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An automated approach for bearing damage detection

机译:自动化的轴承损坏检测方法

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摘要

Bearings are an essential component in all types of rotary equipment. Erosion in the bearing is unavoidable due to radial and axial forces permanently acting on the bearing during the course of rotation. In order to avoid catastrophic breakdown of the equipment, it is a fundamental requirement to monitor the bearings. The scope of the existing bearing fault diagnosis techniques in the literature is limited to only pre-known bearing and machinery. On the contrary, this research develops a generalized protocol for detecting inner' and outer' race bearing faults for any unknown rolling element bearing. This automated bearing failure detection model tunes itself adaptively to any type of rotary equipment and the bearing. Automated bearing failure detection is based upon using wavelet transform to scan the spectral contents and applies envelop detection. The raised asynchronous energy in the envelop spectrum is a potential indication for the bearing faults.
机译:轴承是所有类型的旋转设备中必不可少的组件。由于在旋转过程中永久作用在轴承上的径向力和轴向力不可避免地会腐蚀轴承。为了避免设备发生灾难性故障,监视轴承是一项基本要求。现有文献中的轴承故障诊断技术的范围仅限于已知的轴承和机械。相反,本研究开发了一种用于检测任何未知滚动轴承的内,外座圈轴承故障的通用协议。这种自动轴承故障检测模型可适应任何类型的旋转设备和轴承进行自适应调整。自动化的轴承故障检测基于使用小波变换来扫描光谱内容并应用包络检测。包络谱中升高的异步能量是轴承故障的潜在指示。

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