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Alternative energy using Vortex-Induced vibration from turbulent flows: Theoretical and analytical analysis

机译:利用湍流中的涡激振动产生的替代能源:理论和分析分析

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The global demand for continuous and eco-friendly renewable energy as alternative to fossils fuels is large and growing. One viable solution is a hydroelectric-power extraction system based on Vortex Induced Vibration (VIV) from vortex shedding in turbulent flows. The present work focus on capability of VIV phenomenon in generating alternative energy based on theoretical calculation and analytical study. In order to maximize the potential of energy generation, the effects of lock-in phenomenon and different geometries of cylinder were studied. The range of Reynolds numbers (Re) considered was within 1×10 - 3×10 and the cylinder diameters were varied between 0.02-0.06 meters. The increase of Re resulted in higher cylinder velocity thus increasing its power generation rate and efficiency. Maximum power generated was achieved for the largest diameter in a single cylinder application whilst an array system of the smallest diameter cylinder arrangement produced the highest power density. As a single unit of VIV system is insufficient to provide power supply to large application, this VIV application can be installed in multiple units of cylinders in order to generate sufficient power supply. VIV can also be integrated to the current renewable energy application system such as solar, wind and tidal energy.
机译:持续不断且环保的可再生能源替代化石燃料的需求在全球范围内,并且还在不断增长。一种可行的解决方案是基于湍流中涡流脱落的涡流诱导振动(VIV)的水力发电系统。本工作基于理论计算和分析研究,着重研究了VIV现象产生替代能源的能力。为了最大程度地发挥能量的潜力,研究了锁定现象和圆柱体不同几何形状的影响。雷诺数(Re)的范围在1×10-3×10范围内,圆柱直径在0.02-0.06米之间变化。 Re的增加导致气缸速度更高,从而提高了其发电速度和效率。在单缸应用中,最大直径可实现最大功率,而最小直径缸排列的阵列系统可产生最高功率密度。由于单个VIV系统不足以为大型应用程序提供电源,因此该VIV应用程序可以安装在多个气缸单元中,以产生足够的电源。 VIV也可以集成到当前的可再生能源应用系统中,例如太阳能,风能和潮汐能。

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