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Combined Structural Optimization and Aeroelastic Analysis of a Vertical Axis Wind Turbine

机译:垂直轴风力机组合结构优化与气动弹性分析

摘要

Floating offshore wind energy poses challenges on the turbine design. A possible solution is vertical axis wind turbines, which are possibly easier to scale-up and require less components (lower maintenance) and a smaller floating structure than horizontal axis wind turbines. This paper presents a structural optimization and aeroelastic analysis of an optimized Troposkein vertical axis wind turbine to minimize the relation between the rotor mass and the swept area. The aeroelastic behavior of the different designs has been analyzed using a modified version of the HAWC2 code with the Actuator Cylinder model to compute the aerodynamics of the vertical axis wind turbine. The combined shape and topology optimization of a vertical axis wind turbine show a minimum mass to area ratio of 1.82 kg/msup2/sup for blades with varying blade sections from a NACA 0040 at the attachment points to a NACA 0015 in the equatorial region. During an aeroelastic analysis of the wind turbine a maximum flapwise deflection of 0.45 m and a maximum edgewise deflection of 0.47 m were found. While the turbine is aeroelastically stable, an oscillation as a result of resonance reduces the fatigue life.
机译:浮动海上风能给涡轮机设计带来了挑战。一种可能的解决方案是垂直轴风力涡轮机,与水平轴风力涡轮机相比,垂直轴风力涡轮机可能更易于按比例放大并且需要更少的组件(维护成本更低)和更小的浮动结构。本文介绍了优化的Troposkein垂直轴风力涡轮机的结构优化和气动弹性分析,以最小化转子质量和后掠面积之间的关系。已使用HAWC2代码的修改版和执行器气缸模型对不同设计的空气弹性行为进行了分析,以计算垂直轴风力涡轮机的空气动力学。垂直轴风力涡轮机的组合形状和拓扑优化显示,对于具有变化的叶片截面(从连接点处的NACA 0040到NACA 0015)的叶片,最小质量与面积之比为1.82 kg / m 2 在赤道地区。在对风轮机进行空气弹性分析时,发现最大风向偏转为0.45 m,最大风向偏转为0.47 m。尽管涡轮机是气动弹性稳定的,但由于共振而产生的振动会缩短疲劳寿命。

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