Modeling and optimization of power coefficient using 2K factorial methodology

M. Arifujjaman
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引用次数: 5

Abstract

The main objective of this paper is to model the power coefficient in order to optimize the design of a horizontal axis wind turbine rotor to ensure the optimum aerodynamic power production, based on statistical Design of Experiment (DOE). Sophisticated aerodynamics of the wind turbine and blade geometry is discussed and used to generate the optimum chord and twist distribution of the rotating blades. The dependent variables of the power coefficient are found as the pitch angle, number of blades, and chord and twist distribution. A nonlinear model of the power coefficient based on the dependent variable and their interactions is investigated with the adoption in a 2K factorial design. The significance of the variables as well as the power coefficient model is ensured by the analysis of variance table and scree plots. Interaction plots revealed that the high value of pitch angle and low value of number of blades has the dominant contribution on the power coefficient, while chord and twist distribution is less significant. The results obtained can be used for feasibility study, optimization, and control of the wind turbine control strategy is feasible and results are verified through simulation.
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用2K阶乘方法建模和优化功率系数
本文的主要目的是基于实验统计设计(DOE),对水平轴风力机转子的功率系数进行建模,以优化设计,保证最优的气动功率产生。讨论了风力机复杂的空气动力学和叶片几何形状,并利用它们来产生最佳的旋转叶片弦和扭分布。功率系数的因变量为桨距角、叶片数、弦扭分布。基于因变量及其相互作用的非线性功率系数模型在2K因子设计中得到应用。通过方差表和图的分析,保证了变量和功率系数模型的显著性。相互作用图显示,桨距角的大值和叶片数的小值对功率系数的贡献占主导地位,弦和扭分布对功率系数的贡献不显著。所得结果可用于可行性研究,优化和控制风力机的控制策略是可行的,并通过仿真验证了结果。
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