电大贴片相控阵的CFDTD分析

T. Q. Ho, L. Hunt, C. A. Hewett, R. Mittra, Wenhua Yu, T.G. Ready, D.A. Zolnick, M. Kragalott
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引用次数: 4

摘要

为了验证CFDTD代码,首先对包含64个元素的较小数组进行分析。该结构由与10,000个元素数组中使用的元素相同的元素组成。验证数组的模型分别使用CFDTD和XFDTD构建。在1.75 GHz的中心频率下,显示了0°、30°、45°和60°扫描角的阵列辐射图。光束在Phi = 90度平面上被扫描。实线表示CFDTD数据,虚线表示相应的XFDTD集。当波束远离瞄准轴时,3db波束宽度从瞄准轴时的12.9度增加到60度扫描角时的26.2度。当主波束指向轴视时,第一副瓣电平比峰值低约13db。当波束从轴视扫描到60度时,峰值旁瓣电平的总变化为4.0 dB。用CFDTD计算得到的阵列指向性为23.0 dB,与XFDTD计算得到的值相差0.2 dB以内。此外,从0°到60°的扫描损耗在CFDTD中为3.0 dB,在XFDTD中为2.8 dB。这些值与期望的具有0.5lambda元素间距的性能良好的数组一致
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of electrically large patch phased arrays via CFDTD
To validate the CFDTD code, analysis was first carried out on a smaller array with 64 elements. The structure was built up with elements identical to those used in the 10,000-element array. Models of the validation array were constructed using both CFDTD and XFDTD. The array radiation patterns were shown for 0deg, 30deg, 45deg, and 60deg scan angles at the center frequency of 1.75 GHz. The beam was scanned in the Phi = 90deg plane. The solid lines represent CFDTD data while the dotted lines indicate the corresponding XFDTD set. As the beam is steered away from boresight, the 3-dB beamwidth increases from 12.9deg at boresight to 26.2deg at the 60deg scan angle. The first sidelobe level is about 13 dB below the peak when the main beam is pointed at boresight. The total change in peak sidelobe level is 4.0 dB as the beam is scanned from boresight to 60deg. The array directivity calculated with CFDTD is 23.0 dB, which is within 0.2 dB of the value given by XFDTD. Furthermore, the scan loss from 0deg to 60deg is observed to be 3.0 dB with CFDTD and 2.8 dB with XFDTD. These values are consistent with expectations for a well behaved array with 0.5lambda element spacing
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