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The Order of Accuracy of the Fixed-Stress Type Two-Pass and Deferred Correction Methods for Poromechanics

机译:多功能型双通和延迟校正方法的固定应力型两移和延迟校正方法的顺序

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We study the order of accuracy in time discretization for poromechanics, applying the fixed-stress split scheme. High-order methods in time are often used, for example, in order to match high-order schemes in space. We consider two operator splitting methods motivated from the fixed-stress split: a two-pass algorithm and a spectral deferred correction (SDC) method. The two-pass algorithm, known for a symmetric operator splitting scheme as Strang's splitting, is typically employed for a high-order method of non-stiff ordinary differential equations (ODEs). The SDC method is also a structure conserving efficient scheme for an arbitrary high-order of accuracy. However, poromechanics yields the governing equations that have a form of differential algebraic equations (DAEs), where typical high-order time integration schemes for non-stiff ODEs are not appropriate. Performing mathematical analysis, we find that both methods do not achieve high-order accuracy in poromechanics, although both methods can reduce the errors in their time discretizations. From numerical experiments, we find that the mathematic estimates are consistent with the numerical results of the fixed-stress type two-pass and SDC methods, which still provide the first-order accuracy in time.
机译:我们研究了多孔机力学的时间分散化的准确度,应用了固定应力分裂方案。例如,通常使用高阶方法,以便匹配空间中的高阶方案。我们考虑两个操作员分割方法,该方法从固定应力分开:双通算法和光谱渗透校正(SDC)方法。用于对称操作员分割方案的双通算法,作为斯特朗氏裂缝,通常用于非极硬常见差分方程(ODES)的高阶方法。 SDC方法也是用于任意高阶精度的结构节约有效方案。然而,多孔机产生具有形式的差分代数方程(DAE)的控制方程,其中非硬端杂散的典型的大阶时间集成方案不合适。执行数学分析,我们发现这两种方法都不在多功能力学中实现高阶精度,尽管两种方法都可以减少其时间离散化的错误。根据数值实验,我们发现数学估计与固定应力型双通和SDC方法的数值结果一致,其仍然在时间提供一阶精度。

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