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STRATEGY AND APPLICATION OF DATA-DRIVEN TESTING OF AN OCEAN TURBINE DRIVETRAIN

机译:海洋涡轮传动系统数据驱动测试的策略和应用

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An ocean turbine generator will be subject to variations in water current velocity at one end and resistive load at the other. Measurements acquired during bench testing of the turbine's drivetrain can be used to predict the effect of these variables on the turbine during deployment.a This paper outlines an ongoing series of tests involving vibration data captured at various velocities and loads. This data is analyzed to detect the machine's state using two approaches. In the first approach, machine learning techniques are used to discern between states given adjacent values for velocity or load. The purpose of that approach is to assess a learner's ability to draw the fine distinctions needed for subsequent fault identification. The second approach computes a power spectrum for each velocity and load combination over enough trials as to construct an operating envelope. The purpose of that approach is to identify as abnormal, incoming data having parts of its spectrum that fall outside that envelope. A case study applies each approach to baseline data and data for a deterioration scenario. The rationale behind each approach, their assumptions, and their limitations are also discussed.
机译:海洋涡轮发电机的一端将受到水流速度的变化,而另一端将受到电阻性负载的变化。在涡轮机传动系统的台架测试期间获得的测量结果可用于预测部署过程中这些变量对涡轮机的影响。a本文概述了正在进行的一系列测试,涉及在各种速度和载荷下捕获的振动数据。使用两种方法分析此数据以检测机器的状态。在第一种方法中,使用机器学习技术来区分在给定速度或负载的相邻值的状态之间。该方法的目的是评估学习者得出后续故障识别所需的细微区别的能力。第二种方法是通过足够的试验来计算每个速度和载荷组合的功率谱,以构造一个工作包络线。该方法的目的是将频谱范围超出该范围的部分识别为异常输入数据。案例研究将每种方法应用于基线数据和恶化情况下的数据。还讨论了每种方法的原理,其假设和局限性。

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