Active health monitoring of an aircraft wing with embedded piezoelectric sensor/actuator network: I. Defect detection, localization and growth monitoring
Активный мониторинг технического состояния крыла летательного аппарата с помощью встроенной сети пьезоэлектрических датчиков/актуаторов: I. Обнаружение, локализация и мониторинг развития дефектов
2007-06-29
SCID: 54.1/jcsyrm7g
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RAPID algorithmaircraft wing defect detectionpiezoelectric sensor/actuator networkstructural health monitoringultrasonic guided waves
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Abstract (AI)
This work focuses on an ultrasonic guided wave structural health monitoring (SHM) system development for aircraft wing inspection. In part I of the study, a detailed description of a real aluminum wing specimen and some preliminary wave propagation tests on the wing panel are presented. Unfortunately, strong attenuation and scattering impede guided waves for large-area inspection. Nevertheless, small, low-cost and light-weight piezoelectric (PZT) discs were bonded to various parts of the aircraft wing, in a form of relatively sparse arrays, for simulated cracks and corrosion monitoring. The PZT discs take turns generating and receiving ultrasonic guided waves. Pair-wise through-transmission waveforms collected at normal conditions served as baselines, and subsequent signals collected at defected conditions such as rivet cracks or corrosion detected the presence of a defect and its location with a novel correlation analysis based technique called RAPID (reconstruction algorithm for probabilistic inspection of defects). The effectiveness of the algorithm was tested with several case studies in a laboratory environment. It showed good performance for defect detection, size estimation and localization in complex aircraft wing structures.
Key Findings
1
Laboratory case studies showed good performance for defect detection, size estimation, and localization in complex aircraft wing structures.
2
Normal-condition pairwise through-transmission waveforms provided baselines for identifying changes caused by defects.
3
Small, lightweight, low-cost bonded PZT discs arranged in sparse arrays enabled ultrasonic monitoring of simulated rivet cracks and corrosion.
4
Strong attenuation and scattering in the aluminum wing panel limit guided-wave effectiveness for large-area inspection.
5
The RAPID correlation-based reconstruction algorithm detected defects and estimated their locations from subsequent guided-wave measurements.
Research Object
an aluminum aircraft wing with an embedded sparse piezoelectric sensor/actuator network
Research Subject
ultrasonic guided-wave detection, localization, and growth monitoring of rivet cracks and corrosion defects
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2007-06-29
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