412
Views
8
CrossRef citations to date
0
Altmetric
Original Articles

Large-eddy simulation of impinging jets on smooth and rough surfaces

, &
Pages 847-869 | Received 02 Dec 2015, Accepted 11 Apr 2016, Published online: 09 Jun 2016

References

  • Gray RB. An aerodynamic analysis of a single-bladed rotor in hovering and low speed for- ward flight as determined from smoke studies of the vorticity distribution in the wake. Princeton University Aeronautical Engineering Report no. 356. Princeton (NJ): Princeton University; 1956.
  • Leishman JG. Principles of helicopter aerodynamics. Cambridge (UK): Cambridge University Press; 2006.
  • Fradenburgh EA. The helicopter and the ground effect machine. J Am Helicopter Soc. 1960;5:24–33.
  • Lee TE, Leishman J, Ramasamy M. Fluid dynamics of interacting blade tip vortices with a ground plane. J Am Helicopter Soc. 2010;55:022005,1–16.
  • Lighthill J. A simple fluid-flow model of ground effect on hovering. J Fluid Mech. 1979;93:781–797.
  • Olsson M, Fuchs L. Large eddy simulations of a forced semi-confined circular impinging jet. Phys Fluids. 1998;10:476–486.
  • Doligalski TL, Walker JDA. The boundary layer induced by a convected two-dimensional vortex. J Fluid Mech. 1984;139:1–28.
  • Colby S. Military spin, Rotor & wing; March 1, 2005.
  • Haehnel R, Dade WB. Physics of particle entrainment under the influence of an impinging jet. Hanover (NH): U.S. Army Engineer Research and Development Center, Cold Regions Research and Engineering Laboratory; 2008.
  • Geiser J, Kiger KT. Vortex ring breakdown induced by topographic forcing. J Phys Conf Series. 2011; 318:062013–110.
  • Wu W, Piomelli U. Large-eddy simulation of impinging jets with embedded azimuthal vortices. J Turbul. 2015;16:44–66.
  • Launder BE, Rodi W. The turbulent wall jet: Measurements and modeling. Annu Rev Fluid Mech. 1983;15:429–459.
  • Wygnanski I, Katz Y, Horev E. On the applicability of various scaling laws to the turbulent wall jet. J Fluid Mech. 1992;234:669–690.
  • Eriksson JG, Karlsson RI, Persson J. An experimental study of a two-dimensional plane wall jet. Exp Fluids. 1998;25:50–60.
  • Tachie MF, Balachandar R, Bergstrom D. Scaling the inner region of turbulent plane wall jets. Exp Fluids. 2002;33:351–354.
  • Anderson SL, Longmire EK. Particle motion in the stagnation zone of an impinging air jet. J Fluid Mech. 1995;299:333–366.
  • Zhou DW, Lee SJ. Forced convective heat transfer with impinging rectangular jets. Int J Heat Mass Tran. 2007;50:1916–1926.
  • Dairay T, Fortun V, Lamballais E, et al. Direct numerical simulation of a turbulent jet impinging on a heated wall. J Fluid Mech. 2015;764:362–394.
  • Nikuradse J. Laws of flow in rough pipes. Translation of “Strömungsgesetze in Rauhen Rohren, VDI-Forsch. 361 (1933)”. NACA Technical Memorandum 1292. National Advisory Committee for Aeronautics, Washington, DC;1950.
  • Colebrook CF. Turbulent flow in pipes, with particular preference to the transition region between the smooth and rough pipe laws. J ICE. 1939;11:133–156.
  • Raupach MR, Antonia RA, Rajagopalan S. Rough-wall trbulent boundary layers. Appl Mech Rev. 1991;44:1–25.
  • Jiménez J. Turbulent flows over rough walls. Ann Rev Fluid Mech. 2004;36:173–196.
  • Jambunathan K, Lai E, Moss MA, et al. A review of heat transfer data for single circular jet impingement. Int J Heat Fluid Flow. 1992;13:106–115.
  • Kobus H, Leister P, Westrich B. Flow field and scouring effects of steady and pulsating jets impinging on a movable bed. J Hydraul Res. 1979;17:175–192.
