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Research Article

Characteristics of wall-shear stress fluctuations in shock wave and turbulent boundary layer interaction

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Pages 761-783 | Received 05 Mar 2021, Accepted 25 Aug 2021, Published online: 11 Sep 2021

References

  • Clemens NT, Narayanaswamy V. Low-frequency unsteadiness of shock wave/turbulent boundary layer interactions. Annu Rev Fluid Mech. 2014;46:469–492.
  • Fang J, Zheltovodov AA, Yao YF, et al. On the turbulence amplification in shock-wave/turbulent boundary layer interaction. J Fluid Mech. 2020;897:A32.
  • Bonnet JP. Space-time correlations of wall pressure fluctuations in shock-induced separated turbulent flows. Phys Fluids. 1988;31:2821–2833.
  • Bernardini M, Pirozzoli S, Grasso F. The wall pressure signature of transonic shock/boundary layer interaction. J Fluid Mech. 2011;671:288–312.
  • Grosse S, Schröder W. Wall-shear stress patterns of coherent structures in turbulent duct flow. J Fluid Mech. 2009;633:147–158.
  • Brücker C. Signature of varicose wave packets in the viscous sublayer. Phys Fluids. 2008;20:061701.
  • Colella KJ, Keith WL. Measurements and scaling of wall shear stress fluctuations. Exp Fluids. 2003;34:253–260.
  • Nottebrock B, Geurts KJ, Schroder W. Wall-shear stress measurements in an adverse pressure gradient turbulent boundary layer. 7th AIAA Flow control conference 2014, Report No.: AIAA-2014-2098.
  • Wietrzak A, Lueptow RM. Wall shear stress and velocity in a turbulent axisymmetric boundary layer. J Fluid Mech. 1994;259:191–218.
  • Li YX, Naguib AM, Hudy LM. Two-point measurements of wall shear stress beneath an axisymmetric separating/reattaching flow. AIAA J. 2008;46(10):2649–2652.
  • Jeon S, Choi H, Yoo JY, et al. Space-time characteristics of the wall shear-stress fluctuations in a low-Reynolds number channel flow. Phys Fluids. 1999;11(10):3084–3094.
  • Hu ZW, Morfey CL, Sandham ND. Wall pressure and shear stress spectra from direct numerical simulations of channel flow up to Reτ=1440. AIAA J. 2006;44(7):1541–1549.
  • Daniel CD, Laizet S, Vassilicos JC. Wall shear stress fluctuations: mixed scaling and their effects on velocity fluctuations in a turbulent boundary layer. Phys Fluids. 2017;29:055102.
  • Tong FL, Yu CP, Tang ZG, et al. Numerical studies of shock wave interactions with a supersonic turbulent boundary layer in compression corner: turning angle effects. Comput Fluids. 2017;149:56–69.
  • Tong FL, Li XL, Duan YH, et al. Direct numerical simulation of supersonic turbulent boundary layer subjected to a curved compression ramp. Phys Fluids. 2017;29:125101.
  • Tong FL, Li XL, Yuan XX, et al. Incident shock wave and supersonic turbulent boundary layer interactions near an expansion corner. Comput Fluids. 2020;198:104385.
  • Li XL, Fu DX, Ma YW. Direct numerical simulation of hypersonic boundary-layer transition over a blunt cone. AIAA J. 2008;46(11):2899–2913.
  • Martin MP, Taylor EM, Wu M, et al. A bandwidth-optimized WENO scheme for the effective direction numerical simulation of compressible turbulence. J Comput Phys. 2006;220:270–289.
  • Wu M, Martin MP. Direct numerical simulation of supersonic turbulent boundary layer over a compression ramp. AIAA J. 2007;45(4):879–889.
  • Pirozzoli S, Grasso F, Gatski TB. Direct numerical simulation and analysis of a spatially evolving supersonic turbulent boundary layer at M=2.25. Phys Fluids. 2004;16(3):530–545.
  • Li XL, Fu DX, Ma YW. Direct numerical simulation of a spatially evolving supersonic turbulent boundary layer at Ma=6. Chin Phys Lett. 2006;23(6):1519–1522.
  • Pirozzoli S, Bernardini M. Direct numerical simulation database for imping shock wave/turbulent boundary-layer interaction. AIAA J. 2011;49(6):1307–1312.
  • Tong FL, Sun D, Li XL. Direct numerical simulation of impinging shock wave and turbulent boundary layer interaction over a wavy-wall. Chinese J Aeronaut. 2021;34(5):350–363.
  • Gao H, Fu DX, Ma YW, et al. Direct numerical simulation of supersonic turbulent boundary layer. Chin Phys Lett. 2005;22(7):1709–1712.
  • Guarini SE, Mose RD, Shariff K, et al. Direct numerical simulation of a supersonic turbulent boundary layer at Mach 2.5. J Fluid Mech. 2000;414:1–33.
  • Maeder T, Adams NA, Kleiser L. Direct simulation of turbulent supersonic boundary layers by an extended temporal approach. J Fluid Mech. 2001;429:187–216.
  • Schlatter P, Orlu R. Assessment of direct numerical simulation data of turbulent boundary layers. J Fluid Mech. 2010;659:116–126.
  • Pirozzoli S, Grasso F. Direct numerical simulation of impinging shock wave/turbulent boundary layer interaction at M=2.25. Phys Fluids. 2006;18:065113.
  • Pirozzoli S, Bernardini M, Grasso F. Direct numerical simulation of transonic shock/boundary layer interaction under conditions of incipient separation. J Fluid Mech. 2010;657:361–393.
  • Li XL, Fu DX, Ma YW. Direct numerical simulation of shock/turbulent boundary layer interaction in a supersonic compression ramp. Sci China Phys Mech Astron. 2010;53(9):1651–1658.
  • Tong FL, Chen JQ, Sun D, et al. Wall-shear stress fluctuations in a supersonic turbulent boundary layer over an expansion corner. J Turbul. 2020;21(7):355–374.
  • Pasquariello V, Hickel S, Adams NA. Unsteady effects of strong shock-wave/boundary-layer interaction at high Reynolds number. J Fluid Mech. 2017;823:617–657.
  • Priebe S, Tu JH, Rowley CW, et al. Low-frequency dynamics in a shock-induced separated flow. J Fluid Mech. 2016;807:441–477.
  • Ringuette MJ, Bookey P, Wyckham C, et al. Experimental study of a Mach 3 compression ramp interaction at Reθ=2400. AIAA J. 2009;47(2):373–385.
  • Bernardini M, Asproulias I, Larsson J, et al. Heat transfer and wall temperature effects in shock wave turbulent boundary layer interactions. Phys Rev Fluids. 2016;1:084403.
  • Bernardini M, Pirozzoli S. Wall pressure fluctuations beneath supersonic turbulent boundary layers. Phys Fluids. 2011;23:085102.
  • Na Y, Moin P. The structure of wall-pressure fluctuations in turbulent boundary layers with adverse pressure gradient and separation. J Fluid Mech. 1998;377:347–373.
  • Humble RA, Scarano F, Oudheusden BW. Unsteady aspects of an incident shock wave/turbulent boundary layer interaction. J Fluid Mech. 2009;635:47–74.
  • Duan L, Choudhari MM, Zhang C. Pressure fluctuations induced by a hypersonic turbulent boundary layer. J Fluid Mech. 2016;804:578–607.
  • Willmarth WW. Wall pressure fluctuations beneath turbulent boundary layer. Annu Rev Fluid Mech. 1975;7:13–36.

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