减少反射射线边缘衍射误差的相位校正技术

Muhammad M. Tahseen, A. Kishk
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引用次数: 2

摘要

提出了由于反射天线(RA)尺寸有限和边缘衍射(ED)造成的相位校正。该过程基于数值全波分析。边缘衍射主要是由RA天线外周长尖锐的刀口处的幅值和相位波纹引起的。边缘处的衍射场向各个方向衍射,干扰了天线原有的相位和振幅分布,进而影响了天线的预期性能。这会导致旁瓣电平升高,孔径效率降低。通过在天线底部采用锯齿边接地、开槽接地和带角混合接平面的翻边接地,可以减小天线性能的下降。与使用锋利刀刃(KED)地平面的RA天线相比,所提出的方法具有更好的RA性能。通过设计19*19 RA天线,采用尺寸变化的多领结辐射元件对ka波段的全波分析方法进行了分析。根据增益、孔径效率、散射比和交叉极化等指标对天线性能进行了评价。将该方法的结果与使用刀口地平面的原始RA进行了比较。采用翻边地平面可获得最佳的天线性能。在中心频率为30 GHz时,该天线的最大增益为26.36 dB,孔径效率为59.5%,最小增益为-17.1 dB, 1 dB增益带宽为11.2%。并对相位校正验证进行了近场分析。
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Phase correction techniques for reducing errors due to edge diffraction in reflectarray
Phase correction due to finite reflectarray (RA) antenna size and edge diffraction (ED) is proposed. The process is based on the numerical full wave analysis. The edge diffraction is mainly caused because of amplitude and phase ripples at sharp knife-edges of the outer perimeter of the RA antenna. The diffracted fields at the edges is diffracted in all directions resulting in disturbing the original phase and amplitude distribution, which further affect the pre-expected performance of the antenna. This could cause increasing of sidelobe level (SLL) and reducing aperture efficiency. The degradation in the antenna performance can be reduced by using serrated-edge ground, slotted GND and rolled-over edges with corner blended ground plane in the bottom of RA. The proposed methods provide RA performance when compared with RA antenna using sharp knife-edge (KED) ground plane. The proposed methods are analyzed by designing 19*19 RA antenna in fullwave analysis in the Ka-Band using size varying multi-bowtie radiating elements. The antenna performance is evaluated based on the achieved gain, aperture efficiency, SLL, and cross polarization. The proposed technique's result are compared with original RA using knife-edge ground plane. The best antenna performance is obtained using rolled-over edges GND plane. The antenna provides maximum gain of 26.36 dB, aperture efficiency of 59.5 %, SLL of -17.1 dB and 1-dB gain bandwidth of 11.2%, evaluated at center frequency 30 GHz. Near field analysis is also done for phase correction authentication.
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