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http://dx.doi.org/10.5515/JKIEES.2016.16.3.164

A Dual-Band Through-the-Wall Imaging Radar Receiver Using a Reconfigurable High-Pass Filter  

Kim, Duksoo (School of Electrical Engineering and Computer Science, Institute of New Media and Communications, Seoul National University)
Kim, Byungjoon (School of Electrical Engineering and Computer Science, Institute of New Media and Communications, Seoul National University)
Nam, Sangwook (School of Electrical Engineering and Computer Science, Institute of New Media and Communications, Seoul National University)
Publication Information
Abstract
A dual-band through-the-wall imaging radar receiver for a frequency-modulated continuous-wave radar system was designed and fabricated. The operating frequency bands of the receiver are S-band (2-4 GHz) and X-band (8-12 GHz). If the target is behind a wall, wall-reflected waves are rejected by a reconfigurable $G_m-C$ high-pass filter. The filter is designed using a high-order admittance synthesis method, and consists of transconductor circuits and capacitors. The cutoff frequency of the filter can be tuned by changing the reference current. The receiver system is fabricated on a printed circuit board using commercial devices. Measurements show 44.3 dB gain and 3.7 dB noise figure for the S-band input, and 58 dB gain and 3.02 dB noise figure for the X-band input. The cutoff frequency of the filter can be tuned from 0.7 MHz to 2.4 MHz.
Keywords
Dual-Band Receiver; FMCW Radar System; $G_m-C$ Filter; Reconfigurable High-Pass Filter; Through-the-Wall Radar;
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1 G. L. Charvat, L.C. Kempel, E. J. Rothwell, C. M. Coleman, and E. L. Mokole, "A through-dielectric radar imaging system," IEEE Transactions on Antennas and Propagation, vol. 58, no. 8, pp. 2594-2603, 2010.   DOI
2 P. H. Chen, M. C. Shastry, C. P. Lai, and R. M. Narayanan, "A portable real-time digital noise radar system for through-the-wall imaging," IEEE Transactions on Geoscience and Remote Sensing, vol. 50, no. 10, pp. 4123-4134, 2012.   DOI
3 J. Laviada, A. Arboleya, F. Lopez-Gayarre, and F. Las-Heras, "Broadband synthetic aperture scanning system for three-dimensional through-the-wall inspection," IEEE Geoscience and Remote Sensing Letters, vol. 13, no. 1, pp. 97-101, 2016.   DOI
4 V. Jain, F. Tzeng, L. Zhou and P. Heydari, "A single-chip dual-band 22-29-GHz/77-81-GHz BiCMOS transceiver for automotive radars," IEEE Journal of Solid-State Circuits, vol. 44, no. 12, pp. 3469-3485, 2009.   DOI
5 M.I. Skolnik, Introduction to Radar Systems, 3rd ed. New York: McGraw-Hill, 2001.
6 G. L. Charvat, Small and Short-Range Radar Systems. New York: CRC Press, 2014.
7 S. Ryu, H. Yeo, Y. Lee, S. Son, and J. Kim, "A 9.2 GHz digital phase-locked loop with peaking-free transfer function," IEEE Journal of Solid-State Circuits, vol. 49, no. 8, pp. 1773-1784, 2014.   DOI
8 M. Olsak, L. Matejicek, K. Vrba, and Z. Smekal, "Realization of Nth-order electronically tunable highpass filter employing only N OTAs," in Proceedings of 10th International Conference on Telecommunications (ICT), Tahiti, 2003, pp. 671-676.
9 D. Kim, B. Kim, and S. Nam, "A transconductor and tunable $G_m-C$ high-pass filter linearization technique using feed forward $Gm_3$ cancelling," IEEE Transactions on Circuits and Systems II, vol. 62, no. 11, pp.1058-1062, 2015.   DOI