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Optimization of cycloidal water turbine and the performance improvement by individual blade control

机译:摆线水轮机的优化和单独叶片控制的性能改善

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This paper investigates an advanced vertical axis turbine to enhance power generation from water energy. The turbine, known as a cycloidal water turbine, is a straight-bladed type adopting a cycloidal blade system that actively controls the rotor blades for improved turbine efficiency, according to the operating conditions. These characteristics enable the turbine to self-start and produce high electric power at a low flow speed, or under complex flow conditions. A parametric study has been carried out by CFD analysis, with various characteristics including different number of blades, chord length variations, variety of tip speed ratios, various hydrofoil shapes, and changing pitch and phase angles. Optimal parameters have been determined, and the performance of the turbine has achieved approximately 70% better performance than that of a fixed pitch turbine. An experimental study has also been carried out which shows that the results correlate quite well with the theoretical predictions although the power output was reduced due to the drag forces of the mechanical devices. Another numerical optimization was carried out to improve the rotor performance by adopting an individual blade control method. Controllable pitch angles were employed to maximize the rotor performance at various operating conditions. The optimized result obtained using genetic algorithm and parallel computing, shows an improvement in performance of around 25% compared with the cycloidal motion.
机译:本文研究了一种先进的垂直轴涡轮机,以增强水能发电。该涡轮机称为摆线水轮机,是采用摆线叶片系统的直叶型,该摆线叶片系统根据运行条件主动控制转子叶片以提高涡轮效率。这些特性使涡轮机能够在低流速或复杂流动条件下自启动并产生高功率。通过CFD分析进行了参数研究,其特征包括不同数量的叶片,弦长变化,叶尖速比的变化,水翼形状的变化以及变桨距和相角的变化。确定了最佳参数,并且涡轮机的性能比固定螺距涡轮机的性能提高了约70%。还进行了一项实验研究,该实验研究表明,尽管由于机械设备的拖曳力而导致功率输出降低,但结果与理论预测仍具有很好的相关性。通过采用单独的叶片控制方法,进行了另一个数值优化以提高转子性能。采用可控制的桨距角以在各种工况下最大化转子性能。使用遗传算法和并行计算获得的优化结果显示,与摆线运动相比,性能提高了约25%。

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