Thermal insulation hole stone ceramic tile and preparation method thereof

By combining alumina-modified microcapsules with nano-coatings in travertine ceramic bricks, the problems of thermal insulation performance and structural load-bearing capacity of travertine ceramic bricks have been solved, achieving high-efficiency thermal insulation and corrosion resistance, making it suitable for building decoration fields where thermal insulation is required.

CN121135397BActive Publication Date: 2026-05-01GUANGDONG TIANBI CERAMICS
View PDF 2 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
GUANGDONG TIANBI CERAMICS
Filing Date
2025-10-10
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

The thermal insulation performance of existing travertine ceramic bricks relies on external additional layers, which leads to problems such as weakening of bonding strength, mold growth, and structural load, making it difficult to meet the thermal performance requirements of high-rise buildings and ultra-low energy consumption buildings.

Method used

By combining alumina-modified microcapsules with nano-coatings, an interpenetrating network structure is formed on the surface of ceramic bricks, enhancing the high-temperature resistance and air permeability of the microcapsule wall material. Combined with the dense structure of the nano-coating, a highly efficient thermal insulation system is constructed.

Benefits of technology

It significantly improves the thermal insulation and corrosion resistance of ceramic tiles, reduces the heat conduction rate, maintains breathability and decorative effect, and is suitable for fields where thermal insulation is required.

✦ Generated by Eureka AI based on patent content.
Patent Text Reader

Abstract

The application relates to the technical field of ceramic tiles, and mainly relates to a heat-insulating cave stone ceramic tile and a preparation method thereof. The heat-insulating cave stone ceramic tile comprises a ceramic tile body and a nano coating, and the ceramic tile body comprises potassium sodium feldspar, medium-temperature potassium sand, bentonite, transparent anorthite, talcum powder, kaolin, raw ore slurry, porcelain clay, bauxite and alumina modified microcapsules. The preparation method of the alumina modified microcapsules comprises the following steps: heating paraffin to a molten state to obtain molten paraffin; mixing a PVA aqueous solution with the molten paraffin, stirring at 7500-8500 r / min, and forming a paraffin emulsion; dispersing nano alumina in a melamine-formaldehyde resin solution to obtain a suspension solution; mixing the suspension solution with the paraffin emulsion to obtain a mixed solution; adjusting the pH of the mixed solution, stirring and reacting at 60-70 DEG C for 2-3 h to form a microcapsule wall; and cooling, separating, washing and drying to obtain the alumina modified microcapsules.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of ceramic tile technology, and mainly to a heat-insulating travertine ceramic tile and its preparation method. Background Technology

[0002] Travertine ceramic tiles, with their unique natural texture and stone-like feel, have become a popular material in the architectural decoration field. Their surface features naturally distributed pores and mottled textures, retaining the rugged beauty of natural travertine while optimizing weather resistance and ease of cleaning through ceramic processing. They are widely used in interior and exterior walls, floors, and landscaping projects. Especially in high-end commercial spaces and cultural buildings, the decorative effect of travertine ceramic tiles can significantly enhance the artistic atmosphere and sense of quality, leading to continued market demand growth.

[0003] Currently, the thermal insulation performance of travertine ceramic tiles mainly relies on external additional insulation layers. Common methods include attaching insulation materials such as polystyrene boards and rock wool boards to the back of the tiles. However, these technologies have significant drawbacks: First, the bonding interface between the insulation material and the ceramic tile is easily affected by temperature changes and moisture penetration, leading to a decrease in bonding strength and a high risk of detachment after long-term use, directly affecting the insulation effect and the lifespan of the tile. Second, some insulation materials (such as closed-cell polystyrene boards) can block the natural air permeability channels of the ceramic tile, causing indoor moisture accumulation and mold problems. At the same time, the thick insulation layer may cover the travertine texture and weaken the decorative effect. More importantly, traditional insulation materials generally have a high density (such as rock wool boards with a density of about 120 kg / m³). Calculated with a 100 mm thick insulation layer, the weight increase is about 12 kg per square meter. Adding the weight of the travertine ceramic tile itself (about 25 kg / m²), this will significantly increase the structural load on the building, posing a potential threat to the safety of high-rise buildings.

