Numerical and Experimental Wind Tunnel Analysis of Aerodynamic Effects on a Semi-Submersible Floating Wind Turbine Response

A. Fontanella, I. Bayati, F. Taruffi, A. Facchinetti, M. Belloli
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引用次数: 2

Abstract

This paper presents the main results of an experimental campaign about the DeepCwind semi-submersible floating offshore wind turbine (FOWT), that was carried out at Politecnico di Milano wind tunnel, adopting a hybrid hardware-in-the-loop (HIL) testing technique. Differently from previous works by the authors, this further analysis herein reported, is specifically focused on evaluating the effects of aerodynamic loads on the FOWT platform motions. In order to reproduce the FOWT response to combined wind and waves in a wind tunnel, exploiting the high-quality flow, a HIL system was used. The aerodynamic and rotor loads were reproduced by means of a wind turbine scale model operating inside the wind tunnel and were combined with numerically generated wave loads for real-time integration of the FOWT rigid-body motion equations. The resulting platform motions were imposed to the wind turbine scale model by a hydraulic actuation system. A series of HIL tests was performed to assess the rotor loads effect on the FOWT response. Free-decay tests in still water under laminar un-sheared wind were carried out to evaluate how the aerodynamic forcefield modifies the platform modes frequency and damping. Irregular wave tests for different steady winds were performed to investigate the dependency of platform motion from the wind turbine operating conditions. A FAST v8 model of the studied floating system was developed to support the analysis and numerical simulations were performed to reproduce environmental conditions equivalent to those of the experimental tests. The FAST model prediction capability is discussed against HIL wind tunnel tests results.
半潜式浮式风力机气动响应的数值与实验风洞分析
本文介绍了在米兰理工大学风洞进行的DeepCwind半潜式浮式海上风力涡轮机(FOWT)试验的主要结果,该试验采用了混合硬件在环(HIL)测试技术。与作者之前的工作不同,本文报道的进一步分析特别侧重于评估气动载荷对FOWT平台运动的影响。为了在风洞中重现fot对风浪组合的响应,利用高质量的流动,采用了HIL系统。利用风洞内运行的风力机比例模型再现了气动载荷和转子载荷,并将其与数值生成的波浪载荷结合起来,实时集成了FOWT刚体运动方程。由此产生的平台运动通过液压驱动系统施加到风力涡轮机比例模型上。进行了一系列的HIL试验,以评估转子载荷对FOWT响应的影响。在静水中进行了层流非剪切风作用下的自由衰减试验,以评估气动力场对平台模态频率和阻尼的影响。为研究平台运动与风力机运行工况的关系,进行了不同定常风条件下的不规则波浪试验。开发了所研究的浮动系统的FAST v8模型来支持分析,并进行了数值模拟以再现与实验测试相同的环境条件。结合HIL风洞试验结果,讨论了FAST模型的预测能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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