DOI QR코드

DOI QR Code

소형화된 1.6 GHz 단일 채널 도플러 센서를 이용한 실시간 호흡 및 심장 박동 감지기

Real-Time Respiration and Heartbeat Detector Using a Compact 1.6 GHz Single-Channel Doppler Sensor

  • 이현우 (충남대학교 전기정보통신공학부) ;
  • 박일호 (충남대학교 전기정보통신공학부) ;
  • 김동욱 (충남대학교 전기정보통신공학부)
  • Lee, Hyun-Woo (Division of Electrical and Computer Engineering, Chungnam National University) ;
  • Park, Il-Ho (Division of Electrical and Computer Engineering, Chungnam National University) ;
  • Kim, Dong-Wook (Division of Electrical and Computer Engineering, Chungnam National University)
  • 발행 : 2007.04.30

초록

본 논문에서는 사람의 생체 신호를 감지하기 위해 1.6 GHz 단일 채널 도플러 센서와 아날로그 및 디지털 신호 처리부로 구성되어 있는 실시간 호흡 및 심장 박동 감지기를 개발하였다. 도플러 센서의 RF Front End는 발진기, 믹서, 저잡음 증폭기, 브랜치-라인 하이브리드, 그리고 패치 안테나로 구성되어 있다. 센서에 사용된 브랜치-라인 하이브리드는 기존의 하이브리드에 비해 40 % 정도 크기를 줄이면서도 상당히 유사한 성능을 가지도록 인공 전송 선로(artificial transmission line)를 사용하였다. 아날로그 신호처리부는 2차 Sallen-Key 능동 필터를 사용하여 제작되었고 디지털 신호 처리부는 LabVIEW를 사용하여 컴퓨터상에서 구현되었다. 개발된 시스템은 최대 50 cm 거리에서 사람의 호흡과 심장 박동을 측정함으로써 성능을 검증하였다.

This paper presents a real-time respiration and heartbeat detector comprised of a 1.6 GHz single-channel Doppler sensor and analog/digital signal processing block for remote vital sign detection. The RF front end of the Doppler sensor consists of an oscillator, mixer, low noise amplifier, branch-line hybrid and patch antenna. We apply artificial transmission lines(ATLs) to the branch-line hybrid, which leads to a size reduction of 40 % in the hybrid, while its performance is very comparable to that of a conventional hybrid. The analog signal conditioning block is implemented using second order Sallen-Key active filters and the digital signal processing block is realized with a LabVIEW program on a computer. The respiration and heartbeat detection is demonstrated at a distance of 50 cm using the developed system.

키워드

참고문헌

  1. Olga Boric-Lubecke, Amy D. Droitcour, Victor M. Lubecke, Jenshan Lin, and Gregory T. A. Kovacs, 'Wireless IC doppler radars for sensing of heart and respiration activity', TELSIKS 2003 6th International Conference, vol. 1, pp. 337-344, Oct. 2003
  2. Yimin Yin, Jian Qian, Junfeng Lu, and Yong Huang, 'On the operation mechanism of the microwave sensor for measuring human heartbeat and respirations', Proceedings of IEEE International Conference on Sensors, pp. 565-568, Oct. 2003
  3. Amy D. Droitcour, Olga Boric-Lubecke, Victor M. Lubecke, Jenshan Lin, and Gregory T. A. Kovacs, 'Range correlation and I/Q performance benefits in single-chip silicon doppler radars for noncontact cardiopulmonary monitoring', IEEE Trans. Microwave Theory and Tech., vol. 52, no. 3, pp. 838-848, Mar. 2004 https://doi.org/10.1109/TMTT.2004.823552
  4. David M. Pozar, Microwave Engineering, Third Ed., John Wiley & Sons, Inc., p. 308, 2005
  5. Kimberley W. Eccleston, Sebastian H. M. Ong, 'Compact planar microstripline branch-line and ratrace couplers', IEEE Trans. Microwave Theory and Tech., vol. 51, no. 10, pp. 2119-2125, Oct. 2003 https://doi.org/10.1109/TMTT.2003.817442
  6. A. Mohra, A. F. Sheta, and S. F. Mahmoud, 'A small size 3 dB $0^{\circ}/180^{\circ}$ microstrip ring coupler', Journal of Electromagnetic Waves and Applications, vol. 17, no. 5, pp. 707-718, May 2003 https://doi.org/10.1163/156939303322226365
  7. Mohamed H. Awida, Amr M. E. Safwat, and Hadia El-Hennawy, 'Compact rat-race hybrid coupler using meander space-filling curves', Microwave and Optical Technology Letters, vol. 48, no. 3, pp. 606-609, Jan. 2006 https://doi.org/10.1002/mop.21421
  8. T. Hirota, A. Minakawa, and M. Masahiro, 'Reduced-size branch-line and rat-race hybrids for uniplanar MMIC's', IEEE Trans. Microwave Theory and Tech., vol. 38, no. 3, pp. 270-275, Mar. 1990 https://doi.org/10.1109/22.45344
  9. Jeong-Geun Kim, Sang-Hoon Sim, Sanghoon Cheon, and Songcheol Hong, '24 GHz circularly polarized doppler radar with a single antenna', The Proceedings of 2005 European Microwave Conference, vol. 2, pp. 4-7, Oct. 2005