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DEVELOPMENT AND VALIDATION OF MULTIBODY MODEL OF WIND ENERGY SYSTEM

机译:风能系统多体模型的开发与验证

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The wind energy is observed as an essential and powerful energy resource for the socio-economic development. It is proposed that the small-size wind turbines can demonstrate the innovative solution for the wind energy conversion for low speed regions. An innovative design, control, and monitoring processes require accurate and validated dynamic model of such turbines. In this investigation, the flexible multibody dynamics approach is used to extend the traditional method of dynamic modeling of small-size wind turbines. A systematic approach is developed based on Floating Frame of Reference formulation (FFR) that includes the dynamics of the flexible blades as well as the aerodynamic loads. Beam element is used to model the blade structure with variable twist angle and the corresponding generalized aerodynamic forces are developed. In order to counteract the effect of the geometric stiffening, the coupling terms in the expression of axial strain energy are taken into account. An experimental test-rig equipped with wind generator is used for the FFR model validation. The equipment gives a maximum discharge flow of 10 [m/s] in a 500 [mm] diameter duct. The dynamic effect of the twist angle of 30 [cm] diameter of rotor blades is studied based on the measured rotor speed of the wind turbine. High sensitivity multi-axis accelerometers are used to measure the induced vibration and the data points are collected via data acquisition card of 16 bit resolution. The comparison of experimental results and numerical solution shows a very good agreement and consequently the wind turbine model obtained is suitable for stress analysis, structural and control design. It is concluded that the FFR formulation is best suited for large rotation and small deformation problems, which coincide with the operational conditions of small-size wind energy systems.
机译:风能被认为是社会经济发展必不可少的强大能源。建议小型风力涡轮机可以演示低速地区风能转换的创新解决方案。创新的设计,控制和监视过程需要此类涡轮机的准确且经过验证的动态模型。在这项研究中,灵活的多体动力学方法用于扩展传统的小型风力涡轮机动力学建模方法。基于浮动参考系公式(FFR)开发了一种系统方法,该方法包括柔性叶片的动力学以及气动载荷。梁元件被用来模拟具有可变扭转角的叶片结构,并开发了相应的广义空气动力。为了抵消几何刚度的影响,考虑了轴向应变能表达中的耦合项。 FFR模型验证使用配备有风力发电机的实验性试验台。该设备在直径为500 [mm]的管道中提供的最大排出流量为10 [m / s]。基于测得的风力涡轮机转速,研究了转子叶片直径为30 [cm]的扭曲角的动态影响。高灵敏度多轴加速度计用于测量感应振动,并通过16位分辨率的数据采集卡收集数据点。实验结果与数值解的比较表明,该方法具有很好的一致性,因此所获得的风力发电机模型适用于应力分析,结构设计和控制设计。结论是,FFR公式最适合于大旋转和小变形问题,这与小型风能系统的运行条件相吻合。

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