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Performance analysis of wells turbine blades using the entropy generation minimization method

机译:熵最小生成法的水轮机叶片性能分析

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摘要

Wells turbine concept depends on utilizing the oscillating air column generated over marine waves to drive a turbine. As a matter of fact, previous researches on the performance analysis of such turbine were based on the first law of thermodynamics only. Nonetheless, the actual useful energy loss cannot be completely justified by the first law because it does not distinguish between the quantity and the quality of energy. Therefore, the present work investigates the second law efficiency and entropy generation characteristics around different blades that are used in Wells turbine under oscillating flow conditions. The work is performed by using time-dependent CFD models of different NACA airfoils under sinusoidal flow boundary conditions. Numerical investigations are carried out for the incompressible viscous flow around the blades to obtain the entropy generation due to viscous dissipation. It is found that the value of second law efficiency of the NACA0015 airfoil blade is higher by approximately 1.5% than the second law efficiency of the NACA0012, NACA0020 and NACA0021 airfoils. Furthermore, it is found that the angle of attack radically affects the second law efficiency and such effect is quantified for NACA0015 for angle of attack ranging from -15° to 25°.
机译:钻井涡轮机的概念取决于利用海浪产生的振荡气柱来驱动涡轮机。实际上,以前对这种涡轮机性能分析的研究仅基于热力学第一定律。但是,第一定律不能完全证明实际的有用能量损失,因为它不能区分能量的数量和质量。因此,本工作研究了韦尔斯涡轮在振荡流动条件下使用的不同叶片周围的第二定律效率和熵产生特性。通过在正弦流边界条件下使用不同NACA机翼的时变CFD模型来完成这项工作。对叶片周围不可压缩的粘性流进行了数值研究,以获得由于粘性耗散而产生的熵。发现NACA0015翼型叶片的第二定律效率的值比NACA0012,NACA0020和NACA0021翼型的第二定律效率的值高约1.5%。此外,发现攻角从根本上影响第二定律效率,并且对于攻角在-15°至25°范围内的NACA0015,量化了这种效果。

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