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An efficient two-dimensional graded mesh finite-difference time-domain algorithm for shielded or open waveguide structures

机译:屏蔽或开放波导结构的高效二维渐变网格有限差分时域算法

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摘要

A finite-difference-time-domain (FDTD) algorithm for the efficient full-wave analysis of a comprehensive class of millimeter-wave and optical waveguide structures is described. The algorithm is based on a two-dimensional graded mesh combined with adequately formulated absorbing boundary conditions. This allows the inclusion of nearly arbitrarily shaped, fully or partially lateral open or shielded guiding structures with or without layers of finite metallization thickness. Moreover, lossy dielectrics and/or lossy conductors are included in the theory. The algorithm leads to a significant reduction in CPU time and storage requirements as compared with the conventional three-dimensional eigenvalue FDTD mesh formulation. Dispersion characteristic examples are calculated for structures suitable for usual integrated circuits, such as insulated image guides, ridge guides, dielectric waveguides, trapped image guides, coplanar-lines and microstrip lines. The theory is verified by comparison with results obtained by other methods.
机译:描述了一种有限差分时域(FDTD)算法,用于对一类全面的毫米波和光波导结构进行有效的全波分析。该算法基于二维渐变网格,并结合了充分制定的吸收边界条件。这允许包括具有或不具有有限的金属化厚度的层的几乎任意形状的,完全或部分横向的开放或屏蔽的引导结构。此外,该理论包括有损耗的电介质和/或有损耗的导体。与传统的三维特征值FDTD网格公式相比,该算法显着减少了CPU时间和存储需求。计算适用于常规集成电路的结构的色散特性示例,例如绝缘的图像波导,脊形波导,介电波导,捕获的图像波导,共面线和微带线。通过与其他方法获得的结果进行比较,验证了该理论。

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