4.6 Article

Numerical and experimental study of turbulent impinging twin-jet flow

Journal

EXPERIMENTAL THERMAL AND FLUID SCIENCE
Volume 31, Issue 8, Pages 1061-1072

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.expthermflusci.2006.11.006

Keywords

twin-jet impinging flow; sub atmospheric region; recirculation zone; turbulent flow

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The two dimensional impinging circular twin-jet flow with no-cross flow is studied numerically and experimentally. The theoretical predications are carried out through numerical procedure based on finite volume method to solve the governing mass, momentum, turbulent kinetic energy and turbulent kinetic energy dissipation rate. The parameters studied were jet Reynolds number (9.5 x 10(4) <= Re <= 22.4 x 10(4)), nozzle to plate spacing (3 <= h/d <= 12), nozzle to nozzle centerline spacing (l/d = 3, 5 and 8) and jet angle (0 degrees <= theta <= 20 degrees). It is concluded that the stagnation primary point moves away in the radial main flow direction by increasing the jet angle. This shift becomes stronger by increasing the nozzle to nozzle centerline spacing (l/d). A secondary stagnation point is set up between two jets. The value of pressure at this point decreases by decreasing Reynolds number and/or increasing the jet angle. The sub atmospheric region occurs on the impingement plate. It increases strongly by increasing Reynolds number and decreases as the jet angle and/or a nozzle to plate spacing increases. The spreading of jet decreases by increasing nozzle to plate spacing. The intensity of re-circulation zone between two jets decreases by increasing of h/d and jet angle. The increase of turbulence kinetic energy occurs within high gradient velocity. (c) 2006 Elsevier Inc. All rights reserved.

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