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Statistical fault diagnosis of wind turbine drivetrain applied to a 5MW floating wind turbine

机译:应用于5mW浮式风力发电机组的风力机传动系统统计故障诊断

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摘要

Deployment of larger scale wind turbine systems, particularly offshore wind turbine, requires more organized operation and maintenance strategies to make it as competitive as the classical electric power stations. It is important to ensure systems are safe, profitable and cost-effective. In this regards, the ability to detect, isolate, estimate faults play an important role. One of the critical wind turbine components is the gearbox. Failures in the gearbox are costly both due to the cost of the gearbox itself, but also due to high repair downtime. In order to detect faults as fast as possible to prevent them to develop into failure, statistical change detection is used. In this paper, Cumulative Sum method (CUSUM) is used to diagnose fault in downwind main bearing in a high fidelity gearbox model of a 5-MW spar-type wind turbine. Residuals are found to be non-Gaussian following a t-distribution with multivariable characteristic parameters. Results show CUSUM method could detect change and estimate change time very agile with desired false alarm and detection probabilities
机译:大规模风力涡轮机系统(尤其是岸上风力涡轮机)的部署需要更加组织化的运行和维护策略,以使其与传统电站一样具有竞争力。确保系统安全,可盈利且具有成本效益非常重要。在这方面,检测,隔离,估计故障的能力起着重要作用。变速箱是风力涡轮机的关键组件之一。变速箱的故障代价高昂,不仅是由于变速箱本身的成本,而且还由于维修时间长。为了尽快检测故障以防止其发展为故障,使用了统计变化检测。在本文中,累积和方法(CUSUM)用于诊断5 MW翼梁式风力发电机的高保真齿轮箱模型中顺风主轴承的故障。发现残差在具有多变量特征参数的t分布之后为非高斯分布。结果表明,CUSUM方法可以非常灵活地检测更改并估计更改时间,并具有所需的虚假警报和检测概率

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