A foamed concrete modified with wood wax oil and its preparation method
Through the synergy between modified wood wax oil and other components, the shortcomings of foamed concrete in terms of seepage resistance, durability and environmental adaptability are solved, and its application performance in high humidity and high cold areas is improved, and the technical requirements of green and low carbon are achieved.
Patent Information
- Application Number
- CN202510761421.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-09
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2045-06-09
AI Technical Summary
Traditional foamed concrete has shortcomings in terms of seepage resistance, durability and environmental adaptability, especially when used in high humidity and high cold areas, with poor structural stability, insufficient water resistance, prominent compatibility problems, and green and low-carbon demand has not been met.
By grafting esterification reaction of wood wax oil with nonylphenol polyoxyethylene ether, modified wood wax oil is prepared, combined with components such as polyacrylamide, n-pentanol and silica aerogel particles, a hydrophobic protective film and crosslinking network are formed, the foam structure and hydration reaction are optimized, and the foam stability and mechanical properties are improved.
It significantly improves the water resistance, frost resistance and mechanical stability of foam concrete, improves the uniformity and durability of the foam structure, enhances its application ability in high humidity and high cold environments, and is in line with the development trend of green building materials.
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Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of concrete, and particularly to a wood wax oil-modified foamed concrete and a preparation method thereof. Background Art
[0002] Foamed concrete is a porous lightweight building material made by mixing components such as cement-based binder, foaming agent, water, and lightweight aggregate, and is widely used in fields such as thermal insulation layer, sound insulation layer, and lightweight filling. Its porous structure endows it with good thermal insulation performance and low bulk density, making it suitable for weight reduction and energy-saving projects of high-rise buildings.
[0003] With the expansion of application scenarios, higher requirements are put forward for the comprehensive performance of foamed concrete materials, especially in terms of impermeability, frost resistance, durability, and environmental adaptability. However, the traditional foamed concrete system generally has the following problems: First, the structural stability is poor. During construction or use, the bubbles in the foaming system are prone to rupture or collapse, resulting in uneven pore structure and affecting the mechanical properties and thermal insulation effect of the final material. Second, the water resistance is insufficient. The porous structure is easy to absorb moisture, has a high water absorption rate in a humid environment, and is prone to cause a decrease in thermal performance and freeze-thaw damage, restricting its long-term application in high-humidity and high-cold regions. Third, the compatibility problem is prominent. Some admixtures introduced to improve performance may have problems such as poor dispersion, weak interfacial bonding, and unstable system due to large differences in physical and chemical properties from the cement-based system. Fourth, the demand for green and low-carbon has not been met. At present, some materials for improving performance come from chemical synthesis systems, and there are certain limitations in terms of environmental protection and sustainability, making it difficult to fully meet the current development trend of green building materials.
[0004] To overcome the above deficiencies, various explorations have been carried out at home and abroad in the raw material system, proportion design, type of foaming agent, and interfacial enhancement means of foamed concrete. For example, some studies have tried to introduce natural organic substances, inorganic micro-nano fillers, or polymer functional materials to improve the foam stability or pore wall structure performance, but generally there are still problems such as low modification efficiency, poor system stability, and weak process adaptability.
[0005] Therefore, how to further improve the impermeability, durability, and environmental adaptability of foamed concrete without affecting the stability of the foaming system and the cement hydration reaction is still an urgent technical problem to be solved in this field. Summary of the Invention
[0006] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide a wood wax oil-modified foamed concrete and a preparation method thereof.
[0007] The above object of the present invention is achieved by the following technical solutions:
[0008] A foamed concrete modified with wood wax oil, which is prepared from the following components in parts by weight:
[0009] Cement: 30 - 40 parts;
[0010] Modified wood wax oil: 7 - 9 parts;
[0011] Protein foaming agent: 0.2 - 0.4 parts;
[0012] Deionized water: 25 - 35 parts;
[0013] Lightweight sand: 18 - 20 parts;
[0014] The modified wood wax oil is a grafted product after the grafting esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the grafted product is not less than 65%, and the HLB value is 8 - 11.
[0015] Wood wax oil itself, as a natural hydrophobic substance, can form a hydrophobic protective film in concrete to prevent water penetration and reduce the contact between the cement matrix and external water, which plays an important role in improving the water resistance and frost resistance of concrete. However, the hydrophobic characteristics of wood wax oil also make it difficult to be uniformly combined with the hydrophilic cement matrix, which may hinder cement hydration and reduce the strength and durability of concrete. In the present invention, wood wax oil is reacted with nonylphenol polyoxyethylene ether through graft modification, successfully changing the interfacial behavior of wood wax oil, making it have moderate hydrophilicity and good interfacial activity, so that it can be better compatible with the cement matrix. Specifically, the esterification rate of the prepared grafted product is controlled to be not less than 65%, ensuring that a sufficient number of hydrophilic polyoxyethylene chain segments are effectively grafted onto the wood wax oil molecules. This esterification degree guarantees the stability of its interfacial structure and functional performance; at the same time, its HLB value is controlled between 8 - 11, which not only avoids the decrease in the ability to form a hydrophobic film due to excessive hydrophilicity, but also ensures its good dispersibility and emulsification performance in the cement-based slurry.
[0016] The modified wood wax oil not only retains its original hydrophobic groups, can self-assemble on the surface of cement particles to form a microcapsule-like coating structure, establish a hydrophobic barrier, and effectively prevent water diffusion, but also can adsorb and orientate with cement particles through its hydrophilic end to form a stable interfacial bond. This structure, without inhibiting cement hydration, synergistically promotes the formation and distribution of hydration products such as C-S-H gel, effectively improving the early strength and long-term durability of the slurry. In addition, under the synergistic action with the foaming agent, the modified wood wax oil migrates and orientates on the surface of the foam film to form a dense composite film structure, improving the elasticity of the foam film and interfacial toughness, significantly enhancing the stability and anti-rupture performance of the foam, thereby improving the tolerance of the foam during stirring, pouring and initial setting processes, and finally enabling the foamed concrete to have a more uniform pore structure and higher structural integrity after forming.
[0017] Furthermore, the modified wood wax oil is prepared through the following steps:
[0018] (1) Mix the wood wax oil and nonylphenol polyoxyethylene ether in a mass ratio of 1:1.1 - 1.3, and add titanium tetrafluoride catalyst in an amount of 0.5 - 1.5 wt% of the total mass of the reaction system for heating reaction; the reaction temperature is controlled at 80 - 90 °C, and the reaction time is 2 - 4 hours;
[0019] Among them, the average EO unit number of nonylphenol polyoxyethylene ether is 9 - 11; the content ratio of C16 - C18 saturated fatty acid esters in the used wood wax oil is 65 - 85%;
[0020] (2) Use a solvent to remove unreacted components to obtain a modified wood wax oil grafting product.
