The Effects of Reduced Gravity and Radiative Heat Transfer on the Magnetohydrodynamic Flow Past a Non-Rotating Stationary Sphere Surrounded by a Porous Medium
Abstract
:1. Introduction
2. Mathematical Formulation
3. Solution Methodology
3.1. Dimensionless Variables
3.2. Primitive Variable Formulation
3.3. Solution Scheme
4. Results and Discussion
5. Conclusions
- When is increased, increases at all the points on the sphere, and the maximum value occurs at . As is increased, the buoyancy force increases and accelerates the fluid motion. Also, the velocity increases with increasing the values of porous medium parameter .
- The increase in results in the reduction of , and the maximum value is obtained at .
- The increase of Pr leads to a decrease of velocity and temperature, due to the enhancement of viscous effects and the reduction of thermal conductivity.
- The augmentation of , and cause the raising of temperature and the reduction of velocity.
- Skin friction and heat transfer rate increase with increasing the values of .
- The verification of the used numerical model is performed by comparing it to previously published results on skin friction, and good agreement is encountered.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Kay, A.; Kuiken, H.K.; Merkin, J.H. Boundary-layer analysis of the thermal bar. J. Fluid Mech. 1995, 303, 253–278. [Google Scholar] [CrossRef] [Green Version]
- Ostrach, S. An Analysis of Laminar Free-Convection Flow and Heat Transfer about a Flat Plate Parallel to the Direction of the Generating Body Force; National Aeronautics and Space Administration Cleveland Oh Lewis Research Center: Cleveland, OH, USA, 1952. [Google Scholar]
- Merkin, J.H. Free convection on a heated vertical plate: The solution for small Prandtl number. J. Eng. Math. 1989, 23, 273–282. [Google Scholar] [CrossRef]
- Lin, D.S.; Nansteel, M.W. Natural convection heat transfer in a square enclosure containing water near its density maximum. Int. J. Heat Mass Transf. 1987, 30, 2319–2329. [Google Scholar] [CrossRef]
- Ivey, G.N.; Hamblin, P.F. Convection near the temperature of maximum density for high Rayleigh number, low aspect ratio, rectangular cavities. ASME J. Heat Transfer. 1989, 111, 100–105. [Google Scholar] [CrossRef]
- Potter, J.M.; Riley, N. Free convection from a heated sphere at large Grashof number. J. Fluid Mech. 1980, 100, 769–783. [Google Scholar] [CrossRef]
- Riley, N. The heat transfer from a sphere in free convective flow. Comput. Fluids 1986, 14, 225–237. [Google Scholar] [CrossRef]
- Ashraf, M.; Fatima, A.; Gorla, R.S.R. Periodic momentum and thermal boundary layer mixed convection flow around the surface of a sphere in the presence of viscous dissipation. Can. J. Phys. 2017, 95, 976–986. [Google Scholar] [CrossRef]
- Ashraf Mand Fatima, A. Numerical simulation of the effect of transient shear stress and the rate of heat transfer around different positions of sphere in the presence of viscous dissipation. J. Heat Transf. 2018, 140, 701–7012. [Google Scholar]
- Ashraf, M.; Khan, A.; Gorla, R.S.R. Natural convection boundary layer flow of nanofluids around different stations of the sphere and into the plume above the sphere. Heat Transf.—Asian Res. 2019, 48, 1127–1148. [Google Scholar] [CrossRef]
- Abbas, A.; Ashraf, M.; Chu, Y.; Zia, S.; Khan, I.; Nisar, K.S. Computational Study of the Coupled Mechanism of Thermophoretic Transportation and Mixed Convection Flow around the Surface of a Sphere. Molecules 2020, 25, 2694. [Google Scholar] [CrossRef]
- Abbas, A.; Muhammad, A. Combined effects of variable viscosity and thermophoretic transportation on mixed convection flow around the surface of a sphere. Therm. Sci. 2020, 24, 4089–4101. [Google Scholar] [CrossRef] [Green Version]
