首页> 外文会议>International Conference on Ocean, Offshore and Arctic Engineering >LEADING EDGE EROSION OF WIND TURBINE BLADES: EFFECTS OF ENVIRONMENTAL PARAMETERS ON IMPACT VELOCITIES AND EROSION DAMAGE RATE
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LEADING EDGE EROSION OF WIND TURBINE BLADES: EFFECTS OF ENVIRONMENTAL PARAMETERS ON IMPACT VELOCITIES AND EROSION DAMAGE RATE

机译:风力涡轮机叶片的主要侵蚀:环境参数对冲击速度和侵蚀损伤率的影响

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Leading edge erosion (LEE) of a wind turbine blade (WTB) is a complex phenomenon that contributes to high operation and maintenance costs. The impact between rain droplets and rotating blades exerts cyclic fatigue stresses on the leading edge - causing progressive material loss and reduced aerodynamic performance. One of the most important parameters for erosion modelling and damage prediction is the relative impact velocity between rain droplets and rotating blade and depends upon the environmental conditions. The environmental condition, in general, could vary for onshore and offshore wind turbines (OWTs) - for instance, the presence of wave-induced loads along with less turbulent wind and varying rainfall conditions in the offshore environment. The present paper tries to provide guidelines whether all these parameters need to be included for LEE modelling. Aero-hydro-servo-elastic simulations are carried out fora rotating blade based on the NREL 5 MW turbine by considering realistic environmental conditions for a land-based wind turbine and monopile-supported OWT. Further, the impact velocities and erosion damage rate, evaluated using a surface fatigue model, are analysed and compared for different environmental conditions. It is found that rainfall intensity and turbulence intensity influences the impact velocity minorly, however, has a substantial effect on the overall erosion damage rate. For instance, for the investigated load cases, an 8% increase in the impact velocity is observed when the turbulence intensity increases from 6% to 26%, which indicates an increase of erosion damage rate by more than 40%. Furthermore, no substantial influence is found due to the effects of wave-induced loads on the wind turbine.
机译:风力涡轮机叶片(WTB)的前缘侵蚀(LEE)是一种复杂的现象,有助于高运行和维护成本。雨滴与旋转叶片之间的影响对前沿产生的循环疲劳胁迫 - 导致渐进材料损失和降低空气动力学性能。侵蚀建模和损坏预测最重要的参数之一是雨滴和旋转叶片之间的相对冲击速度,并取决于环境条件。通常,环境条件可能因陆上和海上风力涡轮机(OVTS)而有所不同 - 例如,存在波浪引起的载荷以及海上环境中的湍流风和变化的降雨条件。本文试图提供指南,无论是否需要包括所有这些参数以供lee建模。通过考虑陆基风力涡轮机的现实环境条件和单披露的OWT,基于NREL 5 MW涡轮机进行航空水电伺服弹性模拟。此外,分析使用表面疲劳模型评价的冲击速度和侵蚀率,并比较不同的环境条件。发现降雨强度和湍流强度显着影响冲击速度,然而,对整体侵蚀损失率具有显着影响。例如,对于调查的负载案例,当湍流强度从6%增加到26%时,观察到冲击速度增加8%,这表明侵蚀损失率的增加超过40%。此外,由于波引起的负载在风力涡轮机上的影响,没有发现实质性影响。

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