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The aerostatic response and stability performance of a wind turbine tower-blade coupled system considering blade shutdown position

机译:考虑叶片停机位置的风轮机塔-叶片耦合系统的空气静力响应和稳定性能

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摘要

bIn the strong wind shutdown state, the blade position significantly affects the streaming behavior and stability performance of wind turbine towers. By selecting the 3M horizontal axis wind turbine independently developed by Nanjing University of Aeronautics and Astronautics as the research object, the CFD method was adopted to simulate the flow field of the tower-blade system at eight shutdown positions within a single rotation period of blades. The effectiveness of the simulation method was validated by comparing the simulation results with standard curves. In addition, the dynamic property, aerostatic response, buckling stability and ultimate bearing capacity of the wind turbine system at different shutdown positions were calculated by using the finite element method. On this basis, the influence regularity of blade shutdown position on the wind-induced response and stability performance of wind turbine systems was derived, with the most unfavorable working conditions of wind-induced buckling failure of this type of wind turbines concluded. The research results implied that within a rotation period of the wind turbine blade, when the blade completely overlaps the tower (Working condition 1), the aerodynamic performance of the system is the poorest while the aerostatic response is relatively small. Since the influence of the structure's geometrical nonlinearity on the system wind-induced response is small, the maximum displacement only has a discrepancy of 0.04. With the blade rotating clockwise, its wind-induced stability performance presents a variation tendency of first-increase-then-decrease. Under Working condition 3, the critical instability wind speed reaches its maximum value, while the critical instability wind speed under Working condition 6 is the smallest. At the same time, the coupling effect between tower and blade leads to a reverse effect which can significantly improve the ultimate bearing capacity of the system. With the reduction of the area of tower shielded by blades, this reverse effect becomes more obvious.
机译:b在强风关闭状态下,叶片位置会显着影响风力涡轮机塔架的流动性能和稳定性能。以南京航空航天大学自主研发的3M水平轴风力发电机为研究对象,采用CFD方法在单个叶片旋转周期内的八个停机位置模拟塔叶片系统的流场。通过将仿真结果与标准曲线进行比较,验证了该仿真方法的有效性。此外,通过有限元方法计算了风力发电机组在不同停机位置的动力特性,静力响应,屈曲稳定性和极限承载力。在此基础上,推导了叶片关闭位置对风力发电机组风致响应和稳定性能的影响规律,得出了此类风力发电机屈曲失效的最不利工作条件。研究结果表明,在风力涡轮机叶片旋转期间,当叶片完全与塔架重叠时(工作条件1),系统的空气动力性能最差,而空气静力响应则相对较小。由于结构的几何非线性对系统风致响应的影响很小,因此最大位移的差异仅为0.04。随着叶片顺时针旋转,其风感稳定性能呈现出先升后降的变化趋势。在工况3下,临界失稳风速达到最大值,在工况6下的临界失稳风速最小。同时,塔架和叶片之间的耦合效应会导致反向效应,从而可以显着提高系统的最终承载能力。随着被叶片屏蔽的塔架面积的减小,这种反向作用变得更加明显。

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