Insight on molecular interactions in shrinkage of Na-montmorillonite clay by molecular dynamics simulation

IF 3.9 2区 工程技术 Q3 ENERGY & FUELS
Wei-Qiang Feng, Kamal Al-Zaoari, Ze-Jian Chen
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Abstract

Expansive soils are known to be hazardous materials for infrastructure due to their high shrinking or swelling potential. Understanding the shrinking factors of expansive soils such as montmorillonite (MMT) is essential for predicting their mechanical properties. The interactions between the components of Na-MMT clays, e.g., MMT layer–layer (LL), layer–cation (LC), layer–water (LW) and water–cation (WC), are responsible for its shrinking behavior. In this study, molecular dynamics simulation and grand canonical Monte Carlo simulations are used to investigate the interaction energy evolution in the layered structure of Na-MMT for the shrinkage mechanisms analysis of clay. The results of simulation indicate that the magnitude of the interaction energy contributed by the interlayer cations dehydration is the driving force of the interlayer shrinkage. Furthermore, in the hydrated state, with one water layer, two water layers and three water layers, the attractive interactions between WC and LW, maintain the stability of the clay layers. However, at the dry state, the interaction energy between layers and cations appears to be the most essential component in holding the stacked layers together, which provides structural stability to the clay sheets. Finally, the study reveals that intermolecular interactions contribute to the mechanical properties of clays such as cohesive and elastic properties.

Abstract Image

分子动力学模拟揭示 Na-montmorillonite 粘土收缩过程中的分子相互作用
众所周知,膨胀土因其高度收缩或膨胀潜力而成为基础设施的危险材料。了解膨胀土(如蒙脱石(MMT))的收缩因素对于预测其机械性能至关重要。Na-MMT 粘土各组分之间的相互作用,如 MMT 层-层(LL)、层-阳离子(LC)、层-水(LW)和水-阳离子(WC),是造成其收缩行为的原因。本研究采用分子动力学模拟和大规范蒙特卡洛模拟来研究 Na-MMT 层状结构中的相互作用能演变,从而分析粘土的收缩机理。模拟结果表明,层间阳离子脱水贡献的相互作用能的大小是层间收缩的驱动力。此外,在水化状态下,有一层水、两层水和三层水,WC 和 LW 之间的吸引力相互作用维持了粘土层的稳定性。然而,在干燥状态下,层与阳离子之间的相互作用能似乎是将堆叠层保持在一起的最基本要素,从而为粘土片提供了结构稳定性。最后,研究揭示了分子间相互作用对粘土的机械特性(如内聚性和弹性特性)的贡献。
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来源期刊
Geomechanics and Geophysics for Geo-Energy and Geo-Resources
Geomechanics and Geophysics for Geo-Energy and Geo-Resources Earth and Planetary Sciences-Geophysics
CiteScore
6.40
自引率
16.00%
发文量
163
期刊介绍: This journal offers original research, new developments, and case studies in geomechanics and geophysics, focused on energy and resources in Earth’s subsurface. Covers theory, experimental results, numerical methods, modeling, engineering, technology and more.
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