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Sensing challenges for mechanical aerospace prognostic health monitoring

机译:机械航空航天预后健康监测的传感挑战

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No Prognostic Health Monitoring (PHM) algorithm can turn poor sensor data into an accurate Remaining Useful Life (RUL) prediction, and measuring high-fidelity vibration data in noisy aerospace mechanical systems can be very challenging. Generally, for sensor selection and placement, temperature, masking vibration, electromagnetic interference, and vibration transfer path dynamics must all be considered. Additionally, although aerospace systems are built to exacting tolerances, variability between systems due to manufacturing differences, overhaul, and even variability between vibration sensors must be considered when setting up condition indicators. Many of these factors have been explored through high-frequency transfer-path testing of US Army helicopter gearboxes, resulting in a better understanding of the factors which influence the measured inputs into a PHM system and improved techniques for more reliable condition-based monitoring.
机译:没有任何预后健康监控(PHM)算法可以将不良的传感器数据转换为准确的剩余使用寿命(RUL)预测,而在嘈杂的航空机械系统中测量高保真振动数据可能非常具有挑战性。通常,对于传感器的选择和放置,必须综合考虑温度,掩蔽振动,电磁干扰和振动传递路径的动力学。另外,尽管航空航天系统是按照严格的公差制造的,但是在设置状态指示器时,必须考虑由于制造差异,大修甚至振动传感器之间的差异而引起的系统之间的差异。通过对美国陆军直升机变速箱进行高频传输路径测试,已经探索了许多因素,从而使人们更好地了解了影响到PHM系统中被测量输入的因素,并改进了基于状态的可靠监控技术。

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