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

Author:

Secchi FrancescoORCID,Gatti Davide,Frohnapfel Bettina

Abstract

AbstractThe study reports 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). Surface roughness is included in the simulations using an immersed boundary method. The deflection of the flow after jet impingement generates a radial wall-jet that develops parallel to the mean plate surface. The wall-jet is structured into an inner and an outer layer that, in the limit of infinite local Reynolds number, resemble a turbulent boundary layer and a free-shear flow. The investigation assesses the self-similar character of the mean radial velocity and Reynolds stresses profiles scaled by inner and outer layer units for varying size of the roughness topography. Namely the usual viscous units $$u_\tau$$ u τ and $$\delta _\nu$$ δ ν are used as inner layer scales, while the maximum radial velocity $$u_m$$ u m and its wall-normal location $$z_m$$ z m are used as outer layer scales. It is shown that the self-similarity of the mean radial velocity profiles scaled by outer layer units is marginally affected by the span of roughness topographies investigated, as outer layer velocity and length reference scales do not show a significantly modified behavior when surface roughness is considered. On the other hand, the mean radial velocity profiles scaled by inner layer units show a considerable scatter, as the roughness sub-layer determined by the considered roughness topographies extends up to the outer layer of the wall-jet. Nevertheless, the similar character of the velocity profiles appears to be conserved despite the profound impact of surface roughness.

Funder

Karlsruher Institut fur Technologie

Karlsruher Institut für Technologie (KIT)

Publisher

Springer Science and Business Media LLC

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy,General Chemical Engineering

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

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2. Numerical analysis of heat transfer and fluid flow structures of jet impingement on a flat plate with different shapes of roughness elements;Numerical Heat Transfer, Part A: Applications;2024-07-16

3. Flow and thermal fields modeling in jet impingement configurations using a Reynolds stress turbulence closure within the RANS and Sensitized-RANS framework;International Journal of Heat and Fluid Flow;2024-02

4. Turbulent jet impingement: surface roughness effects on wall-heat transfer;Proceeding of 10th International Symposium on Turbulence, Heat and Mass Transfer, THMT-23, Rome, Italy, 11-15 September 2023;2023

5. Turbulent jet impingement: surface roughness effects on wall-heat transfer;Proceeding of 10th International Symposium on Turbulence, Heat and Mass Transfer, THMT-23, Rome, Italy, 11-15 September 2023;2023

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