Beamforming Using Linear Antenna Arrays for Photonic Applications

Yosra Bouchoucha, Khemiri kheireddine, S. Hasnaoui
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引用次数: 1

Abstract

Wireless communications systems including point-to-point, broadcast satellite communication, mobile and radar, suffer from several constraints mainly fading, interference and attenuation caused by very long distance. In order to meet the continuous requirements of 5G applications, the antenna arrays are extensively used in order to meet these challenges for efficient communication. Phased array antennas rely on providing phase shift to each antenna element using electronic phase shifters. These phase shifters depend on their turn on delaying RF signal by a specified amount. The bandwidth and noise limitation of such signals require multiple phase shifters for different frequencies. This technique is also suitable for photonic applications. Recent introduction of microwave photonics made it possible to obtain phase delay in a very wide bandwidth. The phase array antenna is a set of two or more antennas in which the signal from each array is combined or processed to achieve maximum and enhanced performance better than that of a single antenna. That phased array is not only used to optimize the signal interference and the arrival direction of the received signal, but also to steer the array angle and to achieve maximum gain, directivity and interference cancellation from a particular direction, and thus the overall directivity. Furthermore, this arrangement provided MIMO reception. In this paper, there is an investigation of the uniform linear array antenna and its equivalent radiation pattern is presented. Variable phases, number elements of array factor and the angle between array elements are analyzed in term of their key performances indicator such as a high directivity and beam-width.
光子应用中使用线性天线阵列的波束形成
无线通信系统包括点对点通信、广播卫星通信、移动通信和雷达等,它们都受到一些限制,主要是由于距离很远而引起的衰落、干扰和衰减。为了满足5G应用的持续需求,天线阵列被广泛使用,以应对这些挑战,实现高效通信。相控阵天线依赖于使用电子移相器为每个天线元件提供相移。这些移相器取决于它们对RF信号的延迟量。这种信号的带宽和噪声限制要求不同频率的多个移相器。该技术也适用于光子应用。最近引入的微波光子学使得在非常宽的带宽下获得相位延迟成为可能。相控阵天线是一组两个或多个天线,其中来自每个阵列的信号被组合或处理,以获得比单个天线更好的最大和增强的性能。该相控阵不仅用于优化信号干扰和接收信号的到达方向,而且还用于控制阵列角度,从特定方向实现最大增益、指向性和干扰消除,从而实现整体指向性。此外,这种安排提供了MIMO接收。本文对均匀线阵天线进行了研究,给出了其等效辐射方向图。从高指向性和波束宽度等关键性能指标出发,分析了变相位、阵元数和阵元夹角。
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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