Title :
Multi-frequency high frequency surface wave radar based on phase offset
Author :
Lan Zhang ; Xiongbin Wu ; Jianfei Liu ; Chunyu Yao ; Wang Li
Author_Institution :
Sch. of Electron. Inf., Wuhan Univ., Wuhan, China
Abstract :
Multi-frequency high frequency surface wave radar (MHFSWR) shows good capability of anti-interference, sea-state information extraction and target detection. The authors develop a new technique to produce a specified Doppler frequency offset on the echoes spectra for each operating frequency in simultaneous MHFSWR system. The radar transmits frequency modulated interrupted continuous wave signals with different linear phase offsets which are counted up from sweep cycle to sweep cycle. After the echoes being demodulated, the signals of different operating frequencies from same range can be distinguished by the preset frequency offsets in a single Doppler spectrum, though they are indiscernible in the A-Scope display. In the receiver, both the data transmission channel and the signal processing channel of different operating frequency, including digital down-conversion, data rate conversion and range-Doppler transform, are shared significantly reducing the hardware cost and system complexity. The simulation results and the initial observations obtained by the radar verify the feasibility of the proposed technique. This technique is applicable in monostatic radars, bistatic radars and networking radars to apply multi-frequency observations simultaneously.
Keywords :
Doppler radar; radar detection; radar signal processing; A-scope display; Doppler frequency offset; MHFSWR system; anti-interference; bistatic radars; data rate conversion; data transmission channel; digital down-conversion; echoes spectra; frequency modulated interrupted continuous wave signals; linear phase offsets; monostatic radars; multifrequency high frequency surface wave rada; multifrequency observations; networking radars; operating frequency; range-Doppler transform; sea-state information extraction; signal processing channel; single Doppler spectrum; target detection;
Journal_Title :
Radar, Sonar Navigation, IET
DOI :
10.1049/iet-rsn.2014.0496