217
Views
4
CrossRef citations to date
0
Altmetric
Articles

Large-eddy simulation of a plane reacting jet transversely injected into supersonic turbulent channel flow

&
Pages 407-433 | Received 04 May 2010, Accepted 30 Sep 2010, Published online: 14 Dec 2010

References

  • Anderson, J. D., 1989. Hypersonic and high-temperature gas dynamics. New York: McGraw-Hill; 1989.
  • Ben-Yakar, A., Mungal, M. G., and Hanson, R. K., 2006. Time evolution and mixing characteristics of hydrogen and ethylene transverse jets in supersonic crossflows, Physics of Fluids 18 (2006), p. 026101.
  • Berland, J., 2006. Modélisation des erreurs numériques dans une simulation des grandes échelles et étude du screech dans un jet rectangulaire supersonique. 2006, Thesis (PhD). École Centrale de Lyon.
  • Bilger, R. W., 1980. "Turbulent flows with nonpremixed reactants". In: Libby, P. A., and Williams, F. A., eds. Turbulent reacting flows. Berlin: Springer Verlag; 1980. pp. 65–113.
  • Coleman, G., Kim, J., and Moser, J., 1995. A numerical study of turbulent supersonic isothermal wall channel flow, Journal of Fluid Mechanics 305 (1995), pp. 159–183.
  • Cook, A. W., 2007. Artificial fluid properties for large-eddy simulation of compressible turbulent mixing, Physics of Fluids 19 (2007), p. 055103.
  • Cook, A. W., and Cabot, W. H., 2004. A high-wavenumber viscosity for high-resolution numerical methods, Journal of Computational Physics 195 (2004), pp. 594–601.
  • Cook, A. W., and Cabot, W. H., 2005. Hyperviscosity for shock-turbulence interactions, Journal of Computational Physics 203 (2005), pp. 379–385.
  • Denev, J. A., Fröhlich, J., and Bockhorn, H., 2007. Direct numerical simulation of a transitional jet in crossflow with mixing and chemical reactions. Presented at Fifth International Symposium on Turbulence and Shear Flow Phenomena, Garching, Germany.
  • Domaradzki, J. A., and Adams, N. A., 2003. Direct modelling of subgrid scales of turbulence in large-eddy simulation, Journal of Turbulence 3 (2003), p. 024.
  • Don, W. S., Gottlieb, D., and Jung, J. H., 2003. A multidomain spectral method for supersonic reactive flows, Journal of Computational Physics 192 (2003), pp. 325–354.
  • Ern, A., and Giovangigli, V., 1995. Fast and accurate multicomponent transport property evaluation, Journal of Computational Physics 120 (1995), pp. 105–116.
  • Fiorina, B., and Lele, S. K., 2005. An artificial nonlinear diffusivity method for shock-capturing in supersonic reacting flows. Annual Research Briefs. Stanford, CA: Center for Turbulence Research, Stanford University; 2005. pp. 57–70.
  • Fiorina, B., and Lele, S. K., 2007. An artificial nonlinear diffusivity method for supersonic reacting flows with shocks, Journal of Computational Physics 222 (2007), pp. 246–264.
  • Floryan, J. M., and Czechowski, L., 1995. On the numerical treatment of corner singularity in the vorticity field, Journal of Computational Physics 118 (1995), pp. 222–228.
  • Foysi, H., Sarkar, S., and Friedrich, R., 2004. Compressibility effects and turbulence scaling in supersonic channel flow, Journal of Fluid Mechanics 509 (2004), pp. 207–216.
  • Génin, F., and Menon, S., 2010. Dynamics of sonic jet injection into supersonic crossflow, Journal of Turbulence 11 (4) (2010), pp. 1468–5248.
  • Gerlinger, P., Algermissen, J., and Brüggemann, D., 1996. Numerical simulation of mixing for turbulent slot injection, AIAA Journal 34 (1) (1996), pp. 73–78.
  • Gloerfelt, X., 2001. Bruit rayonné par un écoulement affleurant une cavité: simulation aeroacoustique directe et application de méthodes intégrales. 2001, Thesis (PhD). Laboratoire de Mécanique des Fluides et d'Acoustique, École Centrale de Lyon, UMR CNRS 5509. No. d'ordre: 2001-26.
  • Grasso, F., and Magi, V., 1995. Simulation of transverse gas injection in turbulent supersonic air flows, AIAA Journal 33 (1) (1995), pp. 56–62.
  • Gruber, M. R., et al., 2000. Transverse injection from circular and elliptic nozzles into a supersonic crossflow, AIAA Journal of Propulsion and Power 16 (3) (2000), pp. 449–457.
