Computational analysis of nanoparticles and waste discharge concentration past a rotating sphere with Lorentz forces

Author:

Nimmy Pullare1,Obalalu Adebowale Martins2,Nagaraja Kallur Venkat1,Madhukesh Javali Kotresh1,Khan Umair3456,Ishak Anuar3,Sriram Devanathan7,Hussain Syed Modassir8,Kumar Raman9,Abed Ahmed M.1011

Affiliation:

1. Computational Science Lab, Amrita School of Engineering, Amrita Vishwa Vidyapeetham , Bengaluru 560035 , India

2. Department of Mathematics and Statistics, Kwara State University , Malete , Nigeria

3. Department of Mathematical Sciences, Faculty of Science and Technology, Universiti Kebangsaan Malaysia, UKM , Bangi 43600, Selangor , Malaysia

4. Department of Mathematics, Faculty of Science, Sakarya University , Serdivan/Sakarya 54050 , Turkey

5. Department of Computer Science and Mathematics, Lebanese American University , Byblos , Lebanon

6. Department of Mechanics and Mathematics, Western Caspian University , Baku 1001 , Azerbaijan

7. Department of Mechanical Engineering, Amrita School of Engineering, Amrita Vishwa Vidyapeetham , Bengaluru 560035 , India

8. Department of Mathematics, Faculty of Science, Islamic University of Madinah, Madinah 42351 , Saudi Arabia

9. Department of Mechanical Engineering and University Centre for Research & Development, Chandigarh University , Mohali 140413, Punjab , India

10. Department of Industrial Engineering, College of Engineering, Prince Sattam bin Abdulaziz University , Alkharj 16273 , Saudi Arabia

11. Industrial Engineering Department, Faculty of Engineering, Zagazig University , Zagazig 44519 , Egypt

Abstract

Abstract As industries rely more and more on magnetohydrodynamic (MHD) systems for different uses in power, production, and management of the environment, it becomes essential to optimize these operations. The study seeks to improve the effectiveness and productivity of cooling structures, chemical reaction reactors, and contaminant control methods by investigating these intricate interconnections. Because of this, the work scrutinizes the endothermic/exothermic (EN/EX) chemical processes, convective boundary conditions, and pollutant concentration impacts on MHD nanofluid circulation around a rotating sphere. The governing equations based on the above assumptions are reduced into a system of ordinary differential equations and solved numerically with Runge–Kutta Fehlberg’s fourth- and fifth- order schemes. The obtained numerical outcomes from the numerical scheme are presented with the aid of graphs, and the results show that the rate of mass transfer decreases with an increase in the external pollutant local source and solid volume percentage. For changes in the values of the activation energy parameter and solid fraction, the rate of thermal dispersion drops for the EN case and upsurges for the EX case. The concentration profile shows increment with the addition of the external pollutant source variation parameter and local pollutant external source parameter. The outcomes of the present work can be helpful in cooling equipment, developing advanced methods for controlling pollution, environmental management, MHD generators, and various industrial contexts.

Publisher

Walter de Gruyter GmbH

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