Q. Vitesse-radiale, Champs statistiques de vitesse pour l'injection ronde sur plan avec H/D = 2 : (a) Vitesse moyenne axiale, (b) Vitesse moyenne radiale, Vitesse axiale quadratique, p.148

Q. Vitesse-radiale, Champs statistiques de vitesse pour l'injection ronde sur hémisphère avec H/D = 5 : (a) Vitesse moyenne radiale, (b) Vitesse axiale quadratique, p.149

Q. Vitesse-radiale, Champs statistiques de vitesse de l'injection en croix sur plan pour le plan mineur (mP) avec H/D = 2 : (a) Vitesse moyenne axiale, Vitesse axiale quadratique, p.150

Q. Vitesse-radiale, 14 Champs statistiques de vitesse de l'injection en croix sur hémisphère pour le plan majeur (MP) avec H/D = 5 : (a) Vitesse moyenne radiale, p.153

Q. Vitesse-radiale, 16 Champs statistiques de vitesse de l'injection en pétales sur plan pour le plan majeur (MP) avec H/D = 2 : (a) Vitesse moyenne axiale, (b) Vitesse axiale quadratique, p.153

Q. Vitesse-radiale, 17 Champs statistiques de vitesse de l'injection en pétales sur plan pour le plan mineur (mP) avec H/D = 2 : (a) Vitesse moyenne axiale, (b) Vitesse axiale quadratique, p.154

Q. Vitesse-radiale, Champs statistiques de vitesse de l'injection en pétales sur hémisphère pour le plan majeur (MP) avec H/D = 2 : (a) Vitesse moyenne axiale, (b) Vitesse axiale quadratique, p.155

B. Vitesse-radiale-quadratique.........., 22 Champs statistiques de vitesse de l'injection en pétales sur hémisphère pour le plan mineur (mP) avec H/D = 2 : (a) Vitesse moyenne axiale, (b) Vitesse axiale quadratique, p.155

Q. Vitesse-radiale, Champs statistiques de vitesse de l'injection en pétales sur hémisphère pour le plan majeur (MP) avec H/D = 5 : (a) Vitesse moyenne radiale, p.156

H. Hee, C. , K. M. Kim, and J. Song, Cooling Systems : Energy, Engineering and Application, chapter Applications of Impingement Jet Cooling Systems, pp.37-68, 2011.

J. W. Gautner, J. N. Livinggood, and P. Hrycak, Survey of literature on ow characteristics of a single turbulent jet impinging on a plat plate. Number TN D- 5652 in Technical Note. National Aeronautics and Space Administration, 1970.

H. Martin, Heat and mass transfer between impinging gas jets and solid surfaces Advances in Heat Transfer, p.160, 1977.

S. J. Downs and E. H. James, Jet impinging heat transfer, a literature survey, ASME National Heat Transfer Conference, pp.87-122, 1987.

J. E. Jambunathan, E. Lai, M. A. Moss, and B. L. Button, A review of heat transfer data for single circular jet impingement, International Journal of Heat and Fluid Flow, vol.13, issue.2, p.106115, 1992.
DOI : 10.1016/0142-727X(92)90017-4

D. Nizam, . Bin, and . Ali, Eect of nozzle diameter on jet impingement cooling system, 2009.

. Blevins, Applied Fluid Dynamics Handbook. Number ISBN 157524182X, 1984.

N. Rajaratnam, Turbulent jets, 1976.

J. N. Livingood and P. Hrycak, Impingement heat transfer from turbulent air jets to at plates -a literature survey, 1973.

V. Narayanan, J. Seeyed-yagoobi, and R. H. Page, An experimental study of uid mechanics and heat transfer in an impinging slot jet ow, Int. J. Heat and Mass Transfer, pp.47-55, 2004.

S. Polat, B. Huang, A. S. Mujumdar, and W. J. Douglas, Numerical ow and heat transfer under impinging jet : A review, ann. rev. uid mech. heat transfer, p.157197, 1989.

