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Comparison of Conservation Behavior in Several Variationally Derived Implementations for Simulating Electromagnetic Plasmas

机译:几种模拟电磁等离子体的变体实现方案中守恒行为的比较

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Variational techniques based on Low's Lagrangian formulation have demonstrated significant improvement in conservation properties as compared to traditional particle-in-cell (PIC) algorithms. Previous work showed that equations derived from a discretized Lagrangian preserve a discretized version of the connection between Lagrangian symmetries and conservation laws, i.e., Noether's theorem. Specifically, a thorough analysis of energy conservation within the new system explained the absence of “grid heating” phenomena. In the present work, variationally derived implementations in a gridded periodic domain were compared to analogous implementations using Fourier bases. Since the Fourier basis allows for exact momentum conservation, this approach enables us to compare the relative merits of exact and approximate momentum conservation. To establish a tangible comparison for numerical methods, we investigate two simple physical examples; (1) the coupling of an electrostatic and electromagnetic plasma wave and (2) an equilibrium supporting Weibel instability.
机译:与传统的单元格内粒子(PIC)算法相比,基于Low's拉格朗日公式的变体技术已显示出保存性能的显着改善。先前的工作表明,从离散的拉格朗日方程派生的方程式保留了拉格朗日对称性与守恒律之间联系的离散化版本,即Noether定理。具体而言,对新系统中的节能进行了详尽的分析,这说明了不存在“电网加热”现象。在本工作中,将网格周期域中的变体派生实现与使用傅立叶基础的类似实现进行了比较。由于傅立叶基础允许精确的动量守恒,因此该方法使我们能够比较精确和近似的动量守恒的相对优点。为了建立数值方法的有形比较,我们研究了两个简单的物理示例。 (1)静电和电磁等离子波的耦合,以及(2)支持Weibel不稳定性的平衡。

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