[0004] With the continuous improvement of global building energy efficiency standards, traditional travertine ceramic tiles are no longer sufficient to meet the comprehensive thermal performance requirements of green buildings. Statistics show that building energy consumption accounts for more than 21% of my country's total energy consumption, with heat loss through exterior walls accounting for as much as 40%. If travertine ceramic tiles cannot achieve integrated insulation, it will force buildings to add additional insulation layers, not only increasing material and construction costs but also potentially causing safety accidents due to insulation layer detachment and excessive structural load. Especially in frigid regions, traditional insulation technologies cannot meet the needs of ultra-low energy consumption buildings, resulting in persistently high heating energy consumption in winter.

[0005] Therefore, developing travertine ceramic tiles that combine decorative appeal with high-efficiency thermal insulation has become a key technological direction for promoting the green transformation of the construction industry. Summary of the Invention

[0006] In view of the shortcomings of the prior art, the purpose of this application is to provide a thermal insulation travertine ceramic brick and its preparation method. It aims to achieve an integrated design of the insulation layer and ceramic brick through material innovation and structural optimization, which can not only retain the natural beauty of the travertine texture, but also significantly improve the thermal performance of the building and reduce the structural load. It provides a safe, durable and comfortable solution for high-rise buildings and ultra-low energy consumption buildings, and has important strategic significance for promoting the upgrading of the building decoration materials industry.

[0007] The technical solution of this application is as follows:

[0008] A thermal insulation travertine ceramic brick includes a ceramic brick body and a nano-coating, wherein the nano-coating is applied to the surface of the ceramic brick body.

[0009] The ceramic brick body comprises the following raw materials by weight percentage: 30-40% potassium sodium feldspar, 10-15% medium-temperature potassium sand, 1-5% bentonite, 1-3% hygroscopic stone, 5-10% talc, 15-20% kaolin, 7-12% raw ore mud, 1-5% porcelain clay, 1-5% bauxite, and 1-5% alumina-modified microcapsules;

[0010] The preparation method of the alumina-modified microcapsules includes the following steps:

[0011] Step 1: Heat the paraffin wax to a molten state to obtain molten paraffin wax;

[0012] Step 2: Mix a 1-5% (w / w) PVA aqueous solution with the molten paraffin wax and stir at 7500-8500 r / min for 15-45 min to form a paraffin wax emulsion;

[0013] Step 3: Disperse nano-alumina in a melamine-formaldehyde resin solution to obtain a suspension;

[0014] Step 4: Under stirring, the suspension solution is mixed with the paraffin emulsion to obtain a mixed solution;

[0015] Step 5: Add hydrochloric acid solution to the mixed solution, adjust the pH value to 4-5, and stir the reaction at 60-70℃ for 2-3 hours to form microcapsule walls;

[0016] Step 6: Cool, separate, wash, and dry to obtain the alumina-modified microcapsules.

[0017] Paraffin wax, as a typical phase change material, possesses advantages such as high latent heat of phase change, no supercooling phenomenon, and the ability to undergo phase change at ambient temperature. When formulated into microcapsules, it effectively prevents leakage after melting, enabling energy storage in buildings. When applied to ceramic tiles, when the ambient temperature rises, the paraffin wax microcapsules absorb heat and undergo a solid-liquid phase change, storing the heat. When the ambient temperature decreases, the paraffin wax microcapsules release the stored heat, maintaining a stable indoor temperature, reducing heat loss, and thus improving insulation.

[0018] During the firing process of ceramic tiles, high-temperature treatment (above 1000℃) is typically required. However, melamine-formaldehyde resin, used as the microcapsule wall material, has limited high-temperature resistance and is prone to decomposition or carbonization at high temperatures, leading to microcapsule rupture and paraffin leakage. Paraffin leakage not only reduces the thermal insulation performance of the ceramic tiles but also contaminates their surface, affecting their aesthetics. Furthermore, the gases produced by the decomposition of melamine-formaldehyde resin may pollute the environment. Therefore, improving the high-temperature resistance of the microcapsule wall material is crucial to ensuring both the thermal insulation performance and environmental friendliness of ceramic tiles.

