Title :
f/nf harmonic radar system with optimal detection of vital signs
Author :
Chioukh, Lydia ; Boutayeb, Halim ; Ke Wu ; Deslandes, Dominic
Author_Institution :
Poly-GRAMES Res. Center, Ecole Polytech., Montreal, QC, Canada
fDate :
Oct. 29 2012-Nov. 1 2012
Abstract :
In this work, a continuous-wave radar system for vital signs detection is proposed and demonstrated. The radar operates at both 12 GHz and 24 GHz (first harmonic) within the same transceiver, in order to improve the system accuracy. This harmonics-diversity system is designed with multi-band (dual-band in this case) or wideband components (mixer, coupler, etc.), then providing a very compact and efficient radar architecture. It is shown that the use of an adequate phase shift between both signals (12 and 24 GHz) in this case suppresses all the null points, a well-known problem in bio-medical Doppler radar. These null points appear at specific distances where the power output of the mixer in the receiver is almost zero. The phase shift enhances the sensitivity of the system without increasing significantly its complexity. Theoretical and experimental results are presented to validate the analysis and the proposed concept.
Keywords :
CW radar; Doppler radar; biomedical equipment; cardiology; medical signal detection; medical signal processing; microwave mixers; microwave receivers; millimetre wave couplers; pneumodynamics; sensitivity; transceivers; biomedical Doppler radar; continuous-wave radar system; coupler; f/nf harmonic radar system; frequency 12 GHz; frequency 24 GHz; harmonics-diversity system; mixer; multiband components; optimal vital sign detection; phase shift; power output; sensitivity; system accuracy; transceiver; wideband components; Doppler radar; Harmonic analysis; Heart beat; Radar antennas; Radar detection; Receivers; Biomedical signal detection; Doppler radar; breathing; harmonic radar; heartbeat rate;
Conference_Titel :
Microwave Conference (EuMC), 2012 42nd European
Conference_Location :
Amsterdam
Print_ISBN :
978-1-4673-2215-7
Electronic_ISBN :
978-2-87487-026-2