Thermal and mass transport investigation of magnetohydrodynamic reactive nanofluid flow utilizing Buongiorno’s model

Author:

Al-Harthi Turkiah M1ORCID,Alqahtani Aisha M.2ORCID,Ragab Islam3ORCID,Alroobaea Roobaea4ORCID,Rasheed Akhter5ORCID,Abdou M. Modather M.67ORCID,Ali Aatif8ORCID

Affiliation:

1. Department of Mathematics, Shaqra University, Shaqra 11921, Saudi Arabia

2. Department of Mathematical Sciences, College of Science, Princess Nourah bint, Abdulrahman University, P. O. Box 84428, Riyadh 11671, Saudi Arabia

3. Department of Chemistry, College of Science, Qassim University, Buraidah 51452, Saudi Arabia

4. Department of Computer Science, College of Computers and Information Technology, Taif University, P. O. Box 11099, Taif 21944, Saudi Arabia

5. Department of Mathematics, Comsat University Islamabad Abbottabad Campus Pakistan

6. Department of Mathematics, College of Science and Humanities in Al-Kharj, Prince Sattam bin Abdulaziz University, Al-Kharj 11942, Saudi Arabia

7. Department of Mathematics, Faculty of Science, Aswan University, Aswan 81528, Egypt

8. School of Mathematical Sciences, Jiangsu University, Zhenjiang, Jiangsu 212013, China

Abstract

The paper’s primary goal is to investigate mass and heat transfer processes in reactive nanofluid particles. Within Buongiorno’s model, three chemical reactions are discussed. The main subject is on the nanoparticle fractions at the boundary. The characteristics of [Formula: see text] and [Formula: see text] with regard to the nanoparticle fraction have been found to be passively rather than actively controlled at the boundary. To put it another way, these qualities naturally develop and are controlled by the circumstances at the boundary or interface where the nanoparticles interact with the surrounding medium. They are not the result of active manipulation or outside forces. The system of partial differential equations was converted into ordinary differential equations using similarity transformations. To solve the system of ODEs, they combined the shooting method with a numerical technique known as RK-Fehlberg. The study examines various physical parameters and their effects using graphs. The paper also contains a table showing how different parameters affect the regional Nusselt and Sherwood numbers. This enables a deeper comprehension of the impact that these variables have on the heat and mass transfer within the reactive nanofluid particles. Core findings: Examining three chemical reactions involving nanofluids has led to the study’s key discoveries. Additionally, it looks into how specific physical variables may affect the Nusselt and Sherwood numbers.

Publisher

World Scientific Pub Co Pte Ltd

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