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More accurate aeroelastic wind-turbine load simulations using detailed inflow information

机译:使用详细的流入信息更精确的空气弹性风力涡轮机负载模拟

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In this paper, inflow information is extracted from a measurement database and used for aeroelastic simulations to investigate if using more accurate inflow descriptions improves the accuracy of the simulated wind-turbine fatigue loads. The inflow information is extracted from nearby meteorological masts (met masts) and a blade-mounted five-hole pitot tube. The met masts provide measurements of the inflow at fixed positions some distance away from the turbine, whereas the pitot tube measures the inflow while rotating with the rotor. The met mast measures the free-inflow velocity; however the measured turbulence may evolve on its way to the turbine, pass beside the turbine or the mast may be in the wake of the turbine. The inflow measured by the pitot tube, in comparison, is very representative of the wind that acts on the turbine, as it is measured close to the blades and also includes variations within the rotor plane. Nevertheless, this inflow is affected by the presence of the turbine; therefore, an aerodynamic model is used to estimate the free-inflow velocities that would have occurred at the same time and position without the presence of the turbine. The inflow information used for the simulations includes the mean wind speed field and trend, the turbulence intensity, the wind-speed shear profile, atmospheric stability-dependent turbulence parameters, and the azimuthal variations within the rotor plane. In addition, instantaneously measured wind speeds are used to constrain the turbulence. It is concluded that the period-specific turbulence intensity must be used in the aeroelastic simulations to make the range of the simulated fatigue loads representative for the range of the measured fatigue loads. Furthermore, it is found that the one-to-one correspondence between the measured and simulated fatigue loads is improved considerably by using inflow characteristics extracted from the pitot tube instead of using the met-mast-based sensors as input for the simulations. Finally, the use of pitot-tube-recorded wind speeds to constrain the inflow turbulence is found to significantly decrease the variation of the simulated loads due to different turbulence realizations (seeds), whereby the need for multiple simulations is reduced.
机译:在本文中,从测量数据库中提取流入信息,并用于气动弹性模拟,以研究使用更准确的流入描述来提高模拟风力涡轮机疲劳负载的准确性。从附近的气象桅杆(Met Masts)和刀片安装的五孔皮托管中提取流入信息。符合桅杆在远离涡轮机的距离远离涡轮机的固定位置提供测量,而皮特管在用转子旋转时测量流入。梅桅杆测量自由流入速度;然而,测量的湍流可以在其前往涡轮机的途中演变,通过涡轮机旁边或桅杆可以在涡轮机之后。相比之下,由皮托管测量的流入非常代表在涡轮机上作用在涡轮机上的风,因为它靠近刀片,并且还包括转子平面内的变化。然而,这种流入受涡轮机存在的影响;因此,空气动力学模型用于估计在不存在涡轮机的情况下在同一时间和位置发生的自由流入速度。用于模拟的流入信息包括平均风速场和趋势,湍流强度,风速剪切曲线,大气稳定依赖性湍流参数,以及转子平面内的方位角变化。另外,瞬时测量的风速用于约束湍流。得出结论是,必须在空气弹性模拟中使用时间特异性湍流强度,以使模拟疲劳载荷的范围代表测量的疲劳负荷的范围。此外,发现通过使用从皮托管中提取的流入特性而不是使用基于Met-MAST的传感器作为模拟的输入,显着地改善了测量和模拟疲劳负载之间的一对一对应关系。最后,发现使用皮特管记录的风速来约束流入湍流,从而显着降低由于不同的湍流实现(种子)而显着降低模拟载荷的变化,从而降低了对多种模拟的需求。

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