R. A. B. Saleem, A. A. Shah, H. Munsif, A. I. Najam, S. Khattak, I. Ullah
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引用次数: 0
摘要
天线阵列故障或失灵的可能性无法排除,而硬件更换故障元件并不总是可行的解决方案。因此,学术界和工业界对自修复相控阵的兴趣与日俱增。在这项工作中,针对 4 × 4 相故障平面天线阵列的辐射模式修正,提出了纯相位遗传算法(GA)优化流程。首先,生成所需的扫描角度下的参考阵列模式。然后,在 4 个子阵列中的任意一个子阵列的 1 × 4 天线元件上引入随机相位故障,使 4 × 4 平面阵列的参考辐射模式产生最大畸变。建议的 GA 会重新计算其余 3 个无故障子阵列的新激励权重,以校正 4 × 4 阵列的整体辐射模式。这是通过计算参考权重和 GA 计算权重的阵列输出功率实现的。经 GA 校正的辐射模式在峰值增益和减少所需的扫描角度的侧叶水平方面与所需的阵列模式基本一致。全波 HFSS 模型和测量验证评估了优化辐射模式的效率。这样,通过使用软件恢复可接受水平的辐射模式,而不是物理更换阵列中的故障天线元件,可以降低维护成本。
Radiation Pattern Correction of Faulty Planar Phased Array using Genetic Algorithm
The probability of antenna array failure or malfunctioning cannot be ruled out, and hardware replacement of faulty elements is not always a viable solution. Therefore, academic and industrial interest in self-healing phased arrays are on the rise. In this work, the phase-only genetic algorithm (GA) optimization flow for the radiation pattern correction of a 4 × 4 phase faulty planar antenna array is proposed. Initially, a reference array pattern at the desired scan angle is generated. Then random phase faults are introduced across the 1 × 4 antenna elements in any one of 4 sub-arrays to produce maximum distortion in the reference radiation pattern of 4 × 4 planar array. The proposed GA re-computes the new excitation weights for the remaining non-faulty 3 sub-arrays to correct the overall radiation pattern of 4 × 4 array. This is achieved by calculating the array output power for reference and GA computed weights. The GA corrected patterns fairly follow the desired array patterns in terms of peak gain and reducing sidelobe levels for the desired scan angle. The efficiency of the optimized radiation patterns was evaluated in full-wave HFSS model and measurements validation. In this way, maintenance cost can be reduced with recovery of acceptable level of radiation pattern using software instead of physically replacing faulty antenna elements in the array.
期刊介绍:
Advanced Electromagnetics, is electronic peer-reviewed open access journal that publishes original research articles as well as review articles in all areas of electromagnetic science and engineering. The aim of the journal is to become a premier open access source of high quality research that spans the entire broad field of electromagnetics from classic to quantum electrodynamics.