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A novelty detection diagnostic methodology for gearboxes operating under fluctuating operating conditions using probabilistic techniques

机译:使用概率技术的用于变速箱运行条件变化的变速箱的新颖性检测诊断方法

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摘要

In this paper, a fault diagnostic methodology is developed which is able to detect, locate and trend gear faults under fluctuating operating conditions when only vibration data from a single transducer, measured on a healthy gearbox are available. A two-phase feature extraction and modelling process is proposed to infer the operating condition and based on the operating condition, to detect changes in the machine condition. Information from optimised machine and operating condition hidden Markov models are statistically combined to generate a discrepancy signal which is post-processed to infer the condition of the gearbox. The discrepancy signal is processed and combined with statistical methods for automatic fault detection and localisation and to perform fault trending over time. The proposed methodology is validated on experimental data and a tacholess order tracking methodology is used to enhance the cost-effectiveness of the diagnostic methodology.
机译:在本文中,开发了一种故障诊断方法,该方法可在波动的工况下检测,定位和趋势齿轮故障,而只有在健康变速箱上测量到的来自单个传感器的振动数据才可用。提出了一个两阶段的特征提取和建模过程,以推断运行状况并基于运行状况检测机器状况的变化。来自优化的机器和隐藏的工作状态的马尔可夫模型的信息在统计上进行组合以生成差异信号,该信号经过后处理以推断变速箱的状态。处理差异信号,并与统计方法相结合,以进行自动故障检测和定位,并随时间执行故障趋势分析。所提出的方法论已在实验数据上得到验证,并且使用了无测速订单跟踪方法论来提高诊断方法论的成本效益。

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