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Published on: September 29, 2019
Model-based failure detection for cylindrical shells from noisy vibration measurements
J V Candy1, K A Fisher1, B L Guidry1
1University of California, Lawrence Livermore National Laboratory, P.O. Box 808, L-151, Livermore, California 94551.
Abstract:
Model-based processing is a theoretically sound methodology to address difficult objectives in complex physical problems involving multi-channel sensor measurement systems. It involves the incorporation of analytical models of both physical phenomenology (complex vibrating structures, noisy operating environment, etc.) and the measurement processes (sensor networks and including noise) into the processor to extract the desired information. In this paper, a model-based methodology is developed to accomplish the task of online failure monitoring of a vibrating cylindrical shell externally excited by controlled excitations. A model-based processor is formulated to monitor system performance and detect potential failure conditions. The objective of this paper is to develop a real-time, model-based monitoring scheme for online diagnostics in a representative structural vibrational system based on controlled experimental data.
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