C. Cornaro, A. S. Fleischer, and R. J. Goldstein, Flow visualization of a round jet impinging on cylindrical surfaces, Experimental Thermal and Fluid Science, vol.20, issue.2, p.6678, 1999.
DOI : 10.1016/S0894-1777(99)00032-1

. O. Cz, O. Popiel, and . Trass, Visualisation of a free and impinging round jet, Experimental Thermal and Fluid Science, vol.4, p.253264, 1991.

. O. Cz, L. Popiel, and . Boguslawski, Eect of ow structure on the heat and mass transfer on a plat plate in impinging round jet, 2nd UK National Conf.on Heat Transfer, 1988.

H. Fondse, S. Leijden, and G. Ooms, On the inuence of the exit conditions on the entrainment rate on the development region of a free, rond, turbulent jet, Appl. Sci. Res, vol.40, p.355375, 1983.

J. C. Duda, F. D. Lagor, and A. S. Fleischer, A ow visualization study of the development of vortex structure in a rond jet impinging on a plate and a cylindrical pedestal, Experimental Thermal and Fluid Science, vol.32, p.17541758, 2008.

J. M. Buchlin, Convective heat transfer in impinging gas jet systems. VKI for Fluids Dynamics Lecture Series, Aero-thermal Performance of Internal Cooling Systems in Turbomachines, 2000.

S. Roux, M. Fenot, G. Lalizel, L. E. Brizzi, and E. Dorignac, Experimental investigation of the ow and heat transfer of an impinging jet under acoustic excitation, Int. J. Heat and Mass Transfer, vol.54, p.32773290, 2011.

R. J. Goldstein, K. A. Sobolik, and W. S. Seol, Eect of entrainment on the heat transfer to a heated circular air jet impinging on a at surface, ASME J. Heat Transfer, vol.112, issue.3, p.608611, 1990.

C. H. Yuen and R. F. Martinez-botas, Film cooling characteristics of rows of round holes at various streamwise angles in a crossow : Part 1. eectiveness, Int. J. Heat and Mass Transfer, vol.46, p.221235, 2003.

M. Kristiawan, A. Meslem, I. Nastase, and V. Sobolik, Wall shear rates and mass transfer in impinging jets: Comparison of circular convergent and cross-shaped orifice nozzles, International Journal of Heat and Mass Transfer, vol.55, issue.1-3, p.282293, 2012.
DOI : 10.1016/j.ijheatmasstransfer.2011.09.014

URL : https://hal.archives-ouvertes.fr/hal-01191452

A. Meslem, I. Nastase, and F. Allard, Passive mixing control for innovative air diusion terminal devices for buildings, Building and Environment, vol.45, p.26792688, 2010.

I. Nastase, A. Meslem, and P. Gervais, Primary and secondary vortical structure contribution in the entrainement of low reynolds number jet ows, Experiments in Fluids, vol.44, p.10271033, 2008.

I. Nastase and A. Meslem, Vortex dynamics and mass entrainement in turbulent lobed jets with and without lobe deection angles, Experiments in Fluids, vol.48, p.693714, 2010.

K. Sodjavi, B. Montagne, A. Meslem, P. Byrne, L. Serres et al., Passive control of wall shear stress and mass transfer generated by submerged lobed impinging jet, Heat and Mass Transfer, vol.47, issue.035107, p.112, 2015.
DOI : 10.1007/s00231-015-1610-7

URL : https://hal.archives-ouvertes.fr/hal-01165568

R. H. Martin, J. M. Buchlin, A. A. Mohanty, and . Tawfek, Jet impingement heat transfer from lobed nozzles Heat transfer due to round jet impinging normal to a at surface, Int. J. Thermal Sciences Int. J. Heat and Mass Transfer, vol.50, issue.36, p.1199120616391647, 1993.

