PG-EAM - Graduate Program in Aeronautical and Mechanical Engineering
PT EN
Article 2011

Simulation of a turbulent impinging jet into a layer of porous material using a two-energy equation model

Authors

Dórea, Felipe T.

Numerical Heat Transfer Part A Applications , vol. 59 , no. 10 , pp. 769-798

ISSN: 10407782

25
Citations
2
Authors

Abstract

This article presents numerical results for a turbulent jet impinging against a flat plane covered with a layer of permeable and thermally conducting material. Distinct energy equations are considered for the solid porous material attached to the wall and for the fluid that impinges on it. Parameters such as Reynolds number, porosity, permeability, thickness, and thermal conductivity of the porous layer are varied in order to analyze their effects on the local distribution of Nu. The macroscopic equations for mass, momentum, and energy are obtained based on volume-average concept. The numerical technique employed for discretizing the governing equations was the control volume method with a boundary-fitted nonorthogonal coordinate system. The SIMPLE algorithm was used to handle the pressure-velocity coupling. Results indicate that inclusion of a porous layer eliminates the peak in Nu at the stagnation region. For highly porous and highly permeable material, simulations indicate that the integral heat flux from the wall is enhanced when a thermally conducting porous material is attached to the surface. Copyright © Taylor &Francis Group, LLC.

Numerical Analysis (MATH) Condensed Matter Physics (PHYS)
: Scopus
Last Update: 2026-06-25
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PII: 938219326