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Differential Equation-Based Prediction Model for Early Change Detection in Transient Running Status

机译:基于微分方程的瞬态运行状态预测模型

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摘要

Early detection of changes in transient running status from sensor signals attracts increasing attention in modern industries. To achieve this end, this paper presents a new differential equation-based prediction model that can realize one-step-ahead prediction of machine status. Together with this model, an analysis of continuous monitoring of condition signal by means of a null hypothesis testing is presented to inspect/diagnose whether an abnormal status change occurs or not during successive machine operations. The detection operation is executed periodically and continuously, such that the machine running status can be monitored with an online and real-time manner. The effectiveness of the proposed method is demonstrated using three representative real-engineering applications: external loading status monitoring, bearing health status monitoring and speed condition monitoring. The method is also compared with those benchmark methods reported in the literature. From the results, the proposed method demonstrates significant improvements over others, which suggests its superiority and great potentials in real applications.
机译:早期检测来自传感器信号的瞬态运行状态变化引起了现代工业的关注。为了达到这个目的,本文提出了一种新的基于微分方程的预测模型,该模型可以实现机器状态的一步一步预测。与该模型一起,提出了通过无效假设测试对状态信号进行连续监视的分析,以检查/诊断在连续的机器操作过程中是否发生了异常状态变化。该检测操作被周期性地且连续地执行,从而可以在线实时地监视机器的运行状态。通过三个有代表性的实际工程应用证明了该方法的有效性:外部负载状态监视,轴承健康状态监视和速度状况监视。还将该方法与文献中报道的那些基准方法进行了比较。从结果来看,所提出的方法显示出比其他方法显着的改进,这表明它的优越性和在实际应用中的巨大潜力。

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