D. Lytle and B. W. Webb, Air jet impinging heat transfer at low nozzle-plate spacings, Int. J. Heat and Mass Transfer, vol.37, issue.12, p.16871697, 1994.

L. Huang and M. S. El-genk, Heat transfer of an impinging jet on a flat surface, International Journal of Heat and Mass Transfer, vol.37, issue.13
DOI : 10.1016/0017-9310(94)90331-X

D. W. Colucci and R. Viskanta, Eect of nozzle geometry on local convective heat transfer to a conned impinging air jet, Experimental Thermal and Fluid Science, vol.13, p.7180, 1996.

H. Martin, H. , M. Kind, and H. Martin, Measurements on steady state heat transfer and ow structure and new correlations for heat and mass transfer in submerged impinging jets, Int. J. Heat and Mass Transfer, vol.50, p.39573965, 2007.

M. D. Limaye, R. P. Vedula, and S. V. Prabhu, Local heat transfer distribution on a flat plate impinged by a compressible round air jet, International Journal of Thermal Sciences, vol.49, issue.11, p.4921572168, 2010.
DOI : 10.1016/j.ijthermalsci.2010.06.020

R. J. Goldstein, A. I. Behbahani, K. Kieger, and . Heppelmann, Streamwise distribution of the recovery factor and the local heat transfer coecient to an impinging circular air jet, Int. J. Heat and Mass Transfer, vol.29, p.12271235, 1986.

P. Brevet, Etude expérimentale et numérique des transferts thermiques par impact de jet, Application aux moteurs aéronautiques, Thèse. Université de, 2001.

J. San, C. Huang, and M. Shu, Impingement cooling of a conned circular air jet, Int. J. Heat and Mass Transfer, vol.40, p.13551364, 1997.

P. Gulati, V. Katti, and S. V. Prabhu, Inuence of the shape of the nozzle on local heat transfer distribution between smooth at surface and impinging air jet

T. S. O-'donovan and D. B. Murray, Jet impingement heat transfer -part 1 : Mean and root-mean-square heat transfer and velocity distributions, Int. J. Heat and Mass Transfer, vol.50, p.32913301, 2007.

J. Baughn and S. Shimizu, Heat transfer measurements from a surface with uniform heat ux impinging jet, J. Heat Transfer, vol.111, issue.4, p.10961098, 1989.

N. Gao, H. Sun, and D. Ewing, Heat transfer to impinging round jets with triangular tabs, International Journal of Heat and Mass Transfer, vol.46, issue.14, p.25572569, 2003.
DOI : 10.1016/S0017-9310(03)00034-6

V. Katti and S. V. Prabhu, Experimental study and theoretical analysis of local heat transfer distribution between smooth flat surface and impinging air jet from a circular straight pipe nozzle, International Journal of Heat and Mass Transfer, vol.51, issue.17-18, p.44804495, 2008.
DOI : 10.1016/j.ijheatmasstransfer.2007.12.024

B. R. Hollworth and L. R. Gero, Entrainment eects on impingement heat transfer : Part 2 -local heat transfer mesurements, J. Heat Transfer, vol.107, p.910915, 1985.

S. V. Garimella and B. Nenaydykh, Nozzle-geometry eects in liquid jet impingement heat transfer, Int. J. Heat and Mass Transfer, vol.39, p.29152923, 1996.

N. T. Obot, A. S. Mujumdar, and W. J. Douglas, The eect of nozzle geometry on impingement heat transfer under a round turbulent jet, ASME Winter Annual Meeting, pp.79-53, 1979.

E. M. Sparrow and L. Lee, Analysis of ow eld and impingement heat/mass transfer due to a nonuniform slot jet, J. Heat Transfer, vol.97, 1975.

C. J. Hoogendoorn, The eect of turbulence on heat transfer at a stagnation point, Int. J. Heat and Mass Transfer, vol.20, p.13331338, 1977.

