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首页> 外文期刊>International Journal of Condition Monitoring >(s4)Rotating machine speed estimation using a vibration statistical approach
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(s4)Rotating machine speed estimation using a vibration statistical approach

机译:(s4)旋转电机速度估计使用振动的统计方法

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摘要

Nowadays, we are witnessing an awareness of the importance of preventative maintenance on production sites. Industrials want to implement condition monitoring and use reliable diagnostic techniques to anticipate any failure. In order to reach this objective, advanced signal processingtools need to be used, which generally require parallel and synchronous measurement of vibration and speed signals (via accelerometers and encoders, respectively). Unfortunately, in many cases, the industrial environment and the reduced footprint on the shaft make it impossible to installspeed sensors. Moreover, the very high cost associated with this type of sensor acts as a brake on its implementation in condition monitoring systems. Therefore, the development of methodologies for reconstructing the instantaneous speed information of the machine using vibratory signals isrequired. This paper presents a new statistical approach in order to extract the instantaneous speed for rotating machines using only a vibration signal. The new method is implemented in two steps. The first step consists of filtering the initial data of a vibration spectrogram into a cloudof points characterised by (ti, yi), where ti is the time and yi is the corresponding frequency. The second step involves the clustering of this cloud based on the models of probabilistic mixture and, more precisely, the expectation-maximisation(EM) algorithm. In particular, we use the formalism of regression mixtures, taking into account a relatively slow evolution of the data over time and making it possible to extract the different spectral harmonics present in the vibration signal. The results obtained from simulated and industrialvibration signals prove the effectiveness of the method.
机译:现在,我们正在见证一个意识预防性维护的重要性的生产基地。状态监测和使用可靠的诊断技术预见任何失败。达到这一目标,先进的信号processingtools需要使用,一般需要并行和同步测量振动和速度信号(通过加速度计和编码器,分别)。很多情况下,工业环境和减少碳足迹的轴使它不可能installspeed传感器。与这种类型的传感器作为相关成本阻碍其实现的条件监控系统。重建的方法瞬时速度信息的机器使用isrequired振动信号。提出了一种新的统计方法,以提取瞬时速度旋转机器只使用一个振动信号。方法是在两个步骤中实现。步骤包括过滤的初始数据振动谱图cloudof点易的特点是(ti), ti在哪里和易建联是相应的频率。步骤包括基于云的集群概率模型的混合,更多准确地说,expectation-maximisation (EM)算法。回归混合物,考虑随着时间的推移相对缓慢进化的数据并让它可以提取不同频谱谐波振动中信号。industrialvibration信号证明该方法的有效性。

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