[0019] Based on this, this application prepares special alumina-modified microcapsules. Nano-alumina possesses excellent high-temperature resistance and chemical stability, effectively improving the high-temperature resistance of the microcapsule wall material. Nano-alumina can fill the spaces between the molecular chains of melamine-formaldehyde resin, forming an interpenetrating network structure that enhances the strength and rigidity of the microcapsule wall material, preventing its decomposition or carbonization at high temperatures. Furthermore, nano-alumina can also chemically react with melamine-formaldehyde resin to form chemical bonds, improving the heat resistance and chemical corrosion resistance of the microcapsule wall material.

[0020] Furthermore, PVA, as an emulsifier, can reduce the surface tension of paraffin, promote emulsion formation, and improve the encapsulation efficiency of microcapsules. Melamine-formaldehyde resin has good film-forming properties and chemical stability, effectively protecting paraffin.

[0021] In this application, the synergistic effect of alumina-modified microcapsules and nano-coating effectively enhances the thermal insulation performance of travertine ceramic bricks. The alumina-modified microcapsules contain numerous nanopores, which effectively prevent heat transfer, forming a good insulation layer. Simultaneously, the nano-coating uniformly covers the surface of the microcapsules, further reducing heat loss. Its dense structure reduces air convection and heat conduction. Together, these two components construct a highly efficient thermal insulation system within the travertine ceramic brick, significantly reducing the heat conduction rate and giving the travertine ceramic brick excellent thermal insulation properties, making it widely applicable in fields requiring high thermal insulation.

[0022] Furthermore, in step 1, the paraffin wax is heated to a molten state, and the temperature is controlled at 60-70°C.

[0023] Furthermore, in step 4, the suspension is slowly added to the paraffin emulsion while being stirred.

[0024] Furthermore, in step 4, the suspension is added to the paraffin emulsion by dripping, with the dripping rate controlled at 3-6 mL / min.

[0025] Furthermore, in step 6, the mixture is cooled to room temperature, then centrifuged, washed multiple times with water, and then vacuum dried to obtain the alumina-modified microcapsules.

[0026] Furthermore, in step 6, the vacuum drying conditions are 55-65℃ for 18-36 hours.

[0027] Furthermore, the nano-coating is prepared by nano-coating, which comprises the following raw materials in parts by weight: 5-15 parts titanium dioxide, 2-6 parts silica sol, and 1-3 parts acrylic resin.

[0028] The titanium dioxide-containing nano-coating exhibits excellent air permeability and self-cleaning properties, preventing leakage of alumina-modified microcapsules and maintaining the air permeability of travertine ceramic tiles. Silica sol, acting as a binder, firmly bonds the titanium dioxide nanoparticles to the ceramic tile surface.

[0029] In this application, the effective combination of alumina-modified microcapsules and nano-coatings is utilized to synergistically solve the problems of high temperature resistance of microcapsule wall materials and durability of breathable nano-coatings.

[0030] Nano-alumina exhibits excellent high-temperature resistance and chemical stability. During microcapsule preparation, nano-alumina is uniformly dispersed in a melamine-formaldehyde resin solution. As the melamine-formaldehyde resin polymerizes to form the microcapsule wall, the nano-alumina embeds itself within the resin wall, forming an interpenetrating network structure. This structure enhances the strength and rigidity of the microcapsule wall, improving its high-temperature resistance. Simultaneously, the hydroxyl groups on the surface of the nano-alumina can chemically react with the melamine-formaldehyde resin to form chemical bonds, further improving the heat resistance and chemical corrosion resistance of the microcapsule wall.

[0031] In nano-coatings, acrylic resin, as an organic polymer, possesses excellent flexibility and weather resistance. The carboxyl groups in the acrylic resin can undergo esterification reactions with the hydroxyl groups on the surface of titanium dioxide nanoparticles and the silanol groups in silica sol, forming chemical bonds that firmly bind the organic polymer and inorganic nanoparticles together, creating an organic-inorganic hybrid network structure. This structure enhances the coating's adhesion strength and flexibility, improves its resistance to ultraviolet radiation, acid rain, and wind and sand, and prevents aging and peeling during long-term use.