R. Gardon and J. Akfirat, Heat Transfer Characteristics of Impinging Two-Dimensional Air Jets, Journal of Heat Transfer, vol.88, issue.1, p.101107, 1996.
DOI : 10.1115/1.3691449

R. J. Goldstein and J. F. Timmers, Visualisation of heat transfer from arrays of impinging jets, Int. J. Heat and Mass Transfer, vol.25, p.18571868, 1982.

K. Kataoka, R. Sahara, H. Ase, and T. Haradat, Role of large-scale coherent sstructure in impinging jet heat transfer, Journal of Chemical Engineering of Japan, vol.20, p.7176, 1987.

M. Behnia, S. Parneix, Y. Shabany, and P. A. Durbin, Numerical study of turbulent heat transfer in conned and unconned impinging jets, Int. J. Heat and Fluid Flow, vol.20, p.19, 1999.

R. Viskanta, Heat transfer to impinging isothermal gas and ame jets, Experimental Thermal and Fluid Science, vol.6, p.111134, 1993.

C. Meola, G. Cardone, C. Carmicino, and G. M. Carlomagno, Fluid dynamics and heat transfer in an impinging air jet, 9th International Symposium on ow Visualization, pp.22-25, 2000.

R. J. Goldstein and A. I. Behbahani, Impingement of a circular jet with and without crossow, Int. J. Heat and Mass Transfer, vol.25, p.13771382, 1982.

B. Pamadi and I. Belov, A note on the heat transfer characteristics of circular impinging jet, International Journal of Heat and Mass Transfer, vol.23, issue.6, p.783787, 1980.
DOI : 10.1016/0017-9310(80)90032-0

R. Gardon and J. Akfirat, The role of turbulence in determining the heat-transfer characteristics of impinging jets, International Journal of Heat and Mass Transfer, vol.8, issue.10, pp.1261-1272, 1965.
DOI : 10.1016/0017-9310(65)90054-2

S. P. Kezios, Heat Transfer in the Flow of a Cylindrical Air Jet Normal to an Innite Plane, 1956.

D. Lytle and B. W. Webb, Secondary heat transfer maxima for air jet impingement at low nozzle to plate spacings. Experimental Heat Transfer, Fluid Mechanics and Thermodynamics, p.776783, 1991.

N. R. Saad, W. J. Douglas, and A. S. Mujumdar, Prediction of Heat Transfer under an Axisymmetric Laminar Impinging Jet, Industrial & Engineering Chemistry Fundamentals, vol.16, issue.1, p.148154, 1977.
DOI : 10.1021/i160061a027

W. Rohlfs, H. D. Haustein, O. Garbrecht, and R. Kneer, Insights into the local heat transfer of a submerged impinging jet : BIBLIOGRAPHIE Inuence of local ow acceleration and vortex-wall interaction, Int. J. Heat and Mass Transfer, vol.55, p.77287736, 2012.

D. Cooper, D. C. Jackson, B. E. Launder, and G. X. Liao, Impinging jet studies for turbulence model assessment -i. ow-eld experiments, Int. J. Heat and Mass Transfer, vol.36, p.26752684, 1993.

M. Hadziabdic and K. Hanjalic, Vortical structure and heat transfer in a round impinging jet, J. Fluid Mechanics, vol.596, p.221260, 2008.

T. S. O-'donovan and D. B. Murray, Jet impingement heat transfer -part 2 : A temporal investigation of heat transfer and local uid velocities, Int. J. Heat and Mass Transfer, vol.50, p.33023314, 2007.

E. U. Schlichting and V. Gnielinski, Heat and mass transfer between surfaces and impinging jets, Chem. Ing. Tech, vol.39, p.578584, 1967.

R. Gardon and J. Carbonpue, Heat transfer between a at plate and jets of jets of aire impinging on it, International Heat Transfer Conference, p.454460, 1961.

D. H. Lee, R. Grief, S. J. Lee, and J. H. Lee, Heat transfer from a plate to a fully developed axisymetric impinging jet, ASME J. Heat Transfer, vol.117, p.772776, 1995.

