100
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Dependence of wall jet phenomenology on inlet conditions and near-field flow development

&
Pages 276-304 | Received 31 Aug 2021, Accepted 18 Apr 2022, Published online: 06 May 2022

References

  • Lee CP, Isburgh AM, Chapelle DGL. Airfoil blade having a serpentine cooling circuit and inmpingement cooling; 1997 Aug.
  • Lockwood FC, Moneib HA. Fluctuating temperature measurements in a heated round free jet. Combust Sci Technol. 1980;22(1-2):63–81.
  • Antonia RA, Zhao Q. Effect of initial conditions on a circular jet. Exp Fluids. 2001;31:319–323.
  • Rahman AA. A review of effects of initial and boundary condition on turbulent jets. WSEAS Trans Fluid Mech. 2010 Oct;5(4):257–275.
  • Ferdman E, Otugen MV, Kim S. Effect of initial velocity profile on the development of round jets. J Propuls Power. 2000 Jul–Aug;16(4):676–686.
  • Burattini P, Antonia RA, Rajagopalan S, et al. Effect of initial conditions on the near-field development of a round jet. Exp Fluids. 2004;37:56–64.
  • Fellouah H, Ball C, Pollard A. Reynolds number effects within the development region of a turbulent round free jet. Int J Heat Mass Transf. 2009 Aug;52(17–18):3943–3954.
  • Xu M, Pollard A, Mi J, et al. Effects of Reynolds number on some properties of a turbulent jet from a long square pipe. Phys Fluids. 2013;25:Article no: 035102.
  • Xu G, Antonia RA. Effect of different initial conditions on a round free jet. Exp Fluids. 2002 Aug;33:677–683.
  • Bradshaw P. The effect of initial conditions on the development of a free shear layer. J Fluid Mech. 1966;26:225–236.
  • Hussain A, Clark AR. Upstream influence on the near field of a plane turbulent jet. Phys Fluid. 1977;20(9):1417–1426.
  • Liu P, Zhang H, Wu Y, et al. Experimental study on the flow interaction of two parallel rectangular jets through exits with sudden contraction. Exp Therm Fluid Sci. 2017;88:622–631.
  • Padmanabham G, Gowda BL. Mean and turbulence char-acteristics of a class of three-dimensional wall jets – part 1: mean flowcharacteristics. J Fluids Eng. 1991;113(4):620–628.
  • Sun H, Ewing D. Effect of initial and boundary conditions on development of three-dimensional wall jets. In: A. I. of Aeronautics and Astronautics, Tahoe, editor. 40th AIAA Aerospace Sciences Meeting & Exhibit; Reno, NV, USA. AIAA; 2002.
  • Mokni A, Kechiche J, Mhiri H, et al. Inlet conditions effects on vertical wall jets in forced and mixed convection regimes. Int J Thermal Sci. 2009 Oct;48(10):1884–1893.
  • Hall JW, Ewing D. Three dimensional turbulent wall jets issuing from moderate aspect ratio rectangular channels. AIAA J. 2007 Jun;45(6):1177–1186.
  • Godi SC, Pattamatta A, Balaji C. Effect of the inlet geometry on the flow and heat transfer characteristics of three-dimensional wall jets. J Heat Transfer. 2019 Nov;141(11):Article no: 112201.
  • Kumar S, Kumar A. Thermal characteristics of the three dimensional turbulent wall jet with and without sidewalls. Int J Thermal Sci. 2021 Mar;161:106725.
  • Du C, Li L, Wu X, et al. Effect of jet nozzle geometry on flow and heat transfer performance of vortex cooling for gas turbine blade leading edge. Appl Therm Eng. 2016 Jan;93:1020–1032.
  • Rajaratnam N, Pani BS. Three-dimensional turbulent wall jets. J Hydraul Div. 1974;100(1):69–83.
  • Lee DH, Song J, Jo MC. The effects of nozzle diameter on impinging jet heat transfer and fluid flow. J Heat Transfer. 2004 Aug;126(4):554–557.