[0032] Furthermore, the surface hydroxyl groups of the alumina-modified microcapsules can undergo condensation reactions with the carboxyl groups (-COOH) of the silica sol (Si-OH) or acrylic resin in the nanocoating, forming a chemically bonded interface. Simultaneously, the nanopores of the alumina-modified microcapsules can adsorb small organic molecules from the coating, further enhancing the binding force through physical anchoring. This structural complementarity enables the coating to form a dense encapsulation layer on the microcapsule surface, significantly improving interfacial stability.

[0033] The nanopores of alumina-modified microcapsules serve as gas transport channels, maintaining the coating's permeability; simultaneously, the alumina on their surface blocks the penetration of corrosive media (such as water and chloride ions). Within the nanocoating, the inorganic network formed by titanium dioxide and silica sol is further densified, inhibiting the intrusion of large molecular corrosive media; the hydrophobicity of the acrylic resin reduces the coating's surface energy, minimizing moisture adsorption. The permeable channels of the alumina-modified microcapsules and the dense barrier of the nanocoating form a "selective penetration" mechanism, effectively improving corrosion resistance while maintaining permeability.

[0034] Furthermore, the alumina-modified microcapsules, as flexible fillers, are dispersed in the coating. When the coating is subjected to external force, the alumina-modified microcapsules absorb energy through elastic deformation, preventing crack propagation.

[0035] Furthermore, the thickness of the nano-coating is 40-60 μm.

[0036] This application also provides a method for preparing heat-insulating travertine ceramic bricks, comprising the following steps:

[0037] Step a: Mix the potassium-sodium feldspar, the medium-temperature potassium sand, the bentonite, the siliceous limestone, the talc powder, the kaolin, the raw ore mud, the porcelain clay, the bauxite, and the alumina-modified microcapsules to obtain the glaze;

[0038] Step b: Using a cloth-feeding device, the glaze is applied along the extension direction of multiple sets of pits and / or bumps, and then pressed into shape to obtain a brick blank with longitudinal texture, pits and / or bumps on the surface.

[0039] Step c: Fire the brick blank, trim and polish the edges to obtain the ceramic brick body;

[0040] Step d: Preparation of the nano-coating: The titanium dioxide, the silica sol, and the acrylic resin are mixed and dispersed evenly to obtain the nano-coating;

[0041] Step e: Spray the nano-coating onto the surface of the ceramic tile body;

[0042] Step f: The ceramic brick body coated with the nano-coating is dried at 175-185°C, and the nano-coating is formed to obtain the heat-insulating travertine ceramic brick.

[0043] Furthermore, in step b, the pressing pressure is 42000-45000KN; in step c, the firing temperature is 1150-1250℃.

[0044] Compared with the prior art, this application has the following beneficial effects:

[0045] 1. By combining alumina-modified microcapsules with a nano-coating, the stability of material properties is significantly improved. Nano-alumina is embedded in the microcapsule wall to form an interpenetrating network structure, enhancing the wall's strength and stiffness, and improving high-temperature resistance and chemical corrosion resistance. In the nano-coating, acrylic resin and inorganic nanoparticles form an organic-inorganic hybrid network structure, enhancing bonding strength and flexibility, improving resistance to ultraviolet radiation, and preventing aging and detachment. The synergy of these two components effectively improves interfacial stability, enabling thermal insulation travertine ceramic bricks to maintain stable performance over long periods in complex environments.

[0046] 2. This application effectively enhances the corrosion resistance of thermally insulated travertine ceramic bricks. The nanopores of the alumina-modified microcapsules maintain the air permeability of the coating, while the alumina on the surface blocks the penetration of corrosive media. In the nano-coating, titanium dioxide and silica sol form a dense inorganic network, inhibiting the intrusion of large molecular corrosive media, while the hydrophobicity of the acrylic resin reduces surface energy and decreases moisture adsorption. These two elements form a "selective penetration" mechanism, maintaining air permeability while blocking corrosive media, greatly improving the material's corrosion resistance and extending its service life.

