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Influence of Pore Size and Fatigue Loading on NaCl Transport Properties in C-S-H Nanopores: A Molecular Dynamics Simulation

机译:孔径和疲劳载荷对C-S-H纳米孔中NaCl传输特性的影响:分子动力学模拟

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摘要

The transport properties of chloride ions in cement-based materials are one of the major deterioration mechanisms for reinforced concrete (RC) structures. This paper investigates the influence of pore size and fatigue loading on the transport properties of NaCl in C-S-H nanopores using molecular dynamics (MD) simulations. Molecular models of C-S-H, NaCl solution, and C-S-H nanopores with different pore diameters are established on a microscopic scale. The distribution of the chloride ion diffusion rate and the diffusion coefficient of each particle are obtained by statistically calculating the variation of atomic displacement with time. The results indicate that the chloride ion diffusion rate perpendicular to C-S-H nanopores under fatigue loading is 4 times faster than that without fatigue loading. Moreover, the diffusion coefficient of water molecules and chloride ions in C-S-H nanopores increases under fatigue loading compared with those without fatigue loading. The diffusion coefficient of water molecules in C-S-H nanopores with a pore size of 3 nm obtained from the MD simulation is 1.794 × 10 m /s, which is slightly lower than that obtained from the experiment.
机译:水泥基材料中氯离子的传输特性是钢筋混凝土(RC)结构的主要劣化机理之一。本文使用分子动力学(MD)模拟研究了孔径和疲劳载荷对NaCl在C-S-H纳米孔中传输性质的影响。在微观尺度上建立了具有不同孔径的C-S-H,NaCl溶液和C-S-H纳米孔的分子模型。通过统计地计算原子位移随时间的变化,求出氯离子扩散速度的分布和各粒子的扩散系数。结果表明,在疲劳载荷下,垂直于C-S-H纳米孔的氯离子扩散速率比没有疲劳载荷时快4倍。此外,与没有疲劳载荷的那些相比,在疲劳载荷下,C-S-H纳米孔中水分子和氯离子的扩散系数增加。通过MD模拟获得的孔径为3nm的C-S-H纳米孔中水分子的扩散系数为1.794×10m / s,略低于通过实验获得的扩散系数。

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