Browse > Article
http://dx.doi.org/10.5369/JSST.2008.17.2.133

Wearable wireless respiratory monitoring system  

Lee, In-Kwang (Department of Biomedical Engineering, School of Medicine, Chungbuk National University)
Kim, Seong-Sik (Department of Biomedical Engineering, School of Medicine, Chungbuk National University)
Jang, Jong-Chan (Department of Biomedical Engineering, School of Medicine, Chungbuk National University)
Kim, Koon-Jin (Department of Biomedical Engineering, School of Medicine, Chungbuk National University)
Kim, Kyung-Ah (Department of Biomedical Engineering, School of Medicine, Chungbuk National University)
Lee, Tae-Soo (Department of Biomedical Engineering, School of Medicine, Chungbuk National University)
Cha, Eun-Jong (Department of Biomedical Engineering, School of Medicine, Chungbuk National University)
Publication Information
Journal of Sensor Science and Technology / v.17, no.2, 2008 , pp. 133-142 More about this Journal
Abstract
Respiration is induced by muscular contraction of the chest and abdomen, resulting in the abdominal volume change. Thus, continuous measurement of the abdominal dimension enables to monitor breathing activity. Conductive rubber cord has been previously introduced and tested to develop wearable application for respiratory measurements. The present study implemented wireless wearable respiratory monitoring system with the conductive rubber cord in the patient's pants. Signal extraction circuitry was developed to obtain the abdominal circumference changes reflecting the lung volume variation caused by respiratory activity. Wireless transmission was followed based on the zigbee communication protocol in a size of 65mm${\times}$105mm easily put in pocket. Successful wireless monitoring of respiration was performed in that breathing frequency was accurately estimated as well as different breathing patterns were easily recognized from the abdominal signal. $CO_2$ inhalation experiment was additionally performed in purpose of quantitative estimation of tidal volume. Air mixed with $0{\sim}5%\;CO_2$was inhaled by 4 normal males and the respiratory air flow rate, abdominal dimension change, and end tidal $CO_2$ concentration were simultaneously measured in steady state. $CO_2$ inhalation increased the tidal volume in normal physiological state with a correlation coefficient of 0.90 between the tidal volume and the end tidal $CO_2$ concentration. The tidal volume estimated from the abdominal signal linearly correlated with the accurate tidal volume measured by pneumotachometer with a correlation coefficient of 0.88 with mean relative error of approximately 8%. Therefore, the tidal volume was accurately estimated by measuring the abdominal dimension change.
Keywords
conductive rubber cord; abdominal dimension measurement; tidal volume; wearable transducer; wireless respiratory monitoring;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 강영숙, 김권섭, 김남득, 김정애, 류종훈, 배문경, 심 상수, 우선희, 이경림, 이명구, 이선미, 정재훈, 호흡 기계, In: 생리학, 라이프사이언스, 서울, pp. 415- 457, 2005
2 E. Jovanov, A. Milenkovic, C. Otto, and P. C de Groen, 'A wireless body area network of intelligent motion sensors for computer assisted physical rehabilitation', J. of NeuroEngineering and Rehabilitation, vol. 2, p. 6, 2005   DOI   ScienceOn
3 김덕원, 연동수, 김수찬, '인덕턴스 호흡감시 시스템 의 개발', 의공학회지, 제16권, 제3호, pp. 353-358, 1995
4 R. H. Warren and S. H. Anderson, 'Calibration of computer-assisted(Respicomp) respiratory inductive plethysmography in newborns', AM. REV. RESPIR. DIS., vol. 131, pp. 564-567, 1985
5 Ambulatory Monitoring Inc., Respitrace systems, Instruction manual, 2004
6 P. Bonato, 'Wearable sensors/systems and their impact on biomedical engineering', IEEE Engineering in medicine and biology magazine, vol. 22, no. 3, pp. 18-20, 2003
7 J. V. Wait, Introduction to operational amplifier theory and applications, McGraw Hill, Colombus, pp. 47-54, 1975
8 Available at: http://www.atmel.com. Accessed 2007
9 Available at: http://www.chipcon.com. Accessed 2007
10 김경아, 김성식, 조동욱, 이승직, 이태수, 차은종, '호 흡감지를 위한 복부 부착형 전도성 고무소자의 계측 특성', 센서학회지, 제16권, 제1호, pp. 24-37, 2007   과학기술학회마을   DOI
11 한국표준협회, 임상용 전자식 스파이로미터(KS P 1222), In: 한국산업규격, 공업진흥청, 1989. 55
12 강문상, 전자회로, 피어슨에듀케이션코리아, 서울, 2005
13 American Thoracic Soceity, 'Standardization of spirometry', Am. J. Respir. Cirt. Care Med., vol. 152, pp. 1107-1136, 1995   DOI   ScienceOn
14 F. S. Grodins, and S. M. Yamashiro, Control of Pulmunary Ventilation, In: Respiratory function of the lung and its control, Macmillan Publishing Co., Inc., New York, pp. 108-141, 1978