Effect of rotating cylinder on nanofluid heat transfer in a bifurcating grooved channel equipped with porous layers

Author:

Saleh Momen S. M.1ORCID,Mekroussi Said1,Kherris Sahraoui2,Boutera Yousra3,Bouzaher Mohamed Taher4,Belghar Noureddine5,Chamkha Ali J.6,Kolsi Lioua78

Affiliation:

1. Research Laboratory of Industrial Technologies, University of Tiaret., Tiaret, 14000, Algeria

2. Mechanical Engineering, Materials and Structures Laboratory, Tissemsilt University, 38000, Algeria

3. Laboratoire de Génie Mécanique, LGM, Université de Biskra, B.P145 R.P.07000 Biskra, Algeria

4. Scientific and Technical Research Centre for Arid Areas(CRSTRA), Biskra, Algeria

5. Laboratory of Materials and Energy Engineering, University of Mohamed Khider Biskra, Biskra 7000, Algeria

6. Faculty of Engineering, Kuwait College of Science and Technology, Doha District 35004, Kuwait

7. Department of Mechanical Engineering, College of Engineering, Ha’il University, Ha’il City, Saudi Arabia

8. Laboratory of Metrology and Energy systems, Department of Energy Engineering, University of Monastir, Monastir 5000, Tunisia

Abstract

The aim of this work is to examine numerically the effect of using a rotating cylinder and porous layers on the forced convection in a bifurcating grooved channel (BGC) filled with two types of nanofluids (MgO-water, SiO2-water). The semi-implicit finite volumes method was used to solve the governing equations. The effects of Reynolds number, nanoparticles volume fraction, and cylinder rotation speed on hydro-thermal performances have been investigated. According to the obtained results, the rotation direction plays a significant role in the formation of vortices at the branching channel, such that when the cylinder rotates clockwise, the vortex occurs in the vertical channel, and it decreases with increasing Reynolds number. Besides, using BGC with a porous medium enhances the heat transfer rate by 52% and 49% at the vertical and horizontal walls of the porous layer, respectively. On the other hand, the heat transfer rate is improved by 2.6% when using MgO nanoparticles compared to SiO2. Therefore, the use of bifurcating grooved channels can improve the thermal performance of various applications in thermal engineering, from fuel cells to electronic cooling.

Publisher

World Scientific Pub Co Pte Ltd

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

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