Study of the Dynamic and Thermal Behaviors of an Air Flow in a T-Bifurcation

Author:

Riahi Ali1,Pelle Julien2,Chouchene Lilia1,Harmand Souad3,Ben Jabrallah Sadok1

Affiliation:

1. Laboratory of Energy, Thermal and Mass Transfers of Tunis, Faculty of Sciences of Tunis, Campus University, University of Tunis El Manar, Tunis 1060, Tunisia; Faculty of Science, Bizerte-Zarzouna-Bizerte-7021, University of Carthage, Carthage 1054, Tunisia

2. LAMIH UMR CNRS 8201, Université Polytechnique HAUTS-DE-FRANCE, Le Mont Houy F, Valenciennes 59313 Cedex 9, France

3. LAMIH UMR CNRS 8201, University of Valenciennes and Hainaut-Cambrésis, Famars 59300, France

Abstract

This paper presents a numerical and experimental study of a turbulent flow of air in a T-bifurcation. This configuration corresponds to a stator containing radial vents oriented vertically to the rotor–stator air gap in electrical machines. Our analysis focuses on the local convective heat transfer over the internal surface of the vents under a turbulent mass flow rate. To model the cooling installation in this region, computational fluid dynamics simulations and an experiment using particle image velocimetry (PIV) are performed. The resulting flow generally produces recirculation zones in various channels. The effect of the flow ratio and diameter of the bifurcation on the dynamic and thermal behavior of the flow is also examined. In this study, we apply a numerical approach based on the k–ω shear stress transport (SST) turbulence model (using the commercial software, “comsolmultiphysics”) to numerically solve the Navier–Stokes equations and energy equation of the system under consideration. We describe the different hypotheses necessary to formulate the equations governing the problem, initial conditions, and boundary condition. The velocity in the bifurcation calculated using the simulation is compared with that obtained by the experiment and it reveals a good agreement. The effect of the branch diameter of the bifurcation and flow ratio on the heat transfer is specifically analyzed in this research work.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference32 articles.

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