Effect of Vivaldi element pattern on The Uniform Linear Array Pattern

Nurhayati, E. Setijadi, G. Hendrantoro
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引用次数: 6

Abstract

This paper presents about the effect of Vivaldi element pattern on the Uniform Linear Array pattern. Vivaldi antenna can operate over wide bandwidth. Geometry of the radiating element influences element radiation pattern especially for frequency far from the center frequency. In this paper, we reported coplanar Vivaldi antenna with dimension 60×60 mm on FR4 substrate with permittivity 4.7. The antenna has differents element pattern at 2 GHz, 3 GHz and 4 GHz. It is shown that bad radiation pattern in certain frequency in broadband antenna can effects on the total array pattern. Differents element pattern, spacing and number of elements resulted different array pattern. We simulated variation 5 mm and 15 mm spacing between adjacent sides of Vivaldi elements and variation 3 and 10 number of elements in each frequency. From simulated resulted shows that the total array pattern has higher back lobe level than main lobe level for N=5, d=0.433λ at 2 GHz due to its elements pattern performance. Gain of the main lobe level is obtained as 10.81 dB at 3 GHz, N=5, d= 0.65λ. Gain of the array pattern increased and HPBW decreased with increasing number of elements. From simulated result, it reveals that good performance of element pattern and total array pattern is achieved at 3 GHz, 4 GHz and 2 GHz respectively. Increasing operating frequency will affect its sidelobe performance due to different spacing between elements relative to certain wavelength. Although broadband antenna has return loss below −10 dB in all band frequency, it must be better to know element pattern in each operating frequency. It can avoid bad performance of total array pattern in certain frequency. Simulation by using multiplication element pattern with array factor can reduce computation time compared with full wave simulation. But it does not consider mutual coupling effect.
维瓦尔第元素模式对均匀线性阵列模式的影响
本文讨论了维瓦尔第元方向图对均匀线阵方向图的影响。维瓦尔第天线可以在宽带宽上工作。辐射元件的几何形状影响元件的辐射方向图,特别是在远离中心频率的情况下。本文报道了在介电常数为4.7的FR4衬底上,尺寸为60×60 mm的共面维瓦尔第天线。天线在2ghz、3ghz和4ghz有不同的单元方向图。研究表明,宽带天线在一定频率下的不良辐射方向图会影响天线的总阵列方向图。不同的元素模式、间距和元素数量会产生不同的数组模式。我们模拟了Vivaldi单元相邻侧间距为5 mm和15 mm的变化,以及每个频率下单元数为3和10的变化。仿真结果表明,在N=5, d=0.433λ时,总阵图的后瓣电平高于主瓣电平。在3 GHz, N=5, d= 0.65λ时,主瓣电平的增益为10.81 dB。随着单元数的增加,阵列方向图的增益增加,HPBW减小。仿真结果表明,在3ghz、4ghz和2ghz频段,单元方向图和总阵列方向图分别具有良好的性能。相对于一定波长,工作频率的增加会影响其旁瓣性能。虽然宽带天线在所有频带频率的回波损耗都在−10 dB以下,但最好能了解每个工作频率下的元件方向图。它可以避免总阵图在特定频率下性能变差的问题。与全波模拟相比,采用带阵列因子的乘法元模式进行模拟可以减少计算时间。但没有考虑相互耦合效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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