一种新型的基于光子的FMCW信号产生方法的数学分析和建模

D. Meena, Vigneshwar Dhavamani, K. A. Nethravathi
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引用次数: 0

摘要

现代雷达需要多功能能力来应对日益增长的威胁场景。这就要求系统具有短距离和远程探测,并支持包括成像在内的其他多功能功能。传统上,对于短距离探测的雷达应用,调频连续波(FMCW)雷达是一种流行的解决方案。但近年来,利用FMCW雷达进行基于光子技术的高分辨率长程探测的研究已经开始。由于现有的带宽限制和其他相关限制,射频对应物不可能做到这一点。对外差[9]、频率-时间映射等光子技术的研究发现,这些方法几乎没有信号退化、可调性差等缺点。本文从应用需求出发,提出了一种用于远距离检测的大带宽、高扫描速率FMCW信号的生成方法。根据目标场景要求,FMCW一代包括锯齿和三角啁啾。本文还对所提出的用于产生啁啾信号的硬件设计进行了数学分析。该分析得到了建模结果的支持,得到了各种多啁啾模式,其扫描带宽为4GHz,中心频率为79GHz,啁啾时间为100ns。该方法可推广到汽车、生物医学等领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mathematical Analysis and Modelling of a Novel Photonic based FMCW Signal Generation for Long Range Radar Applications
Modern day radars require multi-function capabilities to address the needs with growing threat scenarios. This demands systems with both short and long range detection supported with other multi-function capabilities including imaging. Conventionally, for radar applications with short range detection, Frequency Modulated Continuous Wave (FMCW) radar is one of the popular solutions. But recently, research has been conducted on using FMCW radar for long rage detection with high resolution based on photonics techniques. This is not possible with RF counterparts due to the existing bandwidth limitations and other related constraints. Few photonic techniques such as heterodyning [9] and frequency-to-time mapping have been researched upon and found out that these methods have few drawbacks like signal degradation and poor tunability. This paper proposes a novel method for the generation of large bandwidth and high sweep rate FMCW signals for long range detection based on the application requirements. The FMCW generation includes sawtooth as well as triangular chirps as per the target scenario requirements. The paper also brings out the mathematical analysis of the proposed hardware design used for the generation of the chirp signals. The analysis is supported with modelling results to obtain various multi-chirp patterns having a sweep bandwidth of 4GHz at a central frequency of 79GHz with a chirp time of 100ns. The proposed method can be extended to other fields like automobile and bio-medical applications.
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