Three-dimensional graphene reinforced concrete and preparation method thereof
By preparing modified three-dimensional graphene and combining it with modified silica fume, the problem of easy agglomeration of graphene in concrete is solved, the strength and conductivity of concrete are improved, and the performance requirements in special environments are met.
Patent Information
- Application Number
- CN202411558350.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-04
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2044-11-04
AI Technical Summary
Existing graphene is prone to agglomeration and stacking in concrete, which limits its application, and ordinary concrete has insufficient performance and durability in special environments.
The modified three-dimensional graphene is prepared by combining three-dimensional graphene with modified silica fume and polypyrrole through hydrothermal reaction and heat treatment. The modified silica fume and polypyrrole are combined to form uniformly distributed three-dimensional graphene-reinforced concrete. The high activity of the modified silica fume and the conductivity of the polypyrrole are used to improve the strength and conductivity of the concrete.
It achieves high strength and uniform conductivity of concrete, reduces environmental pressure, and improves the performance and durability of concrete in special environments.
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Figure CN119263741B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building concrete, in particular to three-dimensional graphene reinforced concrete and a preparation method thereof. Background Art
[0002] In recent years, the construction of roads, bridges, dams, and high-rise buildings has boomed. Concrete, with its advantages of high cost-effectiveness, wide availability, superior overall physical properties, and flexible design based on project requirements, has been widely used in various construction projects.
[0003] The growing demand for concrete applications, particularly in specialized or harsh environments, places higher demands on the overall performance and durability of concrete structures. Modern concrete must not only bear its own weight but also withstand multiple loads, including wind, seismic, and vehicle loads. Therefore, the research and development of high-performance concrete has become crucial. This not only improves project safety and reliability but also serves as a key driver for sustainable development in the construction industry.
[0004] Adding graphene to concrete is one of the development directions of modern high-performance concrete. Graphene has many properties, such as enhancing the strength of concrete. Its unique conductive properties also allow concrete to conduct electricity. The advantage of conductive concrete is its ability to respond to and transmit electrical signals, which enables the concrete structure to self-monitor and detect internal damage and environmental changes in a timely manner. However, while ordinary graphene is stabilized by π-π bonds and van der Waals forces, this also causes it to tend to aggregate and stack, limiting its application in concrete.
[0005] To this end, in response to the problems raised in the above background technology, those skilled in the art have proposed a three-dimensional graphene-reinforced concrete based on three-dimensional graphene, combined with polypyrrole and modified silica fume. Summary of the Invention
[0006] The object of the present invention is to provide a three-dimensional graphene reinforced concrete and a preparation method thereof to solve the problems raised in the above background technology.
[0007] To achieve the above object, the present invention provides the following technical solutions:
[0008] A three-dimensional graphene-reinforced concrete comprising the following components:
[0009] 325-480 parts of coal gangue, 242-328 parts of sand, 48-75 parts of fly ash, 5-11 parts of gypsum, 110-186 parts of Portland cement, 8-16 parts of slaked lime, 6-20 parts of water reducer, 5-18 parts of modified three-dimensional graphene and 210-290 parts of water;
[0010] The modified three-dimensional graphene includes modified silica fume, graphene oxide and pyrrole, and the specific preparation method thereof includes the following steps:
[0011] S101, dispersing graphene oxide in a mixed solution of propanol and deionized water, then adding hydrazine hydrate, and hydrothermally reacting for 12-24 hours at a reaction temperature of 170-220° C. to obtain a three-dimensional graphene hydrogel after the reaction is completed;
[0012] S102, adding an ethanol solution of pyrrole to the three-dimensional graphene hydrogel in step S101, blending for 1-2 hours, then adding ferric chloride, and continuing the hydrothermal reaction for 6-8 hours at a reaction temperature of 160-240° C. to obtain a three-dimensional graphene-polypyrrole hydrogel;
[0013] S103, heat-treating the three-dimensional graphene-polypyrrole hydrogel obtained in step S102 for 2-4 hours under an argon atmosphere at a temperature of 450-600° C. to obtain a three-dimensional graphene-polypyrrole aerogel;
[0014] S104, dispersing the modified silica fume in deionized water, adding sodium benzenesulfonate, and then adding the three-dimensional graphene-polypyrrole aerogel obtained in step S103, passing nitrogen into the deionized water, stirring and mixing for 12-18 hours, and then filtering, washing with deionized water and drying the filtered product at low temperature to obtain modified three-dimensional graphene;
[0015] The preparation method of the modified silica fume comprises the following steps:
[0016] S201, ball milling the silica fume in a high-energy ball mill to prepare silica fume with a particle size of less than 10 nm;
[0017] S202, calcining the silica fume after ball milling in step S201 at a high temperature of 600-800°C, keeping the temperature for 4-6 hours, and then cooling to room temperature;
[0018] S203, adding γ-glycidyloxypropyltrimethoxysilane to a mixed solution of ethanol and deionized water, and then adding the calcined and cooled silica fume, mixing and stirring for 10-16 hours, and then filtering and washing with deionized water to obtain modified silica fume.
