Real-Time Hybrid Testing of a Floating Offshore Wind Turbine Using a Surrogate-Based Aerodynamic Emulator

Edward J. Ransley, Scott A. Brown, Emma C. Edwards, Tom Tosdevin, Kieran Monk, Alastair M. Reynolds, Deborah Greaves, Martyn R. Hann
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引用次数: 1

Abstract

Abstract Physical modeling of floating offshore wind turbines (FOWTs) is challenging due to the complexities associated with the simultaneous application of two different scaling laws, governing the hydrodynamic and aerodynamic loading on the structure. To avoid these issues, this paper presents a real-time hybrid testing (RTHT) strategy in which a feedback loop, consisting of an on-board fan and control algorithm, is utilized to emulate the aerodynamic forces acting on the FOWT system. Here, we apply this strategy to a 70th-scale IEA Wind 15 MW reference wind turbine mounted on a version of the VolturnUS-S platform. Unlike other similar methods, which directly simulate the aerodynamic loads for the fan’s control using an aerodynamic code running in parallel with the experiment, this example utilizes a surrogate model trained on numerical model data calculated in advance. This strategy enables high-fidelity numerical model data, or even physical data, to be included in the aerodynamic emulation, by removing the requirement for real-time simulation, and, therefore, potentially enables more accurate loading predictions to be used in the experiments. This paper documents the development of the real-time hybrid testing system in the Coastal Ocean And Sediment Transport (COAST) Laboratory at the University of Plymouth in the UK, including the hardware, software, and instrumentation setup, and demonstrates the power of the surrogate-based aerodynamic emulator based on numerical data calculated using OpenFAST.
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基于代理气动仿真器的浮式海上风力机实时混合测试
由于同时应用两种不同的标度律来控制结构上的水动力和空气动力载荷,因此浮式海上风力涡轮机(FOWTs)的物理建模具有挑战性。为了避免这些问题,本文提出了一种实时混合测试(RTHT)策略,该策略利用由机载风扇和控制算法组成的反馈回路来模拟作用在FOWT系统上的气动力。在这里,我们将此策略应用于安装在VolturnUS-S平台上的第70个规模的IEA Wind 15兆瓦参考风力涡轮机。与其他类似方法不同的是,该方法使用与实验并行运行的气动代码直接模拟风扇控制的气动载荷,而本例使用预先计算的数值模型数据训练的代理模型。通过消除对实时仿真的要求,该策略可以将高保真的数值模型数据甚至物理数据包含在气动仿真中,因此可以在实验中使用更准确的载荷预测。本文介绍了英国普利茅斯大学海岸海洋和沉积物运输(COAST)实验室实时混合测试系统的开发,包括硬件、软件和仪器设置,并基于OpenFAST计算的数值数据展示了基于代理的空气动力学仿真器的功能。
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