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Multi-scale wireless sensor node for health monitoring of civil infrastructure and mechanical systems
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  • Multi-scale wireless sensor node for health monitoring of civil infrastructure and mechanical systems
  • Multi-scale wireless sensor node for health monitoring of civil infrastructure and mechanical systems
저자명
Taylor. Stuart G.,Farinholt. Kevin M.,Park. Gyuhae,Todd. Michael D.,Farrar. Charles R.
간행물명
Smart structures and systems
권/호정보
2010년|6권 5호|pp.661-673 (13 pages)
발행정보
테크노프레스
파일정보
정기간행물|ENG|
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기타
이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

This paper presents recent developments in an extremely compact, wireless impedance sensor node (the WID3, $underline{W}$ireless $underline{I}$mpedance $underline{D}$evice) for use in high-frequency impedance-based structural health monitoring (SHM), sensor diagnostics and validation, and low-frequency (< ~1 kHz) vibration data acquisition. The WID3 is equipped with an impedance chip that can resolve measurements up to 100 kHz, a frequency range ideal for many SHM applications. An integrated set of multiplexers allows the end user to monitor seven piezoelectric sensors from a single sensor node. The WID3 combines on-board processing using a microcontroller, data storage using flash memory, wireless communications capabilities, and a series of internal and external triggering options into a single package to realize a truly comprehensive, self-contained wireless active-sensor node for SHM applications. Furthermore, we recently extended the capability of this device by implementing low-frequency analog-to-digital and digital-to-analog converters so that the same device can measure structural vibration data. The compact sensor node collects relatively low-frequency acceleration measurements to estimate natural frequencies and operational deflection shapes, as well as relatively high-frequency impedance measurements to detect structural damage. Experimental results with application to SHM, sensor diagnostics and low-frequency vibration data acquisition are presented.