[0019] Furthermore, in step S101, the mass ratio of graphene oxide, hydrazine hydrate, propanol and deionized water is 1:(1-3):(20-30):(25-40).
[0020] Furthermore, in step S102, the mass ratio of pyrrole to ethanol in the ethanol solution of pyrrole is 1:10, and the mass ratio of ferric chloride to the ethanol solution of pyrrole is 1:(6-15).
[0021] Furthermore, the mass ratio between the graphene oxide in step S101 and the ethanol solution of pyrrole in step S102 is 1:(30-50).
[0022] Furthermore, the mass ratio of the modified silica fume, sodium benzenesulfonate and deionized water in step S104 to the ethanol solution of pyrrole in step S102 is 1:(6-8):(50-80):(35-45).
[0023] Furthermore, in step S203, the mass ratio of γ-glycidyloxypropyltrimethoxysilane, the calcined and cooled silica fume, ethanol and deionized water is 1:(0.5-2):(30-40):(30-40).
[0024] A method for preparing the above-mentioned three-dimensional graphene-reinforced concrete is characterized by comprising the following steps:
[0025] S1. Crushing and grinding the gangue and sand separately, so that the particle size of the gangue is in the range of 10-30 mm, and the particle size of the sand is in the range of 1-5 mm;
[0026] S2. Add the modified three-dimensional graphene into water, stir and mix evenly, then add coal gangue, sand, fly ash, gypsum, Portland cement, slaked lime and water reducer in sequence, and continue to stir and mix evenly to obtain three-dimensional graphene reinforced concrete.
[0027] Compared with the prior art, the present invention has the following beneficial effects:
[0028] 1. The composition of the present invention includes common solid wastes such as coal gangue, fly ash, gypsum, etc., which can be used as resources to effectively reduce environmental pressure;
[0029] 2. The present invention can improve the overall strength and conductivity of concrete by adding three-dimensional graphene, and the addition of polypyrrole and modified silica fume further improves the strength of concrete;
[0030] 3. The combination of modified silica fume and polypyrrole in the present invention facilitates the dispersion of three-dimensional graphene in the concrete system. The prepared concrete has uniform conductivity, and the evenly distributed three-dimensional graphene can further improve the strength of the concrete. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] Figure 1 This is a process flow chart for preparing three-dimensional graphene-reinforced concrete in the present invention;
[0032] Figure 2 This is a process flow chart for preparing modified three-dimensional graphene in the present invention;
[0033] Figure 3The figure is a process flow chart for preparing modified silica fume in the present invention. DETAILED DESCRIPTION
[0034] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0035] See also Figures 1 to 3 , the present invention provides:
[0036] A three-dimensional graphene-reinforced concrete, comprising the following components:
[0037] Coal gangue, sand, fly ash, gypsum, Portland cement, slaked lime, water reducer, modified three-dimensional graphene and water;
[0038] Among them, coal gangue, fly ash and gypsum are common solid wastes. By utilizing these solid wastes, the pressure on environmental protection is effectively reduced, and the resource utilization of solid waste is realized at the same time;
[0039] The present invention involves the use of modified three-dimensional graphene as an additive for concrete. Ordinary graphene is stabilized by π-π bonds and van der Waals forces, but this also causes it to tend to aggregate and stack, limiting its application in concrete. Three-dimensional graphene, however, has a large specific surface area, low density, high conductivity, and excellent electrochemical stability, making it more suitable for concrete applications than ordinary graphene. Specifically, the modified three-dimensional graphene of the present invention is prepared by the following steps:
[0040] S101, dispersing graphene oxide in a mixed solution of propanol and deionized water, then adding hydrazine hydrate, and performing a hydrothermal reaction with hydrazine hydrate as a reducing agent to obtain a three-dimensional graphene hydrogel;