[0021] In the present invention, by modifying the wood wax oil, a grafting product with both hydrophobic and hydrophilic structures is prepared, thereby realizing its efficient dispersion and functional synergy in the foamed concrete system. In the traditional wood wax oil molecular structure, long-chain fatty acid esters are mainly present, with significant hydrophobicity, making it difficult to be evenly distributed in the cement-water system and easily aggregating into clusters, resulting in phase separation at the microscale, which not only affects the stability of the foam structure but also interferes with the normal hydration process of cement. To solve the above problems, nonylphenol polyoxyethylene ether with a polyoxyethylene chain segment is selected as the hydrophilic modifier in the present invention, and a grafting esterification reaction is carried out with the wood wax oil under specific conditions, thereby endowing the wood wax oil molecules with appropriate hydrophilicity and surface activity. The reaction is carried out under the catalysis of titanium tetrafluoride in a temperature-controlled environment of 80 - 90 °C for 2 - 4 hours, and the mass ratio of the reactants is controlled at 1:1.1 - 1.3, so that the reaction system has good reaction kinetic matching and can form an interfacial active product with a high grafting efficiency.
[0022] By regulating the reaction conditions and raw material characteristics, such as selecting nonylphenol polyoxyethylene ether with an EO number of 9 - 11, it helps to form a hydrophilic chain segment with an appropriate length in the grafting product, and the HLB value is controlled within the range of 8 - 11; at the same time, the content ratio of C16 - C18 saturated fatty acid esters in the base wood wax oil reaches 65 - 85%, ensuring a stable source of the hydrophobic group of the product and enabling the modified wood wax oil to have good interfacial tunability while retaining the hydrophobic function. After the grafted product is subjected to solvent extraction to remove unreacted impurities, an interfacial active agent-type material with a uniform structure and excellent dispersibility is obtained.
[0023] This modified wood wax oil can not only quickly form a stable dispersion state in the cement system, but also participate in the adsorption and self-assembly processes on the surface of cement particles at the micro level, forming a multi-level cooperative interface. Its hydrophobic groups provide a hydrophobic barrier during the early hydration stage, inhibiting the infiltration of capillary water and improving the early waterproofing ability; while the hydrophilic segments regulate the charge distribution and spatial structure, reducing the risk of agglomeration between cement particles, promoting the regular formation of hydration products, and enhancing the microstructural integrity of the paste.
[0024] Furthermore, 1-2 parts by weight of polyacrylamide is also added to the foamed concrete.
[0025] The present invention significantly improves the stability of the foam in the foamed concrete by adding polyacrylamide. After adding polyacrylamide to the foamed concrete, it has a synergistic effect with the wood wax oil, improving the stability of the foam film and the elasticity of the foam structure. Specifically, the molecular structure of polyacrylamide has hydrophilic groups, which can interact with the hydrophilic segments in the modified wood wax oil to form a composite structure that can form a strong cross-linked network on the surface of the foam liquid film, ensuring that the foam is not easily collapsed or broken, and enhancing the overall foam stability of the foamed concrete. Therefore, during the forming process of the foamed concrete, the uniformity of the cell structure can be effectively maintained, thereby improving the lightness, heat insulation and mechanical properties of the concrete.
[0026] Furthermore, 0.1-0.5 parts by weight of n-pentanol is also added to the foamed concrete.
[0027] n-Pentanol has a moderate evaporation rate and good interfacial activity. After being dispersed in the foam liquid film, it can quickly evaporate during the foam generation and forming processes, thereby causing a significant interfacial tension gradient locally in the foam film. This interfacial tension gradient serves as a driving force, prompting the structural units with both hydrophobic and hydrophilic characteristics in the modified wood wax oil molecules to undergo directional migration and enrichment, and preferentially arrange at the foam film interface.
[0028] Through this migration and interface reconstruction mechanism, the modified wood wax oil can quickly form a dense and orderly arranged hydrophobic protective layer on the surface of the foam, effectively reducing the sensitivity of the foam film to external disturbances (such as shear, vibration, local liquid flow), and enhancing the tensile resistance and rupture delay performance of the foam film. At the same time, the evaporation of n-pentanol takes away part of the water in the liquid film, prompting the foam film thickness to be moderately thinned and forming a uniform and dense foam film structure, further slowing down the foam collapse trend caused by gravity drainage and thinning between films.
[0029] Under the combined action of the directional migration of the modified wood wax oil and the cross-linked network formed with the assistance of polyacrylamide, the overall interfacial tension distribution of the foam liquid film is more stable, the elasticity of the film surface is enhanced, and the foam life in the system can be increased to more than twice that of the original system, significantly improving the foam retention and pore uniformity of the foamed concrete during the mixing, pouring and initial setting processes. The finally obtained foamed concrete not only has higher pore structure integrity and lightweight properties, but also exhibits better waterproofness, frost resistance and mechanical stability during long-term service.
[0030] Furthermore, 1-3 parts by weight of polyoxyethylene polyoxypropylene ether is added to the foamed concrete, and the modified wood wax oil and polyoxyethylene polyoxypropylene ether are first premixed at 25-35 °C to form an emulsified premix, and then mixed with other components together to prepare the foamed concrete.
[0031] By introducing a polyoxyethylene polyoxypropylene ether (PEO-PPO-PEO) block copolymer (Pluronic F127 is used in the present invention), a temperature-responsive emulsified microstructure is constructed in the system. Polyoxyethylene polyoxypropylene ether exhibits a lower critical solution temperature (LCST) behavior near 25-35 °C, and can induce the formation of micelle structures in this temperature range, where the hydrophobic polyoxypropylene chain segment (PPO) serves as the core and the hydrophilic polyoxyethylene chain segment (PEO) serves as the shell, effectively encapsulating the modified wood wax oil in the micelle core.
[0032] This micelle encapsulation not only improves the dispersibility and stability of the modified wood wax oil in the aqueous phase, but also realizes the controlled release of the wood wax oil during the temperature change process of the system. As the cement paste hydrates and releases heat and the environmental temperature rises, the polyoxyethylene polyoxypropylene ether micelles undergo structural relaxation and decomposition, releasing the encapsulated small droplets of modified wood wax oil. After these microscale wood wax oil droplets are released, they can spontaneously enrich on the surface of the surrounding cement particles, forming a local hydrophobic microenvironment.