- Ashraf, M.; Abbas, A.; Ali, A.; Shah, Z.; Alrabaiah, H.; Bonyah, E. Numerical simulation of the combined effects of thermophoretic motion and variable thermal conductivity on free convection heat transfer. AIP Adv. 2020, 10, 085005. [Google Scholar] [CrossRef]
- Abbas, A.; Ashraf, M.; Chamkha, A.J. Combined effects of thermal radiation and thermophoretic motion on mixed convection boundary layer flow. Alex. Eng. J. 2021, 60, 3243–3252. [Google Scholar] [CrossRef]
- Ashraf, M.; Abbas, A.; Zia, S.; Chu, Y.M.; Khan, I.; Nisar, K.S. Computational analysis of the effect of nano particle material motion on mixed convection flow in the presence of heat generation and absorption. Comput. Mater. Contin. 2020, 65, 1809–1823. [Google Scholar] [CrossRef]
- Ashraf, M.; Abbas, A.; Oztop, H.F.; Nisar, K.S.; Khan, I. Computations of mixed convection slip flow around the surface of a sphere: Effects of thermophoretic transportation and viscous dissipation. Heat Transf. 2021, 50, 7349–7362. [Google Scholar] [CrossRef]
- Ahmad, U.; Ashraf, M.; Abbas, A.; Rashad, A.M.; Nabwey, H.A. Mixed convection flow along a curved surface in the presence of exothermic catalytic chemical reaction. Sci. Rep. 2021, 11, 12907. [Google Scholar] [CrossRef]
- Abbas, A.; Ijaz, I.; Ashraf, M.; Ahmad, H. Combined effects of variable density and thermal radiation on MHD Sakiadis flow. Case Stud. Therm. Eng. 2021, 28, 101640. [Google Scholar] [CrossRef]
- Tamoor, M.; Waqas, M.; Khan, M.I.; Alsaedi, A.; Hayat, T. Magnetohydrodynamic flow of Casson fluid over a stretching cylinder. Results Phys. 2017, 7, 498–502. [Google Scholar] [CrossRef]
- Pattnaik, P.K.; Mishra, S.R.; Barik, A.K.; Mishra, A.K. Influence of chemical reaction on magnetohydrodynamic flow over an exponential stretching sheet: A numerical study. Int. J. Fluid Mech. Res. 2020, 47, 217–228. [Google Scholar] [CrossRef]
- Mabood, F.; Khan, W.A.; Ismail, A.M. MHD flow over exponential radiating stretching sheet using homotopy analysis method. J. King Saud Univ.-Eng. Sci. 2017, 29, 68–74. [Google Scholar] [CrossRef]
- Khan, M.; Salahuddin, T.; Malik, M.Y.; Alqarni, M.S.; Alqahtani, A.M. Numerical modeling and analysis of bioconvection on MHD flow due to an upper paraboloid surface of revolution. Phys. A Stat. Mech. Its Appl. 2020, 553, 124231. [Google Scholar] [CrossRef]
- Bulinda, V.M.; Kang’ethe, G.P.; Kiogora, P.R. Magnetohydrodynamics Free Convection Flow of Incompressible Fluids over Corrugated Vibrating Bottom Surface with Hall Currents and Heat and Mass Transfers. J. Appl. Math. 2020, 2020, 2589760. [Google Scholar] [CrossRef] [Green Version]
- Alwawi, F.A.; Alkasasbeh, H.T.; Rashad, A.M.; Idris, R. MHD natural convection of Sodium Alginate Cassonnanofluid over a solid sphere. Results Phys. 2020, 16, 102818. [Google Scholar] [CrossRef]
- Chamkha, A. Double-Diffusion MHD free convective flow along a sphere in the presence of a homogeneous chemical reaction and Soret and Dufour effects. Appl. Comput. Math. 2017, 6, 34–44. [Google Scholar] [CrossRef] [Green Version]
- Chitra, M.; Kavitha, V. Pulsatile flow through a circular pipe with porous medium under the influence of time varying pressure gradient: Effects of with and without visco-elastic fluid. Malaya J. Mat. 2020, S, 126–132. [Google Scholar]
- Abbas, A.; Jeelani, M.B.; Alharthi, N.H. Magnetohydrodynamic Effects on Third-Grade Fluid Flow and Heat Transfer with Darcy–Forchheimer Law over an Inclined Exponentially Stretching Sheet Embedded in a Porous Medium. Magnetochemistry 2022, 8, 61. [Google Scholar] [CrossRef]