[0047] 3. The synergistic effect of alumina-modified microcapsules and nano-coatings significantly enhances the thermal insulation performance of travertine ceramic bricks. The numerous nanopores within the microcapsules effectively prevent heat transfer, forming an insulating layer; the nano-coating uniformly covers its surface, and its dense structure reduces air convection and heat conduction. Together, these two elements construct a highly efficient thermal insulation system within the travertine ceramic brick, drastically reducing the rate of heat conduction and giving the travertine ceramic brick excellent thermal insulation properties, making it widely applicable in fields requiring thermal insulation. Detailed Implementation

[0048] To facilitate understanding of this application, the following embodiments are provided. Those skilled in the art should understand that these embodiments are merely illustrative and should not be construed as limiting the scope of this application.

[0049] This application provides a heat-insulating travertine ceramic brick, including a ceramic brick body and a nano-coating, wherein the nano-coating is applied to the surface of the ceramic brick body.

[0050] The ceramic tile body comprises the following raw materials by weight percentage: 30-40% potassium and sodium feldspar, 10-15% medium-temperature potassium sand, 1-5% bentonite, 1-3% hygroscopic limestone, 5-10% talc, 15-20% kaolin, 7-12% raw ore mud, 1-5% porcelain clay, 1-5% bauxite, and 1-5% alumina-modified microcapsules.

[0051] The preparation method of alumina-modified microcapsules includes the following steps:

[0052] Step 1: Heat the paraffin wax to a molten state, controlling the temperature at 60-70℃ to ensure that the paraffin wax is completely melted, thus obtaining molten paraffin wax.

[0053] Step 2: Dissolve PVA in water to prepare a PVA aqueous solution with a concentration of 1-5 wt%.

[0054] Slowly add the PVA aqueous solution to the molten paraffin and stir it for 15-45 minutes using a high-speed disperser at a speed of 7500-8000 rpm to form a paraffin emulsion.

[0055] Step 3: Add melamine-formaldehyde resin to an appropriate amount of water to prepare a melamine-formaldehyde resin solution with a concentration of 5-15wt%, stir well and set aside.

[0056] Nano-alumina was dispersed in a melamine-formaldehyde resin solution and ultrasonically dispersed for 15-45 minutes using an ultrasonic disperser to ensure uniform dispersion of the nano-alumina; a suspension was obtained.

[0057] Step 4: While stirring, slowly add the suspension to the paraffin emulsion by dropping, controlling the dropping rate at 3-6 mL / min; to obtain a mixed solution.

[0058] Step 5: Add a 1 mol / L hydrochloric acid solution to the mixed solution, adjust the pH to 4-5, continue stirring for 2-3 hours, and maintain the reaction temperature at 60-70℃ to allow the melamine-formaldehyde resin to polymerize on the surface of the paraffin emulsion. At the same time, nano-alumina is embedded in the melamine-formaldehyde resin wall to form a microcapsule wall.

[0059] Step 6: Cool the material obtained in Step 5 to room temperature, and centrifuge it at 4000 rpm for 10 minutes to separate the microcapsules.

[0060] Step 7: Wash the microcapsules three times with deionized water, and centrifuge after each wash.

[0061] Step 8: Place the washed microcapsules in a vacuum drying oven and dry them at 55-65℃ for 18-36 hours to obtain alumina-modified microcapsules.

[0062] The nano-coating is prepared by nano-coating and has a thickness of 40-60 μm.

[0063] The nano-coating comprises the following raw materials in parts by weight: 5-15 parts titanium dioxide, 2-6 parts silica sol, and 1-3 parts acrylic resin.

[0064] This application also provides a method for preparing thermally insulating travertine ceramic bricks, including the following steps:

[0065] Step a: Mix potassium-sodium feldspar, medium-temperature potassium sand, bentonite, hygroscopic limestone, talc powder, kaolin, raw ore mud, porcelain clay, bauxite, and alumina-modified microcapsules. Use a ball mill to ball mill the mixture for 2 hours to obtain the glaze.

[0066] Step b: Using a cloth-feeding device, the glaze is applied along the extension direction of multiple sets of pits and / or protrusions in the mold, and then pressed into shape to obtain a brick blank with longitudinal texture, pits and / or protrusions on the surface.

[0067] The pressing pressure is 42000-45000KN.

[0068] Step c: Place the brick blank in the kiln for firing, trim and polish the edges to obtain the ceramic brick body.

[0069] The firing temperature is 1150-1250℃.