[0033] In this local microenvironment, due to the repulsive effect of the hydrophobic droplets on the surrounding moisture, the moisture is locally concentrated around the droplets, significantly increasing the local concentration of hydroxide ions (OH - ). This concentration effect accelerates the hydration reaction on the surface of the cement particles, especially promoting the orderly and directional growth of hydration products such as C-S-H gel. Compared with traditional uniform hydration, the directional hydration structure formed under the induction of wood wax oil has higher compactness and coherence, significantly improving the early strength and long-term mechanical properties of the foamed concrete.
[0034] In addition, after the modified wood wax oil is released in a targeted manner, it can still form a hydrophobic barrier on the pore surface, further enhancing the waterproof property and durability of the foamed concrete. Therefore, through the emulsification premixing and temperature-controlled release mechanism, the present invention realizes the dual regulation of the functionality of the wood wax oil: on the one hand, stabilizing the foam film during the foam generation stage, and on the other hand, promoting the optimization of the microstructure during the hydration process of the paste, thereby significantly improving the comprehensive performance of the foamed concrete.
[0035] Furthermore, 0.5 to 1.5 parts by weight of silica aerogel particles are added to the foamed concrete, and the D50 particle size of the silica aerogel particles is 30 to 50 nm.
[0036] By introducing nano-scale silica aerogel particles, the present invention constructs an auxiliary capillary network with a high specific surface area and a multi-level pore size distribution inside the foamed concrete. The aerogel particles themselves have a highly porous three-dimensional structure with a pore size range mainly concentrated between 20 and 200 nm. After being uniformly dispersed in the cement-based system, a large number of stable nano-capillary channels can be introduced into the microstructure of the paste.
[0037] This multi-level capillary network is rapidly formed in the initial stage of hydration and can regulate the pore structure and liquid migration path at the microscale. When the modified wood wax oil is released and dispersed in the paste in the form of micro-droplets, relying on its low surface tension characteristics, the wood wax oil can rapidly penetrate and fill these nano-capillary channels under the drive of the local negative pressure gradient and capillary attraction. This penetration process not only realizes the deep distribution and uniform filling of the modified wood wax oil inside the system, but also effectively repels the free water in the pores during the penetration process, forming a hydrophobic liquid film.
[0038] Through this mechanism, the internal micro-pores of the foamed concrete are partially closed or modified into hydrophobic channels, significantly reducing the overall water absorption rate and water vapor diffusion rate of the material. At the same time, the hydrophobic barrier layer formed by the self-assembly of the wood wax oil molecules on the surface of the nano-channels can inhibit the capillary water migration inside the pores, improving the ability of the concrete to resist freeze-thaw cycle damage and long-term durability. Furthermore, the low-density characteristic of the silica aerogel particles themselves can improve the thermal insulation performance and lightness of the foamed concrete without significantly increasing the material density.
[0039] Furthermore, 0.05 to 0.1 parts by weight of an isocyanate-based reactive prepolymer are added to the foamed concrete.
[0040] The present invention further optimizes the interfacial properties of the pore structure of foamed concrete by introducing a small amount of isocyanate - type reactive prepolymer (in the present invention, isophorone diisocyanate - trimethylolpropane (IPDI - TMP) adduct is mainly used). The isocyanate group (–NCO) has highly reactive chemical properties and can undergo cross - linking reactions with trace moisture in the cement - based system or hydroxyl groups (–OH) on the surface of the pore wall during film - forming and curing processes.
[0041] During the foam - forming and initial - setting stages, the isocyanate - type prepolymer migrates to the surface of the pore film together with the modified wood wax oil and forms polyurea bonds (–NH–CO–NH–) or polyurethane bonds (–NH–CO–O–) through rapid reactions with local moisture, constructing a dense and continuous organic cross - linked network. This cross - linked film can form a stable hydrophobic organic protective layer on the pore wall, effectively enhancing the mechanical strength and environmental stability of the foam film.
[0042] Due to the excellent flexibility and low - temperature resistance of the formed organic film, it can still maintain good elasticity and continuity within a wide temperature range from –15°C to +50°C, preventing stress concentration, micro - crack formation, and pore - wall damage caused by sudden temperature changes. Especially in the freeze - thaw cycle environment, this organic film can effectively inhibit the growth and expansion of ice crystals in the pores, reduce the frost heaving stress, and significantly improve the freeze - thaw resistance and long - term durability of foamed concrete.
[0043] In addition, the low - dosage design of the isocyanate - type prepolymer ensures its efficient reaction in the system without introducing excessive cross - linking points, avoiding over - stiffening of the material and taking into account both structural stability and overall flexibility. Finally, through the isocyanate cross - linking mechanism, the present invention constructs a highly stable hydrophobic and flexible protective layer on the surface of the micro - pores of foamed concrete, achieving a comprehensive improvement in the high weather resistance, long lifespan, and mechanical properties of the pore structure.
[0044] A preparation method of the above - mentioned wood - wax - oil - modified foamed concrete specifically includes the following steps:
[0045] S1: Weigh cement, lightweight sand, polyacrylamide, silica aerogel particles, isocyanate - type reactive prepolymer, and n - pentanol in proportion, add them to deionized water, and conduct preliminary stirring.
[0046] S2: Dissolve the protein foaming agent in deionized water, add it to the pre - prepared mixture of modified wood wax oil and polyoxyethylene polyoxypropylene ether, and continue stirring evenly.
[0047] S3: Mix the mixture in step S2 with the raw materials in step S1 and conduct sufficient stirring until a concrete slurry with stable foam is formed and evenly mixed.
[0048] S4: Pour the mixture into a mold, let it stand for 24 hours to complete curing, and obtain the finished foamed concrete product.
[0049] Further, in step S2, the stirring temperature is controlled at 50 - 60°C, and the stirring time is 8 - 15 minutes.
[0050] Further, in step S4, the curing process includes first standing at room temperature for 2 - 4 hours, and then curing for 24 - 48 hours under the conditions of relative humidity of 60 - 75% and temperature of 25 - 28°C.
[0051] Compared with the prior art, the beneficial effects of the present invention are mainly reflected in the following aspects:
[0052] (1) The modified wood wax oil is given appropriate hydrophilicity and surface activity through grafting esterification reaction, enabling it to combine well with the cement matrix, thereby improving the water resistance and frost resistance of the foamed concrete without affecting the cement hydration process.
