Radiative flow of nanofluid past a convected vertical Riga plate with activation energy and nonlinear heat generation

被引:9
作者
Alhowaity, Awatif [1 ]
Mehmood, Yasir [2 ]
Hamam, Haneen [3 ]
Bilal, Muhammad [4 ]
机构
[1] Univ Jeddah, Fac Sci & Arts, Math Dept, Al Kamel Branch, Jeddah, Saudi Arabia
[2] Univ LahoreChenab, Gujrat, Pakistan
[3] Umm Al Qura Univ, Math Dept, Mecca, Saudi Arabia
[4] Univ Chenab, Gujrat, Pakistan
关键词
Vertical Riga plate; buoyancy effects; nanofluid; activation energy; Ohmic dissipation; STAGNATION-POINT FLOW; CHEMICAL-REACTION; THERMAL-RADIATION; VISCOUS DISSIPATION; STRETCHING SURFACE; BOUNDARY-LAYER; MASS-TRANSFER; PARTIAL SLIP; SUCTION;
D O I
10.1177/09544089221126439
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This article presents an analysis of the radiative flow of nanofluid past a convected vertical Riga plate with activation energy and nonlinear heat generation. A Riga plate is a surface-mounted electromagnetic actuator with a spanwise aligned array of alternating electrodes and permanent magnets. The aforementioned rheological model is formulated in the way of the nonlinear partial differential equations (PDEs). The system of nonlinear coupled ordinary differential equations (ODEs) is obtained from the modeled nonlinear PDEs by incorporating valid similarity transformations. The system of ODEs is then figured out by the reliable shooting method. The effects of mixed convection, modified Hartmann number, Biot number, thermophoresis, Eckert number, reaction rate, the width of magnets and electrodes, and Lewis and Prandtl numbers on the velocity, temperature, and concentration profiles are investigated graphically and numerically. It is found that the speed of the fluid can be managed with the separation of magnets and electrodes. Further, the concentration of nanofluid is significantly enhanced in the presence of activation energy. Also, the nonlinear exponential index parameter of heat generation declines the temperature of the fluid. Further, it is found that in the presence of thermal radiation, viscous dissipation, and nonlinear heat generation, the Nusselt number increases averagely by about 11.3%.
引用
收藏
页码:1799 / 1807
页数:9
相关论文
共 37 条
[1]   Electromagnetohydrodynamic nanofluid flow past a porous Riga plate containing gyrotactic microorganism [J].
Abbas, T. ;
Hayat, T. ;
Ayub, M. ;
Bhatti, M. M. ;
Alsaedi, A. .
NEURAL COMPUTING & APPLICATIONS, 2019, 31 (06) :1905-1913
[2]   Hydromagnetic slip flow of nanofluid over a curved stretching surface with heat generation and thermal radiation [J].
Abbas, Z. ;
Naveed, M. ;
Sajid, M. .
JOURNAL OF MOLECULAR LIQUIDS, 2016, 215 :756-762
[3]   Flow of nanofluid past a Riga plate [J].
Ahmad, Adeel ;
Asghar, Saleem ;
Afzal, Sumaira .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2016, 402 :44-48
[4]   ON THERMAL-BOUNDARY-LAYER ON A POWER-LAW STRETCHED SURFACE WITH SUCTION OR INJECTION [J].
ALI, ME .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 1995, 16 (04) :280-290
[5]   Inspiration of slip effects on electromagnetohydrodynamics (EMHD) nanofluid flow through a horizontal Riga plate [J].
Ayub, M. ;
Abbas, T. ;
Bhatti, M. M. .
EUROPEAN PHYSICAL JOURNAL PLUS, 2016, 131 (06)
[6]   Viscoelastic fluid flow and heat transfer over a stretching sheet under the effects of a non-uniform heat source, viscous dissipation and thermal radiation [J].
Bataller, Rafael Cortell .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2007, 50 (15-16) :3152-3162
[7]   Radiation effect on MHD Casson fluid flow over an inclined non-linear surface with chemical reaction in a Forchheimer porous medium [J].
Bejawada, Shankar Goud ;
Reddy, Yanala Dharmendar ;
Jamshed, Wasim ;
Nisar, Kottakkaran Sooppy ;
Alharbi, Abdulaziz N. ;
Chouikh, Ridha .
ALEXANDRIA ENGINEERING JOURNAL, 2022, 61 (10) :8207-8220
[8]   NATURAL-CONVECTION BOUNDARY-LAYER WITH SUCTION AND MASS-TRANSFER IN A POROUS-MEDIUM [J].
BESTMAN, AR .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 1990, 14 (04) :389-396
[9]   RADIATIVE HEAT-TRANSFER TO FLOW OF A COMBUSTIBLE MIXTURE IN A VERTICAL PIPE [J].
BESTMAN, AR .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 1991, 15 (03) :179-184
[10]  
Chamkha AJ, 2003, HEAT MASS TRANSFER, V39, P305, DOI [10.1007/S00231-002-0353-4, 10.1007/s00231-002-0353-4]