The significance of quadratic thermal radiative scrutinization of a nanofluid flow across a microchannel with thermophoretic particle deposition effects

Author:

Nimmy Pullare1,Naveen Kumar Rangaswamy1,Madhukesh Javali Kotresh1,Khan Umair2345,Ishak Anuar2,Nagaraja Kallur Venkat1,Kumar Raman6,Muhammad Taseer7,Seddek Laila F.89,Abed Ahmed M.1011

Affiliation:

1. Department of Mathematics, Amrita School of Engineering, Amrita Vishwa Vidyapeetham, Bengaluru , India

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

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

4. Department of Computer Science and Mathematics, Lebanese American University , Byblos 1401 , Lebanon

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

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

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

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

9. Department of Engineering Mathematics and Physics, Faculty of Engineering, Zagazig University, Zagazig 44519 , Egypt

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 The investigation of thermal radiation and thermophoretic impacts on nano-based liquid circulation in a microchannel has a significant impact on the cooling of microscale equipment, microliquid devices, and many more. These miniature systems can benefit from the improved heat transfer efficiency made possible by the use of nanofluids, which are designed to consist of colloidal dispersion of nanoparticles in a carrier liquid. Understanding and precisely modeling the thermophoretic deposition (TPD) of nanoparticles on the channel surfaces is of utmost importance since it can greatly affect the heat transmission properties. This work examines the complex interaction between quadratic thermal radiation, magnetohydrodynamics, and TPD in a permeable microchannel. It aims to solve a significant knowledge gap in microfluidics and thermal and mass transport. The governing equations are simplified by applying suitable similarity restrictions, and computing solutions to the resulting equations is done using the Runge‒Kutta Fehlberg fourth‒fifth-order scheme. The results are shown using graphs, and significant engineering metrics are analyzed. The outcomes show that increased Eckert number, magnetic, and porous factors will improve the thermal distribution. Quadratic thermal radiation shows the greater thermal distribution in the presence of these parameters, while Linear thermal radiation shows the least thermal distribution. The rate of thermal distribution is higher in the linear thermal distribution case and least in the nonlinear thermal radiation case in the presence of radiation and solid fraction factors. The outcomes of the present research are helpful in improving the thermal performance in microscale devices, electronic devices cooling, health care equipment, and other microfluidic applications.

Publisher

Walter de Gruyter GmbH

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