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Torsional vibration signal analysis as a diagnostic tool for planetary gear fault detection

机译:扭转振动信号分析作为行星齿轮故障检测的诊断工具

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This paper aims to investigate the effectiveness of using the torsional vibration signal as a diagnostic tool for planetary gearbox faults detection. The traditional approach for condition monitoring of the planetary gear uses a stationary transducer mounted on the ring gear casing to measure all the vibration data when the planet gears pass by with the rotation of the carrier arm. However, the time variant vibration transfer paths between the stationary transducer and the rotating planet gear modulate the resultant vibration spectra and make it complex. Torsional vibration signals are theoretically free from this modulation effect and therefore, it is expected to be much easier and more effective to diagnose planetary gear faults using the fault diagnostic information extracted from the torsional vibration. In this paper, a 20 degree of freedom planetary gear lumped-parameter model was developed to obtain the gear dynamic response. In the model, the gear mesh stiffness variations are the main internal vibration generation mechanism and the finite element models were developed for calculation of the sun-planet and ring-planet gear mesh stiffnesses. Gear faults on different components were created in the finite element models to calculate the resultant gear mesh stiffnesses, which were incorporated into the planetary gear model later on to obtain the faulted vibration signal. Some advanced signal processing techniques were utilized to analyses the fault diagnostic results from the torsional vibration. It was found that the planetary gear torsional vibration not only successfully detected the gear fault, but also had the potential to indicate the location of the gear fault. As a result, the planetary gear torsional vibration can be considered an effective alternative approach for planetary gear condition monitoring.
机译:本文旨在研究使用扭转振动信号作为行星齿轮箱故障检测的诊断工具的有效性。行星齿轮状态监测的传统方法是使用一个固定在环形齿轮箱上的传感器来测量行星齿轮随着承载臂的旋转经过时的所有振动数据。但是,固定换能器和旋转的行星齿轮之间的时变振动传递路径会调节所得的振动谱并使之复杂。扭转振动信号理论上不受此调制作用的影响,因此,使用从扭转振动中提取的故障诊断信息来诊断行星齿轮故障将变得更加容易和有效。本文建立了一个20自由度的行星齿轮集总参数模型来获得齿轮的动力响应。在该模型中,齿轮啮合刚度变化是主要的内部振动产生机理,并开发了用于计算太阳行星齿轮和环形行星齿轮啮合刚度的有限元模型。在有限元模型中创建了不同组件上的齿轮故障,以计算最终的齿轮啮合刚度,随后将其合并到行星齿轮模型中以获得故障振动信号。利用一些先进的信号处理技术来分析扭转振动的故障诊断结果。已经发现,行星齿轮扭转振动不仅成功地检测出齿轮故障,而且还具有指示齿轮故障位置的潜力。结果,行星齿轮扭转振动可以被认为是用于行星齿轮状态监测的有效替代方法。

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