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A COUPLED WIND-WAVE-TURBINE SOLVER FOR OFFSHORE WIND FARM

机译:用于海上风电场的耦合风波 - 涡轮机求解器

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The coupled wind-wave solver (Yang & Shen, 2011) is extended to offshore wind energy research, with the embedment of turbine model (Yang & Sotiropoulos, 2015). The composite solver consists of a high-order spectral method for surface waves, large-eddy simulation for offshore wind on wave-surfacefitted dynamic grid, and an actuator based model for the representation of blades and nacelles. The blades are discretized by line elements, and its bound motion with floating platform is considered. Some smoothed spectral operations are applied to alleviate Gibbs phenomenon brought by local jump of turbine force. By performing simulations for a turbine array on land and over ocean waves, we have analyzed the impacts of waves on the wind farm in terms of mean wind speed and mean kinetic energy budget. It is found that a fast-propagating swell at the sea surface leads to a higher mean velocity at turbine hub height, which affects the wind power extraction. The influence of floating platform motion is also investigated. It is found that pitch motion has stronger influence than other in-plane motions, i.e., surge and heave. The interaction between tip vortex sheet and nacelle wake meandering is also studied. The intersection of these two flow structures coincides with a change of growth rate of mean velocity deficit width. The results will be useful for the under-standing and control of turbine wakes in offshore wind farm.
机译:耦合风波求解器(杨氏,2011)延伸到海上风能研究,涡轮机模型的嵌入式(杨&Sotiropoulos,2015)。复合求解器包括一种用于表面波的高阶光谱法,对海底动态电网进行海上风的大涡模拟,以及用于刀片和Nacelles表示的致动器基于型号的模型。刀片通过线元件离散化,并且考虑其具有浮动平台的绑定运动。应用一些平滑的光谱操作以缓解涡轮机力局部跳跃引起的吉布斯现象。通过对陆地和海浪上的涡轮阵列进行模拟,我们在平均风速和平均动力预算方面分析了波浪对风电场的影响。发现海面的快速传播膨胀导致涡轮毂高度的平均速度,影响风力发电。还研究了浮动平台运动的影响。发现音调运动比其他面内运动有更强的影响,即激增和升降。还研究了尖端涡旋板和机舱唤醒蜿蜒之间的相互作用。这两个流动结构的交叉点与平均速度缺陷宽度的生长速率的变化一致。结果对于海上风电场的涡轮机醒来的立场和控制有用。

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