Nanofiber Concrete: Multi-Level Reinforcement

S. Leonovich, E. Sadovskaya
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引用次数: 1

Abstract

Concrete is the most commonly used building material worldwide. One of its main disadvantages is the fragility of fracture and low crack resistance. The use of dispersed reinforcement of concrete composites is a promising direction in solving this type of problem. Dispersed fibers, evenly distributed over the entire volume of the material, create a spatial frame and contribute to the inhibition of developing cracks under the action of destructive forces. In order to increase the fracture toughness of concrete, dispersed fiber reinforcement is increasingly used in practice. The beginning of crack nucleation occurs at the nanoscale in the cement matrix. Thus, the use of nano-reinforcement with dispersed nanofibers can have a positive effect on the crack resistance of the cement composite. It is proposed to consider carbon nanotubes as such nanofibers. The presence of carbon nanofibers changes the microstructure and nanostructure of cement modified with carbon nanotubes. The result of the processes occurring in capillaries and cracks are deformations in the intergranular matrix, the free flow of which is prevented by rigid clinker grains and nanocarbon tubes, which creates a certain stress intensity at the tips of the separation cracks. The working hypothesis is confirmed that the required fracture toughness of structural concrete is provided by multi-level reinforcement: at the level of the crystalline aggregate of cement stone – carbon nanotubes, and at the level of fine-grained concrete – various macro-sized fibers (steel, polymer). Reinforcement of a crystalline joint with carbon nanotubes leads to an increase in the fracture toughness of the matrix (cement stone) by 20 %, compressive strength by 12 %, and tensile strength in bending by 20 %. When reinforcing at the level of fine-grained concrete, we obtain a composite – nanofibre-reinforced concrete with fracture toughness.
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纳米纤维混凝土:多级加固
混凝土是世界上最常用的建筑材料。其主要缺点之一是断裂脆弱,抗裂性低。分散钢筋混凝土复合材料的应用是解决这类问题的一个有希望的方向。分散的纤维,均匀地分布在材料的整个体积上,创造了一个空间框架,有助于在破坏性力量的作用下抑制裂缝的发展。为了提高混凝土的断裂韧性,分散纤维增强材料在实践中得到越来越多的应用。裂缝成核的开始发生在纳米尺度的水泥基体中。因此,使用分散纳米纤维的纳米增强材料对水泥复合材料的抗裂性能有积极的影响。建议将碳纳米管视为纳米纤维。碳纳米纤维的存在改变了碳纳米管改性水泥的微观结构和纳米结构。在毛细管和裂纹中发生的过程导致晶间基体变形,刚性熟料颗粒和纳米碳管阻止了晶间基体的自由流动,从而在分离裂纹尖端产生一定的应力强度。工作假设被证实,结构混凝土所需的断裂韧性是由多级加固提供的:在水泥石的结晶骨料层面-碳纳米管,在细粒度混凝土层面-各种宏观尺寸的纤维(钢,聚合物)。用碳纳米管增强结晶接头可使基体(水泥石)的断裂韧性提高20%,抗压强度提高12%,弯曲抗拉强度提高20%。在细粒级混凝土上进行加固,得到了具有断裂韧性的复合纳米纤维增强混凝土。
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