[0041] S102, adding an ethanol solution of pyrrole to the three-dimensional graphene hydrogel in step S101, adding ferric chloride, and continuing the hydrothermal reaction to obtain a three-dimensional graphene-polypyrrole hydrogel. Here, due to the formation of the three-dimensional graphene hydrogel, it has a larger specific surface area and is more suitable for pyrrole to bind. Through the oxidation of ferric chloride, uniform polypyrrole is formed on the surface of the three-dimensional graphene hydrogel. Polypyrrole, as a conductive material, can further improve the conductive properties of the three-dimensional graphene;
[0042] S103, heat-treating the three-dimensional graphene-polypyrrole hydrogel obtained in step S102 under an argon atmosphere to obtain a three-dimensional graphene-polypyrrole aerogel, wherein the three-dimensional graphene-polypyrrole aerogel obtained at this time has uniform polypyrrole distribution on the surface and a large specific surface area;
[0043] S104, dispersing the modified silica fume into deionized water, adding sodium benzenesulfonate, and then adding the three-dimensional graphene-polypyrrole aerogel, introducing nitrogen into the deionized water, stirring and mixing for 12-18 hours, and then filtering, washing with deionized water and drying the filtered product at low temperature to obtain the modified three-dimensional graphene. At this time, the three-dimensional graphene serves as a substrate for enhancing the strength and conductivity of the concrete, and at the same time serves as a carrier to uniformly load the polypyrrole. Through the reaction in step S104, the polypyrrole is combined with the modified silica fume. The modified silica fume is subjected to treatments such as grinding and calcination, and its main component is highly active nano-silica. Its high activity undergoes a pozzolanic reaction and improves the strength of the concrete; the hydrophilicity of the surface also helps the three-dimensional graphene to be evenly dispersed throughout the entire concrete system; and its combination with polypyrrole can further improve the conductivity and strength of the entire material.
[0044] Specifically, the present invention prepares concrete doped with three-dimensional graphene through the following four embodiments:
[0045] Example 1
[0046] A three-dimensional graphene-reinforced concrete comprising the following components:
[0047] 400g coal gangue, 260g sand, 64g fly ash, 10g gypsum, 125g Portland cement, 9g slaked lime, 16g water reducer, 12g modified three-dimensional graphene and 245g water;
[0048] The preparation method comprises the following steps:
[0049] S1. Crushing and grinding the gangue and sand separately, so that the particle size of the gangue is within the range of 20 mm and the particle size of the sand is within the range of 5 mm;
[0050] S2. Add the modified three-dimensional graphene to water, stir and mix evenly, then add coal gangue, sand, fly ash, gypsum, Portland cement, slaked lime and water reducer in sequence, and continue stirring and mixing evenly to obtain three-dimensional graphene reinforced concrete;
[0051] The modified three-dimensional graphene comprises modified silica fume, graphene oxide and pyrrole, and its specific preparation method comprises the following steps:
[0052] S101, dispersing 16 g of graphene oxide into a mixed solution of 400 g of propanol and 450 g of deionized water, then adding 30 g of hydrazine hydrate, and hydrothermally reacting for 18 h at a reaction temperature of 180° C. to obtain a three-dimensional graphene hydrogel after the reaction is completed;
[0053] S102, adding 640 g of pyrrole ethanol solution to the three-dimensional graphene hydrogel in step S101, wherein the mass ratio of pyrrole to ethanol is 1:10, and blending for 1.5 hours, then adding 65 g of ferric chloride, and continuing the hydrothermal reaction for 7 hours at a reaction temperature of 200° C. to obtain a three-dimensional graphene-polypyrrole hydrogel;
[0054] S103, heat-treating the three-dimensional graphene-polypyrrole hydrogel obtained in step S102 for 3.5 hours under an argon atmosphere at a heat treatment temperature of 550° C. to obtain a three-dimensional graphene-polypyrrole aerogel;
