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Implicit finite element methodology for the numerical modeling of incompressible two-fluid flows with moving hyperelastic interface

机译:具有移动超弹性界面的不可压缩双流体流量数值模拟的隐含有限元方法

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摘要

We present a numerical methodology based on the use of the Newton and level set methods and tailored for the simulation of incompressible immiscible two-fluid flows with moving hyperelastic membrane. The method features the use of implicit time integration schemes and is based on a consistent Newton-Raphson linearization. The performances are enhanced by using the Kou's method (Kou et al., 2006) which features a third-order convergence behavior without requiring higher order derivatives. To overcome numerical instability issues related to the explicit decoupling, a fully monolithic strategy and a partitioned implicit strategy are devised. We investigate the main features of the proposed strategies, and we report several numerical experiments with the aim of illustrating their robustness and accuracy. We show numerically that the monolithic strategy performs better and remains stable when considering relatively small viscosities or large stiffness, for which the partitioned approach depicts a slow convergence or even fails to converge. However, the partitioned strategy features significant computational savings when it converges within a reasonable number of sub-iterations. (C) 2018 Elsevier Inc. All rights reserved.
机译:我们基于使用牛顿和水平设定方法的数值方法,并针对使用移动的超弹性膜来定制的对不可压缩的两种流体流动的模拟。该方法具有隐式时间集成方案的使用,并基于一致的牛顿Raphson线性化。通过使用Kou的方法(Kou等,2006)来增强性能,该方法具有三阶收敛行为而不需要更高的阶数。为了克服与显式解耦相关的数值不稳定问题,设计了完全单片策略和分区隐含策略。我们调查拟议策略的主要特点,我们报告了几个数值实验,目的是说明其稳健性和准确性。我们在数值上示出了单片策略在考虑相对小的粘度或大刚度时仍然稳定,其分区方法描绘慢趋同甚至不能收敛。然而,当它在合理数量的子迭代中收敛时,分区策略具有重要的计算节省。 (c)2018年Elsevier Inc.保留所有权利。

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