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Fault detection for parallel operating machines

机译:平行操作机器故障检测

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Purpose - The purpose of this paper is to demonstrate that by utilizing the relationship between redundant hardware components, inherent in parallel machinery, vibration-based fault detection methods can be made more robust to changes in operational conditions. This work reports on a study of fault detection on bearings operating in two parallel subsystems that experience identical changes in speed and load. Design/methodology/approach - This study was carried out using two identical subsystems that operate on the same duty cycle. The systems were run with both healthy and a variety of common bearing faults. The faults were detected by analyzing the residual between the features of the two vibration signatures from the two subsystems. Findings - This work found that by utilizing this relationship in parallel operating machinery the fault detection process can be improved. The study looked at several different types of feature vector and found that, in this case, features based on envelope analysis or autoregressive model work the best, whereas basic statistical features did not work as well. Originality/value - The proposed method can be a computationally efficient and simple solution to monitoring non-stationary machinery where there is hardware redundancy present. This method is shown to have some advantages over non-parallel approaches.
机译:目的——本文的目的是证明,通过利用并联机械固有的冗余硬件组件之间的关系,基于振动的故障检测方法可以对运行条件的变化更加鲁棒。这项工作报告了在两个平行子系统中运行的轴承的故障检测研究,这两个子系统的速度和负载变化相同。设计/方法/方法-本研究使用两个相同的子系统进行,它们在相同的工作循环下运行。这些系统在正常和各种常见轴承故障的情况下运行。通过分析两个子系统的两个振动特征之间的残差来检测故障。研究结果——这项工作发现,通过在并联运行的机器中利用这种关系,可以改进故障检测过程。这项研究考察了几种不同类型的特征向量,发现在这种情况下,基于包络分析或自回归模型的特征效果最好,而基本统计特征效果不佳。独创性/价值-对于存在硬件冗余的非静止机械的监控,所提出的方法可以是一种计算效率高且简单的解决方案。与非并行方法相比,该方法具有一些优点。

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