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Conceptual design and hydrodynamic performance of a floating offshore wind turbine cell-spar-buoy support structure

机译:浮动近海风力涡轮机细胞 - 翼型支撑结构的概念设计与流体动力学性能

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On the way to further exploit offshore wind energy, conventional fixed-bottom technology has been limited by the water depth. After the world's first full scale floating wind turbine being installed in the North Sea in 2009, the floating support structure for offshore wind turbines is most likely becoming not only a technically feasible but also an economically viable solution, especially for regions of water depth over 50 meters. However, less attentions have been paid on floating support structure, which is a very important part. Derived from commercialized offshore oil and gas platform of cell spar, a conceptual design of a cell-spar-buoy support structure for NREL 5 MW offshore wind turbine is proposed. In this system, structural type of cells is absorbed for cost reduction while damping configurations are used to optimize the stability of wind turbine. For further hydrodynamic performance estimations, numerical simulations have been performed to compute the response amplitude operators (RAOs) and the wave response motions, which are the key factors of the preliminary design. Meanwhile, the motion performance of the platform with mooring system in operating conditions and mooring line tensions under the 50 years return period storm survival condition in the South China Sea was calculated in time domain. The results showing excellent motion performance of cell-spar-buoy.
机译:在进一步利用海上风能的途中,传统的固定底部技术受到水深的限制。在2009年世界上安装在北海的世界第一个全面浮动风力涡轮机之后,海上风力涡轮机的浮动支撑结构最可能变得非常可行,而且变得一种经济上可行的解决方案,特别是水深超过50的区域米。然而,在浮动支持结构上支付了较少的关注,这是一个非常重要的部分。提出了一种来自商业化的海上石油和细胞垫的天然气平台,提出了NREL 5 MW海上风力涡轮机的细胞 - 脚轮浮标支撑结构的概念设计。在该系统中,在阻尼配置的同时吸收结构类型的细胞,而阻尼配置用于优化风力涡轮机的稳定性。为了进一步的流体动力学性能估计,已经执行了数值模拟以计算响应幅度运算符(RAO)和波浪响应运动,这是初步设计的关键因素。同时,在南海50年返回时期风暴生存条件下,在运行条件下与系泊系统进行系泊系统的平台的运动性能,在南海的时域下载。结果表明了细胞间浮标的优异运动性能。

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