550
Views
7
CrossRef citations to date
0
Altmetric
Original Articles

Compressibility effects and turbulent kinetic energy exchange in temporal mixing layers

, &
Pages 676-703 | Received 22 Jul 2014, Accepted 25 Feb 2015, Published online: 07 Apr 2015

References

  • Lele SK. Compressibility effects on turbulence. Ann Rev Fluid Mech. 1994; 26: 211–254.
  • Elliot GS, Samimy M. Compressibility effects in free shear layers. Phys Fluids. 1990; 7(2): 1231–1240.
  • Foysi H, Sarkar S. The compressible mixing layer: an LES study. Theor Comput Fluid Dyn. 2010; 24: 565–588.
  • Papamoschou D, Roshko A. The compressible turbulent mixing layer: an experimental study. J Fluid Mech. 1988; 197: 453-477.
  • Sarkar S. The stabilizing effect of compressibility in turbulent shear flow. J Fluid Mech. 1995; 282: 163–186.
  • Vreman AW, Sandham ND, Luo KH. Compressible mixing layer growth rate and turbulence characteristics. J Fluid Mech. 1996; 320: 235–258.
  • Sarkar S, Erlebacher G, Hussaini MY, Kreiss HO. The analysis and modeling of dilatational terms in compressible turbulence. J Fluid Mech. 1991; 227: 473–493.
  • Day MJ, Mansour NN, Reynolds WC. Nonlinear stability and structure of compressible reacting mixing layer. J Fluid Mech. 2001; 446: 375–408.
  • Livescu D, Jaberi FA, Madnia CK. The effects of heat release on the energy exchange in reacting turbulent shear flow. J Fluid Mech. 2002; 450: 35–66.
  • Clemens N, Mungal M. Large-scale structure and entrainment in the supersonic mixing layer. J Fluid Mech. 1995; 284: 171–216.
  • Lesieur M, Metais O, Comte P. Large-eddy simulations of turbulence. New York (NY): Cambridge University Press; 2005.
  • Vreman B, Guerts B, Kuerten H. Large-eddy simulation of the turbulent mixing layer. J Fluid Mech. 1997; 339: 357–390.
  • Pantano C, Sarkar S. A study of compressibility effects in the high-speed turbulent shear layer using direct simulation. J Fluid Mech. 2002; 451: 329–371.
  • Chai X, Mahesh K. Dynamic k-equation model for large-eddy simulation of compressible flows. J Fluid Mech. 2012; 699: 385–413.
  • Yoshizawa A, Abe H, Matsuo Y, Fujiwara H, Mizobuchi Y. A Reynolds-averaged turbulence modeling approach using three transport equations for the turbulent viscosity, kinetic energy, and dissipation rate. Phys Fluids. 2012; 24: 075109-1–075109-21.
  • Bogdanoff DW. Compressibility effects in turbulent shear layers. AIAA J. 1983; 21(6): 926–927.
  • Vreman B, Geurts B, Kuerten H. Subgrid-modelling in LES of compressible flow. Appl Sci Res. 1995; 54: 191–203.
  • Vreman B. Direct and large-eddy simulation of the compressible turbulent mixing layer [Ph.D. thesis]. Enschede: University of Twente; 1995.
  • Germano M, Piomelli U, Moin P, Cabot WH. A dynamic subgrid-scale eddy viscosity model. Phys Fluids A. 1991; 3: 1760–1765.
  • Lilly DK. A proposed modification of the Germano subgrid-scale closure method. Phys Fluids A. 1992; 4: 633–635.
  • Atoufi A, Fathali M, Lessani B. A-priori evaluations of subgrid-scale terms for large-eddy simulation of compressible turbulent flows. J Turbul. 2013; 14(7): 1–23.
  • Ragab SA, Wu JL. Linear instabilities in two-dimensional compressible mixing layers. Phys Fluids. 1989; 1(6): 957–966.
  • Carnahan B, Luther HA, Wilkes JO. Applied numerical methods. Dordrecht: RE Krieger Publishing Company; 1990.
  • Rogers MM, Moser RD. The three-dimensional evolution of a plane mixing layer: the Kelvin–Helmholtz rollup. J Fluid Mech. 1992; 243: 183–226.
  • Moser RD, Rogers MM. The three-dimensional evolution of a plane mixing layer: pairing and transition to turbulence. J Fluid Mech. 1993; 247: 275–320.
  • Bell JH. Development of a two-stream mixing layer from tripped and untripped boundary layer. AIAA J. 1990; 28: 2034–2042.
  • Balaras E, Piomelli U, Wallace JM. Self-similar states in turbulent mixing layers. J Fluid Mech. 2001; 446: 1–24.
  • Chassaing P, Antonia RA, Anselmet F, Joly L, Sarkar S. Variable density fluid turbulence. Dordrecht: Kluwer Academic Publishers; 2002.
  • Fathali M, Lessani B. Effects of initial mixture fraction on the development of a turbulent reactive mixing layer. J Turbul. 2011; 12(33): 1–39.
  • Zeman O. Dilatation dissipation: the concept and application in modeling compressible mixing layers. Phys Fluids A. 1990; 2(2): 178–188.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.