Title :
A compact integrated 100 GS/s sampling module for UWB see through wall radar with fast refresh rate for dynamic real time imaging
Author :
Liu, Quanhua ; Wang, Yazhou ; Fathy, Aly E.
Author_Institution :
Dept. of EECS, Univ. of Tennessee, Knoxville, TN, USA
Abstract :
This paper presents the development of a compact integrated sampling module for Ultra Wideband (UWB) see through wall radar. The development of this radar is geared towards see through wall imaging and micro-Doppler detection of any human motions. The radar transmits a UWB impulse signal for high rang resolution and utilizes 8 Vivaldi antenna array as receive array to achieve fine azimuth resolution. UWB data acquisition and high system data rate are two of the main challenges in designing UWB radar. By using equivalent time sampling method, a data acquisition solution is proposed and a compact module is implemented upon integrating a dual channel ADC chip and a Xilinx FPGA in one circuit board. See through wall experiments in a real scenario have been carried out to demonstrate the performance of this compact sampling module. The module supports two equivalent time sampling channels with maximal 100GS/s sample rate. It meets system update data rate requirement for Doppler processing, meanwhile it still can scan 8 receiver antennas and gives out 2D image of targets behind the wall.
Keywords :
analogue-digital conversion; antenna arrays; data acquisition; field programmable gate arrays; image motion analysis; image resolution; image sampling; radar imaging; radar resolution; receiving antennas; ultra wideband antennas; ultra wideband radar; 2D image; Doppler processing; UWB data acquisition; UWB impulse signal; UWB see-through wall radar; Vivaldi antenna array; Xilinx FPGA; circuit board; compact integrated sampling module; dual-channel ADC chip; dynamic real time imaging; equivalent-time sampling method; fine azimuth resolution; high-range resolution; high-system data rate; human motions; microDoppler detection; receive array; receiver antennas; see-through wall experiments; ultrawideband see-through wall radar; Doppler effect; Field programmable gate arrays; Humans; Legged locomotion; Radar imaging; Ultra wideband radar; Data acquisition; Field programmable gate arrays (FPGA); Motion detection; Radar remote sensing; Ultra wideband radar;
Conference_Titel :
Radio and Wireless Symposium (RWS), 2012 IEEE
Conference_Location :
Santa Clara, CA
Print_ISBN :
978-1-4577-1153-4
DOI :
10.1109/RWS.2012.6175295