基于光纤光栅的睡眠质量监测系统
The Sleep Quality of Real-Time Monitoring System Based on Fiber-Bragg-Grating
DOI: 10.12677/JSTA.2014.22003, PDF, HTML,  被引量 下载: 3,009  浏览: 11,334  国家科技经费支持
作者: 沈亚松, 夏 历, 程 驰, 刘 陈, 刘德明:华中科技大学光学与电子信息学院,下一代互联网接入系统国家工程实验室,武汉
关键词: 光纤布拉格光栅睡眠质量监测睡眠位置翻身LabVIEW软件Fiber Bragg Grating; Sleep Quality Monitoring; Sleep Position; Turnover; LabVIEW Software
摘要: 针对空巢老人和卧床病人,设计了基于LabVIEW的睡眠质量实时监测系统。采用光纤布拉格光栅(FBG)作为传感单元,将压力装换为波长漂移,随后通过合理的选取不同峰值波长的20个FBG,使用波分复用技术来构成整个传感网络。使用光纤光栅传感解调仪(Micron Optics SM-125)实现频率为2HZ的数据采集,并将其与计算机连接,数据处理及功能实现采用LabVIEW程序编写。最终实现了睡眠位置、单位时间内翻身次数的睡眠质量实时监测的功能。
Abstract: For empty nesters and bedridden patients, a sleep quality real time monitoring system based on fiber Bragg grating (FBG) is designed and implemented. Using FBG as the sensing elements, the pressure can be converted into the wavelength drift. Wavelength Division Multiplexing (WDM) technique is utilized to form the sensor network on the basis of combining 20 FBGs with different peak wavelength. Fiber grating sensor demodulation instrument (Micron Optics SM-125) is used to achieve a frequency of 2 Hz data collection, and then connected to the computer, data processing and function realization using LabVIEW programming. By using LabVIEW program modules for real-time analysis and computing the experimental data collected, the real time monitoring system of sleep quality with two functions of turnover per unit time and the sleep position has been realized ultimately.
文章引用:沈亚松, 夏历, 程驰, 刘陈, 刘德明. 基于光纤光栅的睡眠质量监测系统[J]. 传感器技术与应用, 2014, 2(2): 11-18. http://dx.doi.org/10.12677/JSTA.2014.22003

参考文献

[1] Willsch, R., Ecke, W. and Bartelt, H. (2002) Optical fiber grating sensor networks and their application in electric power facilities. 15th Optical Fiber Sensors Conference Technical Digest, Portland, 10 May 2002, 49-54.
[2] Spillman, W.B., Mayer, M., Bennett, J., et al. (2004) A smart bed for non-intrusive monitoring of patients physiological factors. Measurement Science and Technology, 15, 1614-1620.
[3] Gao, H. Miao, C.Y. and Zhu, L.D. (2011) Research on the heart sound monitor system of the FBG intelligent clothing. 2011 International Conference on Control, Automation and Systems Engineering (CASE), Singapore, 30-31 July 2011, 1-4.
[4] Linti, C., Horter H. and Isterreicher, P. (2006) Sensory baby vest for the monitoring of infants. International Workshop on Wearable and Implantable Body Sensor Networks, Cambridge, 3-5 April 2006, 135-137.
[5] Victor Foo Siang Fook, Hao Jianzhong, Shiro Takahashi, et al. (1995) Fiber bragg grating sensor system for monitoring and handling bedridden patients. Optical Communications, 118, 430-437.
[6] Grillet, A., Kinet, D. and Witt, J. (2008) Optical fiber sensors embedded into medical textile for healthcare monitoring. Sensors Journal, 8, 1215-1222
[7] 吴朝霞, 吴飞 (2011) 光纤光栅传感原理及应用. 国防工业出版社, 北京, 1-17.
[8] 黎敏, 廖延彪 (2008) 光纤传感器及其应用技术. 武汉大学出版社, 武汉, 116-136.
[9] 朱小平 (2005) 光纤光栅传感技术理论及其实验研究. 硕士学位论文, 浙江大学, 浙江.
[10] 赵勇 (2007) 光纤光栅及其传感技术. 国防工业出版社, 北京, 5-47.
[11] 特拉维斯克林 (2008) LabVIEW大学实用教程. 第三版, 电子工业出版社, 北京, 48-52.
[12] Gani, A. and Salari, M.J.E. (2002) A LabVIEW based data acquisition system for vibration monitoring and analysis. Student Conference on Research and Development, 2002, 62-65.
[13] Mallik, A. and Gupta S.D. (2009) Modelling of MEMS based temperature sensor and temperature control in a petrochemical industry using LabVIEW. 2009 International Conference on Computer and Automation Engineering, Bangkok, 8-10 March 2009, 287-292.
[14] Ballal, P., Giordano, V., Dang, P., et al. (2006) A LabVIEW based test-bed with off-the-shelf components for research in mobile sensor networks. 2006 IEEE International Conference on Control Applications, Computer Aided Control System Design, 2006 IEEE International Symposium on Intelligent Control, Munich, 4-6 October 2006, 112-118.