沥青自愈过程及其影响因素分析

Dandan Li, Yang Luo, Xiao Lei Jiao, Qianguo Li, Chuan Feng Zheng, Guo Cui Teng
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引用次数: 0

摘要

本文采用分子动力学方法研究沥青的自愈行为及其机理。分析了密度、溶解度和均方位移参数,以确认基质沥青模型的有效性。利用分子模拟软件建立了微观基质沥青纳米级自愈模型。通过设置不同真空层厚度作为沥青自愈模型来表示沥青微裂缝的裂缝宽度。通过运行分子软件得到自愈模型的密度和扩散系数,了解沥青自愈的整个过程。分析了基质沥青的自愈机理。结果表明,沥青的整个自愈过程可以清晰地划分为外部环境能量禀赋、模型末端愈合、沥青微裂纹愈合和自愈模型自扩散四个阶段。沥青自愈过程中各组分分子在恒温条件下相互扩散和移动。饱和组分和极性芳香族组分的扩散系数高于沥青质和芳香族组分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of the Self-Healing Process of Asphalt and its Influencing Factors
Molecular dynamics was used in this study to understand the self-healing behavior and mechanism of asphalt. Density, solubility, and mean square displacement parameters were analyzed to confirm the validity of the matrix asphalt model. Molecular simulation software was used to develop a microscopic matrix asphalt self-healing model at the nanoscale. Cracking width of asphalt microcracks was represented by setting different vacuum layer thicknesses as the asphalt self-healing model. Density and diffusion coefficient of the self-healing model were obtained by running the molecular software to understand the entire process of asphalt healing. The self-healing mechanism of the matrix asphalt was analyzed. Results showed that the entire self-healing process of asphalt could be clearly divided into four stages, namely, external environment energy endowment, model end healing, asphalt microcrack healing, and self-healing model self-diffusion stages. Molecules of each component in the asphalt self-healing process diffuse and move mutually under constant temperature conditions. The diffusion coefficient of saturated components and polar aromatic was higher than that of asphaltenes and aromatic components.
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