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A Data Processing Method for CBM using PHM

机译:PHM的煤层气数据处理方法

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In condition based maintenance (CBM) using proportional hazards model (PHM), fitting PHM is a very important step because it has a great influence on the effectiveness of the optimal maintenance policy. Previously actual condition monitoring measurements are directly used to fit the PHM. However this may introduce external noise and the optimal maintenance policy obtained based on this model may not be really optimal. To resolve this problem, a data processing method, which is fitting the actual measurements using the Generalized Weibull-FR function, is proposed to remove the external noise and fit the data before using it as input to the PHM. Two case studies using real-world vibration monitoring data are used to demonstrate the proposed approach. The proposed approach is validated to be effective and will save the total average maintenance cost by increasing the average replacement interval and making better use of remaining useful life.
机译:在使用比例风险模型(PHM)的基于状态的维护(CBM)中,拟合PHM是非常重要的一步,因为它对最佳维护策略的有效性有很大的影响。以前,实际状态监视测量直接用于安装PHM。但是,这可能会引入外部噪声,并且基于此模型获得的最佳维护策略可能并非真正最佳。为了解决这个问题,提出了一种数据处理方法,该方法使用广义Weibull-FR函数拟合实际测量结果,以在将其用作PHM的输入之前消除外部噪声并拟合数据。使用现实世界中的振动监测数据进行的两个案例研究证明了该方法的有效性。该方法经验证是有效的,并且可以通过增加平均更换间隔并更好地利用剩余使用寿命来节省总平均维护成本。

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