一种用于ka波段应用的宽带波束转向发射阵列天线

IF 3 3区 计算机科学 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Peyman PourMohammadi , Hassan Naseri , Noureddine Melouki , Fahad Ahmed , Qi Zheng , Amjad Iqbal , Tayeb A. Denidni
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引用次数: 0

摘要

本文设计了一种宽带发射阵列天线,以实现5G通信系统的高孔径效率波束导向能力。为此,首先利用当前的反向技术,设计了基于1位相位量化(0°/180°)的建设性互耦的创新单元格。所提出的单元格包括位于上基板(Tx)顶部的修改的贴片阵列和位于下基板(Rx)底部的两个修改的贴片阵列。金属化过孔连接两层。结果表明,低插入损耗,在所有相位配置中始终保持不变,同时具有25.82 GHz至38.57 GHz (12.75 GHz)的宽3db传输带宽。这是因为电流分布的强度在所提出的单元胞中随频率而变化。通过组合这些不同频率的振幅,该设计实现了更宽的带宽(BW)。其次,利用所提出的单元格构造发射阵列天线来确认波束形成原理。结果表明,波束精确地转向到预期的角度,并具有良好的旁瓣电平,同时天线增益比馈电增加12.22 dBi,在28 GHz时达到25.52 dBi。这种显著的增益使得孔径效率达到41.6%。−3db增益范围为26.8 ~ 36.1 GHz (9.3 GHz),对应中心频率为28 GHz时的带宽为33.3%。这种增强源于在一个单元格中合并两个单元格,半椭圆和矩形斑块,形成阵列。据作者所知,所提出的发射阵列天线在- 3db增益带宽和孔径效率方面优于现有设计,对5G天线技术领域做出了重大贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A wideband beam steering transmitarray antenna for Ka-band applications
In this paper, a broadband transmitarray antenna is designed to achieve beamsteering ability with high aperture efficiency for 5G communication systems. To this end, at first an innovative unit cell is designed based on constructive mutual coupling with 1-bit phase quantization (0°/180°), utilizing the current reverse technique. The proposed unit cell includes a modified patch array on top of the upper substrate (Tx) and two modified patch arrays on the bottom of the lower substrate (Rx). A metalized via-hole connects both layers. The results illustrate low insertion loss, consistently preserved across all phase configurations, alongside a broad 3-dB transmission bandwidth spanning from 25.82 GHz to 38.57 GHz (12.75 GHz). This is because the intensity of the current distribution varies across frequencies in the proposed unit cell. By combining these varying amplitudes across frequencies, the design achieves a wider bandwidth (BW). Next, a transmit array antenna is constructed using the proposed unit cell to confirm the beam-forming principle. The results indicate accurate beam steering to the intended angles with decent sidelobe levels, accompanied by an antenna gain increase of 12.22 dBi over its feed, reaching 25.52 dBi at 28 GHz. This significant gain results in an aperture efficiency of 41.6%. Besides, the −3 dB gain ranges from 26.8 to 36.1 GHz (9.3 GHz), corresponding to a bandwidth of 33.3% at the center frequency of 28 GHz. This enhancement stems from incorporating two unit cells in one unit cell, half-elliptical and rectangular-shaped patches, forming an array. To the best of the authors’ knowledge, the proposed transmitarray antenna outperforms existing designs in terms of −3 dB gain bandwidth and aperture efficiency, representing a substantial contribution to the field of 5G antenna technologies.
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来源期刊
CiteScore
6.90
自引率
18.80%
发文量
292
审稿时长
4.9 months
期刊介绍: AEÜ is an international scientific journal which publishes both original works and invited tutorials. The journal''s scope covers all aspects of theory and design of circuits, systems and devices for electronics, signal processing, and communication, including: signal and system theory, digital signal processing network theory and circuit design information theory, communication theory and techniques, modulation, source and channel coding switching theory and techniques, communication protocols optical communications microwave theory and techniques, radar, sonar antennas, wave propagation AEÜ publishes full papers and letters with very short turn around time but a high standard review process. Review cycles are typically finished within twelve weeks by application of modern electronic communication facilities.
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