[0053] (2) The modified wood wax oil and polyacrylamide act synergistically to improve the stability and elasticity of the foam film, ensuring the uniformity and durability of the foam during stirring, pouring, and initial setting processes, thereby improving the overall structural integrity of the foamed concrete.
[0054] (3) By adding silica aerogel particles, a nano-capillary network structure with a high specific surface area is constructed, effectively improving the lightness and thermal insulation performance of the foamed concrete. At the same time, the isocyanate-based reactive prepolymer forms a hydrophobic protective layer on the cell walls through crosslinking, enhancing the freeze-thaw resistance and long-term mechanical stability of the foamed concrete.
[0055] (4) The polyoxyethylene polyoxypropylene ether block copolymer induces the formation of micelle structures under temperature response, effectively encapsulating the wood wax oil, and improving the hydration reaction of cement through a temperature-controlled release mechanism, promoting the directional growth of C-S-H gel, and further improving the early strength and long-term durability of the foamed concrete. Specific Embodiments
[0056] The present invention will be described in detail below in conjunction with embodiments.
[0057] Example 1
[0058] This example discloses a foamed concrete modified with wood wax oil, and its raw materials mainly include the following components in parts by weight:
[0059] Cement: 35 parts;
[0060] Modified wood wax oil: 8 parts;
[0061] Protein foaming agent: 0.3 part;
[0062] Deionized water: 30 parts;
[0063] Lightweight sand: 19 parts;
[0064] Among them, the cement is P.O 42.5 ordinary Portland cement;
[0065] The protein foaming agent is the 1261# type foaming agent of Dongguan Shenhai Energy Saving Building Materials Technology;
[0066] The lightweight sand is siliceous lightweight sand with a particle size of 0.3 mm and a mud content of less than 1%;
[0067] The modified wood wax oil is a graft product after the graft esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the graft product is not less than 65% and the HLB value is 9.
[0068] The modified wood wax oil is prepared by the following steps:
[0069] (1) Weigh wood wax oil and nonylphenol polyoxyethylene ether (average number of polyoxyethylene chain segments is 10) and mix them according to a mass ratio of 1:1.2; The wood wax oil is selected with a grade having a saturated fatty acid ester (C17) content of 75% to ensure uniform distribution of the main reaction sites in the reactants; Use a magnetic stirrer or mechanical stirring equipment to pre-stir for 12.5 minutes at room temperature (22.5 °C) to fully mix the two raw materials evenly.
[0070] Subsequently, continuously stir and dropwise add titanium tetrafluoride catalyst with a dosage of 1.0 wt% of the total mass of the reaction system, control the reaction temperature at 85 °C, the heating rate at 3.5 °C / min, and the reaction time at 3 hours.
[0071] (2) After the reaction is completed, naturally cool to room temperature (22.5 °C); If the viscosity of the system increases, a small amount of anhydrous ethanol (mass ratio not exceeding 5%) can be appropriately added for auxiliary dilution for subsequent operations.
[0072] Add the cooled reaction mixture to pre-cooled anhydrous ethanol (volume ratio 1:5) for precipitation; Use centrifugal separation or vacuum filtration to remove unreacted nonylphenol polyoxyethylene ether and impurities; Wash the precipitate with anhydrous ethanol 2 times, each time for 10 minutes for further purification; Finally, vacuum dry at 45 °C for 7 hours to obtain a pure modified wood wax oil graft product.
[0073] This embodiment also discloses a preparation method of the above foamed concrete modified based on wood wax oil, which specifically includes the following steps:
[0074] S1: After weighing the cement and lightweight sand according to the said ratio, add them to deionized water and conduct preliminary stirring; Control the stirring time to 7 minutes; Control the stirring speed to 1100 rpm; Control the stirring temperature to 27.5 °C.
[0075] S2: Dissolve the protein foaming agent in deionized water at 22.5 °C, control the stirring speed at 350 rpm, stir for 9 minutes until evenly mixed, ensure that the foaming agent is completely dissolved, generate a uniform foaming agent solution, and then add the modified wood wax oil, and continue to stir to obtain a mixture.
[0076] S3: Mix the mixture in step S2 with the raw materials in step S1, and control the stirring time to be 9 minutes, the stirring speed to be 1350 rpm, and the stirring temperature to be 22.5 °C for sufficient stirring until evenly mixed to form a concrete slurry with stable foam;
[0077] S4: Pour the mixture into a mold, let it stand at room temperature for 3 hours first, and then cure it for 24 hours under the conditions of 75% relative humidity and 25 °C temperature to obtain the finished foamed concrete.
[0078] Example 2
[0079] This example discloses a foamed concrete modified with wood wax oil, and its raw materials mainly include the following components in parts by weight:
[0080] Cement: 30 parts;
[0081] Modified wood wax oil: 7 parts;
[0082] Protein foaming agent: 0.2 parts;
[0083] Deionized water: 25 parts;
[0084] Lightweight sand: 18 parts;
[0085] Among them, the cement uses P.O 42.5 ordinary Portland cement;
[0086] The protein foaming agent uses the 1261# type foaming agent of Dongguan Shenhai Energy Saving Building Materials Technology;
[0087] The lightweight sand uses silica lightweight sand with a particle size of 0.1 mm and a mud content of less than 1%;
[0088] The modified wood wax oil is a grafted product after the grafting esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the grafted product is not less than 65% and the HLB value is 8.
[0089] The modified wood wax oil is prepared through the following steps:
[0090] (1) Weigh tung oil and nonylphenol polyoxyethylene ether (with an average number of polyoxyethylene segments of 9) and mix them according to a mass ratio of 1:1.1. Select a grade of tung oil with a saturated fatty acid ester (C16) content of 65% to ensure uniform distribution of main reaction sites in the reactants. Use a magnetic stirrer or mechanical stirring equipment to pre-stir for 10 minutes at room temperature (20 °C) to fully mix the two raw materials evenly.
[0091] Subsequently, while continuously stirring, add titanium tetrafluoride catalyst with a dosage of 0.5 wt% of the total mass of the reaction system dropwise. Control the reaction temperature at 80 °C, the heating rate at 2 °C / min, and the reaction time at 2 hours.
[0092] (2) After the reaction is completed, naturally cool to room temperature (20 °C). If the viscosity of the system increases, a small amount of anhydrous ethanol (mass ratio not exceeding 5%) can be added appropriately to assist in dilution for subsequent operations.
