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首页> 外文期刊>IEE Proceedings. Part H, Microwaves, Antennas and Propagation >Application of Gaussian-ray basis functions for the rapid analysis of electromagnetic radiation from reflector antennas
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Application of Gaussian-ray basis functions for the rapid analysis of electromagnetic radiation from reflector antennas

机译:高斯射线基函数在反射器天线电磁辐射快速分析中的应用

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A highly efficient Guassian beam (GB) method was recently developed to provide a relatively rapid analysis of large reflector antennas. This GB method is very efficient because it represents the feed radiation in terms of a set of very few rotationally symmetric GBs and provides an essentially closed form solution for the reflection and diffraction of each GB incidence on the reflector surface. In contrast, conventional approaches evaluate the radiated field via a numerical integration of the physical optics integral over the large reflector surface; such numerical techniques are time consuming for large reflectors. However, the fast GB method becomes less accurate if each GB illuminating spot on the reflecting surface is comparable to the overall reflector size, since its closed-form solution requires a small spot size. This limitation of the GB approach happens particularly in situations where the feed is located relatively far from the reflector, since the GBs are not able to remain narrow in the angular and spatial domains simultaneously, thereby creating too large a spot size on the reflector surface. The above limitation of the GBs is overcome here by introducing a Gaussian-ray basis function (GRBF), a hybridisation of a geometrical optics (GO) ray tube and a GB. Owing to its similarity with a GB in the amplitude variation transverse to the ray, its incorporation into any existing GB code is straightforward. Numerical results are presented to demonstrate the accuracy and robustness of the new GRBF approach.
机译:最近开发了一种高效的高斯波束(GB)方法,可以对大型反射器天线进行相对快速的分析。该GB方法非常有效,因为它以极少的旋转对称GB的集合表示进给辐射,并为反射器表面上每个GB入射的反射和衍射提供了一种基本封闭的形式。相比之下,常规方法是通过对大型反射镜表面上的物理光学积分进行数值积分来评估辐射场的。对于大型反射镜,这种数值技术非常耗时。但是,如果反射表面上的每个GB照明光斑与反射镜的整体尺寸相当,则快速GB方法的准确性就会降低,因为其封闭形式的解决方案需要较小的光斑尺寸。 GB方法的这种局限性尤其发生在进料位置离反射器相对较远的情况下,因为GB不能同时在角域和空间域中保持狭窄,从而在反射器表面形成太大的光斑。通过引入高斯射线基函数(GRBF),几何光学(GO)射线管和GB的混合,可以克服GBs的上述局限性。由于其在横向于射线的幅度变化方面与GB相似,因此将其合并到任何现有的GB代码中都非常简单。数值结果表明了新GRBF方法的准确性和鲁棒性。

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