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Homogenized Green's Functions for an Aperiodic Line Source Over Planar Densely Periodic Artificial Impedance Surfaces

机译:平面密集周期人工阻抗表面上非周期性线源的均质格林函数

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The accurate electromagnetic analysis of artificial periodic surfaces formed as planar layers with complicated periodic metallization patterns, having a grid period much smaller than the effective wavelength (densely periodic), is important for the design and analysis of a variety of electromagnetic structures. However, full-wave modeling can be extremely time-consuming and computationally expensive, especially for aperiodic sources in close proximity to periodic surfaces. In this paper, we describe approximate homogenized models for a Green's function that treats planar patterned screens (grids) as quasi-dynamic homogenized impedance surfaces and dielectric layers in a fully dynamic manner. The resulting Green's functions are only slightly more complicated than those for dielectric layers without metallization and can be numerically computed using standard methods for layered media. We restrict attention to line sources and compare numerical results from this method with those from a full-wave array scanning method, which is more complex analytically and much more demanding to evaluate numerically. Very good agreement is found between the two methods except for source and/or field points extremely close to the metallization layer, confirming the accuracy of the homogenized representations of periodic surfaces for near-field sources.
机译:对具有复杂的周期性金属化图案的,形成为平面层的人造周期表面进行精确的电磁分析,其栅格周期远小于有效波长(密集周期),对于各种电磁结构的设计和分析非常重要。但是,全波建模可能非常耗时且计算量大,尤其是对于非常靠近周期表面的非周期性源。在本文中,我们描述了格林函数的近似均质模型,该函数以完全动态的方式将平面图案化的屏幕(网格)视为准动态均质化阻抗表面和介电层。所得的格林函数仅比没有金属化的介电层稍微复杂一些,并且可以使用分层介质的标准方法进行数值计算。我们将注意力集中在线源上,并将这种方法的数值结果与全波阵列扫描方法的数值结果进行比较,这种方法分析起来更加复杂,并且对数值评估的要求更高。在两种方法之间找到了非常好的一致性,除了源极和/或场点非常接近金属化层之外,这证实了近场源周期性表面均匀化表示的准确性。

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