  • Mi J, Nathan GJ. Statistical properties of turbulent free jets issuing from nine differently-shaped nozzles. Flow Turbul Combust. 2010 Jun;84(4):583–606.
  • Mohammadaliha N, Afshin H, Farahanieh B. Numerical investigation of nozzle geometry effect on turbulent 3-D water offset jet flows. J Appl Fluid Mech. 2016;9(4):2083–2095.
  • Rahman MS, Tay GFK, Tachie MF. Effects of nozzle geometry on turbulent characteristics and structure of surface attaching jets. Flow Turbul Combust. 2019;103(3):1–29.
  • Kechiche J, Mhiri H, Palec GL, et al. Numerical study of the inlet conditions on a turbulent plane two dimensional wall jet. Energy Convers Manag. 2004 Mar 6;45:2931–2949.
  • Deo RC, Nathan GJ, Mi J. Comparison of turbulent jets issuing from rectangular nozzles with and without sidewalls. Exp Therm Fluid Sci. 2007;32:596–606.
  • Alnahhal M, Panidis T. The effect of sidewalls on rectangular jets. Exp Therm Fluid Sci. 2009 Mar;33:838–851.
  • Kumar S, Kumar A. Experimental study of the sidewall effect on three-dimensional turbulent wall jet. J Fluid Eng. 2021;144(1):Article no: 011202.
  • Launder BE, Sharma BI. Application of the energy dissipation model of turbulence to the calculation of flow near a spinning disc. Lett Heat Mass Transfer. 1974;1:131–138.
  • Yang Z, Shih TH. New time scale based k-epsilon model for near-wall turbulence. Amer Inst Aeronaut Astronautics J. 1993;31(7):1191–1198.
  • Abernethy RB, Benedict RP, Dowdell RB. ASME measurement uncertainty. J Fluids Eng. 1985 Jun;107(2):161–164.
  • Coleman HW, Steele WG. Experimentation and uncertainty analysis for engineers. New York: John Wiley & Sons; 2018.
  • Patankar SV. Numerical heat transfer and fluid flow. New York: Hemisphere; 1980.
  • Agelin-Chaab M, Tachie MF. Characteristics of turbulent three-dimensional wall jets. J Fluids Eng. 2011;133(2):021201–1.
  • Kwakye BN, Clark SP, Tachie MF, et al. Flow characteristics within the recirculation region of three-dimensional turbulent offset jet. J Hydraul Res. 2015;53(2):230–242.
  • Kumar A, Das MK. Study of a turbulent dual jet consisting of a wall jet and an offset jet. J Fluids Eng. 2011;133(10):101201–11.
  • Pramanik S, Das MK. Numerical study of turbulent wall jet over multiple-inclined flat surface. Computers and Fluids. 2014 Feb 7;95:132–158.
  • 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.
  • Biswas G. The k-epsilon model, the RNG k-epsilon model and the phase-averaged model. In: Biswas G, Eswaran V, editors. Turbulent flows: fundamentals, experiments and modeling. New Delhi: Narosa; 2002. Chap. 11; p. 339–375.
  • Padmanabham G, Gowda BHL. Mean and turbulence characteristics of a class of three dimensional wall jets – part 2: mean flowcharacteristics. J Fluids Eng. 1991 Dec;113(629):629–634.
  • Sun H. Development of three-dimensional turbulent wall jets [Ph.D. thesis]. Hamilton (ON): McMaster University; 2002.
  • Namgyal L, Hall JW. Reynolds stress distribution and turbulence generated secondary flow in the turbulent three-dimensional wall jet. J Fluid Mech. 2016;800:613–644.
  • Venas B, Abrahamsson H, Krogstad PA, et al. Pulsed hot-wire measurements in two and three-dimensional wall jets. Exp Fluids. 1999;27(3):210–218.
  • Abrahamsson H, Johansson B, Lofdahl L. An investigation of the turbulance field in a three dimentional wall jet. Adv Turbul. 1997;VII:417–420.

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.