- Abbas, A.; Jeelani, M.B.; Alharthi, N.H. Darcy–Forchheimer Relation Influence on MHD Dissipative Third-Grade Fluid Flow and Heat Transfer in Porous Medium with Joule Heating Effects: A Numerical Approach. Processes 2022, 10, 906. [Google Scholar] [CrossRef]
- Abbas, A.; Shafqat, R.; Jeelani, M.B.; Alharthi, N.H. Convective Heat and Mass Transfer in Third-Grade Fluid with Darcy–Forchheimer Relation in the Presence of Thermal-Diffusion and Diffusion-Thermo Effects over an Exponentially Inclined Stretching Sheet Surrounded by a Porous Medium: A CFD Study. Processes 2022, 10, 776. [Google Scholar] [CrossRef]
- Abbas, A.; Shafqat, R.; Jeelani, M.B.; Alharthi, N.H. Significance of Chemical Reaction and Lorentz Force on Third-Grade Fluid Flow and Heat Transfer with Darcy–Forchheimer Law over an Inclined Exponentially Stretching Sheet Embedded in a Porous Medium. Symmetry 2022, 14, 779. [Google Scholar] [CrossRef]
- Abbas, A.; Jeelani, M.B.; Alnahdi, A.S.; Ilyas, A. MHD Williamson Nanofluid Fluid Flow and Heat Transfer Past a Non-Linear Stretching Sheet Implanted in a Porous Medium: Effects of Heat Generation and Viscous Dissipation. Processes 2022, 10, 1221. [Google Scholar] [CrossRef]
- Hussain, M.; Sheremet, M. Convection analysis of the radiative nanofluid flow through porous media over a stretching surface with inclined magnetic field. Int. Commun. Heat Mass Transf. 2023, 140, 106559. [Google Scholar] [CrossRef]
- Yan, Y.; Zhang, C.; Wu, G.; Feng, S.; Yang, Z. Numerical study on methane/air combustion characteristics in a heat-recirculating micro combustor embedded with porous media. Int. J. Hydrog. Energy 2022, 47, 20999–21012. [Google Scholar] [CrossRef]
- Jha, B.K.; Musa, M.K. The combined effects of anisotropic porous medium and stably stratified fluid on free convective flow through an annulus. J. Taibah Univ. Sci. 2018, 12, 678–686. [Google Scholar] [CrossRef] [Green Version]
- El-Kady, M.S. Enhancement of Mixed Convection in a Channel with Discrete Heat Sources by Using a Highly Conducting Porous Medium.(Dept. M). MEJ. Mansoura Eng. J. 2021, 25, 1–6. [Google Scholar] [CrossRef]
- Sparrow, E.M.; Gregg, J.L. Details of Exact Low Prandtl Number Boundary-Layer Solutions for Forced and For Free Convection; No. NASA-MEMO-2-27-59E; NTRS: Washington, DC, USA, 1959. [Google Scholar]
- Hossain, M.A.; Takhar, H.S. Radiation effect on mixed convection along a vertical plate with uniform surface temperature. Heat Mass Transf. 1996, 31, 243–248. [Google Scholar] [CrossRef]
- Damseh, R.A. Magneto hydrodynamics-mixed convection from radiate vertical isothermal surface embedded in a saturated porous media. J. Appl. Mech. 2006, 73, 54–59. [Google Scholar] [CrossRef]
- Zahmatkesh, I. Influence of thermal radiation on free convection inside a porous enclosure. Emir. J. Eng. Res. 2007, 12, 47–52. [Google Scholar]
- Pal, D.; Mondal, H. Radiation effects on combined convection over a vertical flat plate embedded in a porous medium of variable porosity. Meccanica 2009, 44, 133–144. [Google Scholar] [CrossRef]
- Mohamed, R.A.; Abo-Dahab, S.M. Influence of chemical reaction and thermal radiation on the heat and mass transfer in MHD micropolar flow over a vertical moving porous plate in a porous medium with heat generation. Int. J. Therm. Sci 2009, 48, 1800–1813. [Google Scholar] [CrossRef]
- Bhattacharyya, K.; Mukhopadhyay, S.; Layek, G.C.; Pop, I. Effects of thermal radiation on micropolar fluid flow and heat transfer over a porous shrinking sheet. Int. J. Heat Mass Transf. 2012, 55, 2945–2952. [Google Scholar] [CrossRef]
