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Online condition monitoring of floating wind turbines drivetrain by means of digital twin

机译:浮动风力涡轮机传动系统通过数字双单的在线状态监测

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This paper presents a digital twin (DT) condition monitoring approach for drivetrains on floating offshore wind turbines. Digital twin in this context consists of torsional dynamic model, online measurements and fatigue damage estimation which is used for remaining useful life (RUL) estimation. At first, methods for system parameter estimation are presented. The digital twin model provides sufficient inputs for the load observers designed in specific points of the drivetrain to estimate the online load and subsequently stress in the different components. The estimated real-time stress values feed the degradation model of the components. The stochastic degradation model proposed for estimation of real-time fatigue damage in the components is based on a proven model-based approach which is tested under different drivetrain operations, namely normal, faulty and overload conditions. The uncertainties in model, measurements and material properties are addressed, and confidence interval for the estimations is provided by a detailed analysis on the signal behavior and using Monte Carlo simulations. A test case, using 10 MW drivetrain, has been demonstrated.
机译:本文介绍了浮动近海风力涡轮机驱动的数字双胞胎(DT)条件监测方法。在这种情况下,数字双胞胎由扭转动态模型,在线测量和疲劳损伤估计用于剩余使用寿命(RUL)估计。首先,提出了系统参数估计的方法。数字双模型提供了足够的输入,用于在动力传动系统的特定点中设计的负载观察者来估计在线负荷并随后在不同的组件中应力。估计的实时应力值馈送组件的劣化模型。提出用于估计组件实时疲劳损坏的随机劣化模型基于经过验证的基于模型的方法,该方法在不同的动力传动系统操作下进行测试,即正常,故障和过载条件。模型,测量和材料特性的不确定性是解决的,并且通过对信号行为的详细分析和使用Monte Carlo模拟来提供估计的置信区间。已经证明了使用10 MW动力传动系统的测试用例。

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