基于分子动力学的石墨烯/沥青相互作用机理研究

Yinghua Fan, Lijun Sun, Chenqi Zhang, Jinzhi Xu, Jingwen Liu, Chun Wang
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引用次数: 0

摘要

本研究采用分子动力学模拟来研究石墨烯改性沥青的作用机理。利用热力学参数构建并验证了一系列石墨烯改性沥青分子模型。研究了石墨烯(PGR)的尺寸和层数对其与沥青组分相互作用的影响,分析了 PGR 改性沥青的自愈过程和作用机理。结果表明,PGR 的尺寸和层数会显著影响其与沥青成分的相互作用,极性成分与 PGR 的亲和力更强。当 PGR 的尺寸和层数保持不变时,它与 ACR 改性沥青之间的界面结合能最高,其次是 SBS 改性沥青,而 70# 基质沥青的界面结合强度最低。这种界面结合强度主要归因于分子间的范德华相互作用。此外,多层 PGR 的加入可显著提高基质沥青的力学性能,而小粒径 PGR 对改善聚合物改性沥青的低温性能更有效。PGR 可通过快速传热和与含芳香环物质的 π-π 堆积在沥青分子间起桥梁作用,显著提高沥青分子的自由扩散能力,缩短沥青的愈合时间,增强沥青的集合自愈性能。这项研究为了解 PGR 在沥青改性中的机理和应用提供了重要的理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular Dynamics-Based Study of Graphene/Asphalt Mechanism of Interaction
This study employed molecular dynamics simulation to investigate the mechanism of action of graphene-modified asphalt. A series of molecular models of graphene-modified asphalt were constructed and validated using thermodynamic parameters. The impact of the graphene (PGR) size and number of layers on its interaction with asphalt components were examined, and the self-healing process and mechanism of action of PGR-modified asphalt were analyzed. The results demonstrated that the size and number of layers of PGR significantly influenced its interaction with asphalt components, with polar components demonstrating a stronger affinity for PGR. When the size and number of layers of PGR were held constant, the interfacial binding energy between it and ACR-modified asphalt was the highest, followed by SBS-modified asphalt, and 70# matrix asphalt exhibited the lowest interfacial binding strength. This interfacial binding strength is primarily attributed to intermolecular van der Waals interactions. Furthermore, the incorporation of multi-layer PGR can markedly enhance the mechanical properties of matrix asphalt, whereas small-sized PGR is more efficacious in improving the low-temperature performance of polymer-modified asphalt. PGR can act as a bridge between asphalt molecules through rapid heat transfer and π-π stacking with aromatic ring-containing substances, which markedly increases the free diffusion ability of asphalt molecules, shortens the healing time of asphalt, and enhances the collective self-healing performance of asphalt. This study provides an essential theoretical basis for understanding the mechanism and application of PGR in asphalt modification.
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