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Implementation Strategies for Accurate and Efficient Control Volume-Based Two-Phase Hydrothermal Flow Solutions

机译:精确和高效控制基于体积的两相热液流解决方案的实施策略

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摘要

Numerical models of magmatic hydrothermal systems have become powerful tools for linking surface and seafloor observations to chemical and fluid-dynamic processes at depth. This task requires resolving multi-phase flow over large distances of several kilometers, a wide range of pressure (p) and temperature (T) conditions, and over timescales of several thousands of years. The key numerical challenge is that realistic simulations have to consider the high nonlinearity and strong coupling of the governing conservation equations for mass and energy, while also being numerically efficient so that the required spatial and temporal scales can be resolved. Here we outline possible solutions to this problem by evaluating different implementation strategies and presenting a numerical scheme for fully coupled accurate and efficient flow solutions. The general scheme, based on the Newton-Raphson (NR) method, is presented for the simplified case of 2-D pure water convection and uses a control volume discretization on unstructured meshes. We find that the presented techniques significantly reduce the computational effort with respect to sequential/decoupled schemes. Key to this is a theta-time-differencing method for better accuracy, stability and convergence behavior of the NR-iterations, as well as improvements regarding upwinding. These features make the presented methods useful for coupled simulations of magmatic hydrothermal systems and a potential basis for future 3-D multi-phase codes.
机译:岩浆热液系统的数值模型已经成为将地表和海底观测与深度化学和流体动力过程联系起来的强大工具。这项任务需要解决几公里长距离,大范围的压力(p)和温度(T)条件以及几千年的时间范围内的多相流。关键的数值挑战是,现实的仿真必须考虑质量和能量的支配守恒方程的高非线性和强耦合性,同时还要在数值上有效,以便可以解决所需的时空尺度。在这里,我们通过评估不同的实施策略并提出用于完全耦合的精确高效流解决方案的数值方案,概述了该问题的可能解决方案。提出了基于牛顿-拉夫森(NR)方法的通用方案,用于二维纯水对流的简化情况,并在非结构化网格上使用控制体积离散化。我们发现,提出的技术相对于顺序/解耦方案显着减少了计算量。关键是采用θ时间微分法,以提高NR迭代的准确性,稳定性和收敛性,以及改善上风度。这些特征使所提出的方法对于岩浆热液系统的耦合模拟非常有用,并为将来的3-D多相代码提供了潜在的基础。

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