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Direct Integration 3-D FDTD Method for Single-Species Cold Magnetized Plasma

机译:单物种冷磁化等离子体的直接积分3-D FDTD方法

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Finite-difference equations for 3-D single-species cold magnetized plasma EM propagation are systematically generated using a new, algorithmic approach for generating finite-difference time-domain (FDTD) updates. This new approach is then generalized to handle systems with complex dispersion of arbitrarily high-order. It is shown how this results in the second-order accurate algorithms with numerical dispersion relations that can always be cast in the form of continuum dispersion counterparts via simple substitutions, avoiding laborious analysis. This allowed here the first reporting of a numerical Appleton-Hartree equation. The problem of field collocation is handled by the repetition of the Yee algorithm so that all field variables are defined at the corners of a new cubic computational cell. This cell offers new properties, such as full-vector control of the solution at each node. A new technique for deriving the stability condition is introduced to FDTD and shows that the new method has retained the same stability criterion of free-space propagation. Several simulation results are presented, one of which reveals a previously unreported problem, common to some gyrotropic methods-the tendency for spurious fields to arise at source locations. It is shown how this spuriousness, which has contaminated the results of a previous report, may be removed.
机译:使用一种新的算法方法来系统生成3-D单物种冷磁化等离子体EM传播的有限差分方程,该算法用于生成有限差分时域(FDTD)更新。然后将这种新方法推广到处理任意高阶复杂离散的系统。它显示了这如何产生具有数值色散关系的二阶精确算法,该算法始终可以通过简单替换以连续色散对应物的形式转换,从而避免了费力的分析。这允许在这里首次报告数字Appleton-Hartree方程。字段配置问题是通过重复Yee算法来解决的,因此所有字段变量都在新的三次计算像元的角处定义。该单元提供了新的属性,例如在每个节点上对解决方案进行全矢量控制。 FDTD引入了一种稳定条件的新技术,表明该方法保留了自由空间传播的相同稳定性准则。给出了几个模拟结果,其中一个揭示了以前未报告的问题,这对于某些回旋方法是常见的-杂散场在源位置出现的趋势。它显示了这种伪造已受到污染,该伪造已污染了先前报告的结果,该伪造可以如何消除。

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