[0093] Add the cooled reaction mixture to pre-cooled anhydrous ethanol (volume ratio 1:5) for precipitation. Use centrifugation or vacuum filtration to remove unreacted nonylphenol polyoxyethylene ether and impurities. Wash the precipitate with anhydrous ethanol twice, for 10 minutes each time, for further purification. Finally, dry it in a vacuum at 40 °C for 6 hours to obtain a pure modified tung oil grafted product.
[0094] This example also discloses a preparation method of the above-mentioned foamed concrete modified based on tung oil, specifically including the following steps:
[0095] S1: Weigh cement and lightweight sand according to the said ratio, add deionized water, and conduct preliminary stirring. Control the stirring time at 6 minutes, the stirring speed at 1000 rpm, and the stirring temperature at 25 °C.
[0096] S2: Dissolve the protein foaming agent in deionized water at 20 °C, control the stirring speed at 300 rpm, and stir for 9 minutes until evenly mixed to ensure complete dissolution of the foaming agent, generating a uniform foaming agent solution. Subsequently, add the modified tung oil and continue stirring to obtain a mixed solution.
[0097] S3: Mix the mixed solution in step S2 with the raw materials in step S1, and control the stirring time at 8 minutes, the stirring speed at 1200 rpm, and the stirring temperature at 20 °C for thorough stirring until evenly mixed to form a concrete slurry with stable foam.
[0098] S4: Pour the mixture into a mold, let it stand at room temperature for 3 hours first, and then cure it for 24 hours under the conditions of 75% relative humidity and 25 °C temperature to obtain the finished foamed concrete.
[0099] Example 3
[0100] This embodiment discloses a foamed concrete modified with wood wax oil, and its raw materials mainly include the following components in parts by weight:
[0101] Cement: 40 parts;
[0102] Modified wood wax oil: 9 parts;
[0103] Protein foaming agent: 0.4 part;
[0104] Deionized water: 35 parts;
[0105] Lightweight sand: 20 parts;
[0106] Among them, P.O 42.5 ordinary Portland cement is used for the cement;
[0107] The protein foaming agent uses the 1261# type foaming agent of Dongguan Shenhai Energy-saving Building Materials Technology;
[0108] The lightweight sand uses siliceous lightweight sand with a particle size of 0.5 mm and a mud content of less than 1%;
[0109] The modified wood wax oil is a grafted product after the grafting esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the grafted product is not less than 65%, and the HLB value is 11.
[0110] The modified wood wax oil is prepared through the following steps:
[0111] (1) Weigh wood wax oil and nonylphenol polyoxyethylene ether (average number of polyoxyethylene chain segments is 11) and mix them according to a mass ratio of 1:1.3; The wood wax oil selects a grade with a saturated fatty acid ester (C18) content of 85% to ensure uniform distribution of main reaction sites in the reactants; Use a magnetic stirrer or mechanical stirring equipment to pre-stir for 15 minutes at room temperature (25 °C) to fully mix the two raw materials evenly.
[0112] Subsequently, continuously stir and dropwise add titanium tetrafluoride catalyst with a dosage of 1.5 wt% of the total mass of the reaction system, control the reaction temperature at 90 °C, the heating rate at 5 °C / min, and the reaction time at 4 hours.
[0113] (2) After the reaction is completed, naturally cool to room temperature (25 °C); If the viscosity of the system increases, a small amount of anhydrous ethanol (mass ratio does not exceed 5%) can be appropriately added for auxiliary dilution for subsequent operations.
[0114] The cooled reaction mixture was added to pre-cooled absolute ethanol (volume ratio 1:5) for precipitation; centrifugal separation or vacuum filtration was used to remove unreacted nonylphenol polyoxyethylene ether and impurities; the precipitate was washed 3 times with absolute ethanol for 10 minutes each time for further purification; finally, it was dried in vacuo at 50 °C for 8 hours to obtain a pure modified wood-wax oil grafted product.
[0115] This example also discloses a preparation method of the above-mentioned foamed concrete modified with wood-wax oil, which specifically includes the following steps:
[0116] S1: After weighing cement and light sand in the stated proportions, they were added to deionized water and preliminarily stirred; the stirring time was controlled at 8 minutes; the stirring speed was controlled at 1200 rpm; the stirring temperature was controlled at 30 °C.
[0117] S2: The protein foaming agent was dissolved in deionized water at 55 °C, the stirring speed was controlled at 400 rpm, and stirring was carried out for 9 minutes until evenly mixed to ensure complete dissolution of the foaming agent, generating a uniform foaming agent solution. Subsequently, modified wood-wax oil was added and stirring continued to obtain a mixed solution.
[0118] S3: The mixed solution from step S2 was mixed with the raw materials in step S1, and stirring was carried out for 10 minutes, at a stirring speed of 1500 rpm, and a stirring temperature of 25 °C for thorough stirring until evenly mixed to form a concrete slurry with stable foam;
[0119] S4: The mixture was poured into a mold, left to stand at room temperature for 3 hours first, and then cured for 24 hours under the conditions of a relative humidity of 75% and a temperature of 25 °C to obtain a finished product of foamed concrete.
[0120] Example 4
[0121] This example discloses a foamed concrete modified with wood-wax oil, and its raw materials mainly include the following components in parts by weight:
[0122] Cement: 35 parts;
[0123] Modified wood-wax oil: 8 parts;
[0124] Protein foaming agent: 0.3 part;
[0125] Deionized water: 30 parts;
[0126] Light sand: 19 parts;
[0127] Polyacrylamide: 1.5 parts.
[0128] Among them, P.O 42.5 ordinary Portland cement was used for the cement;
[0129] The protein foaming agent uses the 1261# type foaming agent of Dongguan Shenhai Energy Saving Building Materials Technology Co., Ltd.;
[0130] The lightweight sand uses silica-based lightweight sand with a particle size of 0.3 mm and a mud content of less than 1%;
[0131] The modified wood wax oil is a grafted product after the grafting esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the grafted product is not less than 65% and the HLB value is 9.
[0132] The preparation method of the modified wood wax oil is the same as that of Example 1.
[0133] This example also discloses a preparation method of the above-mentioned foamed concrete modified with wood wax oil, which specifically includes the following steps:
[0134] S1: After weighing cement, lightweight sand, and polyacrylamide according to the said ratio, add them into deionized water and conduct preliminary stirring; the stirring time is controlled at 7 minutes; the stirring speed is controlled at 1100 rpm; the stirring temperature is controlled at 27.5 °C.
