使用自定义阻抗矩阵插值方案的反射天线的有效谱域矩量方法

J. Budhu, Y. Rahmat-Samii
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引用次数: 1

摘要

提出的加速方法是一种新的阻抗矩阵元素在贴片尺寸上的插值方法,从而减少了用于生成设计曲线的参数扫描所需的矩量方法的运行次数。在Reflectarray天线的设计过程中,由第i个贴片的单位法向量和从馈电相位中心到第i个贴片质心的入射k向量构成的入射平面上的球面角对Reflectarray的每一个元素都是唯一的。因此,每个元素都需要独特的设计曲线。对于大型电反射天线来说,如果使用HFSS或CST MWS等流行的商业工具,这将是一项艰巨的任务。即使使用基于标准SDMoM算法的内部开发代码,这仍然需要许多小时甚至几天的时间。此外,如果给定一组必须同时满足的需求,通常流行的方法是选择全局优化器,如PSO或GA,如果每次评估成本函数需要花费数小时或数天,那么该策略将是不可行的。因此,人们强烈希望将标准SDMoM算法加速到极快的速度,以秒到分钟的速度取代小时到天的速度。这可以使用本演讲中介绍的z矩阵插值方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An efficient spectral domain method of moments for Reflectarray antennas using a customized impedance matrix interpolation scheme
The acceleration method to be presented is a novel interpolation of the impedance matrix elements over patch size thereby reducing the number of moment method runs needed in the parameter sweep used to generate the design curves. In the Reflectarray antenna design process, the spherical angles in the plane of incidence, formed by the unit normal vector of the ith patch and the incident ⃗k vector emanating from the feed phase center to the ith patch centroid, are unique to each and every element of the Reflectarray. Thus, each and every element demands a unique design curve. For electrically large Reflectarray antennas, say on the order of thousands of elements, this would be a tremendous undertaking using the popular commercially available tools such as HFSS or CST MWS. Even with an in-house developed code based upon the standard SDMoM algorithm, this would still require many hours and possibly days. Also, if one were given a set of requirements that must be met simultaneously, an often popular approach would be to choose global optimizers such as PSO or GA, and if the evaluation of the cost function took hours or days for each evaluation, then this strategy would be unfeasible. There exists, therefore, a strong desire to accelerate the standard SDMoM algorithm to an extremely rapid pace, on the order of seconds to minutes in lieu of hours to days. This is possible using the Z-matrix Interpolation scheme as presented in this talk.
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