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Uniaxial and Radial Anisotropy Models for Finite-Volume Maxwellian Absorber

机译:有限体积麦克斯韦吸收体的单轴和径向各向异性模型

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摘要

The uniaxial finite-volume Maxwellian absorber used as a perfectly matched layer is extended to incorporate radial anisotropy for modeling cylindrical geometries. Theoretical background and practical applications of both uniaxial and radial absorber models are presented. Both these models employ spatially and temporally co-located electromagnetic field quantities in an unstructured mesh. The uniaxial Maxwellian absorber model is tested for a truncated waveguide problem. The influence of absorber thickness and material loss parameter on the performance of the model is analyzed. Numerical reflection coefficients down to -60 dB are achieved for fine mesh discretization with approximately 20 points per wavelength confirming the convergence of numerical results. As an extension of the technique, a radially anisotropic absorber model is tested for cylindrical mesh truncation using a representative problem involving two different test scenarios. Results are compared with an existing technique commonly used in finite-volume time-domain simulations, demonstrating substantial reduction in numerical error due to cylindrical mesh truncation
机译:扩展了用作完美匹配层的单轴有限体积麦克斯韦吸收体,以合并径向各向异性,以建模圆柱几何形状。介绍了单轴和径向吸收器模型的理论背景和实际应用。这两种模型都在非结构化网格中采用了在空间和时间上共同定位的电磁场量。测试了单轴麦克斯韦吸收器模型的截短波导问题。分析了吸收器厚度和材料损失参数对模型性能的影响。对于细网格离散化,可以实现低至-60 dB的数值反射系数,每个波长大约20个点,从而证实了数值结果的收敛性。作为该技术的扩展,使用涉及两个不同测试场景的代表性问题,对径向各向异性吸收器模型的圆柱网状截断进行了测试。将结果与有限体积时域仿真中常用的现有技术进行了比较,证明了由于圆柱网格截断而导致的数值误差大大降低了

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