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Optimal blade shape of a modified Savonius turbine using an obstacle shielding the returning blade

机译:改进型Savonius涡轮机的最佳叶片形状,使用障碍物屏蔽返回叶片

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摘要

Due to the worldwide energy crisis, research and development activities in the field of renewable energy have been considerably increased in many countries. Wind energy is becoming particularly important. Although considerable progress have already been achieved, the available technical design is not yet adequate to develop reliable wind energy converters for conditions corresponding to low wind speeds and urban areas. The Savonius turbine appears to be particularly promising for such conditions, but suffers from a poor efficiency. The present study considers a considerably improved design in order to increase the output power of a classical Savonius turbine. In previous works, the efficiency of the classical Savonius turbine has been increased by placing in an optimal manner an obstacle plate shielding the returning blade. The present study now aims at improving further the output power of the Savonius turbine as well as the static torque, which measures the self-starting capability of the turbine. In order to achieve both objectives, the geometry of the blade shape (skeleton line) is now optimized in presence of the obstacle plate. Six free parameters are considered in this optimization process, realized by coupling an in-house optimization library (OPAL, relying in the present case on Evolutionary Algorithms) with an industrial flow simulation code (ANSYS-Fluent). The target function is the output power coefficient. Compared to a standard Savonius turbine, a relative increase of the power output coefficient by almost 40% is finally obtained at λ - 0.7. The performance increase exceeds 30% throughout the useful operating range. Finally, the static torque is investigated and found to be positive at any angle, high enough to obtain self-starting conditions.
机译:由于世界范围内的能源危机,许多国家在可再生能源领域的研发活动已大大增加。风能变得尤为重要。尽管已经取得了相当大的进步,但是可用的技术设计仍不足以针对与低风速和城市地区相对应的条件开发可靠的风能转换器。 Savonius涡轮机在这种条件下似乎特别有前途,但效率低下。本研究考虑了一种显着改进的设计,以增加经典Savonius涡轮机的输出功率。在以前的工作中,经典的Savonius涡轮机的效率已通过以最佳方式放置遮挡返回叶片的障碍板来提高。现在的研究旨在进一步提高Savonius涡轮机的输出功率以及静态扭矩,该扭矩测量了涡轮机的自启动能力。为了实现这两个目标,现在在存在障碍板的情况下优化了叶片形状(骨架线)的几何形状。在此优化过程中考虑了六个自由参数,这是通过将内部优化库(OPAL,在当前情况下依赖于演化算法)与工业流程模拟代码(ANSYS-Fluent)耦合实现的。目标函数是输出功率系数。与标准的Savonius涡轮机相比,最终在λ-0.7时功率输出系数几乎增加了40%。在整个有用的工作范围内,性能提升超过30%。最后,研究了静态转矩,发现该静态转矩在任何角度都为正,足够高以获得自启动条件。

著录项

  • 来源
    《Energy Conversion & Management》 |2011年第1期|p.236-242|共7页
  • 作者单位

    Lab. of Fluid Dynamics and Technical Flows, University of Magdeburg 'Otto von Cuericke', Germany;

    Lab. of Fluid Dynamics and Technical Flows, University of Magdeburg 'Otto von Cuericke', Germany;

    Lab. of Fluid Dynamics and Technical Flows, University of Magdeburg 'Otto von Cuericke', Germany;

    Lab. of Fluid Dynamics and Technical Flows, University of Magdeburg 'Otto von Cuericke', Germany;

  • 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

    savonius rotor; wind energy; optimization; evolutionary algorithms;

    机译:萨沃纽斯转子风能;优化;进化算法;

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