材料科学
沥青
复合材料
分子动力学
极限抗拉强度
断裂(地质)
水分
开裂
三元运算
断裂力学
组分(热力学)
应力场
表面能
蠕动
变形(气象学)
压力(语言学)
沥青质
应变能释放率
作者
Ruoyu Wang,Yuanzhang Zhao,Guozhi Fu,Yue Wang,Qi Sun,Zhao Yin
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2026-04-28
卷期号:19 (9): 1801-1801
摘要
Tensile fracture in asphalt involves complex mechanical responses and component migration. This study employs molecular dynamics (MD) simulations with the COPMASS II force field to investigate water intrusion at the asphalt–aggregate interface and subsequent tensile cracking at the nanoscale. To evaluate moisture damage, a ternary interface model was constructed using a specific distribution of water molecules at a target density. Results indicate that thickness significantly enhances moisture resistance; specifically, the asphalt film in the thinnest model (AS1) was penetrated by water molecules, leading to localized interfacial failure. Further uniaxial tensile simulations at a loading rate of 0.01 Å/psreveal that as film thickness increases (AS1 to AS4), the peak stress rises from 103.2 to 113.8 MPa, and the fracture energy increases from 136 to 747 kcal/mol. Based on the density redistribution of SARA fractions, component migration is divided into three stages: structural relaxation, resin-driven de-peptization, and polar component re-aggregation. Finally, the Asphaltene Index (IA) is proposed as a predictive indicator, showing that cracks consistently initiate in regions with minimum IA values. These findings provide quantitative insights into the molecular mechanisms underlying asphalt durability.
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