Impact mechanism of frequency response on wind turbine fatigue load

IF 1.9 4区 工程技术 Q4 ENERGY & FUELS Journal of Renewable and Sustainable Energy Pub Date : 2023-05-01 DOI:10.1063/5.0132363
Yingwei Wang, Yufeng Guo, Weimao Xu
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Abstract

Wind turbines' participation in frequency response is known to improve the frequency stability of power systems, but it can also have a negative impact on the fatigue load of wind turbines. The objective of this paper is to investigate the effect of frequency response on the fatigue loads experienced by various components of a wind turbine, including the low-speed shaft, tower, and blade. To achieve this goal, the authors develop a model of a variable speed horizontal-axis wind turbine based on a doubly fed induction generator. They derive explicit analytical equations of low-speed shaft torque, tower bending moment, and blade bending moment to describe the fluctuations of torque and moment related to the operating states of wind turbines, such as generator torque, rotor speed, and pitch angle, under frequency response. These equations allow for the evaluation of the impact of frequency response on torque and moment changes and fatigue load. Spectral density analysis and modal analysis are used to further analyze the analytical equations, examining the influence of frequency response on different operating conditions of wind turbines and determining the mechanism by which frequency response affects fatigue load qualitatively and quantitatively. The authors use the FAST V8 Code based on the NREL offshore 5-MW baseline wind turbine to demonstrate the effectiveness of the proposed analysis method in evaluating fatigue loads affected by frequency response. The results show that the fatigue load on the low-speed shaft and the lateral side of the tower will significantly increase due to wind turbine participation in frequency response.
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频率响应对风机疲劳载荷的影响机制
众所周知,风力涡轮机参与频率响应可以提高电力系统的频率稳定性,但它也会对风力涡轮机的疲劳负载产生负面影响。本文的目的是研究频率响应对风力涡轮机的各个部件(包括低速轴、塔架和叶片)所经历的疲劳载荷的影响。为了实现这一目标,作者开发了一个基于双馈感应发电机的变速水平轴风力涡轮机模型。他们推导了低速轴扭矩、塔架弯矩和叶片弯矩的显式分析方程,以描述在频率响应下与风力涡轮机运行状态相关的扭矩和力矩的波动,如发电机扭矩、转子速度和桨距角。这些方程允许评估频率响应对扭矩和力矩变化以及疲劳载荷的影响。采用谱密度分析和模态分析对分析方程进行了进一步分析,考察了频率响应对风机不同工况的影响,定性和定量地确定了频率响应影响疲劳载荷的机理。作者使用基于NREL海上5MW基线风力涡轮机的FAST V8代码来证明所提出的分析方法在评估受频率响应影响的疲劳载荷方面的有效性。结果表明,由于风机参与频率响应,低速轴和塔架侧面的疲劳载荷将显著增加。
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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来源期刊
Journal of Renewable and Sustainable Energy
Journal of Renewable and Sustainable Energy ENERGY & FUELS-ENERGY & FUELS
CiteScore
4.30
自引率
12.00%
发文量
122
审稿时长
4.2 months
期刊介绍: The Journal of Renewable and Sustainable Energy (JRSE) is an interdisciplinary, peer-reviewed journal covering all areas of renewable and sustainable energy relevant to the physical science and engineering communities. The interdisciplinary approach of the publication ensures that the editors draw from researchers worldwide in a diverse range of fields. Topics covered include: Renewable energy economics and policy Renewable energy resource assessment Solar energy: photovoltaics, solar thermal energy, solar energy for fuels Wind energy: wind farms, rotors and blades, on- and offshore wind conditions, aerodynamics, fluid dynamics Bioenergy: biofuels, biomass conversion, artificial photosynthesis Distributed energy generation: rooftop PV, distributed fuel cells, distributed wind, micro-hydrogen power generation Power distribution & systems modeling: power electronics and controls, smart grid Energy efficient buildings: smart windows, PV, wind, power management Energy conversion: flexoelectric, piezoelectric, thermoelectric, other technologies Energy storage: batteries, supercapacitors, hydrogen storage, other fuels Fuel cells: proton exchange membrane cells, solid oxide cells, hybrid fuel cells, other Marine and hydroelectric energy: dams, tides, waves, other Transportation: alternative vehicle technologies, plug-in technologies, other Geothermal energy
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