[0135] S2: Dissolve the protein foaming agent in deionized water at 50 °C, control the stirring speed at 350 rpm, stir for 9 minutes until evenly stirred to ensure that the foaming agent is completely dissolved, generating a uniform foaming agent solution, and then add the modified wood wax oil and continue stirring to obtain a mixed solution.
[0136] S3: Mix the mixed solution in step S2 with the raw materials in step S1, and control the stirring time at 9 minutes, the stirring speed at 1350 rpm, and the stirring temperature at 22.5 °C for sufficient stirring until evenly mixed to form a concrete slurry with stable foam;
[0137] S4: Pour the mixture into a mold, first let it stand at room temperature for 3 hours, and then cure it for 24 hours under the conditions of a relative humidity of 75% and a temperature of 25 °C to obtain the finished foamed concrete.
[0138] Example 5
[0139] This example discloses a foamed concrete modified with wood wax oil, and its raw materials mainly include the following components in parts by weight:
[0140] Cement: 35 parts;
[0141] Modified wood wax oil: 8 parts;
[0142] Protein foaming agent: 0.3 part;
[0143] Deionized water: 30 parts;
[0144] Lightweight sand: 19 parts;
[0145] Polyacrylamide: 1.5 parts;
[0146] n-Amyl alcohol: 0.3 parts.
[0147] Among them, the cement is P.O 42.5 ordinary Portland cement;
[0148] The protein foaming agent is the 1261# type foaming agent of Dongguan Shenhai Energy Saving Building Materials Technology;
[0149] The lightweight sand is siliceous lightweight sand with a particle size of 0.3 mm and a mud content of less than 1%;
[0150] The modified wood wax oil is a grafted product after the grafting esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the grafted product is not less than 65% and the HLB value is 9.
[0151] The preparation method of the modified wood wax oil is the same as that of Example 1.
[0152] This example also discloses a preparation method of the above-mentioned foamed concrete modified with wood wax oil, which specifically includes the following steps:
[0153] S1: After weighing cement, lightweight sand, polyacrylamide, and n-amyl alcohol according to the above proportions, add them to deionized water and conduct preliminary stirring; the stirring time is controlled at 7 minutes; the stirring speed is controlled at 1100 rpm; the stirring temperature is controlled at 27.5 °C.
[0154] S2: Dissolve the protein foaming agent in deionized water at 50 °C, control the stirring speed at 350 rpm, and stir for 9 minutes until evenly stirred to ensure that the foaming agent is completely dissolved to generate a uniform foaming agent solution, and then add the modified wood wax oil and continue stirring to obtain a mixed solution.
[0155] S3: Mix the mixed solution in step S2 with the raw materials in step S1, and control the stirring time at 9 minutes, the stirring speed at 1350 rpm, and the stirring temperature at 22.5 °C for sufficient stirring until evenly mixed to form a concrete slurry with stable foam;
[0156] S4: Pour the mixture into a mold, let it stand at room temperature for 3 hours first, and then cure it for 24 hours under the conditions of a relative humidity of 75% and a temperature of 25 °C to obtain the finished foamed concrete.
[0157] Example 6
[0158] This example discloses a foamed concrete modified with wood wax oil, and its raw materials mainly include the following components in parts by weight:
[0159] Cement: 35 parts;
[0160] Modified wood wax oil: 8 parts;
[0161] Protein foaming agent: 0.3 parts;
[0162] Deionized water: 30 parts;
[0163] Lightweight sand: 19 parts;
[0164] Polyacrylamide: 1.5 parts;
[0165] n-Amyl alcohol: 0.3 parts;
[0166] Polyoxyethylene polyoxypropylene ether: 2 parts.
[0167] Among them, the cement uses P.O 42.5 ordinary Portland cement;
[0168] The protein foaming agent uses the 1261# type foaming agent of Dongguan Shenhai Energy-saving Building Materials Technology;
[0169] The lightweight sand uses silica-based lightweight sand with a particle size of 0.3 mm and a mud content of less than 1%;
[0170] The polyoxyethylene polyoxypropylene ether uses Pluronic F127;
[0171] The modified wood wax oil is a grafted product after the grafting esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the grafted product is not less than 65% and the HLB value is 9.
[0172] The preparation method of the modified wood wax oil is the same as that of Example 1.
[0173] This embodiment also discloses a preparation method of the above-mentioned foamed concrete modified based on wood wax oil, which specifically includes the following steps:
[0174] S1: After weighing cement, lightweight sand, polyacrylamide, and n-amyl alcohol according to the above ratio, add them to deionized water and conduct preliminary stirring; the stirring time is controlled at 7 minutes; the stirring speed is controlled at 1100 rpm; the stirring temperature is controlled at 27.5 °C.
[0175] S2: Dissolve the protein foaming agent in deionized water at 55 °C, control the stirring speed at 350 rpm, and stir for 9 minutes until evenly stirred to ensure that the foaming agent is completely dissolved to form a uniform foaming agent solution;
[0176] Pre-mix the modified wood wax oil and polyoxyethylene polyoxypropylene ether by stirring at 30 °C to form an emulsified premix, and then mix it with the foaming agent solution and continue stirring to obtain a mixed solution.
[0177] S3: Mix the mixture in step S2 with the raw materials in step S1, and control the stirring time to be 9 minutes, the stirring speed to be 1350 rpm, and the stirring temperature to be 22.5 °C for sufficient stirring until evenly mixed to form a concrete slurry with stable foam;
[0178] S4: Pour the mixture into a mold, let it stand at room temperature for 3 hours first, and then cure it for 24 hours under the conditions of a relative humidity of 75% and a temperature of 25 °C to obtain the finished foamed concrete.
[0179] Example 7
[0180] This example discloses a foamed concrete modified with wood wax oil, and its raw materials mainly include the following components in parts by weight:
[0181] Cement: 35 parts;
[0182] Modified wood wax oil: 8 parts;
[0183] Protein foaming agent: 0.3 part;
[0184] Deionized water: 30 parts;
[0185] Lightweight sand: 19 parts;
[0186] Polyacrylamide: 1.5 parts;
[0187] n-Amyl alcohol: 0.3 part;
[0188] Polyoxyethylene polyoxypropylene ether: 2 parts;
[0189] Silica aerogel particles: 1 part.
