A thermal energy analysis of binary (Go-Co/H2O) and ternary (Go-Co-Zro2/H2O) nanofluids based on characterization and thermal performance

Author:

Hussain Syed M1,Ahmad Sohail2,Ali Kashif2,Al Mesfer Mohammed K3,Danish Mohd3,Jamshed Wasim45ORCID,Irshad Kashif6,Ahmad Hijaz1789

Affiliation:

1. Department of Mathematics, Faculty of Science, Islamic University of Madinah, Madinah, Saudi Arabia

2. Department of Basic Science and Humanities, Muhammad Nawaz Sharif University of Engineering & Technology, Multan, Pakistan

3. Chemical Engineering Department, College of Engineering, King Khalid University, Abha, Saudi Arabia

4. Department of Mathematics, Capital University of Science & Technology (CUST), Islamabad, Pakistan

5. Mathematics in Applied Sciences and Engineering Research Group, Scientific Research Center, Al-Ayen University, Nasiriyah, Iraq

6. Interdisciplinary Research Center for Sustainable Energy Systems (IRC-SES), Research Institute, King Fahd University of Petroleum and Minerals (KFUPM), Dhahran, Saudi Arabia

7. Near East University, Operational Research Center in Healthcare, Nicosia, Turkey

8. Center for Applied Mathematics and Bioinformatics, Gulf University for Science and Technology, Mishref, Kuwait

9. Department of Computer Science and Mathematics, Lebanese American University, Beirut, Lebanon

Abstract

Hybrid or binary nanofluids have superior mechanical and thermal characteristics but the tri-hybrid nanofluids comprise of more embellished thermal properties, better physical strength, and enhanced stability. The present work characterizes the thermal and physical aspects of the hybrid and tri-hybrid nanofluids. The nano-composition of graphene oxide ( Go) and cobalt ( Co) is used in the amalgamation of hybrid nanofluid Go-Co/H2O, whereas the addition of zirconium oxide ( ZrO2) in this mixture gives rise to the ternary Go-Co-ZrO2/H2O hybrid nanofluid. The activation energy and viscous dissipation terms are also amended in the governing equations. The mathematical framework consists of a complex natured dynamical system. However, a numerical algorithm based on finite-difference discretization is developed which can solve the system numerically via the MATLAB software. A comparison with the existing literature is provided in order to validate the numerical procedure. From the outcomes, it is noticed that the temperature of hybrid as well as tri-hybrid nanofuid increases rapidly with change in concentration of zirconium oxide and cobalt. Temperature increases up to 20% by taking 0.1 volume fraction of both zirconium oxide and cobalt. Porous medium and activation energy resist the flow and concentration respectively. A comparative judgment evidently reveals that tri-hybrid Go-Co-ZrO2/H2O nanofluid has a substantial effect on temperature as equated to hybrid or pure nanofluid.

Publisher

SAGE Publications

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