  • Rajaratnam N, Mazurek K. Impingement of circular turbulent jets on rough boundaries. J Hydraul Res. 2005;43:689–695.
  • Banyassady R, Piomelli U. Turbulent plane wall jets over smooth and rough surfaces. J Turbul. 2014;15:186–207.
  • Banyassady R. Large-eddy simulations of plane and radial wall jets over smooth and rough surfaces. Kingston (Ontario): Queen’s University; 2015.
  • Schultz MP Flack KA. The rough-wall turbulent boundary layer from the hydraulically smooth to the fully rough regime. J Fluid Mech. 2007;580:381–405.
  • Tachie M, Balachandar R, Bergstrom D. Roughness effects on turbulent plane wall jets in an open channel. Exp Fluids. 2004;37:281–292.
  • Smith BS. Wall jet boundary layer flows over smooth and rough surfaces. Blacksburg (VA): Virginia Tech.; 2008.
  • Rostamy N, Bergstrom DJ, Sumner D, et al. The effect of surface roughness on the turbulence structure of a plane wall jet. Phys Fluids. 2011;23:085103, 1–10.
  • Dejoan A, Leschziner MA. Large eddy simulation of a plane turbulent wall jet. Phys Fluids. 2005;17:025102, 1–16.
  • George WK, Abrahamsson H, Eriksson J, et al. A similarity theory for the turbulent plane wall jet without external stream. J Fluid Mech. 2000;425:367–411.
  • Leonard A. Energy cascade in large-eddy simulations of turbulent fluid flows. Adv Geophys. 1975;18A:237–248.
  • Germano M, Piomelli U, Moin P, et al. A dynamic subgrid-scale eddy viscosity model. Phys Fluids A. 1991;3:1760–1765.
  • Meneveau C, Lund TS, Cabot WH. A lagrangian dynamic subgrid-scale model of turbulence. J Fluid Mech. 1996;319:353–385.
  • Keating A, Piomelli U, Bremhorst K, et al. Large-eddy simulation of heat transfer down- stream of a backward-facing step. J Turbul. 2004;5:20–1–27.
  • Scotti A. Direct numerical simulation of turbulent channel flows with boundary roughened with virtual sandpaper. Phys Fluids. 2006;18:031701, 1–4.
  • Piomelli U, Yuan J. Numerical simulations of spatially developing, accelerating boundary layers. Phys Fluids. 2013;25:101304, 1–22.
  • Yuan J, Piomelli U. Estimation and prediction of the roughness function on realistic surfaces. J Turbul. 2014;15:350–365.
  • Banyassady R, Piomelli U. Interaction of inner and outer layers in plane and radial wall jets. J Turbul. 2015;16:460–483.
  • Constantinescu G, Lele S. A highly accurate technique for the treatment of flow equations at the polar axis in cylindrical coordinates using series expansions. J Comput Phys. 2002;183:165–186.
  • Mohseni K, Colonius T. Numerical treatment of polar coordinate singularities. J Comput Phys. 2000;157:787–795.
  • Orlanski I. A simple boundary condition for unbounded hyperbolic flows. J Comput Phys. 1976;21:251–269.
  • Hussain AKMF, Reynolds WC. The mechanics of an organized wave in turbulent shear flow. J Fluid Mech. 1970;41:248–258.
  • Reynolds WC, Hussain AKMF. The mechanics of an organized wave in turbulent shear flow. Part 3. Theoretical models and comparisons with experiments. J Fluid Mech. 1972;54:263–288.
  • Jackson PS. On the displacement height in the logarithmic velocity profile. J Fluid Mech. 1981;111:15–25.
  • Özdemir IB, Whitelaw JH. Impingement of an axisymmetric jet on unheated and heated flat plates. J Fluid Mech. 1992;240:503–532.
  • Uddin N, Neumann SO, Weigand B. LES simulations of an impinging jet: on the origin of the second peak in the Nusselt number distribution. Int J Heat Mass Trans. 2013;57:356–368.
  • Bernard PS, Wallace JM. Turbulent flow: analysis, measurement, and prediction. Hoboken (NJ): Wiley; 2002.

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.