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Performance analysis of the airfoil-slat arrangements for hydro and wind turbine applications

机译:用于水轮机和风力涡轮机的机翼板条布置的性能分析

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摘要

Standard airfoils historically used for wind and hydrokinetic turbines had maximum lift coefficients of around 1.3 at stall angles of attack, which is about 12°. At these conditions, the minimum flow velocities to generate electric power were about 7 m/s and 2 m/s for the wind turbine and the hydrokinetic turbine cases, respectively. In this study, NACA4412-NACA6411 slat-airfoil arrangement was chosen for these two cases in order to investigate the potential performance improvements. Aerodynamic performances of these cases were both numerically and experimentally investigated. The 2D and 3D numerical analysis software were used and the optimum geometric and flow conditions leading to the maximum power coefficient or the maximum lift to drag ratio were obtained. The maximum lift to drag ratio of 24.16 was obtained at the optimum geometric and flow parameters. The maximum power coefficient of 0.506 and the maximum torque were determined at the tip speed ratios of 5.5 and 4.0 respectively. The experimental work conducted in a towing tank gave the power coefficient to be 0.47 which is about %7 lower than the numerical results obtained. Hence, there is reasonable agreement between numerical end experimental values. It may be concluded that slat-hydrofoil or airfoil arrangements may be applied in the design of wind and hydrokinetic turbines for electrical power generation in lower wind velocities (3 -4 m/s) and current velocities (about 1 m/s).
机译:过去用于风力涡轮机和水动力涡轮机的标准机翼在失速攻角(约12°)下具有约1.3的最大升力系数。在这些条件下,风力涡轮机和水动力涡轮机的最小发电速度分别约为7 m / s和2 m / s。在本研究中,为这两种情况选择了NACA4412-NACA6411板条翼型布置,以研究潜在的性能改进。对这些案例的空气动力学性能进行了数值和实验研究。使用了2D和3D数值分析软件,并获得了导致最大功率系数或最大升阻比的最佳几何和流动条件。在最佳几何和流量参数下,最大升阻比为24.16。分别以5.5和4.0的齿顶速比确定最大功率系数0.506和最大扭矩。在拖船上进行的实验工作得出的功率系数为0.47,比获得的数值结果低约%7。因此,最终的数值实验值之间存在合理的一致性。可以得出结论,板条-水翼或翼型装置可用于风力和水动力涡轮机的设计中,以较低风速(3-4 m / s)和当前风速(大约1 m / s)发电。

著录项

  • 来源
    《Renewable energy》 |2015年第2期|414-421|共8页
  • 作者单位

    Baskent University, Department of Mechanical Engineering, Ankara, Turkey;

    Baskent University, Department of Mechanical Engineering, Ankara, Turkey;

    Baskent University, Department of Mechanical Engineering, Ankara, Turkey;

    Baskent University, Department of Mechanical Engineering, Ankara, Turkey;

    Gazi University, Faculty of Engineering, Ankara, Turkey;

    Gazi University, Faculty of Engineering, Ankara, Turkey;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Wind turbine; Hydrokinetic turbine; Hydrofoil-slat arrangement; Towing tank; Tip speed ratio;

    机译:风力发电机;流体动力涡轮机;水翼板条布置;牵引箱;尖端速度比;

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