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Optimal design of floating substructures for spar-type wind turbine systems

机译:翼梁式风力发电机系统浮式子结构的优化设计

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摘要

The platform and floating structure of spar type offshore wind turbine systems should be designed in order for the 6-DOF motions to be minimized, considering diverse loading environments such as the ocean wave, wind, and current conditions. The objective of this study is to optimally design the platform and substructure of a 3MW spar type wind turbine system with the maximum postural stability in 6-DOF motions as well as the minimum material cost. Therefore, design variables of the platform and substructure were first determined and then optimized by a hydrodynamic analysis. For the hydrodynamic analysis, the body weight of the system was considered, and the ocean wave conditions were quantified to the wave forces using the Morison's equation. Moreover, the minimal number of computation analysis models was generated by the Design of Experiments (DOE), and the design variables of the platform and substructure were finally optimized by using a genetic algorithm with a neural network approximation.
机译:考虑到多种负载环境(例如海浪,风和当前条件),应设计晶石型海上风力涡轮机系统的平台和浮动结构,以使六自由度运动最小化。本研究的目的是优化设计3MW翼梁式风力发电机系统的平台和下部结构,使其在6自由度运动中具有最大的姿态稳定性以及最低的材料成本。因此,首先确定平台和下部结构的设计变量,然后通过流体动力学分析对其进行优化。对于流体动力学分析,考虑了系统的重量,并使用莫里森方程将海浪条件量化为波浪力。此外,通过实验设计(DOE)生成了最少数量的计算分析模型,并最终使用遗传算法和神经网络逼近对平台和子结构的设计变量进行了优化。

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