  • Guo, X., Meinke, M., and Schröder, W., 2004. "Large-eddy simulation of a jet in a crossflow". In: Friedrich, R., Guerts, B., and Metais, O., eds. Direct and large-eddy simulation V. München: Kluwer Academic; 2004. pp. 603–610.
  • Iourokina, I. V., and Lele, S. K., 2006. Large eddy simulation of film cooling flow above a flat plate from inclined cylindrical holes. Presented at Proceedings of FEDSM2006, 2006 ASME Joint U.S. – European Fluids Engineering Summer Meeting, Miami, Florida, USA. FEDSM 2006-98282.
  • Jones, W. P., and Wille, M., 1996. Large-eddy simulation of a plane jet in a crossflow, International Journal of Heat and Fluid Flow 17 (3) (1996), pp. 296–306.
  • Kawai, S., and Lele, S. K., 2007a. Localized artificial viscosity and diffusivity scheme for capturing discontinuities on curvilinear and anisotropic meshes. Annual Research Briefs. Stanford, CA: Center for Turbulence Research, Stanford University; 2007a. pp. 83–95.
  • Kawai, S., and Lele, S. K., 2007b. Mechanisms of jet mixing in a supersonic crossflow: a study using large-eddy simulation. Annual Research Briefs. Stanford, CA: Center for Turbulence Research, Stanford University; 2007b. pp. 353–365.
  • Kawai, S., and Lele, S. K., 2008. Large-eddy simulation of jet mixing in a supersonic turbulent crossflow. Annual Research Briefs. Stanford, CA: Center for Turbulence Research, Stanford University; 2008. pp. 139–151.
  • Kennedy, C. A., Carpenter, M., and Lewis, R., 1999. Low-storage, explicit Runge–Kutta schemes for the compressible Navier–Stokes equations. 1999, Technical report 99-22, ICASE. Hampton, VA: Langley Research Center.
  • Kutschenreuter, P., 2000. "Supersonic flow combustors". In: Curran, E., and Murthy, S., eds. Scramjet propulsion. 2000, Vol. 189 of Progress in Astronautics and Aeronautics, AIAA. New York: AIAA Press, 513–568.
  • Lechner, R., Sesterhenn, J., and Friedrich, R., 2001. Turbulent supersonic channel flow, Journal of Turbulence 2 (2001), N 1.
  • Lee, M. P., et al., 1992. Planar fluorescence imaging of a transverse jet in a supersonic crossflow, AIAA Journal of Propulsion and Power 8 (4) (1992), pp. 729–735.
  • Lele, S. K., 1992. Compact finite difference schemes with spectral-like resolution, Journal of Computational Physics 103 (1992), pp. 16–42.
  • Leonard, A., 1974. Energy cascade in large-eddy simulations of turbulent fluid flows, Advances in Geophysics A 18 (1974), pp. 237–248.
  • Loginov, M. S., Adams, N. A., and Zheltovodov, A. A., 2006. Large-eddy simulation of shock-wave/turbulent–boundary–layer interaction, Journal of Fluid Mechanics 565 (2006), pp. 135–169.
  • Lui, C. C.M., 2003. A numerical investigation of shock associated noise. 2003, Thesis (PhD). Department of Mechanical Engineering, Stanford University.
  • Mahle, I., 2007. Direct and large-eddy simulation of inert and reacting compressible turbulent shear layers. 2007, Thesis (PhD). Technische Universität München.
  • Mahle, I., Sesterhenn, J., and Friedrich, R., 2007. Turbulent mixing in temporal compressible shear layers involving detailed diffusion processes, Journal of Turbulence 8 (1) (2007), pp. 1468–5248.
  • Mahle, I., Sesterhenn, J., and Friedrich, R., 2008. Large eddy simulation of turbulent reacting shear layers including finite-rate chemistry and detailed diffusion processes, Flow, Turbulence and Combustion 80 (2008), pp. 81–105.
  • Margason, R. J., 1993. Fifty years of jet in crossflow research. Presented at No. 534 in AGARD Conference Proceedings, Neuilly sur Seine, AGARD, NATO, 1-1–1-41.
  • Markatou, P., Pfefferle, L. D., and Smooke, M. D., 1991. The influence of surface chemistry on the development of minor species profiles in the premixed boundary layer combustion of an H2/ air mixture, Combustion Science and Technology 79 (1991), pp. 247–268.
  • Markatou, P., Pfefferle, L. D., and Smooke, M. D., 1993. A computational study of methane-air combustion over heated catalytic and non-catalytic surfaces, Combustion and Flame 93 (1993), pp. 185–201.
  • Mathew, J., et al., 2003. An explicit filtering method for LES of compressible flows, Physics of Fluids 15 (8) (2003), pp. 2279–2289.
