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A Fault Feature Extraction Method for the Fluid Pressure Signal of Hydraulic Pumps Based on Autogram

机译:基于Autogram的液压泵液压信号故障特征提取方法

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摘要

Center spring wear faults in hydraulic pumps can cause fluid pressure fluctuations at the outlet, and the fault feature information on fluctuations is often contaminated by different types of fluid flow interferences. Aiming to resolve the above problems, a fluid pressure signal method for hydraulic pumps based on Autogram was applied to extract the fault feature information. Firstly, maximal overlap discrete wavelet packet transform (MODWPT) was adopted to decompose the contaminated fault pressure signal of center spring wear. Secondly, based on the squared envelope of each node, three kinds of kurtosis of unbiased autocorrelation (AC) were computed in order to describe the fault feature information comprehensively. These are known as standard Autogram, upper Autogram and lower Autogram. Then a node corresponding to the biggest kurtosis value was selected as a data source for further spectrum analysis. Lastly, the data source was processed by threshold values, and then the fault could be diagnosed based on the fluid pressure signal.
机译:液压泵的中心弹簧磨损故障会导致出口处的流体压力波动,并且有关波动的故障特征信息通常会受到不同类型的流体流动干扰的污染。为了解决上述问题,基于Autogram的液压泵液压信号方法被用于提取故障特征信息。首先,采用最大重叠离散小波包变换(MODWPT)分解中心弹簧磨损的污染断层压力信号。其次,基于每个节点的平方包络,计算出三种无偏自相关(AC)峰度,以全面描述故障特征信息。这些被称为标准Autogram,上位Autogram和下位Autogram。然后,选择与最大峰度值相对应的节点作为数据源,以进行进一步的频谱分析。最后,通过阈值处理数据源,然后可以根据液压信号诊断故障。

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