Dual-band dechirping LFMCW radar receiver with high image rejection using microwave photonic I/Q mixer

Ziyi Meng, Jianqiang Li, Chunjing Yin, Yuting Fan, Feifei Yin, Yue Zhou, Yitang Dai, Kun Xu

Optics Express · 2017 · 50 citations · 23 references

DOIFull text

Open access

Concepts

TL;DR

The paper proposes a photonics‑based dual‑band LFMCW radar receiver. The receiver employs a broadband microwave photonic I/Q mixer and an integrated dual‑band waveform that enables independent detection, shared hardware, and joint dechirp processing. Proof‑of‑concept experiments show distance measurements in S‑ and C‑bands with image rejection exceeding 28 dB and 30 dB, respectively, which can be further improved to 43 dB and 41 dB with DSP, thereby simplifying the architecture and enhancing multispectral sensing performance.

Abstract

In this paper, a photonics-based dual-band linear frequency-modulated continuous wave (LFMCW) radar receiver is proposed. The system core is a microwave photonic in-phase and quadrature (I/Q) mixer, whose inherent large bandwidth, high I/Q balance and favorable uniformity enable the receiver to operate over an extremely wide frequency range. An integrated dual-band waveform offers the possibility of independent detection, allowing the sharing of hardware resources and joint dechirp processing of dual bands. In the proof-of-concept experiment, the distance measurements of S- and C-bands are implemented, with a high and uniform image rejection exceeding 28 and 30 dB, respectively. The image rejections of the two bands can be further improved to 43 and 41 dB at least by digital signal processing (DSP). The proposed photonic-assisted receiver is thus able to simplify the architecture and improve performance for the multispectral sensing application.

References

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