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The Physics of H-Darrieus Turbine Starting Behavior

机译:H-Darrieus涡轮启动行为的物理学

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This paper provides a resolution to the contradictory accounts of whether or not the Dar-rieus turbine can self-start. The paper builds on previous work proposing an analogy between the aerofoil in Darrieus motion and flapping-wing flow mechanisms. This analogy suggests that unsteadiness could be exploited to generate additional thrust and that this unsteady thrust generation is governed by rotor geometry. Rotors which do not exploit this unsteadiness will not self-start. To confirm the hypothesis, unsteady effects were measured and then incorporated into a time-stepping rotor analysis and compared to experimental data for self-starting wind turbines. When unsteady effects were included, the model was able to predict the correct starting behavior. The fundamental physics of starting were also studied and parameters that govern the generation of unsteady thrust were explored, namely, chord-to-diameter and blade aspect ratios (ARs). Further simulation showed that the Darrieus rotor is prone to be locked in a deadband where the thrust is not continuous around a blade rotation. This discrete thrust is caused by the large variation in incidence angle during startup, making the Darrieus blade ineffective during part of the rotation. The results show that unsteady thrust can be promoted through an appropriate selection of blade aspect and chord-to-diameter ratios, therefore self-starting rotors may be designed. A new definition of self-starting is also proposed.
机译:本文为Dar-rieus涡轮能否自启动的矛盾解释提供了解决方案。该论文以先前的工作为基础,提出了Darrieus运动中的机翼与襟翼流动机制之间的类比。这种类比表明,可以利用不稳定来产生附加推力,并且这种不稳定推力的产生是由转子的几何形状控制的。不利用这种不稳定的转子将不会自启动。为了证实该假设,对不稳定影响进行了测量,然后将其纳入时间步进转子分析中,并与自启动风力涡轮机的实验数据进行了比较。当包括不稳定影响时,该模型能够预测正确的启动行为。还研究了启动的基本物理原理,并研究了控制非恒定推力生成的参数,即弦长与直径以及叶片长宽比(AR)。进一步的模拟显示,Darrieus转子易于锁定在死区中,在死区中推力在叶片旋转附近不连续。这种离散的推力是由于启动过程中入射角的较大变化而引起的,这使得Darrieus叶片在部分旋转过程中无效。结果表明,通过适当选择叶片长宽比和弦径比,可以促进非恒定推力,因此可以设计自启动转子。还提出了自启动的新定义。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2016年第6期|062605.1-062605.11|共11页
  • 作者单位

    Renewable Energy Laboratory, National Metal and Materials Technology Center (MTEC), Pathum Thani 12120, Thailand;

    School of Engineering and Computing Sciences, University of Durham, South Road, Durham DH1 3LE, UK;

    Faculty of Engineering and Environment, Northumbria University, Newcastle Upon Tyne NE1 8ST, UK;

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