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Artificial Neural Networks and Their Applications in Diagnostics of IncipientFaults in Rotating Machinery

机译:人工神经网络及其在旋转机械初始故障诊断中的应用

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In an effort to curtail rising operating costs, machinery condition monitoringand diagnostics are being increasingly used as part of predictive maintenance programs. Vibration analysis is currently among the most effective tools in machinery condition monitoring and diagnostics but has proven difficult to automate fully. Artificial Neural Networks, patterned after neurological systems, provide a heuristic, data based approach to problems and have demonstrated robust behavior when faced with unique and noisy data. Thus neural networks may provide an alternative or complement to conventional rule based expert systems in machinery diagnostics applications. Research is presented wherein a series of neural networks utilizing the highly successful back propagation paradigm are configured to provide machinery diagnostics for comparatively uncomplicated mechanical systems. Through observation of their presentation of genuine and artificially generated vibration data, an effort is made to ascertain their utility in more complicated systems.

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