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THE PHYSICS OF H-DARRIEUS TURBINE SELF-STARTING CAPABILITY: FLAPPING-WING PERSPECTIVE

机译:H-DARRIEUS涡轮自启动能力的物理特性:襟翼视角

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It has been widely reported that Darrieus turbines cannot self-start and that they require external assistance to accelerate to their operating tip speed ratios. However, recent experiments have shown conclusively that H-Darrieus rotors with fixed-pitch blades that employ a symmetrical aerofoil can reliably self-start in steady controlled environments. Previous attempts have also been made to model the starting characteristics but there still exists a significant discrepancy between the experimental data and model prediction, suggesting that our understanding of this starting characteristic remains weak. The investigation and explanation of the starting characteristics is the focus of this paper. The investigation was made through a careful analysis of aerofoils that undergo Darrieus motion, giving some insights on how the blade experiences different flow conditions and how driving force is developed over the flight path. The analysis reveals that the aerofoil in Darrieus motion is analogous to flapping wing mechanism; the mechanism that fish and birds employ to generate propulsion. The explanation of flow physics and torque development can then be made through a simple pitch-heave concept. The investigation using this concept together with observations of flapping creatures suggests that the key feature that promotes driving torque generation and the ability to self-start is the unsteadiness associated with the rotor. This unsteadiness is related to chord-to-diameter ratio. This, together with blade aspect ratio, and number of blades, is the reason why H-Darrieus turbines that employ a symmetrical aerofoil can self-start.
机译:据广泛报道,达里厄斯(Darrieus)涡轮机无法自启动,并且需要外部协助才能加速至其工作尖端速比。但是,最近的实验表明,带有固定螺距叶片的H-Darrieus转子采用对称翼型,可以在稳定受控的环境中可靠地自启动。以前也曾尝试对启动特性进行建模,但是实验数据与模型预测之间仍然存在显着差异,这表明我们对这种启动特性的理解仍然很薄弱。对启动特性的研究和解释是本文的重点。通过仔细分析经历了Darrieus运动的翼型进行了研究,从而对叶片如何经历不同的流动条件以及在飞行路径上如何产生驱动力提供了一些见识。分析表明,Darrieus运动中的机翼类似于扑翼机构。鱼和鸟用来产生推进力的机制。然后可以通过一个简单的变桨概念来解释流动物理学和扭矩发展。使用该概念进行的调查以及对拍打生物的观察表明,促进驱动扭矩生成和自启动能力的关键特征是与转子相关的不稳定。这种不稳定与弦直径比有关。这以及叶片的长宽比和叶片数量是采用对称翼型的H-Darrieus涡轮机能够自启动的原因。

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