Fatigue load simulation for foundation design of offshore wind turbines due to combined wind and wave loading

Jian-Wen Sheng, Shuifu Chen
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引用次数: 2

Abstract

Wave- and wind-induced fatigue load plays an important, often crucial role in the design of wind turbine supporting structures. This paper presents a practical procedure of fatigue load simulation for foundation design due to combined wind and wave loading in time domain. The distributions of mean wind speed and wind direction, as well as the wave height and wave period are taken into account. Correlation between wind and wave is considered by introducing the scatter diagram from oceanography. The harmony superposition method (HSM) is applied to simulate fully correlated random time series of wind velocity, from which aerodynamic loads can be obtained. The aerodynamic loads on the wind turbine rotor are determined using the blade element momentum method (BEM), which is computationally efficient but with good precision. The ocean wave model suggested by Longuet-Higgins is adopted, by which an irregular wave can be simulated based on the linear wave theory (Airy theory). Wave loads are finally generated by using the Morison equation. The offshore wind turbine tower is modeled as a discrete multi-degree-of-freedom system, with a lumped mass at the top of tower, representing the nacelle and blades. The bottom of the tower is connected to springs to introduce the effect of soil stiffness. The fatigue load spectrum is extracted by using the rain flow counting method. Through comparison with the capacity spectrum, the situation whether the design requirement is satisfied or not can be verified. Numerical examples are presented in the paper to demonstrate the feasibility of the current procedure. The sensibility of fatigue load due to variation of simulating parameters including water depth and soil stiffness is also numerically studied.
海上风力机基础设计的风浪复合疲劳荷载模拟
波浪和风致疲劳载荷在风力机支撑结构设计中起着重要的作用。本文提出了一种在时域上进行风浪复合荷载作用下基础设计疲劳荷载模拟的实用方法。考虑了平均风速和风向的分布,以及波高和波周期的分布。通过引入海洋学中的散点图来考虑风与波的相关性。采用调和叠加法(HSM)模拟风速的完全相关随机时间序列,得到气动载荷。采用叶片单元动量法(BEM)计算风力机转子的气动载荷,计算效率高,精度高。采用Longuet-Higgins提出的海浪模型,利用线性波浪理论(Airy理论)模拟不规则波浪。最后利用莫里森方程生成波浪荷载。海上风力发电机塔架是一个离散的多自由度系统,塔架顶部有一个集总质量,代表机舱和叶片。塔的底部连接有弹簧,以引入土壤刚度的影响。采用雨流计数法提取疲劳载荷谱。通过与容量谱的比较,可以验证是否满足设计要求的情况。文中给出了数值算例,验证了该方法的可行性。数值研究了水深、土体刚度等模拟参数变化对疲劳荷载的敏感性。
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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