Coherent spanwise structures in turbulent boundary layer over drag-reducing riblets

Shaoqiong Yang , Shan Li , Haiping Tian , Qingyi Wang , Nan Jiang

Transactions of Tianjin University ›› 2015, Vol. 21 ›› Issue (4) : 317 -323.

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Transactions of Tianjin University ›› 2015, Vol. 21 ›› Issue (4) : 317 -323. DOI: 10.1007/s12209-015-2526-5
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Coherent spanwise structures in turbulent boundary layer over drag-reducing riblets

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Abstract

The time series of velocity vector fields and their statistics in the turbulent boundary layer(TBL)over riblets and smooth plate were measured by utilizing a time-resolved particle image velocimetry(TR-PIV)system. The mean velocity profiles of the TBL were compared in the case of 0.13 m/s(the riblets with dimensionless peak-to-peak spacing being approximately s + ≈21)and 0.19 m/s( s + ≈28)for these two kinds of plates, respectively. Two kinds of drag-reducing velocity profiles were illustrated and analyzed. Then the spatial topologies of the physical vorticity for the coherent spanwise structures were detected and extracted at the fourth scale by utilizing an improved quadrant splitting method(IQSM). Results revealed that nearly 6.17%, and 10.73%, of a drag reduction was separately achieved over the riblets surface. Besides, it was visualized that the drag-reduction was acquired by the riblets influencing the bursting ejection(Q2)and sweep(Q4)events of the coherent spanwise vortex structures, the Q4 events in particular. Based on such two drag-reducing cases of the riblets, lastly, a simplified Kelvin-Helmholtz-like linear instability model proposed initially by García-Mayoral and Jiménez(2011)has been discussed. It is still difficult to establish with certainty whether the observed phenomena, the appearance of coherent spanwise structures found at around or below y + ≈20 in both cases of s + ≈21 and s + ≈28 and their topological changes, were consequences or causes of the breakdown of the viscous regime. We prefer to suggest that the interactions between those structures and the riblets, which contain the coherent spanwise structures extending toward the wall and penetrating into the riblet grooves, are the root causes.

Keywords

turbulent boundary layer / passive flow control / drag reduction / Kelvin-Helmholtz-like instability / coherent structure / riblet / particle image velocimetry

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Shaoqiong Yang, Shan Li, Haiping Tian, Qingyi Wang, Nan Jiang. Coherent spanwise structures in turbulent boundary layer over drag-reducing riblets. Transactions of Tianjin University, 2015, 21(4): 317-323 DOI:10.1007/s12209-015-2526-5

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References

[1]

Leschziner M A, Choi H, Choi K S. Flow-control approaches to drag reduction in aerodynamics: Progress and prospects[J]. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 2011, 369(1940): 1349-1351.

[2]

Westerweel J, Elsinga G E, Adrian R J. Particle image velocimetry for complex and turbulent flows[J]. Annual Review of Fluid Mechanics, 2012, 45: 409-436.

[3]

Vukoslavcevic P, Wallace J M, Balint J L. Viscous drag reduction using streamwise-aligned riblets[J]. AIAA Journal, 1992, 30(4): 1119-1122.

[4]

Suzuki Y, Kasagi N. Turbulent drag reduction mechanism above a riblet surface[J]. AIAA Journal, 1994, 32(9): 1781-1790.

[5]

Lee S J, Lee S H. Flow field analysis of a turbulent boundary layer over a riblet surface[J]. Experiments in Fluids, 2001, 30(2): 153-166.

[6]

Park S R, Wallace J M. Flow alteration and drag reduction by riblets in a turbulent boundary layer[J]. AIAA Journal, 1994, 32(1): 31-38.

[7]

Choi H, Moin P, Kim J. Direct numerical simulation of turbulent flow over riblets[J]. Journal of Fluid Mechanics, 1993, 255: 503-539.

[8]

Chu D C, Karniadakis G E. A direct numerical simulation of laminar and turbulent flow over riblet-mounted surfaces[J]. Journal of Fluid Mechanics, 1993, 250: 1-42.

[9]

Goldstein D, Handler R, Sirovich L. Direct numerical simulation of turbulent flow over a modelled riblet-covered surface[J]. Journal of Fluid Mechanics, 1995, 302: 333-376.

[10]

Goldstein D B, Tuan T C. Secondary flow induced by riblets[J]. Journal of Fluid Mechanics, 1998, 363: 115-151.

[11]

El-Samni O A, Chun H H, Yoon H S. Drag reduction of turbulent flow over thin rectangular riblets[J]. International Journal of Engineering Science, 2007, 45(2-8): 436-454.

[12]

Dean B, Bhushan B. Shark-skin surfaces for fluid-drag reduction in turbulent flow: A review[J]. Advances in Mechanics, 2012, 42(6): 821-836.

[13]

Zhao X, He G W. Space-time correlations of fluctuating velocities in turbulent shear flows[J]. Physical Review EStatistical, Nonlinear, and Soft Matter Physics, 2009, 79(4): 046316.

[14]

García-Mayoral R, Jiménez J. Hydrodynamic stability and breakdown of the viscous regime over riblets[J]. Journal of Fluid Mechanics, 2011, 678: 317-347.

[15]

García-Mayoral R, Jiménez J. Drag reduction by riblets[J]. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 2011, 369(1940): 1412-1427.

[16]

García-Mayoral R, Jiménez J. Scaling of turbulent structures in riblet channels up to Re r≈550[J]. Physics of Fluids, 2012, 24(10): 105101

[17]

Yang S Q, Choi K S, Jiang N. Flow visualizations on Kelvin-Helmholtz-like roller structures in turbulent boundary layer over riblets[J]. Chinese Journal of Theoretical and Applied Mechanics, 2015, 47(3): 529-533.

[18]

Liu W, Jiang N. Three kinds of velocity structure function in turbulent flows[J]. Chinese Physics Letters, 2004, 21(10): 1989-1992.

[19]

Tang Z Q, Jiang N. TR PIV experimental investigation on bypass transition induced by a cylinder wake[J]. Chinese Physics Letters, 2011, 28(5): 54702

[20]

Yang S Q, Jiang N. Tomographic TR-PIV measurement of coherent structure spatial topology utilizing an improved quadrant splitting method[J]. Science China: Physics, Mechanics and Astronomy, 2012, 55(10): 1863-1872.

[21]

Tang Z Q, Jiang N, Schröder A, et al. Tomographic PIV investigation of coherent structures in a turbulent boundary layer flow[J]. Acta Mechanica Sinica(English Series), 2012, 28(3): 572-582.

[22]

Li S, Yang S Q, Jiang N. TRPIV measurement of dragreduction in the turbulent boundary layer over riblets plate[J]. Chinese Journal of Theoretical and Applied Mechanics, 2013, 45(2): 183-192.

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