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Differentiation of Journal Bearing Friction States under varying Oil Viscosities based on Acoustic Emission Signals

机译:基于声发射信号的不同油粘度下轴颈轴承摩擦状态的判别

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For diagnosis and predictive maintenance of mechatronic systems, monitoring of bearings is essential. An integral component for this is the determination of the bearing friction condition. Hydrodynamic journal bearings experience three basic types of friction states: fluid, mixed and solid friction, whereas the last two types cause mechanical wear.This paper deals with the differentiation of these three basic types of journal bearing friction conditions under several rotational speed, load and oil viscosity combinations based on acoustic emission (AE) signals. The aim of this work is to show that it is possible to detect various oil viscosities under same loads and rotational speeds with AE features. An already developed classifier [1], which is trained and tested under various rotational speed and load combinations, can then be improved by training and testing it under several oil viscosities.Different oil viscosities were generated by varying the oil temperature. A special test environment is introduced for this purpose. The actual friction state was verified by the contact voltage (CV) between shaft and bearing [2].
机译:对于机电系统的诊断和预测性维护,轴承的监控是必不可少的。为此,不可或缺的是确定轴承摩擦条件。流体动力轴颈轴承经历三种基本类型的摩擦状态:流体摩擦,混合摩擦和固体摩擦,而后两种引起机械磨损。基于声发射(AE)信号的机油粘度组合。这项工作的目的是表明可以利用AE功能在相同的负载和转速下检测各种油粘度。通过在多种油粘度下进行训练和测试,可以改进已经开发的分类器[1],该分类器可以在各种转速和负载组合下进行训练和测试。通过改变油温可以产生不同的油粘度。为此引入了特殊的测试环境。通过轴与轴承之间的接触电压(CV)验证了实际的摩擦状态[2]。

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