Interior wall latex paint and processing system and method thereof
By incorporating mixing, heating, dispersion, and filtration steps in the interior wall latex paint processing system, the problem of insufficient material dispersion in latex paint processing is solved, enabling rapid processing and efficient production of latex paint.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-07
- Publication Date
- 2026-04-10
AI Technical Summary
In the existing technology, the circulating materials are not sufficiently dispersed during the latex paint processing, resulting in slow processing speed.
An interior wall latex paint processing system is adopted, which uses steps of mixing, heating, dispersing, filtering and reflux, combined with power transmission and heating devices, to achieve full dispersion and circulation of materials, and uses raw materials with specific component ratios for latex paint processing.
It speeds up the processing of latex paint, improves the uniformity of material mixing and the coating effect, prevents solidification and scratches, and enhances production efficiency.
Smart Images

Figure CN121825323A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of latex paint processing, more particularly to an interior wall latex paint and a processing system and method thereof. BACKGROUND
[0002] Latex paint is a colloquial name for latex paint, born in the mid-1970s, is a large class of synthetic resin emulsion represented by acrylate copolymer emulsion. Latex paint is a water-dispersible paint, which is made of synthetic resin emulsion as base material, and the filler is ground and dispersed, and various additives are added to refine the paint. Latex paint has many advantages different from traditional wall paint, such as easy brushing, rapid drying, paint film water resistance, good scrub resistance, etc. However, when processing latex paint, the circulating materials cannot be fully dispersed to speed up the processing speed of the latex paint. SUMMARY
[0003] In order to overcome the shortcomings of the prior art, the present application provides an interior wall latex paint and a processing system and method thereof, which can fully disperse the circulating materials to speed up the processing speed of the latex paint.
[0004] The technical scheme adopted by the present application to solve its technical problems is:
[0005] An interior wall latex paint processing method, the method comprising the following steps:
[0006] Step one: adding raw materials into the interior wall latex paint processing system for mixing;
[0007] Step two: heating the mixed raw materials;
[0008] Step three: pushing the mixed materials upwards and dispersing them;
[0009] Step four: filtering and refluxing the dispersed materials to realize circulation for latex paint processing;
[0010] Step five: discharging and collecting the processed latex paint for storage.
[0011] Further, the bottom frame and the upper cover are rotatably connected with a pushing frame, and the bottom frame and the slope are rotatably connected with a plurality of mixing frames.
[0012] Further, the pushing frame is rotatably connected with a plurality of mixing frames.
[0013] Further, the pushing frame is rotatably connected with a plurality of mixing frames.
[0014] Further, the interior wall latex paint comprises the following components by weight ratio: styrene-butyl acrylate emulsion 30-50 parts; epoxy resin 10-30 parts; sharp titanium white 4-8 parts; barium sulfate 5-20 parts; bentonite 8-15 parts; ethanol 1-4 parts; hydroxyethyl cellulose 1-2 parts; sodium persulfate 1-4 parts; potassium citrate 1-3 parts; decabromodiphenyl ethane 2-5 parts; trimethylamine hydrochloride 2-3 parts; calcium fluoride 1-2 parts; zinc trifluoroacetylacetone 2-5 parts; water 10-20 parts. BRIEF DESCRIPTION OF DRAWINGS
[0015] The present application will be further described below in conjunction with the drawings and specific implementation methods.
[0016] Figure 1 The process flow chart for processing latex paint;
[0017] Figure 2 The structure diagram of circulating materials;
[0018] Figure 3 The structure diagram of mixed materials;
[0019] Figure 4 The structure diagram of power transmission;
[0020] Figure 5 The structure diagram of filtering raw materials;
[0021] Figure 6 The installation structure diagram of multiple mixing racks;
[0022] Figure 7 The structure diagram of heating circulating materials;
[0023] Figure 8 The structure diagram of heating middle materials;
[0024] Figure 9 The structure diagram of heating moving raw materials;
[0025] Figure 10 The structure diagram of processing latex paint.
