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Journal ArticleDOI

Vortical structures and heat transfer in a round impinging jet

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TLDR
In this article, the authors performed large-eddy simulations of a round normally impinging jet issuing from a long pipe at Reynolds number Re = 20000 at the orifice-to-plate distance H = 2D, where D is the jet-nozzle diameter.
Abstract
In order to gain a better insight into flow, vortical and turbulence structure and their correlation with the local heat transfer in impinging flows, we performed large-eddy simulations (LES) of a round normally impinging jet issuing from a long pipe at Reynolds number Re = 20000 at the orifice-to-plate distance H = 2D, where D is the jet-nozzle diameter. This configuration was chosen to match previous experiments in which several phenomena have been detected, but the underlying physics remained obscure because of limitations in the measuring techniques applied. The instantaneous velocity and temperature fields, generated by the LES, revealed interesting time and spatial dynamics of the vorticity and eddy structures and their imprints on the target wall, characterized by tilting and breaking of the edge ring vortices before impingement, flapping, precessing, splitting and pairing of the stagnation point/line, local unsteady separation and flow reversal at the onset of radial jet spreading, streaks pairing and branching in the near-wall region of the radial jets, and others. The LES data provided also a basis for plausible explanations of some of the experimentally detected statistically-averaged flow features such as double peaks in the Nusselt number and the negative production of turbulence energy in the stagnation region. The simulations, performed with an in-house unstructured finite-volume code T-FlowS, using second-order-accuracy discretization schemes for space and time and the dynamic subgrid-scale stress/flux model for unresolved motion, showed large sensitivity of the results to the grid resolution especially in the wall vicinity, suggesting care must be taken in interpreting LES results in impinging flows.

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Citations
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Journal ArticleDOI

A direct numerical simulation study for confined non-isothermal jet impingement at moderate nozzle-to-plate distances: Capturing jet-to-ambient density effects

TL;DR: In this paper , a direct numerical simulation (DNS) campaign is deployed for a series of confined downward oriented, non-isothermal turbulent impinging jet configurations, showing the effect of density disparity on flow characteristics such as core collapse, radial mixing of momentum and energy, nearwall stagnation behavior, wall-jet profiles, and large-scale vortical structures.

Computational study of multiple impinging jets on heat transfer

TL;DR: In this article, a numerical study of impinging jets cooling effect on a hot flat plate has been presented, in which different configuration of single jet, 5-cross and 9-square setups have been studied.
Book ChapterDOI

DNS Study of the Turbulent Inflow Effects on the Fluid Dynamics and Heat Transfer of a Compressible Impinging Jet Flow

TL;DR: In this paper, the authors present a DNS of a compressible impinging jet flow with Reynolds and Mach numbers of 8134 and 0.71, respectively, where the jet is vertically confined between two isothermal walls and issues from a circular orifice of diameter D in the uppermost wall.
Journal ArticleDOI

The Wall-Jet Region of a Turbulent Jet Impinging on Smooth and Rough Plates

TL;DR: In this article , the authors report direct numerical simulations of a turbulent jet impinging onto smooth and rough surfaces at Reynolds number Re = 10,000 (based on the jet mean bulk velocity and diameter).
Journal ArticleDOI

Heat transfer investigation on under-expanded supersonic impinging jets

TL;DR: In this article , wall-resolved large-eddy simulations are performed to investigate the underpinning physics of impingement heat transfer in under-expanded supersonic impinging jets.
References
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Journal ArticleDOI

A dynamic subgrid‐scale eddy viscosity model

TL;DR: In this article, a new eddy viscosity model is presented which alleviates many of the drawbacks of the existing subgrid-scale stress models, such as the inability to represent correctly with a single universal constant different turbulent fields in rotating or sheared flows, near solid walls, or in transitional regimes.
MonographDOI

Turbulent Flows: FUNDAMENTALS

Journal ArticleDOI

A stable and accurate convective modelling procedure based on quadratic upstream interpolation

TL;DR: In this paper, a convective modeling procedure is presented which avoids the stability problems of central differencing while remaining free of the inaccuracies of numerical diffusion associated with upstream differencings.
Journal ArticleDOI

Heat transfer to impinging isothermal gas and flame jets

TL;DR: In this paper, heat transfer characteristics of single and multiple isothermal turbulent air and flame jets impinging on surfaces are reviewed, and the effect of crossflow on impingement heat transfer is included.
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