首页> 外文会议>ASME international conference on ocean, offshore and arctic engineering >DYNAMIC RESPONSE ANALYSIS ON THE INTERACTION BETWEEN FLEXIBLE BODIES OF LARGE-SIZED WIND TURBINE UNDER RANDOM WIND LOADS
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DYNAMIC RESPONSE ANALYSIS ON THE INTERACTION BETWEEN FLEXIBLE BODIES OF LARGE-SIZED WIND TURBINE UNDER RANDOM WIND LOADS

机译:随机风荷载下大型风轮机弹性体相互作用的动力响应分析

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As the output power of wind turbine increasingly gets larger, the structural flexibility of elastic bodies, such as rotor blades and tower, gets more significant owing to larger structural size. In that case, the dynamic interaction between these flexible bodies become more profound and may significantly impact the dynamic response of the whole wind turbine. In this study, the integrated model of a 5-MW wind turbine is developed based on the finite element simulations so as to carry out dynamic response analysis under random wind load, in terms of both time history and frequency spectrum, considering the interactions between the flexible bodies. And, the load evolution along its transmitting route and mechanical energy distribution during the dynamic response are examined. And, the influence of the stiffness and motion of the supporting tower on the integrated system is discussed. The basic dynamic characteristics and responses of 3 models, i.e. the integrated wind turbine model, a simplified turbine model (blades, hub and nacelle are simplified as lumped masses) and a rigid supported blade, are examined, and their results are compared in both time and frequency domains. Based on our numerical simulations, the dynamic coupling mechanism are explained in terms of the load transmission and energy consumption. It is found that the dynamic interaction between flexible bodies is profound for wind turbine with large structural size, e.g. the load and displacement of the tower top gets around 15% larger mainly due to the elastic deformation and dynamic behaviors (called inertial-elastic effect here) of the flexible blade; On the other hand, the elastic deformation may additionally consume around 10% energy (called energy-consuming effect) coming from external wind load and consequently decreases the displacement of the tower. In other words, there is a competition between the energy-consuming effect and inertial-elastic effect of the flexible blade on the overall dynamic response of the wind turbine. And similarly, the displacement of the blade gets up to 20% larger because the elastic-dynamic behaviors of the tower principally provides a elastic and moving support which can significantly change the natural mode shape of the integrated wind turbine and decrease the natural frequency of the rotor blade.
机译:随着风力涡轮机的输出功率越来越大,由于更大的结构尺寸,诸如转子叶片和塔架的弹性体的结构柔性变得更加重要。在那种情况下,这些柔性体之间的动态相互作用变得更加深刻,并且可能显着影响整个风力涡轮机的动态响应。在这项研究中,基于有限元模拟,开发了一个5兆瓦风力发电机组的集成模型,以便在考虑时间轴和频谱的同时,考虑风轮机之间的相互作用,在随机风荷载下进行动态响应分析。灵活的身体。并且,研究了在动态响应过程中沿其传递路径的载荷演化和机械能分布。并且,讨论了支撑塔的刚度和运动对集成系统的影响。检验了三种模型的基本动态特性和响应,即集成风力涡轮机模型,简化的涡轮机模型(叶片,轮毂和机舱简化为集总质量)和刚性支撑叶片,并比较了两者的结果和频域。基于我们的数值模拟,从载荷传递和能量消耗的角度解释了动态耦合机制。已经发现,柔性体之间的动态相互作用对于具有大的结构尺寸的风力涡轮机来说是深远的,例如。塔顶的载荷和位移增大约15%,这主要是由于柔性叶片的弹性变形和动态行为(在此称为惯性弹性效应)所致;另一方面,弹性变形可能会额外消耗大约10%的来自外部风荷载的能量(称为能量消耗效应),因此会降低塔架的位移。换句话说,在柔性叶片的能量消耗效应和惯性弹性效应之间,风力涡轮机的整体动力响应之间存在竞争。同样,叶片的位移也增加了20%,这是因为塔的弹性动力特性主要提供了弹性和运动的支撑,可以显着改变集成风力发电机的自然模式形状并降低其固有频率。转子叶片。

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