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Simulatie van grote wervelingen in windturbineparken in conventioneel neutrale en stabiele atmosferische grenslagen

机译:在常规中性和稳定大气边界层中模拟风场中的大涡流

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摘要

The accumulated effect of energy extraction by wind turbines in a wind farm leads to a collective interaction between the farm and the atmospheric boundary layer (ABL). To date, many aspects of wind-farm--ABL interaction are still not entirely understood, and wind-farm boundary layers remain an active field of research. In addition to measurement campaigns and wind-tunnel experiments, numerical simulations provide an indispensable tool to study the complex flow phenomena in and around large wind farms in an idealised and controlled environment. The general purpose of this PhD is to improve the current understanding of the flow through large wind farms and the interaction with the atmospheric boundary layer. The main focus thereby lies on the influence of atmospheric stability, inversion layers and Coriolis effects on wind-energy extraction in large wind farms. It is shown that overlying inversion layers actively control the height of the boundary layer, which is directly related to the energy content of the ABL. Moreover, Coriolis forces affect the wind-energy extraction indirectly by causing wake deflection and modifying the effective wind-farm layout. In addition to these outer-layer effects, it is found that atmospheric gravity waves on the inversion layer and in the free atmosphere strongly influence the wind-farm flow behaviour by inducing pressure gradients in the boundary layer. These pressure gradients lead to considerable changes in wind speed and direction upstream of the wind farm and modify the wind-farm energy balance.
机译:风电场中的风力涡轮机提取能量的累积效应导致了风电场与大气边界层(ABL)之间的集体相互作用。迄今为止,风电场-ABL相互作用的许多方面仍未完全了解,并且风电场边界层仍然是研究的活跃领域。除了测量活动和风洞实验之外,数值模拟还提供了不可或缺的工具,用于研究在理想化和受控环境下大型风电场内部及其周围的复杂流动现象。本博士的一般目的是增进对当前流经大型风电场的流量以及与大气边界层相互作用的了解。因此,主要重点在于大气稳定性,反演层和科里奥利效应对大型风电场中风能提取的影响。结果表明,上覆的反演层有效地控制了边界层的高度,这与ABL的能量含量直接相关。此外,科里奥利力通过引起尾流偏转和修改有效的风电场布局而间接影响风能的提取。除这些外层效应外,还发现反演层和自由大气中的大气重力波会在边界层中引起压力梯度,从而极大地影响风电场的流动行为。这些压力梯度导致风电场上游的风速和风向发生相当大的变化,并改变了风电场的能量平衡。

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