[0026] Chassis 11; transmission wheel 12; gear ring 13; round frame 21; return pipe 22; upper cover 31; material adding pipe 32; slope plate 33; pushing frame 41; main wheel 42; mixing rack 51; planetary wheel 52; filtering rack 61; heating frame 71; side pipe 72; heating rack 81. DETAILED DESCRIPTION
[0027] REFERENCE Figure 1 The process flow for processing interior wall latex paint is described in detail:
[0028] An interior wall latex paint processing method, the method comprises the following steps:
[0029] Step one: add raw materials into the interior wall latex paint processing system for mixing, realize the full mixing and emulsification of multiple raw materials;
[0030] Step two: heat the mixed raw materials to accelerate the dissolution speed and mixing speed of the raw materials, thereby accelerating the latex paint processing speed;
[0031] Step three: push the mixed material upwards and disperse, thereby accelerating the circulation of the raw materials in the up-down direction of the material, thereby accelerating the mixing speed of the material;
[0032] Step four: filter and recirculate the dispersed material to realize latex paint processing, filter and remove solids in the latex paint, reduce particulate matter in the latex paint, prevent scratches during troweling when using the prepared latex paint, and affect the troweling effect of the latex paint, and accelerate the mixing speed of the material through circulation;
[0033] Step five: discharge and collect the processed latex paint for storage, thereby preventing the latex paint from solidifying and oxidizing.
[0034] In combination with the above embodiments, the following functions can also be realized;
[0035] Reference Figure 2 , the implementation process of mixing and lifting raw materials is described in detail:
[0036] It comprises a base frame 11, a circular frame 21 is fixedly connected to the base frame 11, and the base frame 11 and the circular frame 21 are combined into a barrel-shaped container capable of loading raw materials and processing multiple raw materials. A plurality of reflux pipes 22 are fixedly connected to the outer wall of the circular frame 21, both ends of the plurality of reflux pipes 22 are in communication with the space surrounded by the circular frame 21, and the lower end of each of the plurality of reflux pipes 22 is provided with a one-way pipe, so that the raw materials pushed to the upper end flow into the upper end of the plurality of reflux pipes 22, slide down through the plurality of reflux pipes 22 to the lower end of the plurality of reflux pipes 22, and then flow back into the circular frame 21 from the plurality of reflux pipes 22, realizing the full circulation of the raw materials in the up-down direction, thereby accelerating the circulation of the material and the rapid mixing of the material. The upper cover 31 is fixedly connected to the circular frame 21, a plurality of material adding pipes 32 are fixedly connected to the upper cover 31, and a slope plate 33 is fixedly connected to the plurality of material adding pipes 32, so as to prevent the material from splashing and causing waste of raw materials through the upper cover 31 at the upper end, and the raw materials can be added through the plurality of material adding pipes 32, and the slope plate 33 is located below the upper end of the plurality of reflux pipes 22, so as to ensure that the lifted raw materials slide down onto the slope plate 33 for flow guiding, thereby ensuring that the lifted material flows into the plurality of reflux pipes 22 for circulation after being guided by the slope plate 33.
[0037] In combination with the above embodiments, the following functions can also be realized;
[0038] Reference Figure 3 and 4 , the implementation process of mixing and lifting raw materials is described in detail:
[0039] The push frame 41 is rotatably connected to the chassis 11 and the upper cover 31, and the plurality of mixing frames 51 are rotatably connected to the chassis 11 and the slope plate 33. The push frame 41 is fixedly connected to the output shaft of the speed reducer motor I, and the speed reducer motor I is fixedly connected to the upper cover 31. Starting the speed reducer motor I drives the push frame 41 to rotate, which can push the raw materials to move up and down. When the raw materials are lifted to the slope plate 33, the lifting of the materials and the dispersion are realized, and the circulation of the raw materials is completed. The plurality of mixing frames 51 are one-to-one corresponding to the lower ends of the plurality of return pipes 22, so that the raw materials can be quickly pushed to flow when the plurality of mixing frames 51 rotate, and the flow speed of the raw materials is accelerated. The raw materials near the inner wall of the circular frame 21 can be quickly pushed, and the accumulation of the raw materials flowing out of the lower end of the plurality of return pipes 22 can be prevented, which affects the speed of the raw materials flowing out of the lower end of the plurality of return pipes 22, so as to ensure the circulation speed of the materials in the plurality of return pipes 22.