[0055] S104, dispersing 15g of modified silica fume into 1060g of deionized water, adding 102g of sodium benzenesulfonate, and then adding the three-dimensional graphene-polypyrrole aerogel obtained in step S103, passing nitrogen into the deionized water, stirring and mixing for 16h, and then filtering, washing with deionized water and drying the filtered product at low temperature to obtain modified three-dimensional graphene;
[0056] The preparation method of the modified silica fume comprises the following steps:
[0057] S201, ball milling the silica fume with a high-energy ball mill to prepare silica fume with a particle size of 10 nm;
[0058] S202, calcining the silica fume after ball milling in step S201 at a high temperature of 750° C., keeping the temperature for 4.5 hours, and then cooling to room temperature;
[0059] S203, adding 20 g of γ-glycidyloxypropyltrimethoxysilane to a mixed solution of 700 g of ethanol and 650 g of deionized water, and then adding 22 g of calcined and cooled silica fume, mixing and stirring for 15 hours, and then filtering and washing with deionized water to obtain modified silica fume.
[0060] Example 2
[0061] A three-dimensional graphene-reinforced concrete comprising the following components:
[0062] 325g coal gangue, 242g sand, 48g fly ash, 5g gypsum, 110g Portland cement, 8g slaked lime, 6g water reducer, 5g modified three-dimensional graphene and 210g water;
[0063] The preparation method comprises the following steps:
[0064] S1. Crushing and grinding the gangue and sand separately, so that the particle size of the gangue is within the range of 30 mm and the particle size of the sand is within the range of 1 mm;
[0065] S2. Add the modified three-dimensional graphene to water, stir and mix evenly, then add coal gangue, sand, fly ash, gypsum, Portland cement, slaked lime and water reducer in sequence, and continue stirring and mixing evenly to obtain three-dimensional graphene reinforced concrete;
[0066] The modified three-dimensional graphene comprises modified silica fume, graphene oxide and pyrrole, and its specific preparation method comprises the following steps:
[0067] S101, dispersing 10 g of graphene oxide in a mixed solution of 200 g of propanol and 250 g of deionized water, then adding 10 g of hydrazine hydrate, and hydrothermally reacting for 12 h at a reaction temperature of 170° C. to obtain a three-dimensional graphene hydrogel after the reaction is completed;
[0068] S102, adding 300 g of pyrrole ethanol solution to the three-dimensional graphene hydrogel in step S101, wherein the mass ratio of pyrrole to ethanol is 1:10, and blending for 1 hour, then adding 50 g of ferric chloride, and continuing the hydrothermal reaction for 6 hours at a reaction temperature of 160° C. to obtain a three-dimensional graphene-polypyrrole hydrogel;
[0069] S103, heat-treating the three-dimensional graphene-polypyrrole hydrogel obtained in step S102 for 2 hours under an argon atmosphere at a heat treatment temperature of 450° C. to obtain a three-dimensional graphene-polypyrrole aerogel;
[0070] S104, dispersing 8.6 g of modified silica fume into 428 g of deionized water, adding 52 g of sodium benzenesulfonate, and then adding the three-dimensional graphene-polypyrrole aerogel obtained in step S103, passing nitrogen into the deionized water, stirring and mixing for 12 hours, and then filtering, washing with deionized water and drying the filtered product at low temperature to obtain modified three-dimensional graphene;
[0071] The preparation method of the modified silica fume comprises the following steps:
[0072] S201, ball milling the silica fume with a high-energy ball mill to prepare silica fume with a particle size of 5 nm;
[0073] S202, calcining the silica fume after ball milling in step S201 at a high temperature of 600° C., keeping the temperature for 4 hours, and then cooling to room temperature;
[0074] S203, adding 24 g of γ-glycidyloxypropyltrimethoxysilane to a mixed solution of 360 g of ethanol and 360 g of deionized water, and then adding 12 g of calcined and cooled silica fume, mixing and stirring for 16 hours, and then filtering and washing with deionized water to obtain modified silica fume.