[0190] Among them, the cement uses P.O 42.5 ordinary Portland cement;
[0191] The protein foaming agent uses the 1261# type foaming agent of Dongguan Shenhai Energy Saving Building Materials Technology;
[0192] The lightweight sand uses silica-based lightweight sand with a particle size of 0.3 mm and a mud content of less than 1%;
[0193] The D50 particle size of the silica aerogel particles is 50 nm;
[0194] The polyoxyethylene polyoxypropylene ether uses Pluronic F127;
[0195] The modified wood wax oil is a graft product after the graft esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the graft product is not less than 65% and the HLB value is 9.
[0196] The preparation method of the modified wood wax oil is the same as that in Example 1.
[0197] This embodiment also discloses a preparation method of the above-mentioned foamed concrete modified with wood wax oil, which specifically includes the following steps:
[0198] S1: After weighing cement, light sand, silica aerogel particles, polyacrylamide, and n-pentanol according to the said ratio, add them to deionized water and conduct preliminary stirring; control the stirring time to 7 minutes; control the stirring speed to 1100 rpm; control the stirring temperature to 27.5°C.
[0199] S2: Dissolve the protein foaming agent in deionized water at 55°C, control the stirring speed at 350 rpm, and stir for 9 minutes until evenly mixed to ensure that the foaming agent is completely dissolved, generating a uniform foaming agent solution;
[0200] Mix the modified wood wax oil and polyoxyethylene polyoxypropylene ether by stirring at 30°C to form an emulsified premix, and then mix it with the foaming agent solution and continue stirring to obtain a mixed solution.
[0201] S3: Mix the mixed solution in step S2 with the raw materials in step S1, and control the stirring time to 9 minutes, the stirring speed to 1350 rpm, and the stirring temperature to 22.5°C for sufficient stirring until evenly mixed to form a concrete slurry with stable foam;
[0202] S4: Pour the mixture into a mold, let it stand at room temperature for 4 hours first, and then cure it for 24 hours under the conditions of a relative humidity of 75% and a temperature of 25°C to obtain the finished foamed concrete.
[0203] Example 8
[0204] This embodiment discloses a foamed concrete modified with wood wax oil, and its raw materials mainly include the following components in parts by weight:
[0205] Cement: 35 parts;
[0206] Modified wood wax oil: 8 parts;
[0207] Protein foaming agent: 0.3 part;
[0208] Deionized water: 30 parts;
[0209] Light sand: 19 parts;
[0210] Polyacrylamide: 1.5 parts;
[0211] n-Pentanol: 0.3 part;
[0212] Polyoxyethylene polyoxypropylene ether: 2 parts;
[0213] Silica aerogel particles: 1 part;
[0214] Isocyanate-based reactive prepolymer: 0.08 part.
[0215] Among them, P.O 42.5 ordinary Portland cement is used for the cement;
[0216] The protein foaming agent uses the 1261# type foaming agent of Dongguan Shenhai Energy Saving Building Materials Technology;
[0217] The lightweight sand uses siliceous lightweight sand with a particle size of 0.3 mm and a mud content of less than 1%;
[0218] The D50 particle size of the silica aerogel particles is 50 nm;
[0219] Polyoxyethylene polyoxypropylene ether uses Pluronic F127;
[0220] The isocyanate-type reactive prepolymer is an IPDI-TMP adduct.
[0221] The modified wood wax oil is a graft product after the graft esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the graft product is not less than 65% and the HLB value is 9.
[0222] The preparation method of the modified wood wax oil is the same as that of Example 1.
[0223] This embodiment also discloses a preparation method of the above-mentioned foamed concrete modified based on wood wax oil, which specifically includes the following steps:
[0224] S1: After weighing cement, lightweight sand, silica aerogel particles, isocyanate-type reactive prepolymer, polyacrylamide, and n-pentanol according to the said ratio, add them into deionized water and conduct preliminary stirring; the stirring time is controlled at 7 minutes; the stirring speed is controlled at 1100 rpm; the stirring temperature is controlled at 27.5 °C.
[0225] S2: Dissolve the protein foaming agent in deionized water at 60 °C, control the stirring speed at 350 rpm, and stir for 9 minutes until evenly stirred to ensure that the foaming agent is completely dissolved, generating a uniform foaming agent solution;
[0226] Pre-mix the modified wood wax oil and polyoxyethylene polyoxypropylene ether by stirring at 30 °C to form an emulsified premix, and then mix it with the foaming agent solution and continue stirring to obtain a mixed solution.
[0227] S3: Mix the mixed solution in step SII with the raw materials in step S1, and control the stirring time at 9 minutes, the stirring speed at 1350 rpm, and the stirring temperature at 22.5 °C for sufficient stirring until evenly mixed to form a concrete slurry with stable foam;
[0228] S4: Pour the mixture into a mold, let it stand at room temperature for 3 hours first, and then cure it for 24 hours under the conditions of 75% relative humidity and 25°C to obtain the finished foamed concrete product.
[0229] Comparative Example 1
[0230] This example discloses a foamed concrete modified with wood wax oil, and its raw materials mainly include the following components in parts by weight:
[0231] Cement: 35 parts;
[0232] Wood wax oil: 8 parts;
[0233] Protein foaming agent: 0.3 part;
[0234] Deionized water: 30 parts;
[0235] Lightweight sand: 19 parts;
[0236] Among them, the cement uses P.O 42.5 ordinary Portland cement;
[0237] The protein foaming agent uses the 1261# type foaming agent of Dongguan Shenhai Energy Saving Building Materials Technology;
[0238] The lightweight sand uses siliceous lightweight sand with a particle size of 0.3 mm and a mud content of less than 1%;
[0239] Comparative Example 1 also discloses a preparation method of the above-mentioned foamed concrete, which specifically includes the following steps:
[0240] S1: After weighing the cement and lightweight sand according to the above ratio, add them into deionized water and conduct preliminary stirring; the stirring time is controlled at 7 minutes; the stirring speed is controlled at 1100 rpm; the stirring temperature is controlled at 27.5°C.
[0241] S2: Dissolve the protein foaming agent in deionized water at 22.5°C, control the stirring speed at 350 rpm, stir for 9 minutes until evenly stirred to ensure that the foaming agent is completely dissolved, generate a uniform foaming agent solution, and then add wood wax oil and continue stirring to obtain a mixed solution.
[0242] S3: Mix the mixed solution in step S2 with the raw materials in step S1, and control the stirring time at 9 minutes, the stirring speed at 1350 rpm, and the stirring temperature at 22.5°C for sufficient stirring until evenly mixed to form a concrete slurry with stable foam;
[0243] S4: Pour the mixture into a mold, let it stand at room temperature for 3 hours first, and then cure it for 24 hours under the conditions of 75% relative humidity and 25°C to obtain the finished foamed concrete product.