[0040] In combination with the above embodiments, the following functions can also be realized;
[0041] Reference Figure 4 , the implementation process of power transmission is described in detail:
[0042] The main wheel 42 is fixedly connected to the push frame 41, and the planetary wheel 52 is fixedly connected to the plurality of mixing frames 51. The plurality of transmission wheels 12 are rotatably connected to the chassis 11 and meshed with the main wheel 42 for transmission. The gear ring 13 is rotatably connected to the chassis 11 and meshed with the plurality of transmission wheels 12 for transmission. When the push frame 41 rotates to drive the main wheel 42 to rotate, the main wheel 42 drives the plurality of transmission wheels 12 to rotate by meshing, the plurality of transmission wheels 12 drive the gear ring 13 to rotate by meshing, and the gear ring 13 drives the plurality of planetary wheels 52 to rotate by meshing, so as to realize the synchronous rotation of the plurality of mixing frames 51 and the sufficient mixing of the raw materials.
[0043] In combination with the above embodiments, the following functions can also be realized;
[0044] Reference Figure 5 , the implementation process of filtering and dispersing the raw materials is described in detail:
[0045] The filter frame 61 with a plurality of filter holes is fixedly connected between the upper cover 31 and the slope plate 33, so that the raw materials pushed up by the push frame 41 are dispersed after being pushed up to the slope plate 33, and are filtered when flowing through the filter frame 61, so as to filter out the residual solids in the raw materials.
[0046] In combination with the above embodiments, the following functions can also be realized;
[0047] With reference to Figure 7 , the raw material and the implementation process of the raw material near the circular frame 21 are described in detail:
[0048] The outer wall of the circular frame 21 is fixedly connected with a heating frame 71, a plurality of side pipes 72 are processed on the heating frame 71, and the heating frame 71 is communicated with an externally arranged heating furnace, so that the heating frame 71 is provided with high-temperature steam by the externally arranged heating furnace, thereby realizing heating of the circulating raw material of the plurality of reflux pipes 22 and heating of the raw material near the circular frame 21. In cooperation with the plurality of side pipes 72 communicated with the heating frame 71, the outer side of the plurality of reflux pipes 22 is sufficiently heated, thereby repeatedly realizing heating of the raw material.
[0049] In combination with the above embodiment, the following functions can also be realized:
[0050] With reference to Figure 8 and 9 , the implementation process of heating the raw material in the middle of the circular frame 21 is described in detail:
[0051] The bottom frame 11 is fixedly connected with a heating frame 81, and the heating frame 81 is communicated with an externally arranged heating furnace, so that the heating frame 81 is heated by the externally arranged heating furnace and can be continuously circulated to heat the middle part of the circular frame 21, thereby realizing sufficient heating of the raw material.
[0052] In combination with the above embodiment, the following functions can also be realized:
[0053] With reference to Figure 10 , the implementation process of preventing the raw material from being stuck in circulation is described in detail:
[0054] The lower end of the plurality of reflux pipes 22 is provided with a one-way pipe, and the plurality of reflux pipes 22 are fixedly connected with a circulating pump, so that the circulation of the raw material is accelerated by the pump body, and the sufficient circulation of the raw material is ensured by the arrangement of the one-way pipe, thereby preventing the raw material from flowing back to cause stable pressure and unable to realize the circulation of the raw material.