[0075] Example 3
[0076] A three-dimensional graphene-reinforced concrete comprising the following components:
[0077] 480g coal gangue, 328g sand, 75g fly ash, 11g gypsum, 186g Portland cement, 16g slaked lime, 20g water reducer, 18g modified three-dimensional graphene and 290g water;
[0078] The preparation method comprises the following steps:
[0079] S1. Crushing and grinding the gangue and sand separately, so that the particle size of the gangue is within the range of 10 mm and the particle size of the sand is within the range of 2 mm;
[0080] S2. Add the modified three-dimensional graphene to water, stir and mix evenly, then add coal gangue, sand, fly ash, gypsum, Portland cement, slaked lime and water reducer in sequence, and continue stirring and mixing evenly to obtain three-dimensional graphene reinforced concrete;
[0081] The modified three-dimensional graphene comprises modified silica fume, graphene oxide and pyrrole, and its specific preparation method comprises the following steps:
[0082] S101, dispersing 25 g of graphene oxide in a mixed solution of 750 g of propanol and 1000 g of deionized water, then adding 75 g of hydrazine hydrate, and hydrothermally reacting for 24 h at a reaction temperature of 220° C. to obtain a three-dimensional graphene hydrogel after the reaction is completed;
[0083] S102, adding 1250 g of pyrrole ethanol solution to the three-dimensional graphene hydrogel in step S101, wherein the mass ratio of pyrrole to ethanol is 1:10, and blending for 2 h, then adding 83 g of ferric chloride, and continuing the hydrothermal reaction for 8 h at a reaction temperature of 240° C. to obtain a three-dimensional graphene-polypyrrole hydrogel;
[0084] S103, heat-treating the three-dimensional graphene-polypyrrole hydrogel obtained in step S102 for 4 hours under an argon atmosphere at a heat treatment temperature of 600° C. to obtain a three-dimensional graphene-polypyrrole aerogel;
[0085] S104, dispersing 28 g of modified silica fume into 2240 g of deionized water, adding 224 g of sodium benzenesulfonate, and then adding the three-dimensional graphene-polypyrrole aerogel obtained in step S103, passing nitrogen into the deionized water, stirring and mixing for 18 hours, and then filtering, washing with deionized water and drying the filtered product at low temperature to obtain modified three-dimensional graphene;
[0086] The preparation method of the modified silica fume comprises the following steps:
[0087] S201, ball milling the silica fume with a high-energy ball mill to prepare silica fume with a particle size of 10 nm;
[0088] S202, calcining the silica fume after ball milling in step S201 at a high temperature of 800° C., keeping the temperature for 6 hours, and then cooling to room temperature;
[0089] S203, adding 13 g of γ-glycidyloxypropyltrimethoxysilane to a mixed solution of 520 g of ethanol and 520 g of deionized water, and then adding 36 g of calcined and cooled silica fume, mixing and stirring for 16 hours, and then filtering and washing with deionized water to obtain modified silica fume.
