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Direct numerical simulations of turbulent flows over superhydrophobic surfaces

机译:超疏水表面上湍流的直接数值模拟

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摘要

Direct numerical simulations (DNSs) are used to investigate the drag-reducing performance of superhydrophobic surfaces (SHSs) in turbulent channel flow. SHSs combine surface roughness with hydrophobicity and can, in some cases, support a shear-free air-water interface. Slip velocities, wall shear stresses and Reynolds stresses arc considered for a variety of SHS microfeature geometry configurations at a friction Reynolds number of Re-tau approximate to 180. For the largest microfeature spacing Studied, an average slip velocity over 75% of the bulk velocity is obtained, and the wall shear stress reduction is found to be nearly 40%. The Simulation results suggest that the mean velocity profile near the superhydrophobic wall continues to scale with the wall shear stress but is offset by a slip velocity that increases with increasing microfeature spacing.
机译:直接数值模拟(DNS)用于研究湍流通道中超疏水表面(SHS)的减阻性能。 SHS将表面粗糙度与疏水性结合在一起,并且在某些情况下可以支持无剪切的空气-水界面。考虑到在Re-tau的摩擦雷诺数约为180的情况下,对于各种SHS微特征几何构型,考虑了滑移速度,壁面剪应力和雷诺应力。对于最大的微特征间距,研究表明,平均滑移速度超过整体速度的75%得到的结果是,壁切应力降低了近40%。仿真结果表明,超疏水壁附近的平均速度分布继续随壁切应力而按比例缩放,但被滑移速度抵消,滑移速度随着微特征间距的增加而增加。

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