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Quantitative evaluation of the impurity content of grease for low-speed heavy-duty bearing using an acoustic emission technique

机译:用声发射技术定量评价低速重型轴承润滑脂杂质含量

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摘要

Lubrication performance plays a key role in the lifetime of bearings. Online quantitative monitoring of the impurity contents of lubricants is an effective way to evaluate the performance of lubrication conditions. However, mainstream vibration monitoring techniques are often incapable of providing information on lubrication contamination especially for low-speed and high-load cases in which the dynamic interaction is insignificant. In this paper, an acoustic emission (AE) method is developed to achieve quantitative evaluation of the impurity content of lubrication greases, which are commonly used as lubricants for low-speed and heavy-duty bearings. In particular, a Peak-Hold-Down-Sample algorithm is proposed to compressively sample the large volume AE data acquired at the rate of several megahertz. Both simulations and experiments show that Peak-Hold-Down-Sampled AE data contain information about the deferent levels of impurities. Therefore, the proposed AE approach can be used to monitor lubrication performance in extreme operations.
机译:润滑性能在轴承的寿命中起着关键作用。在线定量监测润滑剂的杂质含量是评估润滑条件的性能的有效方法。然而,主流振动监测技术通常不能提供有关润滑污染的信息,特别是对于动态相互作用微不足道的低速和高负荷案例。本文开发了一种声学发射(AE)方法以实现润滑润滑脂杂质含量的定量评价,其通常用作低速和重型轴承的润滑剂。特别地,提出了一种峰值保持下样本算法来压缩以几个MegaHertz的速率获取的大容量AE数据进行压缩。两者的模拟和实验都表明峰值持平的AE数据包含有关杂质级别的信息。因此,所提出的AE方法可用于监测极端操作中的润滑性能。

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