[0070] Step d: Preparation of nano-coatings:

[0071] First, mix titanium dioxide and silica sol according to the specified ratio and stir with a magnetic stirrer for 10 minutes to make them initially uniform; then add acrylic resin and continue stirring for 20 minutes to ensure that the three raw materials are fully mixed.

[0072] Then disperse the nano-coating using an ultrasonic disperser for 15-45 minutes to obtain the nano-coating.

[0073] Step e: Use a spraying device to spray the nano-coating onto the surface of the ceramic tile.

[0074] Step f: Dry the ceramic brick body coated with nano-coating at 175-185℃ for 1-2 hours to form the nano-coating and obtain the heat-insulating travertine ceramic brick.

[0075] The present application will be further described below through specific embodiments.

[0076] Example 1: A thermal insulation travertine ceramic brick, comprising a ceramic brick body and a nano-coating, wherein the nano-coating is applied to the surface of the ceramic brick body;

[0077] The ceramic tile body comprises the following raw materials by weight percentage: 37.5% potassium sodium feldspar, 12% medium-temperature potassium sand, 4% bentonite, 1.5% siliceous limestone, 7% talc, 19% kaolin, 10% raw ore mud, 3% porcelain clay, 2.5% bauxite, and 3.5% alumina modified microcapsules.

[0078] The preparation method of alumina-modified microcapsules includes the following steps:

[0079] Step 1: Heat the paraffin wax to a molten state, controlling the temperature at 65℃ to ensure that the paraffin wax is completely melted, thus obtaining molten paraffin wax.

[0080] Step 2: Dissolve PVA (purchased from Chengdu Blue Whale Technology Co., Ltd., model 9002) in water to prepare a PVA aqueous solution with a concentration of 3wt%.

[0081] The PVA aqueous solution was slowly added to the molten paraffin and stirred for 30 minutes at 8000 rpm using a high-speed disperser to form a paraffin emulsion.

[0082] Step 3: Add melamine-formaldehyde resin (purchased from Nantong Zhonghe Chemical New Materials Co., Ltd.) to an appropriate amount of water to prepare a melamine-formaldehyde resin solution with a concentration of 10wt%, stir well and set aside.

[0083] Nano-alumina (particle size 20-30nm) was dispersed in a melamine-formaldehyde resin solution and ultrasonically dispersed for 30 minutes using an ultrasonic disperser to ensure uniform dispersion of the nano-alumina; a suspension was obtained.

[0084] Step 4: While stirring, slowly add the suspension to the paraffin emulsion by dropping it at a rate of 5 mL / min to obtain a mixed solution.

[0085] Step 5: Add a 1 mol / L hydrochloric acid solution to the mixed solution, adjust the pH to 4.5, continue stirring for 2 hours, and maintain the reaction temperature at 65℃ to allow the melamine-formaldehyde resin to polymerize on the surface of the paraffin emulsion. At the same time, nano-alumina is embedded in the melamine-formaldehyde resin wall to form a microcapsule wall.

[0086] Step 6: Cool the material obtained in Step 5 to room temperature, and centrifuge it at 4000 rpm for 10 minutes to separate the microcapsules.

[0087] Step 7: Wash the microcapsules three times with deionized water, and centrifuge after each wash.

[0088] Step 8: Place the washed microcapsules in a vacuum drying oven and dry them at 60°C for 24 hours to obtain alumina-modified microcapsules.

[0089] The nano-coating is prepared by nano-coating and has a thickness of 50 μm.

[0090] The nano-coating comprises the following raw materials in parts by weight: 10 kg titanium dioxide, 5 kg silica sol, and 2 kg acrylic resin.

[0091] The titanium dioxide is anatase titanium dioxide with a particle size of 20-30 nm.

[0092] The acrylic resin was purchased from Shengwanjia New Materials (Shandong) Co., Ltd.

[0093] The silica sol was purchased from Guangdong Kening Technology Co., Ltd., model number J30.

[0094] This application also provides a method for preparing thermally insulating travertine ceramic bricks, including the following steps:

[0095] Step a: Mix potassium-sodium feldspar, medium-temperature potassium sand, bentonite, hygroscopic limestone, talc powder, kaolin, raw ore mud, porcelain clay, bauxite, and alumina-modified microcapsules. Use a ball mill to ball mill the mixture for 2 hours to obtain the glaze.

