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A projection-based time-splitting algorithm for approximating nematic liquid crystal flows with stretching

机译:一种基于投影的时间分离算法,其具有拉伸的近似向列液晶流动

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摘要

A numerical method is developed for solving a system of partial differential equations modeling the flow of a nematic liquid crystal fluid with stretching effect, which takes into account the geometrical shape of its molecules. This system couples the velocity vector, the scalar pressure and the director vector representing the direction along which the molecules are oriented. The scheme is designed by using finite elements in space and a time-splitting algorithm to uncouple the calculation of the variables: the velocity and pressure are computed by using a projection-based algorithm and the director is computed jointly to an auxiliary variable. Moreover, the computation of this auxiliary variable can be avoided at the discrete level by using piecewise constant finite elements in its approximation. Finally, we use a pressure stabilization technique allowing a stable equal-order interpolation for the velocity and the pressure. Numerical experiments concerning annihilation of singularities are presented to show the stability and efficiency of the scheme.
机译:开发了一种数值方法,用于求解模拟偏微分方程的系统,该系统用拉伸效果建模向列液晶流体的流动,这考虑了其分子的几何形状。该系统耦合速度矢量,标量压力和导向器向量表示分子所取向的方向。该方案是通过使用空间中的有限元和时间分割算法来耦合变量的计算来设计的:通过使用基于投影的算法计算的速度和压力,并且导向器将共同计算到辅助变量。此外,可以通过在其近似下使用分段恒定的有限元件来避免在离散级别来避免对该辅助变量的计算。最后,我们使用压力稳定技术,允许速度和压力稳定的相等插值。提出了关于互联网湮灭的数值实验,以显示该方案的稳定性和效率。

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