[0090] Example 4
[0091] A three-dimensional graphene-reinforced concrete comprising the following components:
[0092] 390g coal gangue, 300g sand, 65g fly ash, 8g gypsum, 170g Portland cement, 10g slaked lime, 15g water reducer, 14g modified three-dimensional graphene and 280g water;
[0093] The preparation method comprises the following steps:
[0094] S1. Crushing and grinding the gangue and sand separately, so that the particle size of the gangue is within the range of 20 mm and the particle size of the sand is within the range of 5 mm;
[0095] S2. Add the modified three-dimensional graphene to water, stir and mix evenly, then add coal gangue, sand, fly ash, gypsum, Portland cement, slaked lime and water reducer in sequence, and continue stirring and mixing evenly to obtain three-dimensional graphene reinforced concrete;
[0096] The modified three-dimensional graphene comprises modified silica fume, graphene oxide and pyrrole, and its specific preparation method comprises the following steps:
[0097] S101, dispersing 20 g of graphene oxide in a mixed solution of 500 g of propanol and 700 g of deionized water, then adding 40 g of hydrazine hydrate, and hydrothermally reacting for 17 h at a reaction temperature of 200° C. to obtain a three-dimensional graphene hydrogel after the reaction is completed;
[0098] S102, adding 800 g of pyrrole ethanol solution to the three-dimensional graphene hydrogel in step S101, wherein the mass ratio of pyrrole to ethanol is 1:10, and blending for 2 h, then adding 75 g of ferric chloride, and continuing the hydrothermal reaction for 7 h at a reaction temperature of 220° C. to obtain a three-dimensional graphene-polypyrrole hydrogel;
[0099] S103, heat-treating the three-dimensional graphene-polypyrrole hydrogel obtained in step S102 for 3 hours under an argon atmosphere at a heat treatment temperature of 600° C. to obtain a three-dimensional graphene-polypyrrole aerogel;
[0100] S104, dispersing 20 g of modified silica fume into 900 g of deionized water, adding 130 g of sodium benzenesulfonate, and then adding the three-dimensional graphene-polypyrrole aerogel obtained in step S103, passing nitrogen into the deionized water, stirring and mixing for 15 hours, and then filtering, washing with deionized water and drying the filtered product at low temperature to obtain modified three-dimensional graphene;
[0101] The preparation method of the modified silica fume comprises the following steps:
[0102] S201, ball milling the silica fume with a high-energy ball mill to prepare silica fume with a particle size of 10 nm;
[0103] S202, calcining the silica fume after ball milling in step S201 at a high temperature of 800° C., keeping the temperature for 6 hours, and then cooling to room temperature;
[0104] S203, adding 30 g of γ-glycidyloxypropyltrimethoxysilane to a mixed solution of 1000 g of ethanol and 1000 g of deionized water, and then adding 26 g of calcined and cooled silica fume, mixing and stirring for 13 hours, and then filtering and washing with deionized water to obtain modified silica fume.
[0105] Comparative Example 1
[0106] The difference between Comparative Example 1 and Example 1 is that step S102 is omitted, thereby eliminating the addition of pyrrole, and the remaining steps are exactly the same as those in Example 1.
[0107] Comparative Example 2
[0108] The difference between Comparative Example 2 and Example 1 is that step S104 is completely omitted, thereby eliminating the addition of modified silica fume, and the remaining steps are exactly the same as those in Example 1.
[0109] Comparative Example 3
[0110] The difference between Comparative Example 3 and Comparative Example 1 is that step S104 is completely omitted, and the addition of modified silica fume is cancelled. The remaining steps are exactly the same as those of Comparative Example 1.
[0111] Seven groups of concrete were prepared using Examples 1-4 and Comparative Examples 1-3, and subjected to 28-day compressive strength and resistivity tests. The compressive strength test standard complies with GB / T50081-2002, and the data shown in Tables 1 and 2 below were obtained. The resistivity was measured using a four-probe method.
[0112] Table 1: 28d compressive strength test table of concrete prepared in Examples 1-4 and Comparative Examples 1-3
[0113]
[0114] It can be clearly seen from the data of Example 1 and Comparative Examples 1-3 in Table 1 above that the strength of concrete can be significantly improved after adding polypyrrole and modified silica fume in the present invention;
[0115] In addition, the concrete prepared in Examples 1-4 and Comparative Examples 1-3 were divided into three parts respectively, and the resistivity thereof was tested in MΩ·cm using a four-probe method. The test data are shown in Table 2 below:
[0116]
[0117] It can be seen from the data of Example 1 and Comparative Examples 1-2 in Table 2 above that the average resistivity of Comparative Examples 1-2 is higher than that of Example 1, proving that the synthesis of polypyrrole and the addition of modified silica fume can both improve the conductivity of concrete. It can be seen from the data of Example 1 and Comparative Examples 2-3 that after the addition of modified silica fume is eliminated, not only the average resistivity increases, but also the degree of dispersion of each data relative to the average value is greater, proving that the three-dimensional graphene in Comparative Examples 2-3 is unevenly distributed relative to Example 1, and the dispersion effect is reduced.
