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Multibody Dynamics of a Floating Wind Turbine Considering the Flexibility Between Nacelle and Tower

机译:考虑机舱和塔的灵活性的浮动风力涡轮机的多体动力学

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Stability and dynamic modeling of the floating wind turbine (FWT) is a crucial challenge in designing of the type of structures. In this paper, the tension leg platform (TLP) type FWT is modeled as a multibody system considering the flexibility between the nacelle and tower. The flexibility of the FWT is modeled as a torsional spring and damper. It has 6 degrees of freedom (DOFs) related to the large-amplitude translation and rotation of the tower and 4 DOFs related to the relative rotation between the rotor-nacelle assembly and the tower. First, the nonlinear equations of motion are derived by the theory of momentum cloud based on the conservation of momentum. Then, the equations of motion are solved and the system is simulated in MATLAB. Moreover, the effect of flexibility between the nacelle and tower is investigated via the dynamic response. The stability of the system in three different environmental conditions is studied. Finally, the spring and damping coefficients for the system response to get near to instability are determined, by which the critical region is defined. The simulation results demonstrate the importance of the flexibility between the nacelle and tower on the overall behavior of the system and its stability.
机译:浮动风力涡轮机(FWT)的稳定性和动态建模是在设计结构类型方面的关键挑战。在本文中,考虑到机舱和塔之间的灵活性,张力腿平台(TLP)型FWT被建模为多体体系。 FWT的灵活性被建模为扭转弹簧和阻尼器。它具有6度自由(DOF)与塔的大幅度平移和旋转以及与转子 - 机舱组件和塔架之间的相对旋转有关的4个DOF。首先,基于动量守恒,通过动量云理论来源的非线性方程。然后,解决运动方程,并在MATLAB中模拟系统。此外,通过动态响应研究了机舱和塔之间的柔韧性的效果。研究了系统在三种不同的环境条件下的稳定性。最后,确定对系统响应的弹簧和阻尼系数近于不稳定性,通过该系统确定临界区域。仿真结果表明了机舱和塔之间灵活性对系统的整体行为及其稳定性的重要性。

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