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Layout optimization for multi-platform offshore wind farm composed of spar-type floating wind turbines

机译:翼梁式浮式风力发电机组成的多平台海上风电场布局优化

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A multi-platform offshore wind farm is receiving the worldwide attention for the sake of maximizing the wind power capacity and the dynamic stability at sea. But, its wind power efficiency is inherently affected by the interference of wake disturbed by the rotating blades, so its layout should be appropriately designed to minimize such wake interference. In this context, the purpose of this paper is to introduce a layout optimization for multi-platform offshore wind farm consisted of 2.5MW spar-type floating wind turbines. The layout is characterized by the arrangement type of wind turbines, the spacing between wind turbines and the orientation of wind farm to the wind direction, but the current study is concerned with the spacing for a square-type wind farm oriented with the specific angle. The design variable and the objective function are defined by the platform length and the total material volume of the wind farm. The maximum torque loss and overlapping section area are taken as the constraints, and their meta-models expressed in terms of the design variable are approximated using the existing experimental data and the geometry interpretation of wake flow.
机译:为了最大程度地提高风力发电能力和海上动态稳定性,多平台海上风电场正受到全世界的关注。但是,其风能效率固有地受旋转叶片干扰的尾波干扰的影响,因此应适当设计其布局,以最大程度地减少此类尾波干扰。在这种情况下,本文的目的是介绍由2.5MW翼梁式浮式风力发电机组成的多平台海上风电场的布局优化。该布局的特征在于风力涡轮机的布置类型,风力涡轮机之间的间距以及风电场相对于风向的方向,但是当前的研究涉及以特定角度定向的方形风电场的间距。设计变量和目标函数由平台长度和风电场的总物料量定义。以最大的扭矩损失和重叠的截面面积为约束条件,并使用现有的实验数据和尾流的几何学解释来近似它们根据设计变量表示的元模型。

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