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Efficient finite-difference time-domain scheme for light scattering by dielectric particles: application to aerosols

机译:介电粒子光散射的有效时域有限差分法:应用于气溶胶

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摘要

We have examined the Maxwell-Garnett, inverted Maxwell-Garnett, and Bruggeman rules for evaluation of the mean permittivity involving partially empty cells at particle surface in conjunction with the finite-difference time-domain (FDTD) computation. Sensitivity studies show that the inverted Maxwell-Garnett rule is the most effective in reducing the staircasing effect. The discontinuity of permittivity at the interface of free space and the particle medium can be minimized by use of an effective permittivity at the cell edges determined by the average of the permittivity values associated with adjacent cells. The efficiency of the FDTD computational program is further improved by use of a perfectly matched layer absorbing boundary condition and the appropriate coding technique. The accuracy of the FDTD method is assessed on the basis of a comparison of the FDTD and the Mie calculations for ice spheres. This program is then applied to light scattering by convex and concave aerosol particles. Comparisons of the scattering phase function for these types of aerosol with those for spheres and spheroids show substantial differences in backscattering directions. Finally, we illustrate that the FDTD method is robust and flexible in computing the scattering properties of particles with complex morphological configurations.
机译:我们已经检查了Maxwell-Garnett,倒置Maxwell-Garnett和Bruggeman规则,结合有限差分时域(FDTD)计算方法来评估粒子表面涉及部分空单元的平均介电常数。敏感性研究表明,Maxwell-Garnett倒置规则在减少阶梯效应方面最有效。在自由空间和颗粒介质的界面处的介电常数的不连续性可以通过使用由与相邻单元相关的介电常数值的平均值确定的单元边缘处的有效介电常数来最小化。通过使用完全匹配的层吸收边界条件和适当的编码技术,可以进一步提高FDTD计算程序的效率。 FDTD方法的准确性是根据FDTD与冰球Mie计算的比较来评估的。然后将该程序应用于凸形和凹形气溶胶颗粒的光散射。这些类型的气溶胶与球形和椭球形的散射相函数的比较表明,反向散射方向存在很大差异。最后,我们说明了FDTD方法在计算具有复杂形态构型的粒子的散射特性时既强大又灵活。

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