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The diagnostic analysis of the planet bearing faults using the torsional vibration signal

机译:基于扭转振动信号的行星轴承故障诊断分析

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This paper aims to investigate the effectiveness of using the torsional vibration signal as a diagnostic tool for planet bearing fault detection. The inner race of the planet bearing is connected to the planet carrier and its outer race is connected to the planet gear bore hole. When moving, the planet bearing not only spins around the planet gear axis, but also revolves about the sun gear axis. This rotating mechanism poses a challenge for the condition monitoring of the planet bearing because of the variant vibration transfer paths. The transducer mounted on the carrier arm measuring the torsional vibration is theoretically free from this modulation effect and it is used in this research to extract the diagnostic information from the torsional vibration. A 34 degrees of freedom planetary gear lumped-parameter model with detailed planet bearing model was developed to obtain the dynamic response. The planet bearing was modelled by 5 degrees of freedom, with 2 degrees of freedom from the outer race, 2 degrees of freedom from the inner race and one degree of freedom from the sprung-mass. The variations of the sun-planet and ring-planet mesh stiffnesses were evaluated by the finite element method and the variation of the planet bearing stiffness was evaluated by the Hertzian contact theory. The localized faults on the planet bearing inner race, outer race and the rolling element were created mathematically and then these faults were incorporated into the planetary gear model to obtain the faulted vibration signal. The linear prediction method and the minimum entropy deconvolution method were used to enhance the planet bearing signal and then the amplitude demodulation results were analysed. It was found that the carrier arm instantaneous angular speed was an effective alternative approach for planet gear condition monitoring.
机译:本文旨在研究使用扭转振动信号作为行星轴承故障检测的诊断工具的有效性。行星轴承的内圈连接到行星架,外圈连接到行星齿轮孔。在移动时,行星轴承不仅绕行星齿轮轴旋转,而且绕太阳齿轮轴旋转。由于变化的振动传递路径,该旋转机构对行星轴承的状态监视提出了挑战。理论上,安装在承载臂上的用于测量扭转振动的换能器不受此调制效应的影响,并且在本研究中将其用于从扭转振动中提取诊断信息。建立了34自由度行星齿轮集总参数模型和详细的行星轴承模型,以获得动态响应。行星轴承的模拟是5个自由度,其中外圈2个自由度,内圈2个自由度和弹簧质量一个自由度。通过有限元方法评估了太阳行星和环形行星的网格刚度的变化,并通过赫兹接触理论评估了行星轴承刚度的变化。用数学方法创建了轴承内圈,外圈和滚动元件上的局部故障,然后将这些故障合并到行星齿轮模型中以获得故障振动信号。利用线性预测方法和最小熵反卷积方法增强了行星方位信号,然后对振幅解调结果进行了分析。发现载架臂瞬时角速度是行星齿轮状态监测的有效替代方法。

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