Heat transport phenomenon of the MHD water-based hybrid nanofluid flow over a rotating disk with velocity slips

Author:

Algehyne Ebrahem A.12,Haq Izharul3,Raizah Zehba4,Alduais Fuad S.56,Saeed Anwar7ORCID,Galal Ahmed M.89

Affiliation:

1. Department of Mathematics, Faculty of Science, University of Tabuk, P. O. Box 741, Tabuk 71491 Saudi Arabia

2. Nanotechnology Research Unit (NRU), University of Tabuk, Tabuk 71491, Saudi Arabia

3. College of Sciences and Human Studies (CSHS), Mohammad Bin Fahd University, Al Khobar Dammam, Saudi Arabia

4. Department of Mathematics, College of Science, Abha, King Khalid University, Saudi Arabia

5. Department of Mathematics, College of Science and Humanities in Al-Aflaj, Prince Sattam Bin Abdulaziz University, Al-Aflaj 11912, Saudi Arabia

6. Business Administration Department, Administrative Science College, Thamar University, Thamar, Yemen

7. Center of Excellence in Theoretical and Computational Science (TaCS-CoE), Science Laboratory Building, Faculty of Science, King Mongkut’s University of Technology Thonburi (KMUTT), 126 Pracha-Uthit Road, Bang Mod Thung Khru, Bangkok 10140, Thailand

8. Department of Mechanical Engineering, College of Engineering in Wadi Al-Dawasir, Prince Sattam bin Abdulaziz University, Saudi Arabia

9. Production Engineering and Mechanical Design Department, Faculty of Engineering, Mansoura University, P. O. 35516 Mansoura, Egypt

Abstract

The present investigation computes the heat transport phenomenon of the magnetohydrodynamic (MHD) flow of CuO-Ag/H2O hybrid nanofluid over a spinning disc. The authors are confident that there is very less analysis covering the fluid flow containing silver and copper oxide nanoparticles over a rotating disk. Therefore, the authors are interested to consider the water-based nanoliquid flow over a spinning disk. Furthermore, the velocity slip and thermal convective conditions are taken into consideration. The formulation of the problem is made in the form of PDEs and is then converted into the nonlinear ODEs by employing suitable similarity transformations. The homotopic analysis approach is applied for the semi-analytical solution of these resulting equations. The convergence of homotopic approach has also revealed with the help of figure. The performance of the hybrid nanofluid flow velocities and temperature has been shown in a graphical form against distinct flow parameters. Also, the numerical results of skin friction coefficient and Nusselt number have been calculated in a tabular form. The outcomes of the current problem show that the increase in the skin friction of the water-based copper oxide nanofluid is greater than the water-based silver nanofluid at 4% of the nanoparticle volume fraction. Also, the skin friction of the hybrid nanofluid is increased by 8% compared to the silver nanofluid at 4% of the nanoparticle volume fraction. Furthermore, the heat transfer rate of the water-based copper oxide nanofluid is greater than the water-based silver nanofluid at 4% of the nanoparticle volume fraction. Also, the heat transfer rate of the hybrid nanofluid is 52% greater than that of silver nanofluid at 4% of the nanoparticle volume fraction. It is found that the Nusselt number of the hybrid nanofluid is highly affected by the embedded parameters as compared to nanofluids.

Funder

Deanship of Scientific Research at King Khalid University, Abha, Saudi Arabia

Publisher

World Scientific Pub Co Pte Ltd

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

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