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An Efficient 3-D FDTD Model of Electromagnetic Wave Propagation in Magnetized Plasma

机译:磁化等离子体中电磁波传播的有效3-D FDTD模型

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摘要

Modeling electromagnetic wave propagation in the upper atmosphere is important for space weather effects, satellite communications ionospheric modification experiments, and many other applications. We propose a new methodology for solving and incorporating the current equation into the finite-difference time-domain (FDTD) form of Maxwell's equations for modeling electromagnetic wave propagation in magnetized plasma. This approach employs a version of Boris's algorithm applied to particle-in-cell plasma computational models. There are four primary advantages of this new method over previously developed three-dimensional FDTD models of electromagnetic wave propagation in magnetized plasma. Specifically, it: 1) requires less memory; 2) is more than 50% faster; 3) is easier to implement; and 4) permits the use of two different time step increments when solving the current equation versus Maxwell's equations that is useful for modeling high collisional regimes. The new algorithm is faster because it solves all the equations explicitly and there is no need to solve complicated matrix equations. Modeling of higher altitude ranges and higher frequency electromagnetic waves is much more feasible using this new method. Results of the new FDTD magnetized plasma model are provided and validated.
机译:对高空大气中电磁波的传播进行建模对于空间天气影响,卫星通信电离层修改实验以及许多其他应用非常重要。我们提出了一种新的方法,用于求解当前方程并将其合并到麦克斯韦方程的有限差分时域(FDTD)形式中,以对磁化等离子体中的电磁波传播进行建模。这种方法采用了Boris算法的一种版本,该算法适用于细胞内粒子等离子体计算模型。与先前开发的电磁波在磁化等离子体中传播的三维FDTD模型相比,该新方法具有四个主要优点。具体来说,它:1)需要较少的内存; 2)速度提高50%以上; 3)易于实施;和4)允许在求解当前方程和Maxwell方程时使用两个不同的时间步长增量,这对于建模高碰撞区域非常有用。新算法速度更快,因为它可以显式求解所有方程,并且无需求解复杂的矩阵方程。使用这种新方法,对更高的海拔范围和更高频率的电磁波进行建模更为可行。提供并验证了新的FDTD磁化等离子体模型的结果。

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