Song Chengtian, Pan Lizhi, Jiao Yonghui, Jia Jianguang
School of Mechatronical Engineering, Beijing Institute of Technology, Beijing 100081, China.
Institute of Systems Engineering, AMS, PLA, Beijing 100091, China.
Sensors (Basel). 2020 Aug 10;20(16):4460. doi: 10.3390/s20164460.
A 5G metasurface (MS) transmitarray (TA) feed by compact-antenna array with the performance of high gain and side-lobe level (SLL) reduction is presented. The proposed MS has two identical metallic layers etched on both sides of the dielectric substrate and four fixed vias connecting two metallic layers that works at 28 GHz to increase the transmission phase shift range. The proposed planar TA consisting of unit cells with different dimensional information can simulate the function as an optical lens according to the Fermat's principle, so the quasi-spherical wave emitted by the compact Potter horn antenna at the virtual focal point will transform to the quasi-plane wave by the phase-adjustments. Then, the particle swarm optimization (PSO) is introduced to optimize the phase distribution on the TA to decrease the SLL further. It is found that the optimized TA could achieve 27 dB gain at 28 GHz, 11.8% 3 dB gain bandwidth, -30 dB SLL, and aperture efficiency of 23% at the operating bandwidth of 27.5-29.5 GHz, which performs better than the nonoptimized one. The advanced particularities of this optimized TA including low cost, low profile, and easy to configure make it great potential in paving the way to 5G communication and radar system.
本文提出了一种由紧凑型天线阵列馈电的5G超表面(MS)发射阵列(TA),具有高增益和降低旁瓣电平(SLL)的性能。所提出的MS在介质基板的两侧蚀刻有两个相同的金属层,以及连接两个金属层的四个固定过孔,其工作在28 GHz以增加传输相移范围。所提出的平面TA由具有不同尺寸信息的单元组成,根据费马原理可以模拟光学透镜的功能,因此紧凑型波特喇叭天线在虚拟焦点处发射的准球面波将通过相位调整转换为准平面波。然后,引入粒子群优化(PSO)来优化TA上的相位分布,以进一步降低SLL。研究发现,优化后的TA在27.5 - 29.5 GHz的工作带宽内,在28 GHz时可实现27 dB的增益、11.8%的3 dB增益带宽、-30 dB的SLL以及23%的孔径效率,其性能优于未优化的TA。这种优化后的TA具有低成本、低剖面和易于配置等优点,在推动5G通信和雷达系统发展方面具有巨大潜力。