[0244] Testing method
[0245] 1. Early strength test of concrete paste
[0246] Test method:
[0247] The specific test steps are as follows:
[0248] Step 1: Prepare specimens with standard dimensions (100mm×100mm×100mm cubes).
[0249] Step 2: After the concrete specimens are formed, cure them in the normal temperature environment for 24 hours, and then transfer them to the standard curing conditions (humidity maintained at 95%, temperature 25°C) for continued curing.
[0250] Step 3: Use a press (such as a 2000 kN pressure testing machine) to conduct compressive strength tests, and record the compressive strengths at 24 hours and 48 hours.
[0251] The test results are shown in Table 1.
[0252] Table 1
[0253]
[0254] 2. Durability test of concrete
[0255] Test method:
[0256] Test according to the GB / T 50082 standard by using a standard water permeameter.
[0257] Step 1: Make standard specimens (100mm×100mm×100mm cubes)
[0258] Step 2: Place the concrete specimens in a pressurized water permeation device, apply a standard water pressure (such as 0.2 MPa), and soak for 48 hours continuously.
[0259] Step 3: Evaluate the water resistance of the concrete according to the penetration depth or mass change.
[0260] The test results are shown in Table 2.
[0261] Table 2
[0262]
[0263] 3. Foam stability test:
[0264] Evaluate by using a foam stability tester.
[0265] Step 1: Pour the foamed concrete paste into a standard foam container and record the initial foam height.
[0266] Step 2: Over time, measure the height of the foam every 5 minutes until it breaks, and record the duration of the foam.
[0267] The test results are shown in Table 3.
[0268] Table 3
[0269]
[0270] 4. Frost and thaw cycle resistance
[0271] Test method:
[0272] The test is carried out according to ASTM C666 standard.
[0273] Step 1: Prepare the concrete samples to standard size (100mm×100mm×100mm cube), and freeze them after initial curing for 24 hours.
[0274] Step 2: Alternately place the specimens in an environment of -20°C for 4 hours and then in an environment of 20°C for 4 hours to thaw. Conduct 25 freeze-thaw cycles for each period.
[0275] Step 3: After the freeze-thaw cycle is completed, measure the compressive strength loss and mass change of the concrete as the evaluation indexes of the frost and thaw resistance.
[0276] The test results are shown in Table 4.
[0277] Table 4
[0278]
[0279] The above are only the preferred embodiments of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions within the idea of the present invention belong to the protection scope of the present invention. It should be pointed out that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and retouches should also be regarded as the protection scope of the present invention.
Claims
1. A foamed concrete modified with wood wax oil, characterized in that, It is prepared from the following components in parts by weight: Cement: 30 - 40 parts; Modified wood wax oil: 7 - 9 parts; Protein foaming agent: 0.2 - 0.4 parts; Deionized water: 25 - 35 parts; Lightweight sand: 18 - 20 parts; The modified wood wax oil is a graft product after the graft esterification reaction of nonylphenol polyoxyethylene ether and wood wax oil, and the esterification rate of the graft product is not less than 65%, and the HLB value is 8 - 11.
2. A foamed concrete modified with wood wax oil according to claim 1, characterized in that: The modified wood wax oil is prepared by the following steps: (1) Mix wood wax oil and nonylphenol polyoxyethylene ether in a mass ratio of 1:1.1 - 1.3, and add titanium tetrafluoride catalyst with a dosage of 0.5 - 1.5 wt% of the total mass of the reaction system for heating reaction; the reaction temperature is controlled at 80 - 90 °C, and the reaction time is 2 - 4 hours; Among them, the average EO unit number of nonylphenol polyoxyethylene ether is 9 - 11; the content ratio of C16 - C18 saturated fatty acid esters in the used wood wax oil is 65 - 85%; (2) Remove the unreacted components by solvent to obtain the modified wood wax oil graft product.
3. A foamed concrete modified with wood wax oil according to claim 1, characterized in that: 1 - 2 parts by weight of polyacrylamide is also added to the foamed concrete.
4. A foamed concrete modified with wood wax oil according to claim 3, characterized in that: 0.1 - 0.5 parts by weight of n - pentanol is also added to the foamed concrete.
5. A foamed concrete modified with wood wax oil according to claim 4, characterized in that: 1 - 3 parts by weight of polyoxyethylene polyoxypropylene ether is also added to the foamed concrete, and the modified wood wax oil and polyoxyethylene polyoxypropylene ether are first premixed at 25 - 35 °C to form an emulsified premix, and then mixed with other components together to prepare the foamed concrete.
6. The foamed concrete modified with wood wax oil according to claim 5, characterized in that: 0.5 - 1.5 parts by weight of silica aerogel particles are also added to the foamed concrete, and the D50 particle size of the silica aerogel particles is 30 - 50 nm.
7. A foamed concrete modified with wood wax oil according to claim 6, characterized in that: 0.05 - 0.1 parts by weight of isocyanate - type reactive prepolymer is also added to the foamed concrete.
8. A preparation method of the wood wax oil-modified foamed concrete according to claim 7, characterized in that, Specifically, it includes the following steps: S1: Weigh cement, lightweight sand, polyacrylamide, silica aerogel particles, isocyanate - type reactive prepolymer, and n - pentanol in proportion, add them to deionized water, and conduct preliminary stirring; S2: Dissolve the protein foaming agent in deionized water, add it to the pre - prepared mixture of modified wood wax oil and polyoxyethylene polyoxypropylene ether, and continue to stir evenly; S3: Mix the mixture in step S2 with the raw materials in step S1, and conduct sufficient stirring until it is evenly mixed to form a concrete slurry with stable foam; S4: Pour the mixture into a mold, let it stand for 24 hours to complete curing, and obtain the finished foamed concrete.
9. The preparation method of a kind of expanded concrete modified by wood wax oil according to claim 8, characterized in that: In step S2, the stirring temperature is controlled at 50 - 60 °C, and the stirring time is 8 - 15 minutes.
10. The preparation method of a foamed concrete modified with wood wax oil according to claim 8, characterized in that, In step S4, the curing process includes first standing at room temperature for 2 - 4 hours, and then curing for 24 - 48 hours under the conditions of relative humidity of 60 - 75% and temperature of 25 - 28 °C.
Citation Information
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