in that, The bottom of the inner wall of the material container (25) is provided with a discharge hole (251), and the bottom of the inner wall of the material container (25) is a slope.
4. The method of using an environmentally friendly artistic paint according to claim 1, characterized in that, The drive component (27) includes a toothed wall ring (271) located at the bottom of the rotating ring (23), a drive motor (272) located at the bottom of the inner wall of the base tube (21), and a toothed disc (273) located at the actuating end of the drive motor (272) and meshing with the toothed wall ring (271).
5. The method of using an environmentally friendly artistic paint according to claim 1, characterized in that, The flow guiding component (28) includes a plurality of locking blocks (281) arranged in an annular array on the inner wall of the mixing tank (10), an inclined top flow guiding ring (282) that engages the locking blocks (281), and a plurality of protrusions (283) arranged in an annular array on the top of the inclined top flow guiding ring (282), the top of the protrusions (283) being flush with the bottom of the through hole (221).