Three-dimensional phase-field study of crack-seal microstructures - Insights from innovative post-processing techniques

K. Ankit, M. Selzer, B. Nestler
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引用次数: 3

Abstract

Numerical simulations of vein evolution contribute to a better understanding of processes involved in their formation and possess the potential to provide invaluable insights into the rock deformation history and fluid flow pathways. The primary aim of the present article is to investigate the influence of a realistic boundary condition, i.e. an algorithmically generated fractal surface, on the vein evolution in 3-D using a thermodynamically consistent approach, while explaining the benefits of accounting for an extra dimensionality. The 3-D simulation results are supplemented by innovative numerical post-processing and advanced visualization techniques. The new methodologies to measure the tracking efficiency demonstrate the importance of accounting the temporal evolution; no such information is usually accessible in field studies and notoriously difficult to obtain from laboratory experiments as well. The grain growth statistics obtained by numerically post-processing the 3-D computational microstructures explain the pinning mechanism which leads to arrest of grain boundaries/multi-junctions by crack peaks, thereby, enhancing the tracking behavior.
裂纹密封微结构的三维相场研究-来自创新后处理技术的见解
岩脉演化的数值模拟有助于更好地理解其形成过程,并有可能为岩石变形历史和流体流动路径提供宝贵的见解。本文的主要目的是利用热力学一致的方法研究现实边界条件(即算法生成的分形表面)对三维脉演化的影响,同时解释考虑额外维度的好处。三维仿真结果辅以创新的数值后处理和先进的可视化技术。新的跟踪效率度量方法表明了考虑时间演化的重要性;在实地研究中通常无法获得这些信息,而且从实验室实验中也很难获得这些信息。通过对三维计算微观结构进行数值后处理得到的晶粒生长统计数据解释了裂纹峰抑制晶界/多结的钉钉机制,从而增强了跟踪行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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