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Development of a parameterized reduced-order vertical-axis wind turbine wake model

机译:开发参数化垂直轴风力涡轮机唤醒模型

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摘要

Analyzing or optimizing wind farm layouts often requires reduced-order wake models to estimate turbine wake interactions and wind velocity. We propose a wake model for vertical-axis wind turbines in streamwise and crosswind directions. Using vorticity data from computational fluid dynamic simulations and cross-validated Gaussian distribution fitting, we produced a wake model that can estimate normalized wake velocity deficits of an isolated vertical-axis wind turbine using normalized downstream and lateral positions, tip-speed ratio, and solidity. Compared with computational fluid dynamics, taking over a day to run one simulation, our wake model predicts a velocity deficit in under a second with an appropriate accuracy and computational cost necessary for wind farm optimization. The model agreed with two experimental studies producing percent differences of the maximum wake deficit of 6.3% and 14.6%. The wake model includes multiple wake interactions and blade aerodynamics to calculate power, allowing its use in wind farm layout analysis and optimization.
机译:分析或优化风电场布局通常需要减少秩序的唤醒模型来估算涡轮机唤醒相互作用和风速。我们提出了一种垂直轴风力涡轮机的唤醒模型,用于流动和交叉风向。使用来自计算流体动态模拟和交叉验证的高斯分配拟合的涡流数据,我们生产了一种唤醒模型,可以使用归一化下游和横向位置,尖端速率和固定性来估计隔离垂直轴风力涡轮机的标准化唤醒速度缺陷。与计算流体动力学相比,需要一天才能运行一个模拟,我们的唤醒模型预测了一秒钟内的速度赤字,具有适当的精度和风电场优化所需的计算成本。该模型与两个实验研究同意,产生了6.3%和14.6%的最大唤醒缺陷差异的百分比。唤醒模型包括多个唤醒相互作用和叶片空气动力学来计算功率,允许其在风电场布局分析和优化中使用。

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