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Numerical Investigation of Vertical-Axis Wind Turbines at Low Reynolds Number.

机译:低雷诺数垂直轴风力发电机的数值研究。

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摘要

This thesis is aimed at numerically investigating the aerodynamics and the starting of a vertical-axis wind turbine at low Reynolds number using the immersed boundary method. The influence of the Coriolis effect on dynamic stall is isolated by comparing the rotating airfoil to one undergoing an equivalent planar motion that is composed of surging and pitching motions that produce an equivalent speed and angle of attack variation over a cycle. At lower tip-speed ratios, the Coriolis force leads to the capture of a vortex pair which results in a significant decrease in lift when the angle of attack of a rotating airfoil begins to decrease in the upwind half cycle. In the absence of the wake-capturing, the equivalent planar motion is a good approximation to a rotating blade in a vertical-axis wind turbine.;Analysis on the starting torque shows that when the turbine solidity is lower than about 0.5, the starting torque distribution can be well-modeled by considering a single blade at different orientations, and starting torque distributions for multi-bladed turbines can be constructed by linearly combining the torques at the respective positions of the blades. Using this model, optimal configurations to start a multi-bladed low-solidity vertical-axis wind turbine is proposed.;A preliminary study is made to determine an optimal blade pitch for a single-bladed motor-driven turbine using optimal control theory. When the input power is minimized directly, the solution seems to converge to only a local minimum due to a lower input power reduction than that obtained by maximizing the mean tangential force. After a transient, both controls converge to time-invariant pitch angles of about the same magnitude but with opposite signs. The wake-capturing phenomenon observed in the uncontrolled case necessitates large input power. Under active control, the disappearance of wake-capturing and attendant changes in the flow field collectively result in a reduction of required input power.
机译:本文旨在通过沉浸边界法对雷诺数较低的垂直轴风力发电机的空气动力特性和启动进行数值研究。科里奥利效应对动态失速的影响可通过将旋转翼型与经历等效平面运动的翼型进行比较,该等效平面运动由浪涌和俯仰运动组成,浪涌和俯仰运动在整个周期内产生等效的速度和攻角变化。在较低的叶尖速比下,科里奥利力会导致涡流对的捕获,当旋转翼型的迎角在上风半周期开始减小时,这将导致升力显着下降。在没有尾流捕获的情况下,等效平面运动非常适合于垂直轴风力涡轮机中的旋转叶片。;对启动扭矩的分析表明,当涡轮机的固体度低于约0.5时,启动扭矩可以通过考虑不同方向上的单个叶片来很好地建模该分布,并且可以通过线性组合叶片各个位置上的扭矩来构造多叶片涡轮机的启动扭矩分布。利用该模型,提出了一种用于启动多叶片低强度垂直轴风力发电机组的最佳配置。进行了初步研究,利用最优控制理论确定了单叶片电动涡轮机的最佳叶片螺距。当直接使输入功率最小时,由于与通过使平均切向力最大化所获得的输入功率降低相比,该解决方案似乎仅收敛于局部最小值。瞬变后,两个控件都收敛到大约相同大小但符号相反的时不变俯仰角。在不受控制的情况下,观察到的捕捉捕获现象需要较大的输入功率。在主动控制下,尾流捕获的消失以及流场中随之而来的变化共同导致所需输入功率的降低。

著录项

  • 作者

    Tsai, Hsieh-Chen.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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