均匀线性相控阵旁瓣高效对消器抑制多方向干扰

V. Romanuke
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引用次数: 1

摘要

背景。对于雷达系统,合成均匀线性阵列(ULA)的波束方向图以保证信号的方向选择性。通过重新调整波束权重来消除特定的ULA旁瓣。特别是,这是通过增加传感器的数量和缩短扫描步骤来实现的。然而,一个明显的限制是传输功率的损失。因此,问题在于如何在传感器数量与有效的ULA旁瓣抵消之间取得最佳平衡。目标。为了保证多方向干扰的抑制,目标是找到用于波束方向图合成的ULA雷达传感器的最优数量。标准是确定这些传感器的最小值,在这个最小值上,朝向有用信号方向的主瓣尽可能均匀。方法。为了实现上述目标,对ULA的副瓣抵消进行了仿真。基于旁瓣对消算法,利用MATLAB®R2020b相控阵系统工具箱tm函数进行了仿真配置和实现。结果。通过增加ULA传感器的数量,波束模式叶不仅变薄,而且其功率也发生了变化。特别是干涉方向旁瓣变得相对较强。传感器的数量受三个影响因素的限制:减薄阵列的发射功率损耗、孔径大小和副瓣增强。结论。当扫描步长等于相邻干涉方向之间的最小距离时,可以找到用于波束图合成的ULA雷达传感器的最佳数量。一开始,传感器的数量是根据有用信号方向的数量来设定的。如果向有用信号方向的主瓣不够均匀,则对干扰方向集进行校正。关键词:雷达相控阵;光束模式;干扰方向;旁瓣取消;光圈的大小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MULTIPLE DIRECTION INTERFERENCE SUPPRESSION BY UNIFORM LINEAR PHASED ARRAY SIDELOBE EFFICIENT CANCELLER
Background. For radar systems, the beam pattern of a uniform linear array (ULA) is synthesized to ensure signal selectivity by direction. A specific ULA sidelobe is cancelled by rescaling the beam weights. In particular, this is done by increasing the number of sensors and shortening the scanning step. However, a noticeable limitation is a loss of the transmitted power. Therefore, the problem is to optimally balance the number of sensors versus effective ULA sidelobe cancellation. Objective. In order to ensure multiple direction interference suppression, the goal is to find an optimal number of ULA radar sensors for the beam pattern synthesis. The criterion is to determine such a minimum of these sensors at which mainlobes towards useful signal directions are evened as much as possible. Methods. To achieve the said goal, the ULA sidelobe cancellation is simulated. The simulation is configured and carried out by using MATLAB® R2020b Phased Array System ToolboxTM functions based on an algorithm of the sidelobe cancellation. Results. By increasing the number of ULA sensors, the beam pattern lobes are not only thinned but also change in their power. In particular, the interference direction sidelobes become relatively stronger. The number of sensors is limited by the three influencing factors: the thinned-array curse transmitted power loss, the aperture size, and the sidelobes intensification. Conclusions. An optimal number of ULA radar sensors for the beam pattern synthesis can be found when the scanning step is equal to the least distance between adjacent interference directions. At the start, the number of sensors is set at the number of useful signal directions. If the mainlobes towards useful signal directions are not evened enough, the set of interference directions is corrected. Keywords: radar phased array; beam pattern; interference direction; sidelobe cancellation; aperture size.
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