Xi'an Key Laboratory of Network Convergence Communication, College of Communication and Information Engineering, Xi'an University of Science and Technology, Xi'an 710054, China.
Sensors (Basel). 2023 Mar 14;23(6):3107. doi: 10.3390/s23063107.
Unlike conventional phased array (PA), frequency diversity array (FDA) can perform the beampattern synthesis not only in an angle dimension but also in a range dimension by introducing an additional frequency offset (FO) across the array aperture, thus greatly enhancing the beamforming flexibility of an array antenna. Nevertheless, an FDA with uniform inter-element spacing that consists of a huge number of elements is required when a high resolution is needed, which results in a high cost. To substantially reduce the cost while almost maintaining the antenna resolution, it is important to conduct a sparse synthesis of FDA. Under these circumstances, this paper investigated the transmit-receive beamforming of a sparse-fda in range and angle dimensions. In particular, the joint transmit-receive signal formula was first derived and analyzed to resolve the inherent time-varying characteristics of FDA based on a cost-effective signal processing diagram. In the sequel, the GA-based low sidelobe level (SLL) transmit-receive beamforming of the sparse-fda was proposed to generate a focused main lobe in a range-angle space, where the array element positions were incorporated into the optimization problem. Numerical results showed that 50% of the elements can be saved for the two linear FDAs with sinusoidally and logarithmically varying frequency offsets, respectively termed as sin-FO linear-FDA and log-FO linear-FDA, with only a less than 1 dB increment in SLL. The resultant SLLs are below -9.6 dB, and -12.9 dB for these two linear FDAs, respectively.
不同于传统的相控阵(PA),频率分集阵列(FDA)可以通过在阵列孔径上引入额外的频率偏移(FO),不仅在角度维度上,而且在距离维度上执行波束形成合成,从而大大提高了阵列天线的波束形成灵活性。然而,当需要高分辨率时,需要使用具有均匀单元间距且由大量单元组成的 FDA,这会导致成本高昂。为了在几乎保持天线分辨率的同时大幅降低成本,对 FDA 进行稀疏合成非常重要。在这种情况下,本文研究了稀疏 FDA 在距离和角度维度上的收发波束形成。特别是,首先推导出并分析了联合收发信号公式,以基于具有成本效益的信号处理图解决 FDA 的固有时变特性。随后,提出了基于 GA 的稀疏-FDA 的低旁瓣电平(SLL)收发波束形成,以在距离-角度空间中生成聚焦的主瓣,其中将阵元位置纳入优化问题。数值结果表明,对于具有正弦和对数变化频率偏移的两个线性 FDA,分别称为 sin-FO 线性-FDA 和 log-FO 线性-FDA,可以节省 50%的元素,而 SLL 仅增加了不到 1dB。这两个线性 FDA 的最终 SLL 分别低于-9.6dB 和-12.9dB。