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Load mitigation for a barge-type floating offshore wind turbine via inerter-based passive structural control

机译:通过基于惯性的被动结构控制减轻驳船式海上浮式风力发电机的负荷

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This paper investigates the application of inerter to a barge-type floating offshore wind turbine for the purpose of mitigating loads of the wind turbine structures induced by wind and wave. An inerter-based structural control system, consisting of a parallel connection of a spring, a damper, and an inerter-based network, is proposed. A nonlinear aeroelastic simulation tool for wind turbines called FAST-SC is employed for evaluating the performances of the inerter-based structural control system. Due to the inefficiency of implementing FAST-SC in optimizing the element parameters (spring stiffnesses, damping coefficients, inertances), a time-efficient parameter optimization method is proposed based on a simplified linear design model, where a mixed performance objective function including the tower-top fore-aft deflection and the TMD working space is minimized with respect to the element parameters. It is shown that there exists a tradeoff between the tower-top fore-aft deflection and the TMD working space. Moreover, numerical simulations based on the nonlinear FAST-SC code show that the overall performance can be improved by using an inerter, except the tower-top fore-aft load and the TMD working space. The inerter-based configurations tend to demand more TMD working space than the system with no inerter. Furthermore, it is demonstrated that the overall performance can be improved while maintaining similar TMD working space as the system with no inerter.
机译:本文研究了惯性器在驳船式浮式海上风力涡轮机上的应用,以减轻风和波浪引起的风力涡轮机结构的载荷。提出了一种基于惯性的结构控制系统,该系统由弹簧,减震器和基于惯性的网络的并联连接组成。风力涡轮机的非线性气动弹性仿真工具FAST-SC用于评估基于惯性的结构控制系统的性能。由于在优化单元参数(弹簧刚度,阻尼系数,惯性)方面实施FAST-SC效率低下,因此提出了一种基于简化线性设计模型的时效参数优化方法,该方法包含塔的混合性能目标函数相对于单元参数,最大的前-后偏转和TMD工作空间最小。结果表明,在塔顶的前后偏转与TMD工作空间之间存在一个折衷。此外,基于非线性FAST-SC代码的数值模拟表明,除了塔顶的前后载荷和TMD工作空间之外,使用惰轮可以提高整体性能。与没有惰性的系统相比,基于惰性的配置往往需要更多的TMD工作空间。此外,证明了在保持与系统无惯性的相似TMD工作空间的同时,可以提高整体性能。

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