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Hybrid Beamforming Architecture and Wide Bandwidth True-Time Delay for Future High Speed Communications 5G and Beyond 5G Beamforming System

机译:混合波束成形架构和宽带宽对于未来高速通信5G及超过5G波束形成系统的宽带宽度

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Multi Antenna systems such as beamforming and MIMO are anticipated to play a key role in 5G and beyond 5G communications. The Phased Array Antennas(PAAs) with phase shifter is the dominant method to achieve beamforming up to now. However the operation bandwidth of PAAs is limited to narrow(~200MHz) due to beam-squint problem. In beyond 5G, hundreds of Gbps data rate are required so the traditional PAAs based beamforming will face technical difficulties in the future. In this paper we proposed new beamforming architecture and an analog True-time delay(TTD) circuit which covers 4.8 GHz bandwidth. The architecture is a combination of phase shifters and TTDs. The analog TTD is composed of all-pass filter based cascade delay cells. The experimentally demonstrated TTD can support 590 psec total-delays with 40 psec resolution which covers more than 1024 number of array in mm-wave 5G system. The measured delay variance is within 4.09 % over the whole operating bandwidth. As a result the proposed scheme is a good candidate for large array and wide width beamforming system.
机译:预计诸如波束形成和MIMO的多天线系统将在5G和超过5G通信中发挥关键作用。分阶段阵列天线(PaaS)具有相移器是实现光束成形的主要方法。然而,由于光束斜视问题,Paa的操作带宽限制为窄(〜200mHz)。在超过5G之后,需要数以百计的GBPS数据速率,因此基于传统的PAAS的波束成形将在未来面临技术困难。在本文中,我们提出了新的波束成形架构和模拟真延迟(TTD)电路,涵盖了4.8GHz带宽。该架构是相移器和TTD的组合。模拟TTD由基于All-Pass滤波器的级联延迟单元组成。实验证明的TTD可以支持590 psec的总延迟,具有40 psec分辨率,涵盖MM波5g系统中超过1024个阵列。测量的延迟方差在整个操作带宽上的4.09%范围内。结果,所提出的方案是大型阵列和宽度波束形成系统的良好候选者。

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