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Improving the Accuracy of FDTD Approximations to Tangential Components of the Coupled Electric and Magnetic Fields at a Material Interface

机译:提高材料界面处耦合的电场和磁场的切向分量的FDTD近似值的精度

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摘要

The finite-difference time-domain (FDTD) method is one of the most popular tools used for modeling important electromagnetic wave propagation and scattering problems. Of the many variations on the basic formulation, conventional orthogonal schemes remain prevalent because of their high level of accuracy and relative ease of implementation. Inaccuracies do persist, however, and in this paper a simple, computationally efficient remedy to an error that occurs when simulating waves that impinge on a material interface is identified. The detail of when and how the error occurs is illustrated using a simplistic interface scenario, with an analytic electric field being used to drive a single FDTD magnetic field update step. The resulting FDTD approximations are compared to the analytic solution to reveal the extent of the error. The proposed modification is then introduced and its remedial effect shown by repeating the above comparison using the modified FDTD equations. The broader effects of the proposed modification are demonstrated using a practical, 3D, full-wave FDTD forward modeling tool, taking scenario examples from the application area of ground penetrating radar (GPR). It is concluded that the overall accuracy of conventional, orthogonal FDTD schemes is improved, without unduly increasing their computational burden or algorithmic complexity.
机译:有限差分时域(FDTD)方法是用于对重要的电磁波传播和散射问题进行建模的最受欢迎的工具之一。在基本配方的许多变化中,常规正交方案由于其较高的准确性和相对容易的实现而仍然很流行。但是,误差的确会持续存在,并且在本文中,一种简单,计算有效的补救措施是对模拟撞击在材料界面上的波时出现的错误进行识别。使用简单的界面方案说明了何时以及如何发生错误的详细信息,其中解析电场用于驱动单个FDTD磁场更新步骤。将所得的FDTD近似值与解析解进行比较,以揭示误差程度。然后引入建议的修改,并通过使用修改后的FDTD公式重复上述比较来显示其补救效果。通过使用实用的3D全波FDTD前向建模工具,并从探地雷达(GPR)的应用领域中举例说明了这些实例,所提出的修改方案具有更广泛的效果。结论是,在不过度增加其计算负担或算法复杂度的情况下,提高了常规正交FDTD方案的整体精度。

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