  • Müller, B., 1990. Linear stability condition for explicit Runge–Kutta methods to solve the compressible Navier–Stokes equations, Mathematical Methods in the Applied Sciences 12 (1990), pp. 139–151.
  • Muppidi, S., and Mahesh, K., 2005. Study of trajectories of jets in crossflow using direct numerical simulations, Journal of Fluid Mechanics 530 (2005), pp. 81–100.
  • Muppidi, S., and Mahesh, K., 2007. Direct numerical simulation of round turbulent jets in crossflow, Journal of Fluid Mechanics 574 (2007), pp. 59–84.
  • Nicoud, F., 1999. Defining wave amplitude in characteristic boundary conditions, Journal of Computational Physics 149 (1999), pp. 418–422.
  • Pantano, C., Sarkar, S., and Williams, F. A., 2003. Mixing of a conserved scalar in a turbulent reacting shear layer, Journal of Fluid Mechanics 481 (2003), pp. 291–328.
  • Poinsot, T., and Lele, S. K., 1992. Boundary conditions for direct simulations of compressible viscous flows, Journal of Computational Physics 101 (1992), pp. 104–129.
  • Poinsot, T., and Veynante, D., 2005. Theoretical and numerical combustion. Flourtown, PA: R.T. Edwards; 2005.
  • Popp, P., and Baum, M., 1997. Analysis of wall heat fluxes, reaction mechanisms, and unburnt hydrocarbons during the head-on quenching of a laminar methane flame, Combustion and Flame 108 (1997), pp. 327–348.
  • Press, W. H., et al., 1992. Numerical recipes in Fortran 77: the art of scientific computing. Cambridge: Cambridge University Press; 1992.
  • Santiago, J. G., and Dutton, J. C., 1997. Velocity measurements of a jet injected into a supersonic crossflow, AIAA Journal of Propulsion and Power 13 (2) (1997), pp. 264–273.
  • Schaupp, C., Sesterhenn, J., and Friedrich, R., 2008. On a method for direct numerical simulation of shear layer/compression wave interaction for aeroacoustic investigations, Computers and Fluids 37 (2008), pp. 463–474.
  • Sesterhenn, J., 2001. A characteristic-type formulation of the Navier–Stokes equations for high order upwind schemes, Computers & Fluids 30 (1) (2001), pp. 37–67.
  • Sod, G. A., 1978. A survey of several finite difference methods for systems of nonlinear hyperbolic conservation laws, Journal of Computational Physics 27 (1978), pp. 1–31.
  • Spaid, F. W., and Zukoski, E. E., 1968. A study of the interaction of gaseous jets from transverse slots with supersonic external flows, AIAA Journal 6 (2) (1968), pp. 205–212.
  • Sriram, A. T., 2003. Numerical simulations of transverse injection of plane and circular sonic jets into turbulent supersonic crossflows. 2003, Thesis (PhD). Department of Aerospace Engineering, Indian Institute of Science, Bangalore.
  • Stolz, S., and Adams, N. A., 1999. An approximate deconvolution procedure for large-eddy simulation, Physics of Fluids 11 (7) (1999), pp. 1699–1701.
  • Stolz, S., Adams, N., and Kleiser, L., 2001. The approximate deconvolution model for LES of compressible flows and its application to shock-turbulent-boundary-layer interaction, Physics of Fluids 13 (2001), pp. 2985–3001.
  • Sutherland, J. C., and Kennedy, C. A., 2003. Improved boundary conditions for viscous, reacting, compressible flows, Journal of Computational Physics 191 (2003), pp. 502–524.
  • van Cittert, P. H., 1931. Zum Einfluss der Spaltbreite auf die Intensitaetsverteilung in Spektrallinien. II., Zeitschrift für Physik 69 (1931), p. 298.
  • von Neumann, J., and Richtmyer, R. D., 1950. A method for the numerical calculation of hydrodynamic shocks, Journal of Applied Physics 21 (1950), pp. 232–237.
  • Wegner, B., Huai, Y., and Sadiki, A., 2004. Comparative study of turbulent mixing in jet in cross-flow configurations using LES, International Journal of Heat and Fluid Flow 25 (2004), pp. 767–775.
  • Yosibash, Z., et al., 1998. An accurate semi-analytic finite difference scheme for two-dimensional elliptic problems with singularities, Numerical Methods Partial for Differential Equations 14 (1998), pp. 281–296.
  • Yuan, L. L., Street, R. L., and Ferziger, J. H., 1999. Large-eddy simulations of a round jet in crossflow, Journal of Fluid Mechanics 379 (1999), pp. 71–104.

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.