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首页> 外文期刊>Ocean Engineering >Characterizing and mitigating ice-induced vibration of monopile offshore wind turbines
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Characterizing and mitigating ice-induced vibration of monopile offshore wind turbines

机译:单披上风力涡轮机的冰致振动特征和缓解振动

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摘要

Offshore wind turbines (OWTs) are vulnerable to ice-induced vibrations (IIV) when they are located in ice-prone regions with drifting sea ice. The ice-induced frequency lock-in (FLI) phenomenon will cause excessive vibration and fatigue damage of OWTs. The present study characterizes the ice-induced FLI of OWTs under various ice conditions through coupled analysis and mitigates the significant FLI response using a three-dimensional pendulum tuned mass damper (3D-PTMD). Based on the National Renewable Energy Laboratory (NREO 5 MW baseline monopile OWT model, a numerical model of the OWT with a 3D-PTMD is established wherein the interaction between the blades and the tower is modeled and soil effect is considered. Aerodynamic loading is computed using the Blade Element Momentum (BEM) method where the Prandtl's tip loss factor and the Glauert correction are considered. A coupled simulation program based on Maattanen-Blenkarn model is developed to simulate ice-structure interactions. Different ice velocities, thicknesses, and attack angles in the Bohai Sea are chosen to study the ice-structure interactions and characterize the FLI. Research results show that the FLI of the monopile OWT occurs when the ice velocity is between 0.01 m/s to 0.06 m/s and the ice thickness is 7 cm, and 0.03 m/s to 0.09 m/s when the ice thickness is 32 cm. When the FLI happens, the 3D-PTMD has significant effectiveness in mitigating the root mean square and peak response of the nacelle/tower and the foundation in fore-aft and side-side directions. The present study enhances the understanding of ice-induced FLI and provides a feasible solution for vibration control of OWTs in ice-prone areas.
机译:当它们位于冰水区的冰水区内,海上风力涡轮机(OWTS)易受冰诱导的振动(IIV)。冰诱导的频率锁定(FLI)现象将导致过度振动和疲劳损坏欠款。本研究表征了通过耦合分析在各种冰条件下的横向肺部的冰诱导的FLI,并使用三维摆锤调谐质量阻尼器(3D-PTMD)来减轻显着的FLI响应。基于国家可再生能源实验室(NREO 5 MW基线单披露OWT模型,建立了具有3D-PTMD的OWT的数值模型,其中叶片和塔之间的相互作用是建模的,并考虑了土壤效应。计算空气动力载荷使用刀片元素动量(BEM)方法,其中考虑了Prandtl的尖端损耗因子和Glauert校正。开发了一种基于Maattan-Blenkarn模型的耦合模拟程序来模拟冰结构相互作用。不同的冰速度,厚度和攻击角选择在渤海中选择冰结构相互作用并表征FLI。研究结果表明,当冰速度为0.01米/秒至0.06米/秒之间时,可以发生单披露OWT的FLI,冰厚度为7当冰厚度为32厘米时,cm,0.03米/秒至0.09米/秒。当FLI发生时,3D-PTMD在减轻了减轻均值均值和峰值响应方面具有显着的有效性机舱/塔和前后侧方向的基础。本研究提高了对冰诱导的FLI的理解,并提供了一种可行的冰易受抗冰块振动控制的可行解决方案。

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