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Enhancement of performance of wave turbine during stall using passive flow control : first and second law analysis

机译:被动流量控制提高失速时波浪轮机的性能:第一与第二定律分析

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摘要

Wells turbine is the most common type of self-rectifying air turbine employed by Oscillating Water Column (OWC) wave energy devices due to its technical simplicity, reliability, and design robustness. Because it subjected to early stall, there were many endeavors to improve the energy extraction performance of Wells turbine within the stall regime. Using the multi suction slots as a passive flow control can help obtaining a delayed stall. Two, three and four suction slots were investigated to improve the performance of Wells turbine in the stall regime. In addition the commonly used first law analysis, the present study utilized an entropy generation minimization method to examine the impact of the multi suction slots method on the entropy generation characteristics around the turbine blade. The turbine blade with optimum suction slots number and location was investigated using the oscillating water system based on the real data from the site. To achieve this purpose, two-dimension numerical models for Wells turbine airfoils under sinusoidal wave flow conditions were built and analyze using (ANSYS FLUENT) solver. It is found that the airfoil with three suction slots located at 40%, 55% and 90% from leading edge in chord percentage give the highest torque coefficient by 26.7% before the stall and 51% after the stall.
机译:井轮机是振荡水柱(OWC)波浪能设备采用的最常见的自整流式空气轮机,因为其技术简单,可靠且设计坚固。由于它处于早期失速状态,因此在失速状态下进行了许多努力来改善韦尔斯涡轮机的能量提取性能。将多个吸入槽用作被动流量控制可以帮助获得延迟的失速。研究了两个,三个和四个吸油口,以提高韦尔斯涡轮在失速状态下的性能。除常用的第一定律分析外,本研究还使用了一种熵产生最小化方法来检验多吸气槽方法对涡轮叶片周围的熵产生特性的影响。根据现场的实际数据,使用振荡水系统对具有最佳吸入槽数量和位置的涡轮叶片进行了研究。为了达到这个目的,建立了正弦波流动条件下的Wells涡轮翼型二维数值模型,并使用(ANSYS FLUENT)求解器进行了分析。结果发现,具有三个吸入槽的翼型位于弦距的前缘的40%,55%和90%处,在失速之前提供最高的扭矩系数,分别为26.7%和51%。

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