[0096] Step b: Using a cloth-feeding device, the glaze is applied along the extension direction of multiple sets of pits and / or protrusions in the mold, and then pressed into shape to obtain a brick blank with longitudinal texture, pits and / or protrusions on the surface.

[0097] The pressing pressure is 43000KN.

[0098] Step c: Place the brick blank in the kiln for firing, trim and polish the edges to obtain the ceramic brick body.

[0099] The firing temperature is 1200℃.

[0100] Step d: Preparation of nano-coatings:

[0101] First, mix titanium dioxide and silica sol according to the specified ratio and stir with a magnetic stirrer for 10 minutes to make them initially uniform; then add acrylic resin and continue stirring for 20 minutes to ensure that the three raw materials are fully mixed.

[0102] The nano-coating was then dispersed for 30 minutes using an ultrasonic disperser.

[0103] Step e: Use a spraying device to spray the nano-coating onto the surface of the ceramic tile.

[0104] Step f: Dry the ceramic brick body coated with nano-coating at 180℃ for 2 hours to form the nano-coating and obtain the heat-insulating travertine ceramic brick.

[0105] Performance testing:

[0106] 1. High-temperature resistance test of alumina-modified microcapsules: Alumina-modified microcapsules were placed in a muffle furnace and calcined at 1200℃ for 30 minutes. The morphology of the microcapsules was then observed using a scanning electron microscope (SEM), and the rupture rate of the microcapsules was calculated.

[0107] 2. Weather resistance test of ceramic tiles: The test was conducted according to GB / T 16422.3-2014 "Laboratory Light Source Exposure Test Methods for Plastics - Part 3: Fluorescent Ultraviolet Lamps", with an ultraviolet intensity of 0.89 W / (m²). 2 The coating was tested for 1000 hours (nm), and then the appearance changes of the coating were observed. The adhesion of the coating was tested using the cross-cut test.

[0108] 3. Thermal conductivity test of ceramic tiles: The test shall be conducted in accordance with GB / T 10295-2008 "Determination of steady-state thermal resistance and related properties of thermal insulation materials by heat flow meter method" and the test temperature shall be 25℃.

[0109] 4. Flexural strength test of ceramic tiles: The test shall be conducted in accordance with GB / T 3810.4-2016 "Test methods for ceramic tiles - Part 4: Determination of modulus of rupture and breaking strength".

[0110] Test results:

[0111] 1. Microcapsule rupture rate: 5%.

[0112] 2. Coating weather resistance: No significant change, adhesion is grade 1.

[0113] 3. Thermal conductivity: 0.43 W / (m·K).

[0114] 4. Flexural strength: 37 MPa.

[0115] Comparative Example 1: A common brand of travertine ceramic tiles on the market (without any added insulation material, hereinafter referred to as "control tiles") was selected.

[0116] The performance of the control brick was tested using the same method as in Example 1.

[0117] Test results:

[0118] Thermal conductivity: 1.2 W / (m·K).

[0119] Flexural strength: 35 MPa.

[0120] Comparative Example 2: A thermal insulation travertine ceramic brick, which differs from Example 1 in that the nano-coating is omitted.

[0121] Thermal conductivity: 0.68 W / (m·K).

[0122] Flexural strength: 33.5 MPa.

[0123] Comparative Example 3: A thermal insulation travertine ceramic brick, which differs from Example 1 in that, in the preparation method of alumina modified microcapsules, PVA is replaced with sodium maleic anhydride-styrene copolymer, which was purchased from Wuhan Lanabai Pharmaceutical Chemical Co., Ltd.

[0124] Microcapsule rupture rate: 10%.

[0125] Coating weather resistance: varies, adhesion is level 2.

[0126] Thermal conductivity: 0.77 W / (m·K).

[0127] Flexural strength: 36.1 MPa.

[0128] Comparative Example 4: A thermal insulation travertine ceramic brick, which differs from Example 1 in that, in the preparation method of alumina modified microcapsules, step 2 involves slowly adding PVA aqueous solution to molten paraffin and stirring at 1000 rpm for 30 minutes to form a paraffin emulsion.

