Flow Analysis of a Micropolar Nanofluid Between Two Parallel Disks in the Presence of a Magnetic Field

被引:6
作者
Gupta, Reshu [1 ]
Agrawal, Deepak [2 ]
机构
[1] Univ Petr & & Energy Studies, Dept Math, Dehra Dun 248001, Uttaranchal, India
[2] Tulas Inst, Dept Math, Dehra Dun 248001, Uttaranchal, India
关键词
Delivered by Ingenta Steady Flow; Porous Disks; Micropolar Nanofluid; Water-Based Nanofluid; Titanium Dioxide; Differential Transform Method; HEAT-TRANSFER; MASS-TRANSFER; FLUID-FLOW; STRETCHING SHEET; POROUS-MEDIUM; MHD FLOW; SLIP;
D O I
10.1166/jon.2023.2021
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The present article addresses the steady and laminar magnetohydrodynamics (MHD) flow of a micropolar nanofluid between two porous disks. The fluid is flowing uniformly in the inward and upward directions from both disks. The microrotation of the nanoparticles acts an important role in the flow regime. To show its significance, a comparative study of the analytical results and numerical results is presented. Titanium dioxide is chosen as nanoparticles in the water-based fluid. An appropriate transformation is used for transforming PDEs into ODEs. These nonlinear ODEs are computed by the differential transform method (DTM). The consequences of the Reynolds number, material parameter, and magnetic parameter on the radial velocity, axial velocity, and microrotation profile are graphically presented and discussed. The results calculated by DTM and the results calculated numerically are compared and tabulated. This comparison shows the accuracy and validity of DTM. The coefficient of skin friction is also tabulated and compared with the numerical result. At the end of this study, it is concluded that the behavior of the radial and the axial velocities and the microrotation profile are almost the same in the case of the Reynolds number and the magnetic field parameters.
引用
收藏
页码:1320 / 1326
页数:7
相关论文
共 44 条
[1]  
Agarwal R., 2020, PALARCHS J ARCHAEOL, V17, P903
[2]  
Agarwal R., 2022, PALEST J MATH, V11, P184
[3]   Heat and mass transfer in electrically conducting micropolar fluid flow between two stretchable disks [J].
Agarwal, Reshu .
MATERIALS TODAY-PROCEEDINGS, 2021, 46 :10227-10238
[4]   Analytical Solution of the MHD Forced Flow and Heat Transfer of a non-Newtonian Visco-Inelastic Fluid between Two Infinite Rotating Disks [J].
Agarwal, Reshu ;
Mishra, Pankaj Kumar .
MATERIALS TODAY-PROCEEDINGS, 2021, 46 :10153-10163
[5]   Simulation of Cattaneo-Christov heat flux on the flow of single and multi-walled carbon nanotubes between two stretchable coaxial rotating disks [J].
Bhattacharyya, A. ;
Seth, G. S. ;
Kumar, R. ;
Chamkha, A. J. .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2020, 139 (03) :1655-1670
[6]  
Choi SU, 1995, ANL/MSD/CP-84938
[7]  
CONF-951135-29
[8]   Investigation of magneto-hydrodynamic fluid squeezed between two parallel disks by considering Joule heating, thermal radiation, and adding different nanoparticles [J].
Dogonchi, A. S. ;
Waqas, Muhammad ;
Afshar, S. R. ;
Seyyedi, Seyyed Masoud ;
Hashemi-Tilehnoee, M. ;
Chamkha, Ali J. ;
Ganji, D. D. .
INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW, 2020, 30 (02) :659-680
[9]   Radiative nanofluid flow and heat transfer between parallel disks with penetrable and stretchable walls considering Cattaneo-Christov heat flux model [J].
Dogonchi, A. S. ;
Chamkha, Ali J. ;
Seyyedi, S. M. ;
Ganji, D. D. .
HEAT TRANSFER-ASIAN RESEARCH, 2018, 47 (05) :735-753
[10]   Enhanced thermal conductivity through the development of nanofluids [J].
Eastman, JA ;
Choi, US ;
Li, S ;
Thompson, LJ ;
Lee, S .
NANOPHASE AND NANOCOMPOSITE MATERIALS II, 1997, 457 :3-11