[0055] In combination with the above embodiment, the following functions can also be realized:
[0056] With reference to Figure 10 , the implementation process of the fully dispersed circulating raw material is described in detail:
[0057] The plurality of reflux pipes 22 are spiral-shaped, so that the flow path of the material can be prolonged, so that the material collides with the inner wall of the reflux pipe 22 when the material automatically flows, thereby realizing rapid mixing of the circulating material.
[0058] The interior wall latex paint comprises the following components by weight: styrene-butyl acrylate emulsion 30-50 parts; epoxy resin 10-30 parts; anatase titanium white 4-8 parts; barium sulfate 5-20 parts; bentonite 8-15 parts; ethanol 1-4 parts; hydroxyethyl cellulose 1-2 parts; sodium persulfate 1-4 parts; potassium citrate 1-3 parts; decabromodiphenyl ethane 2-5 parts; trimethylamine hydrochloride 2-3 parts; calcium fluoride 1-2 parts; zinc trifluoroacetylacetone 2-5 parts; and water 10-20 parts.
Claims
1. A method for processing interior wall latex paint, characterized in that, The method includes the following steps: Step 1: Add the raw materials to the interior wall latex paint processing system for mixing; Step 2: Heat the mixed raw materials; Step 3: Push the mixed materials upwards and disperse them; Step 4: Filter the dispersed materials and recirculate them to achieve latex paint processing; Step 5: Unload and collect the finished latex paint.
2. The interior wall latex paint processing system according to claim 1, characterized in that: It includes a base frame (11) and a circular frame (21) fixed to the base frame (11). Multiple return pipes (22) are fixed to the outer wall of the circular frame (21). A top cover (31) is fixed to the circular frame (21). Multiple feeding pipes (32) are fixed to the top cover (31). Slope plates (33) are fixed to the multiple feeding pipes (32).
3. The interior wall latex paint processing system according to claim 2, characterized in that: A pusher (41) is rotatably connected to the base frame (11) and the top cover (31), and multiple mixing racks (51) are rotatably connected to the base frame (11) and the slope plate (33).
4. The interior wall latex paint processing system according to claim 3, characterized in that: A main wheel (42) is fixedly connected to the push frame (41), and planetary gears (52) are fixedly connected to multiple mixing frames (51). Multiple transmission wheels (12) that mesh with the main wheel (42) are rotatably connected to the base frame (11). A gear ring (13) that meshes with the multiple transmission wheels (12) is rotatably connected to the base frame (11). The gear ring (13) meshes with the multiple planetary gears (52).
5. The interior wall latex paint processing system according to claim 3, characterized in that: A filter frame (61) with multiple filter holes is fixedly connected between the top cover (31) and the slope plate (33).
6. The interior wall latex paint processing system according to claim 5, characterized in that: A heating frame (71) is fixed to the outer wall of the circular frame (21), and multiple side tubes (72) are machined on the heating frame (71).
7. The interior wall latex paint processing system according to claim 6, characterized in that: A heating frame (81) is fixedly connected to the base frame (11).
8. The interior wall latex paint processing system according to claim 2, characterized in that: The lower ends of the plurality of return pipes (22) are each provided with a one-way pipe.
9. The interior wall latex paint processing system according to claim 2, characterized in that: All of the multiple return pipes (22) are spiral-shaped.
10. The interior wall latex paint processed according to the method of claim 1, characterized in that: This interior wall latex paint comprises the following components in parts by weight: 30-50 parts of styrene-butyl acrylate emulsion; Epoxy resin 10-30 parts; anatase 4-8 parts; barium sulfate 5-20 parts; bentonite 8-15 parts; ethanol 1-4 parts; hydroxyethyl cellulose 1-2 parts; sodium persulfate 1-4 parts; Potassium citrate 1-3 parts; decabromodiphenyl ethane 2-5 parts; trimethylamine hydrochloride 2-3 parts; calcium fluoride 1-2 parts; zinc trifluoroacetylacetonate 2-5 parts; water 10-20 parts.