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Mechanics of drag reduction by shallow dimples in channel flow

机译:通道流中浅凹痕减少阻力的机理

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Arrays of shallow dimples with depth to diameter ratios of 1.5% and 5% are studied in a turbulent channel flow at Reynolds numbers between 5000 and 35 000. Pressure measurements show that drag reduction of up to 3% is possible. The mechanism of skin friction drag reduction with dimples is the same as that observed for flat surfaces using active methods such as spanwise wall motions or transverse wall jets. The three dimensional dimples introduce streamwise vorticity into the flow which results in spanwise flow components near the wall. The result is that the normal energy cascade to the smaller scales is suppressed, which leads to a reduction in turbulent skin friction drag because of the stabilized flow. Increasing the dimple depth from 1.5% to 5% of its diameter increases the streamwise vorticity introduced, which leads to a greater reduction in skin friction. However, increasing the dimple depth also results in flow separation which increases form drag. The net effect to the total drag depends on the relative dominance between the drag reducing streamwise vorticity and the drag increasing flow separation region. As the Reynolds number increases, the region of flow separation can shrink and result in increasing drag reduction. By understanding the flow physics of drag reduction in dimples, there is opportunity to minimize the form drag by passive contouring of the dimples using non-spherical shapes to optimize the dimple performance. (C) 2015 AIP Publishing LLC.
机译:在雷诺数为5000至35000的湍流通道中,研究了深度与直径之比为1.5%和5%的浅浅酒窝阵列。压力测量结果显示,阻力降低最多可达3%。带有酒窝的减少皮肤摩擦阻力的机理与使用主动方法(如展向壁运动或横向壁射流)在平坦表面上观察到的机理相同。三维凹痕将气流沿涡流引入流中,导致壁附近的展向流流分量。结果是抑制了正常能量级联到较小尺度,这由于稳定的流动而导致湍流的皮肤摩擦阻力减小。将凹坑深度从其直径的1.5%增加到5%,会增加引入的沿流方向的涡流,从而导致更大程度的减少皮肤摩擦。但是,增加凹坑深度也会导致流分离,从而增加阻力。对总阻力的净效应取决于阻力减小的沿流涡旋性和阻力增大的流动分离区域之间的相对优势。随着雷诺数的增加,流分离的区域会缩小,并导致阻力减小。通过了解凹痕减少阻力的流动物理原理,有机会将凹痕被动轮廓化,从而利用非球形形状优化凹痕性能,从而有机会将形状阻力降至最低。 (C)2015 AIP Publishing LLC。

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