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Impulse Based Substructuring for Coupling Offshore Structures and Wind Turbines in Aero-Elastic Simulations

机译:气动弹性模拟中基于脉冲的水下结构与风力涡轮机的耦合

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In order to achieve the goal of 20% renewable energy in 2020, as set by the European Union, large offshore wind farms are either under construction or in development throughout Europe. As many of the "easy" locations are already under development, offshore wind farms are moving further offshore into deeper waters, which results in a set of new technical challenges. One of these challenges comes from the fact that the traditional solution of placing monopile-foundations is possibly no longer sufficient to anchor the latest generation of wind turbines to the seabed. This requires that different and more complex types of offshore structures, such as jackets, are used as foundations. Appropriate models for these more complex foundations, are often not available in aero-elastic simulation software. The current design practices, such as equivalent interface stiffness and mass matrices for the offshore structure, could lead to errors in the coupled simulations due to dynamics that are not modeled. In this paper an alternative method, Impulse Based Substructuring, is proposed to efficiently and accurately include the dynamic behavior of the support structure in the load simulations. The method is demonstrated using the NREL 5MW reference turbine and UpWind reference jacket. It is shown that the method is able to accurately compute the coupled dynamics and requires only a number of small augmentations to the standard Newmark time integration scheme for nonlinear finite element models.
机译:为了实现欧盟设定的2020年可再生能源占20%的目标,整个欧洲范围内的大型海上风电场正在建设中或正在开发中。由于许多“便利”的地点已经在开发中,海上风电场正在向更深的海域进一步向海上转移,这带来了一系列新的技术挑战。这些挑战之一来自以下事实:放置单桩基础的传统解决方案可能不再足以将最新一代的风力涡轮机锚固到海底。这就要求将不同和更复杂类型的海上结构(例如夹克)用作基础。这些更复杂基础的合适模型通常在气动弹性仿真软件中不可用。当前的设计实践(例如,海上结构的等效界面刚度和质量矩阵)可能会因未建模的动力学而导致耦合模拟中的错误。在本文中,提出了另一种方法,即基于脉冲的子结构,以在载荷模拟中有效而准确地包括支撑结构的动态行为。使用NREL 5MW参考涡轮和UpWind参考夹套演示了该方法。结果表明,该方法能够准确地计算耦合动力学,并且只需要对非线性有限元模型的标准Newmark时间积分方案进行少量的扩充。

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