- Pal, D.; Chatterjee, S. MHD mixed convection stagnation-point flow of a micropolar fluid in a porous medium towards a heated stretching sheet with thermal radiation. Math. Model. Anal. 2012, 17, 498–518. [Google Scholar] [CrossRef] [Green Version]
- Moradi, A.; Ahmadikia, H.; Hayat, T.; Alsaedi, A. On mixed convection–radiation interaction about an inclined plate through a porous medium. Int. J. Therm. Sci. 2013, 64, 129–136. [Google Scholar] [CrossRef]
- Sheikholeslami, M.; Gorji-Bandpy, M.; Ganji, D.D. Numerical investigation of MHD effects on Al2O3–water nanofluid flow and heat transfer in a semi-annulus enclosure using LBM. Energy 2013, 60, 501–510. [Google Scholar] [CrossRef]
- Hussain, M.; Ashraf, M.; Nadeem, S.; Khan, M. Radiation effects on the thermal boundary layer flow of a micropolar fluid towards a permeable stretching sheet. J. Frankl. Inst. 2013, 350, 194–210. [Google Scholar] [CrossRef]
- Mukhopadhyay, S. Slip effects on MHD boundary layer flow over an exponentially stretching sheet with suction/blowing and thermal radiation. Ain Shams Eng. J. 2013, 4, 485–491. [Google Scholar] [CrossRef] [Green Version]
- Hayat, T.; Shehzad, S.A.; Qasim, M.; Asghar, S.; Alsaedi, A. Thermally stratified radiative flow of third grade fluid over a stretching surface. J. Thermopphys. Heat Transf. 2014, 28, 155–161. [Google Scholar] [CrossRef]
- Prakash, D.; Muthtamilselvan, M. Effect of radiation on transient MHD flow of micropolar fluid between porous vertical channel with boundary conditions of the third kind. Ain Shams Eng. J. 2014, 5, 1277–1286. [Google Scholar] [CrossRef] [Green Version]
- Uddin, Z.; Kumar, M.; Harmand, S. Influence of thermal radiation and heat generation/absorption on MHD heat transfer flow of a micropolar fluid past a wedge considering hall and ion slip currents. Therm. Sci. 2014, 18 (Suppl. 2), 489–502. [Google Scholar] [CrossRef]
- Cortell, R.A. Nnumerical tackling on Sakiadis flow with thermal radiation. Chin. Phys. Lett. 2008, 25, 1340. [Google Scholar] [CrossRef]
- Siegel, R.; Howell, J.R. Thermal Radiation: Heat Transfer, 3rd ed.; Hemisphere: Washington, DC, USA, 1992. [Google Scholar]
- Sparrow, E.M.; Cess, R.D. Radiation Heat Transfer; Hemisphere: Washington, DC, USA, 1978. [Google Scholar]
0.1 | 0.07511 | 0.32437 |
0.5 | 0.25270 | 0.49175 |
0.7 | 0.32540 | 0.53556 |
0.9 | 0.39301 | 0.57069 |
1.0 | 0.42536 | 0.58607 |
2.0 | 0.71561 | 0.69778 |
5.0 | 1.42254 | 0.87804 |
10.0 | 2.39128 | 1.04443 |
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Abbas, A.; Sarris, I.E.; Ashraf, M.; Ghachem, K.; Hnaien, N.; Alshammari, B.M. The Effects of Reduced Gravity and Radiative Heat Transfer on the Magnetohydrodynamic Flow Past a Non-Rotating Stationary Sphere Surrounded by a Porous Medium. Symmetry 2023, 15, 806. https://doi.org/10.3390/sym15040806
Abbas A, Sarris IE, Ashraf M, Ghachem K, Hnaien N, Alshammari BM. The Effects of Reduced Gravity and Radiative Heat Transfer on the Magnetohydrodynamic Flow Past a Non-Rotating Stationary Sphere Surrounded by a Porous Medium. Symmetry. 2023; 15(4):806. https://doi.org/10.3390/sym15040806
Chicago/Turabian StyleAbbas, Amir, Ioannis E. Sarris, Muhammad Ashraf, Kaouther Ghachem, Nidhal Hnaien, and Badr M. Alshammari. 2023. "The Effects of Reduced Gravity and Radiative Heat Transfer on the Magnetohydrodynamic Flow Past a Non-Rotating Stationary Sphere Surrounded by a Porous Medium" Symmetry 15, no. 4: 806. https://doi.org/10.3390/sym15040806
APA StyleAbbas, A., Sarris, I. E., Ashraf, M., Ghachem, K., Hnaien, N., & Alshammari, B. M. (2023). The Effects of Reduced Gravity and Radiative Heat Transfer on the Magnetohydrodynamic Flow Past a Non-Rotating Stationary Sphere Surrounded by a Porous Medium. Symmetry, 15(4), 806. https://doi.org/10.3390/sym15040806