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FDTD Simulation of TE and TM Plane Waves at Nonzero Incidence in Arbitrary Layered Media

机译:任意分层介质中非零入射时TE和TM平面波的FDTD模拟

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Plane wave scattering is an important class of electromagnetic problems that is surprisingly difficult to model with the two-dimensional finite-difference time-domain (FDTD) method if the direction of propagation is not parallel to one of the grid axes. In particular, infinite plane wave interaction with dispersive halfspaces or layers must include careful modeling of the incident field. By using the plane wave solutions of Maxwell's equations to eliminate the transverse field dependence, a modified set of curl equations is derived which can model a "slice" of an oblique plane wave along grid axes. The resulting equations may be used as edge conditions on an FDTD grid. These edge conditions represent the only known way to accurately propagate plane wave pulses into a frequency dependent medium. An examination of grid dispersion between the plane wave and the modeled slice reveals good agreement. Application to arbitrary dispersive media is straightforward for the transverse magnetic (TM) case, but requires the use of an auxiliary equation for the transverse electric case, which increases complexity. In the latter case, a simplified approach, based on formulating the dual of the TM equations, is shown to be quite effective. The strength of the developed approach is illustrated with a comparison with the conventional simulation based on an analytic incident wave specification with half-space, single frequency reflection and transmission for the edges. Finally, an example of a possible biomedical application is given and the implementation of the method in the perfectly matched layer region is discussed.
机译:平面波散射是一类重要的电磁问题,如果传播方向不平行于网格轴之一,则很难用二维有限差分时域(FDTD)方法进行建模。特别是,与色散半空间或层的无限平面波相互作用必须包括对入射场的仔细建模。通过使用麦克斯韦方程组的平面波解决方案消除横向场依赖性,可以得出一组改进的卷曲方程组,该模型可以对沿网格轴的倾斜平面波的“切片”建模。所得方程可以用作FDTD网格上的边缘条件。这些边缘条件代表了将平面波脉冲准确传播到频率相关介质的唯一已知方法。检查平面波与建模切片之间的网格弥散显示出良好的一致性。对于横向磁(TM)情况,直接应用于任意分散介质是很容易的,但是对于横向电情况,则需要使用辅助方程,这会增加复杂性。在后一种情况下,一种简化的方法非常有效,它基于公式化TM方程的对偶。通过与基于半空间,单频反射和边缘透射的解析入射波规范的传统仿真进行比较,说明了所开发方法的优势。最后,给出了可能的生物医学应用的示例,并讨论了该方法在完全匹配的层区域中的实现。

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