Versatile Dual-Receiver 94-GHz FMCW Radar System With High Output Power and 26-GHz Tuning Range for High Distance Applications

被引:43
作者
Welp, Benedikt [1 ]
Hansen, Steffen [2 ]
Briese, Gunnar [2 ]
Kuppers, Simon [3 ]
Thomas, Sven [2 ]
Bredendiek, Christian [2 ]
Pohl, Nils [4 ]
机构
[1] Fraunhofer Inst High Frequency Phys & Radar Tech, Dept Integrated Circuits & Sensor Syst, D-53343 Wachtberg, Germany
[2] Fraunhofer Inst High Frequency Phys & Radar Tech, D-53343 Wachtberg, Germany
[3] 2pi Labs GmbH, D-44801 Bochum, Germany
[4] Ruhr Univ Bochum, Chair Integrated Syst, Bochum, Germany
关键词
Airborne; BiCMOS; Doppler; FMCW; high range; monolithic microwave integrated circuit (MMIC); passive components; phase-locked loops (PLLs); power amplifiers (PAs); radar; radar transceivers; silicon germanium (SiGe); substrate integrated waveguide (SIW); unmanned aerial vehicle (UAV); vertical take-off and landing (VTOL); waveguides (WVGs); W-band; WR-10; TRANSCEIVER; CHIP;
D O I
10.1109/TMTT.2019.2955127
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Airborne applications demand exceptional overall radar system performance and eminently high output power for high range target detection. The frequency modulated continuous wave (FMCW) radar system presented in this article is capable of achieving this task due to its high output power at 94-GHz center frequency with over 26-GHz tuning range. Nevertheless, the radar still provides a small form factor and low power consumption of 4.25 W at 5 V single Universal Serial Bus (USB) supply. The key system component is a Silicon Germanium (SiGe) bipolar complementary metal-oxide-semiconductor (BiCMOS) monolithic microwave integrated circuit (MMIC) that contains a 94-GHz voltage-controlled oscillator (VCO), and a 27-GHz VCO for dual-loop phase-locked loop (PLL) stabilization, a power amplifier (PA), and two receive mixers. It generates frequency ramps between 83- and 109-GHz with a maximum output power of 19.7 dBm at its output after the bond wires on the printed circuit board (PCB) and 14.8-dBm output power at the radar's transmit (TX)-waveguide WR-10-flange. The sensor was also tested in a temperature range from -40 degrees C to +70 degrees C with menial deviation. Thus, the system offers high system dynamic range and far distance target detection range. Following a detailed system description, we finally present the FMCW range and Doppler measurements performed with the presented radar sensor as well as the application on unmanned aerial vehicles (UAVs) for flight altitude control and as airborne collision avoidance system (ACAS).
引用
收藏
页码:1195 / 1211
页数:17
相关论文
共 38 条
[11]   High-Precision D-Band FMCW-Radar Sensor Based on a Wideband SiGe-Transceiver MMIC [J].
Jaeschke, Timo ;
Bredendiek, Christian ;
Kueppers, Simon ;
Pohl, Nils .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2014, 62 (12) :3582-3597
[12]   A Four-Channel 94-GHz SiGe-Based Digital Beamforming FMCW Radar [J].
Jahn, Martin ;
Feger, Reinhard ;
Wagner, Christoph ;
Tong, Ziqiang ;
Stelzer, Andreas .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2012, 60 (03) :861-869
[13]   A Single-Chip Dual-Band 22-29-GHz/77-81-GHz BiCMOS Transceiver for Automotive Radars [J].
Jain, Vipul ;
Tzeng, Fred ;
Zhou, Lei ;
Heydari, Payam .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2009, 44 (12) :3469-3485
[14]  
Johannes W., 2011, P IEEE SENSORS, P1
[15]  
Kissinger D., 2009, P IEEE WIR MICR TECH, P1
[16]   Fully integrated SiGe VCOs with powerful outinut buffer for 77-GHz automotive radar systems and applications around 100 GHz [J].
Li, H ;
Rein, HM ;
Suttorp, T .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2004, 39 (10) :1650-1658
[17]  
Nanjo H, 2009, INTERSPEECH 2009: 10TH ANNUAL CONFERENCE OF THE INTERNATIONAL SPEECH COMMUNICATION ASSOCIATION 2009, VOLS 1-5, P1031
[18]  
Nicolini, 2019, PUBLIC RELAT J, P1
[19]   Single-Chip W-band SiGe HBT Transceivers and Receivers for Doppler Radar and Millimeter-Wave Imaging [J].
Nicolson, Sean T. ;
Chevalier, Pascal ;
Sautreuil, Bernard ;
Voinigescu, Sorin P. .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2008, 43 (10) :2206-2217
[20]  
Piotrowsky L., IEEE T MICROW THEORY