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Numerical investigation of optimal yaw misalignment and collective pitch angle for load imbalance reduction of rigid and flexible HAWT blades under sheared inflow

机译:刚性和挠性HAWT叶片在剪切流作用下减小偏航角和总俯仰角的数值研究

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摘要

Wind shear can strongly influence the cyclic loading on horizontal axis wind turbine blades. These load fluctuation causes a variation of power output and introduces fatigue load. Thus, individual pitch controllers have been developed that are focused on the load alleviations, however, comes at a price of actuator requirements for control. Moreover, these controllers are unable to apply to already existing wind turbines with active yaw and collective pitch control system. Therefore, the investigations for minimizing load imbalance through the adjustments of yaw misalignment and collective pitch angle are implemented for the rigid and flexible blades under the sheared inflow. By applying the optimization process based on a sequential quadratic programming approach, the optimal yaw and pitch angle can be estimated. Then, the numerical simulations for predicting the performance are performed. The results showed that the fluctuation range of the root flapwise bending moment for the rigid blades can be reduced by 84.5%, whereas the vibratory bending moment for the flexible blades can be reduced by up to approximately 82.4% in the best case. Therefore, the magnitudes of load imbalance can be minimized by the adjustment of the optimal yaw misalignment and collective pitch angle without any power loss. (C) 2015 Elsevier Ltd. All rights reserved.
机译:风切变会严重影响水平轴风力涡轮机叶片上的周期性载荷。这些负载波动导致功率输出的变化并引入疲劳负载。因此,已经开发了专注于减轻负载的单个变桨控制器,但是,这是以致动器对控制的要求为代价的。而且,这些控制器不能应用于已经具有主动偏航和集中变桨控制系统的风力涡轮机。因此,针对在剪切流作用下的刚性和柔性叶片,进行了通过偏航角偏移和总俯仰角的调整来最小化负载不平衡的研究。通过应用基于顺序二次规划方法的优化过程,可以估算出最佳偏航角和俯仰角。然后,执行用于预测性能的数值模拟。结果表明,在最佳情况下,刚性叶片的根部襟翼弯曲力矩的波动范围可以减小84.5%,而柔性叶片的根部弯曲力矩的波动范围最多可以减小约82.4%。因此,可以通过调整最佳偏航角未对准和总俯仰角来最小化负载不平衡的大小,而不会造成任何功率损耗。 (C)2015 Elsevier Ltd.保留所有权利。

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