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Multi-Objective Structural Optimization Design of Horizontal-Axis Wind Turbine Blades Using the Non-Dominated Sorting Genetic Algorithm II and Finite Element Method

机译:基于非支配排序遗传算法II和有限元方法的水平轴风力机叶片多目标结构优化设计

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A multi-objective optimization method for the structural design of horizontal-axis wind turbine (HAWT) blades is presented. The main goal is to minimize the weight and cost of the blade which uses glass fiber reinforced plastic (GFRP) coupled with carbon fiber reinforced plastic (CFRP) materials. The number and the location of layers in the spar cap, the width of the spar cap and the position of the shear webs are employed as the design variables, while the strain limit, blade/tower clearance limit and vibration limit are taken into account as the constraint conditions. The optimization of the design of a commercial 1.5 MW HAWT blade is carried out by combining FEM analysis and a multi-objective evolutionary algorithm under ultimate (extreme) flap-wise load and edge-wise load conditions. The best solutions are described and the comparison of the obtained results with the original design is performed to prove the efficiency and applicability of the method.
机译:提出了一种用于水平轴风力发电机叶片结构设计的多目标优化方法。主要目标是最大程度地减少使用玻璃纤维增​​强塑料(GFRP)和碳纤维增强塑料(CFRP)材料的叶片的重量和成本。翼梁盖中层的数量和位置,翼梁盖的宽度和抗剪腹板的位置被用作设计变量,而应变极限,叶片/塔身间隙极限和振动极限被考虑为约束条件。通过在极限(极端)襟翼方向载荷和边向载荷条件下,结合有限元分析和多目标进化算法,对商用1.5 MW HAWT叶片的设计进行了优化。描述了最佳解决方案,并将获得的结果与原始设计进行了比较,以证明该方法的效率和适用性。

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