Viscous dissipation effects on time-dependent MHD Casson nanofluid over stretching surface: A hybrid nanofluid study

被引:15
|
作者
Rehman, Ali [1 ]
Khan, Dolat [2 ]
Mahariq, Ibrahim [3 ,4 ]
Elkotb, Mohamed Abdelghany [5 ]
Elnaqeeb, Thanaa [6 ,7 ]
机构
[1] Univ Teknol Malaysia, Forens Engn Ctr Inst Smart Infrastruct & Innovat C, Fac Civil Engn, Skudai, Malaysia
[2] King Mongkuts Univ Technol Thonburi KMUTT, Fac Sci, 126 Pracha Uthit Rd, Bangkok 10140, Thailand
[3] Gulf Univ Sci & Technol, GUST Engn & Appl Innovat Res Ctr GEAR, Mishref, Kuwait
[4] China Med Univ, China Med Univ Hosp, Dept Med Res, Taichung, Taiwan
[5] King Khalid Univ, Coll Engn, Mech Engn Dept, Abha 61421, Saudi Arabia
[6] Taif Univ, Fac Sci, Dept Math & Stat, Taif 888, Saudi Arabia
[7] Zagazig Univ, Fac Sci, Dept Math, Zagazig 44519, Egypt
关键词
Hybrid nanofluid; Extending surface; MHD; HAM; HEAT-TRANSFER; NUMERICAL-ANALYSIS; FLOW; NANOPARTICLES; SYSTEM; DISK;
D O I
10.1016/j.molliq.2024.125370
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The study of MHD Couple stress Casson flow of a hybrid nanofluid is paramount due to its potential applications in advanced engineering systems, particularly in enhancing thermal management and efficiency in various industrial processes. In this report, the time-dependent MHD Couple stress Casson flow of a hybrid nanofluid, considering the impact of viscous dissipation over a stretching surface is presented. The main objective of this work is to enhance the transformation heat ratio to meet the requirements of the engineering and manufacturing industries. After conducting a continuity check, the issue is analyzed by applying the principles of momentum and energy conservation. This modeling process generates nonlinear partial differential equations (PDEs), which are subsequently converted into nonlinear ordinary differential equations (ODEs) using similarity transformation and thermophysical characteristics. To solve these ODEs, the Approximate Analytical Method HAM is employed, which is specifically designed for nonlinear problems. Velocity decreases with increasing values and higher nanoparticle volume fraction further slows the velocity. Increasing the couple-stress parameter reduces velocity; increasing the Casson parameter slows the velocity profile. Increasing magnetic parameter enhances temperature profile; profile escalates with Eckert number magnitude. These findings contribute significantly to understanding the structure, interactions, and dynamics of such liquids, aligning with the focus on exploring the fundamental properties of simple, molecular, ionic, and complex liquids.
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页数:12
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