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Liquid-vapor phase transition: Thermomechanical theory, entropy stable numerical formulation, and boiling simulations

机译:液体-蒸汽相变:热力学理论,熵稳定的数值公式和沸腾模拟

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We develop a new continuum mechanics modeling framework for liquid-vapor flows, with particular focus on the van der Waals fluid. By invoking microforce theory, the Coleman-Noll procedure is generalized to derive consistent constitutive relations in the presence of non-local effects. A new thermodynamically consistent algorithm for the van der Waals model is designed, using functional entropy variables and a new temporal scheme employing a family of new quadrature rules. We show that the resulting fully discrete scheme is unconditionally stable in entropy and second-order time-accurate. Isogeometric analysis is utilized for spatial discretization. The analytical properties of the formulation are corroborated by benchmark problems. Three sets of application problems are simulated to demonstrate the capability of the model and the algorithm. Our methodology provides a particularly useful predictive tool for boiling flows. (C) 2015 Elsevier B.V. All rights reserved.
机译:我们开发了一种用于液体-蒸汽流的新的连续体力学建模框架,尤其着重于范德华流体。通过援引微力理论,将Coleman-Noll程序推广为在存在非局部效应的情况下得出一致的本构关系。使用函数熵变量和采用一系列新正交规则的新时间方案,设计了范德华模型的热力学一致性算法。我们表明,所得的完全离散方案在熵和二阶时间精确性上是无条件稳定的。等几何分析用于空间离散化。基准问题证实了该制剂的分析性能。仿真了三套应用问题,以证明该模型和算法的功能。我们的方法为沸腾流量提供了特别有用的预测工具。 (C)2015 Elsevier B.V.保留所有权利。

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