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Design and prediction hydrodynamic performance of horizontal axis micro-hydrokinetic river turbine

机译:水平轴微动水力水轮机水动力性能设计与预测

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This paper developed a horizontal axis micro-hydrokinetic river turbine (HAMHRT) technology for local renewable energy applications. Firstly, a hydrofoil shape was selected, and the hydrodynamic and cavitation characteristics of the hydrofoils were analyzed, then the chord length and twist angle for different blade location were optimal, and finally a 2 m diameter with 3-bladed HAMHRT was designed. Then, the numerical computational model of a hydrodynamic analysis for the prototype HAMHRT was carried out to determine force distributions along the blade under normal and extreme operating conditions, including the non-designed conditions, different tip speed ratios as well as the different pitch angles. The rotor has a maximum efficiency of 25.2% at the river current speed of 0.8 m/s, pitch angle of 4 degrees and TSR of 6. It is ensured that the rotor performance does not deteriorate in a relative large scope even if the current speed changes or if the TSR deviates from the design values. Finally, the unsteady behaviors of hydrodynamics of this HAMHRT were analyzed farther. From the output performance of this turbine, the designed rotor was found to have stable power output and good efficiency at current speeding conditions. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文开发了一种适用于当地可再生能源应用的水平轴微流体动力学河轮机(HAMHRT)技术。首先选择水翼形状,分析水翼的水动力和空化特性,然后根据叶片位置对弦长和扭转角进行优化,最后设计出直径为2 m的三叶HAMHRT。然后,针对原型HAMHRT进行了流体动力学分析的数值计算模型,以确定在正常和极端工作条件下(包括非设计条件,不同的叶尖速比以及不同的桨距角)沿着叶片的力分布。在河水流速为0.8 m / s,俯仰角为4度且TSR为6时,转子的最大效率为25.2%。即使在当前速度下,转子的性能也不会在较大范围内下降。更改或TSR偏离设计值。最后,进一步分析了该HAMHRT的流体动力学非稳态行为。从该涡轮机的输出性能来看,发现设计的转子在当前超速条件下具有稳定的功率输出和良好的效率。 (C)2018 Elsevier Ltd.保留所有权利。

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