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BLADELETS - WINGLETS ON BLADES OF WIND TURBINES: A MULTIOBJECTIVE DESIGN OPTIMIZATION STUDY

机译:叶片-风轮机叶片上的小翼:多目标设计优化研究

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The work presented in this paper used rigorous 3D flow-field analysis combined with multi-objective constrained shape design optimization for the design of bladelet (winglet) configurations for a three-blade propeller type wind turbine. The fluid flow analysis in this work was performed using 3D, steady, incompressible, turbulent flow Reynolds-averaged Navier-Stokes equations in the rotating frame of reference for each combination of a given wind turbine blade and a varying bladelet geometry. The free stream uniform wind speed in all cases was assumed to be 9 m s~(-1) and rotational speed was 12 rpm. These were off-design conditions for this rotor. The three simultaneous design optimization objectives were: a) maximize the coefficient of power, b) minimize the coefficient of thrust, and c) minimize twisting moment around the blade axis. The bladelet geometry was fully defined by using a small number of parameters. The optimization was carried out by creating a multi-dimensional response surface for each of the simultaneous objectives. The response surfaces were based on radial basis functions, where the support points were designs analyzed using the high fidelity CFD analysis of the full blade + bladelet geometry. The response surfaces were then coupled to a multi-objective optimization algorithm. The predicted values of the objective functions for the optimum designs were then again validated using the high fidelity computational fluid dynamics analysis code.
机译:本文介绍的工作将严格的3D流场分析与多目标约束形状设计优化相结合,以用于三叶片螺旋桨式风力涡轮机的小叶片(小翼)构型设计。对于给定的风力涡轮机叶片和变化的小叶片几何形状的每种组合,在旋转参照系中使用3D稳定,不可压缩的湍流雷诺平均Navier-Stokes方程进行了此项工作中的流体流动分析。假定所有情况下的自由流均匀风速为9 m s〜(-1),转速为12 rpm。这些是该转子的设计外条件。三个同时的设计优化目标是:a)最大化功率系数,b)最小化推力系数,以及c)最小化围绕叶片轴线的扭转力矩。通过使用少量参数可以完全定义小叶片的几何形状。通过为每个同时物镜创建多维响应表面来执行优化。响应表面基于径向基函数,其中支撑点是通过对整个叶片+叶片几何形状的高保真CFD分析进行设计分析的。然后将响应面耦合到多目标优化算法。然后使用高保真度的计算流体动力学分析代码再次验证最佳设计的目标函数的预测值。

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