Wind farm layout optimization in complex terrain considering wind turbine fatigue load constraint

物理 地形 涡轮机 约束(计算机辅助设计) 气象学 海洋工程 风力发电 航空航天工程 机械工程 工程类 电气工程 生态学 生物 热力学
作者
Weijie Liu,Liuliu Peng,Guoqing Huang,Qingshan Yang,Yan Jiang,Binbin Wang
出处
期刊:Physics of Fluids [American Institute of Physics]
卷期号:37 (2) 被引量:3
标识
DOI:10.1063/5.0249777
摘要

Currently, mountainous wind farm layout optimization generally does not take fatigue loads into account. However, due to the complexity of the mountainous flow characteristics, layout optimization focusing solely on power generation may lead to excessive fatigue loads on certain turbines, which could affect the long-term profitability of the entire wind farm. To address this issue, this study proposes a wind farm layout optimization approach for complex terrain considering wind turbine fatigue load constraint. This approach consists of three basic parts, i.e., computational fluid dynamics, complex-terrain wake model, and fatigue load surrogate model. These basic parts are used to obtain a wind resource map for complex terrain, calculate wake effects, and rapidly predict fatigue loads of wind turbines, respectively. After that, an optimization framework in complex terrain is presented in which the objective function and load constraint are involved. The core of the optimization framework is that only solutions that satisfy the fatigue load constraint will be further optimized. Finally, a case study was utilized to validate the effectiveness of the proposed approach. The results showed that neglecting load constraint in the layout optimization of wind farm in complex terrain can lead to significant load increases of some wind turbines. By incorporating a reasonable load constraint, a substantial increase in power generation can be achieved while controlling turbine loads within acceptable ranges. However, this approach may sacrifice power generation if the constraints are prescribed to be too strict.
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