M. Fenot, Etude du refroidissement par impact de jets, Application aux aubes de turbines. thèse, 2004.

P. Heikkila and N. Milosavljevic, Investigation of impingement heat transfer coecient at high temperatures, Drying Technology, vol.20, p.211222, 2002.

J. W. Baughn, A. E. Hechanova, and Y. Xiaojun, An experimental study of entrainment eects on the heat transfer from a at surface to a heated circular impinging jet, J. Heat Transfer, vol.113, issue.4, p.10231025, 1991.

B. R. Hollworth and S. I. Wilson, Entrainment eect on impingement heat transfer : Part 1 -measurements of heated jet velocity and temperature distributions and recovery temperatures on target surface, J. Heat Transfer, vol.106, issue.4, p.797803, 1984.

M. Fenot, J. J. Vullierme, and E. Dorignac, Local heat transfer due to several congurations of circular air jets impinging on a at plate with and without semi-connement, Int. J. Thermal Sciences, vol.44, p.665675, 2005.

S. L. Birch and J. M. Eggers, A critical review of the experimental data on turbulent shear layers, NASA SP, vol.321, p.943949, 1972.

W. Shyy and V. S. Krishnamurty, Compressibility eect in modeling complex turbulent ows, Prog. Aerospace Sci, vol.33, p.587645, 1997.

C. Meola, L. De-luca, and G. M. Carlomagno, Azimuthal instability in an impinging jet: adiabatic wall temperature distribution, Experiments in Fluids, vol.18, issue.5, p.303310, 1995.
DOI : 10.1007/BF00211385

C. Meola, L. De-luca, and G. M. Carlomagno, Inuence of shear layer dynamics on impingement heat transfer, Experimental Thermal and Fluid Science, vol.13, p.2937, 1996.

E. Turgeon, D. Pelletier, and F. Ilinca, Compressible heat transfer computations by an adaptive nite element method, Int. J. Thermal Sciences, issue.8, pp.41721-736, 2002.

R. Hannat, Etude numérique des eets de la compressibilité sur le transfert de chaleur dans un système antigivre à air chaud, Ecole Technologie Supérieure, 2009.

E. Dorignac and J. J. Vullierme, Qualication d'une méthode de mesure des échanges convectifs sur des obstacles de formes courbes, Colloque Thermique : Systèmes thermiques instationnaires, pp.99-105, 1992.

A. Messaadi, Etude des échanges convectifs le long d'une paroi à multiperforation inclinée. Application au refroidissement des parois des chambres de combustion, 2003.

Q. Sultan, Caractérisation expérimentale aérothermique d'un jet pulse débouchant dans un écoulement transversal : Inuence du nombre de Strouhal d'excitation sur le refroidissement de paroi par lm, Thèse. Ecole Nationale, 2011.

D. York, N. M. Evensen, L. Lopez, J. Martinez, . De et al., Unied equation for the slope, intercept, and standard errors of the best straight line, Am. J. Phys, vol.72, issue.3, p.367375, 2004.

H. Huang, D. Dabiri, and M. Gharib, On errors of digital particle image velocimetry, Measurement Science and Technology, vol.8, issue.12, p.14271440, 1997.
DOI : 10.1088/0957-0233/8/12/007

K. Ismail, M. Ben-chiekh, S. Ben, and . Nasrallah, Techniques d'identication des structures cohérentes dans un écoulement 2d

F. Hsiao, Y. Lim, and J. Huang, On the near-eld ow structure and mode behaviors for the right-angle and sharp-edged orice plane jet, Experimental Thermal and Fluid Science, vol.34, p.12821289, 2010.

M. Goodro, J. Park, P. Ligrani, M. Fox, and H. Moon, Eects of Mach number and Reynolds number on jet array impingement heat transfer, Int. J. Heat and Mass Transfer, vol.50, p.367380, 2007.