[0129] Microcapsule rupture rate: 8%.

[0130] Coating weather resistance: varies; adhesion is grade 2.

[0131] Thermal conductivity: 0.83 W / (m·K).

[0132] Flexural strength: 35.8 MPa.

[0133] According to the test data, the heat-insulating travertine ceramic brick prepared in Example 1 has a significant improvement in heat insulation compared with Comparative Example 1, and its flexural strength is also higher. This shows that the technical solution provided in this application can give the heat-insulating travertine ceramic brick good heat insulation effect and excellent mechanical properties.

[0134] Comparative Example 2, based on Example 1, omitted the nano-coating, thus losing the protection of the nano-coating and the special synergy between the nano-coating and the alumina-modified microcapsules. As a result, Comparative Example 2 showed a significant decline in performance in terms of heat preservation, mechanical properties, and other aspects.

[0135] Comparative Examples 3 and 4, based on Example 1, involved replacing key substances or altering key mixing methods. The resulting microcapsules exhibited significantly higher rupture rates and decreased thermal insulation and mechanical properties compared to Example 1. This demonstrates that the technical solution provided in this application is a complete whole and cannot be arbitrarily altered.

[0136] It should be understood that the application of this application is not limited to the examples above. Those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of this application.

Claims

1. A type of heat-insulating travertine ceramic brick, characterized in that, It includes a ceramic tile body and a nano-coating, wherein the nano-coating is applied to the surface of the ceramic tile body. The ceramic brick body comprises the following raw materials by weight percentage: 30-40% potassium sodium feldspar, 10-15% medium-temperature potassium sand, 1-5% bentonite, 1-3% hygroscopic stone, 5-10% talc, 15-20% kaolin, 7-12% raw ore mud, 1-5% porcelain clay, 1-5% bauxite, and 1-5% alumina-modified microcapsules; The preparation method of the alumina-modified microcapsules includes the following steps: Step 1: Heat the paraffin wax to a molten state to obtain molten paraffin wax; Step 2: Mix a 1-5% (w / w) PVA aqueous solution with the molten paraffin wax and stir at 7500-8500 r / min for 15-45 min to form a paraffin wax emulsion; Step 3: Disperse nano-alumina in a melamine-formaldehyde resin solution to obtain a suspension; Step 4: Under stirring, the suspension solution is mixed with the paraffin emulsion to obtain a mixed solution; Step 5: Add hydrochloric acid solution to the mixed solution, adjust the pH value to 4-5, and stir the reaction at 60-70℃ for 2-3 hours to form microcapsule walls; Step 6: Cooling, separating, washing, and drying to obtain the alumina-modified microcapsules; The nano-coating is prepared by nano-coating, which includes the following raw materials in parts by weight: 5-15 parts titanium dioxide, 2-6 parts silica sol, and 1-3 parts acrylic resin.

2. The thermal insulation travertine ceramic brick according to claim 1, characterized in that, In step 1, the paraffin wax is heated to a molten state, and the temperature is controlled at 60-70℃.

3. The thermal insulation travertine ceramic brick according to claim 1, characterized in that, In step 4, the suspension is slowly added to the paraffin emulsion while stirring.

4. The heat-insulating travertine ceramic brick according to claim 3, characterized in that, In step 4, the suspension is added to the paraffin emulsion by dropping, and the dropping rate is controlled to be 3-6 mL / min.

5. The thermal insulation travertine ceramic brick according to claim 1, characterized in that, In step 6, the mixture is cooled to room temperature, then centrifuged, washed multiple times with water, and then vacuum dried to obtain the alumina-modified microcapsules.

6. The thermal insulation travertine ceramic brick according to claim 5, characterized in that, In step 6, the vacuum drying conditions are 55-65℃ for 18-36 hours.

7. The thermal insulation travertine ceramic brick according to claim 1, characterized in that, The thickness of the nano-coating is 40-60 μm.

Citation Information

Patent Citations

  • Method for preparing phase-transformation microcapsule with wall material inlaid with nano alumina

    CN102059083A

  • Ceramic tile with whole-body travertine structure and preparation method of ceramic tile

    CN115959927A