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Design of broadband antenna elements for a low-frequency radio telescope using Pareto genetic algorithm optimization

机译:基于帕累托遗传算法优化的低频射电望远镜宽带天线元件设计

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We apply Pareto genetic algorithm (GA) optimization to the design of antenna elements for use in the Long Wavelength Array (LWA), a large, low-frequency radio telescope currently under development. By manipulating antenna geometry, the Pareto GA simultaneously optimizes the received Galactic background or “sky” noise level and radiation patterns of the antenna over all frequencies. Geometrical constraints are handled explicitly in the GA in order to guarantee the realizability, and to impart control over the monetary cost of the generated designs. The antenna elements considered are broadband planar dipoles arranged horizontally over the ground. It is demonstrated that the Pareto GA approach generates a set of designs, which exhibit a wide range of trade-offs between the two design objectives, and satisfy all constraints. Multiple GA executions are performed to determine how antenna performance trade-offs are affected by different geometrical constraint values, feed impedance values, radiating element shapes and orientations, and ground conditions. Two different planar dipole antenna designs are constructed, and antenna input impedance and sky noise drift scan measurements are performed to validate the results of the GA.
机译:我们将帕累托遗传算法(GA)优化应用于长波阵(LWA)(一种目前正在开发的大型低频射电望远镜)中的天线元件设计。通过操纵天线的几何形状,Pareto GA同时优化了在所有频率上接收到的银河背景或“天空”噪声水平以及天线的辐射方向图。在GA中明确处理了几何约束,以保证可实现性,并控制生成设计的货币成本。所考虑的天线元件是水平布置在地面上的宽带平面偶极子。事实证明,帕累托GA方法生成了一组设计,这些设计在两个设计目标之间表现出广泛的权衡并满足所有约束。执行多次GA执行以确定不同的几何约束值,馈入阻抗值,辐射元件形状和方向以及地面条件如何影响天线性能的权衡。构造了两种不同的平面偶极天线设计,并进行了天线输入阻抗和天空噪声漂移扫描测量,以验证GA的结果。

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