[0118] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A three-dimensional graphene reinforced concrete, characterized in that: Includes the following components: 325-480 parts of coal gangue, 242-328 parts of sand, 48-75 parts of fly ash, 5-11 parts of gypsum, 110-186 parts of Portland cement, 8-16 parts of slaked lime, 6-20 parts of water reducer, 5-18 parts of modified three-dimensional graphene and 210-290 parts of water; The modified three-dimensional graphene includes modified silica fume, graphene oxide and pyrrole, and the specific preparation method thereof includes the following steps: S101, dispersing graphene oxide in a mixed solution of propanol and deionized water, then adding hydrazine hydrate, and hydrothermally reacting for 12-24 hours at a reaction temperature of 170-220° C. to obtain a three-dimensional graphene hydrogel after the reaction is completed; S102, adding an ethanol solution of pyrrole to the three-dimensional graphene hydrogel in step S101, blending for 1-2 hours, then adding ferric chloride, and continuing the hydrothermal reaction for 6-8 hours at a reaction temperature of 160-240° C. to obtain a three-dimensional graphene-polypyrrole hydrogel; S103, heat-treating the three-dimensional graphene-polypyrrole hydrogel obtained in step S102 for 2-4 hours under an argon atmosphere at a temperature of 450-600° C. to obtain a three-dimensional graphene-polypyrrole aerogel; S104, dispersing the modified silica fume in deionized water, adding sodium benzenesulfonate, and then adding the three-dimensional graphene-polypyrrole aerogel obtained in step S103, passing nitrogen into the deionized water, stirring and mixing for 12-18 hours, and then filtering, washing with deionized water and drying the filtered product at low temperature to obtain modified three-dimensional graphene; The preparation method of the modified silica fume comprises the following steps: S201, ball milling the silica fume in a high-energy ball mill to prepare silica fume with a particle size of less than 10 nm; S202, calcining the silica fume after ball milling in step S201 at a high temperature of 600-800°C, keeping the temperature for 4-6 hours, and then cooling to room temperature; S203, adding γ-glycidyloxypropyltrimethoxysilane to a mixed solution of ethanol and deionized water, and then adding the calcined and cooled silica fume, mixing and stirring for 10-16 hours, and then filtering and washing with deionized water to obtain modified silica fume.
2. The three-dimensional graphene reinforced concrete according to claim 1, characterized in that: In step S101, the mass ratio of graphene oxide, hydrazine hydrate, propanol and deionized water is 1:(1-3):(20-30):(25-40).
3. The three-dimensional graphene reinforced concrete according to claim 1, characterized in that: In the step S102 , the mass ratio of pyrrole to ethanol in the ethanol solution of pyrrole is 1:10, and the mass ratio of ferric chloride to the ethanol solution of pyrrole is 1:(6-15).
4. The three-dimensional graphene reinforced concrete according to claim 1, characterized in that: The mass ratio between the graphene oxide in step S101 and the ethanol solution of pyrrole in step S102 is 1:(30-50).
5. The three-dimensional graphene reinforced concrete according to claim 1, characterized in that: The mass ratio of the modified silica fume, sodium benzenesulfonate and deionized water in step S104 to the ethanol solution of pyrrole in step S102 is 1:(6-8):(50-80):(35-45).
6. The three-dimensional graphene reinforced concrete according to claim 1, characterized in that: In step S203, the mass ratio of γ-glycidyloxypropyltrimethoxysilane, the calcined and cooled silica fume, ethanol and deionized water is 1:(0.5-2):(30-40):(30-40).
7. A method for preparing three-dimensional graphene reinforced concrete according to any one of claims 1 to 6, characterized in that: The steps include: S1. Crushing and grinding the gangue and sand separately, so that the particle size of the gangue is in the range of 10-30 mm, and the particle size of the sand is in the range of 1-5 mm; S2. Add the modified three-dimensional graphene into water, stir and mix evenly, then add coal gangue, sand, fly ash, gypsum, Portland cement, slaked lime and water reducer in sequence, and continue to stir and mix evenly to obtain three-dimensional graphene reinforced concrete.
Citation Information
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