Impact of wall electrical conductivity on heat transfer enhancement in MHD hybrid nanofluid flow within an annulus
Abstract
1. Introduction
2. Definition and mathematical model
![]() |
| Substances | (Kerosene-oil)[26] | (Cu)[14] | (GO)[28] |
| μ(kg/m.s) | 0.00164 | - | - |
| Cp(J/kg.K) | 2090 | 385 | 717 |
| κ(W/m.K) | 0.145 | 401 | 5000 |
| σ(S/m) | 50 | 5.96×107 | 6.3×107 |
| ρ(kg/m3 | 783 | 8933 | 1880 |
| β(1/K) | 9.6×10-4 | 1.67×10-5 | 2.84×10-4 |










3. Calculation method and grid dimensions
4. Results and discussion
4.1. Validation
4.2. Electrically insulating walls
4.3. Electrically conducting all walls
5. Conclusion
- Without a magnetic field, the unchanged temperature distribution and heat transfer enhancements for the hybrid nanofluid do not exceed 20%.
- The introduction of a magnetic field symmetrically enhances the surface temperature distribution of hybrid nanofluid flow.
- Employing the hybrid nanofluid with higher magnetic field intensities raises the azimuthal velocities in the middle of the container.
- Optimal heat transfer is achieved with 90% improvement using the hybrid nanofluid when the walls of the annular space are electrically conductive.
- Recommendations for future research could include exploring alterations in the orientation of the magnetic field applied to coaxial cylindrical geometries containing a rotating hybrid nanofluid flow.
Acknowledgments

References
- Mahfoud, B. Enhancement Heat Transfer of Swirling Nanofluid Using an Electrical Conducting Lid. Journal of Thermophysics and Heat Transfer 2023, 37(1), 263–271. [Google Scholar] [CrossRef]
- Shao, H.; Ma, W.; Kohno, M.; Takata, Y.; Xin, G.; Fujikawa, S.; Fujino, S.; Bishop, S.; Li, X. Hydrogen storage and thermal conductivity properties of mg-based materials with different structures. Int. J. Hydrog. Energy 2014, 39, 9893–9898. [Google Scholar] [CrossRef]
- Arasteh, H.; Mashayekhi, R.; Toghraie, D.; Karimipour, A.; Bahiraei, M.; Rahbari, A. Optimal arrangements of a heat sink partially filled with multilayered porous media employing hybrid nanofluid. J. Therm. Anal. Calorim. 2019, 137, 1045–1058. [Google Scholar] [CrossRef]
- Esfe, M.H.; Hajmohammad, H.; Toghraie, D.; Rostamian, H.; Mahian, O.; Wongwises, S. Multi- objective optimization of nanofluid flow in double tube heat exchangers for applications in energy systems. Energy 2017, 137, 160–171. [Google Scholar] [CrossRef]
- Bouragbi, L.; Salaheddine, A.; Mahfoud, B. Analyses of entropy generation for a solar minichannel flat plate collector system using different types of nanofluids. Journal of Computational Applied Mechanics 2021, 52(4), 664–681. [Google Scholar]
- Ghadikolaei, S.; Hosseinzadeh, K.; Ganji, D.D. Investigation on ethylene glycolwater mixture fluid suspend by hybrid nanoparticles (TiO2- CuO) over rotating cone with considering nanoparticles shape factor. Journal of Molecular Liquids 2018, 272, 226–236. [Google Scholar] [CrossRef]
- Esfe, M.H.; Esfandeh, S.; Amiri, M.K.; Afrand, M. A novel applicable experimental study on the thermal behavior of SWCNTs (60%)- MgO (40%)/EG hybrid nanofluid by focusing on the thermal conductivity. Powder Technology 2019, 342, 998–1007. [Google Scholar] [CrossRef]
- Moradi, A.; Toghraie, D.; Isfahani, A.H.M.; Hosseinian, A. An experimental study on MWCNT–water nanofluids flow and heat transfer in double-pipe heat exchanger using porous media. Journal of Thermal Analysis and Calorimetry 2019, 137, 1797–1807. [Google Scholar] [CrossRef]
- Mahmood, Z.; Iqbal, Z.; Ahmed Alyami, M.; Alqahtani, B.; Yassen, M.; Khan, U. Influence of suction and heat source on MHD stagnation point flow of ternary hybrid nanofluid over convectively heated stretching/shrinking cylinder. Advances in Mechanical Engineering 2022, 14, 1–17. [Google Scholar] [CrossRef]
- Khan, M.; Tahir, M.N.; Adil, S.F.; Khan, H.U.; Siddiqui, M.R.; Kuniyil, M.; Tremel, W. Graphene based metal and metal oxide nanocomposites: Synthesis, properties and their applications. Journal of Materials Chemistry A 2015, 3, 18753–18808. [Google Scholar] [CrossRef]
- Ghadikolaeia, S.S.; Gholiniab, M. 3D mixed convection MHD flow of GO- MoS2 hybrid nanoparticles in H2O– (CH2OH)2 hybrid base fluid under effect of H2 bond. International Communications in Heat and Mass Transfer 2020, 110, 104371. [Google Scholar] [CrossRef]
- Ruhani, B.; Toghraie, D.; Hekmatifar, M.; Hadian, M. Statistical investigation for developing a new model for rheological behavior of ZnO– Ag (50%–50%)/Water hybrid Newtonian nanofluid using experimental data. Physica A: Statistical Mechanics and its Applications 2019, 525, 741–751. [Google Scholar] [CrossRef]
- Mahfoud, B. Magnetohydrodynamic effect on vortex breakdown zones in coaxial cylinders. European Journal of Mechanics-B/Fluids 2021, 89, 445–457. [Google Scholar] [CrossRef]
- Benhacine, H.; Mahfoud, B.; Salmi, M. Stability effect of an axial magnetic field on fluid flow bifurcation between coaxial cylinders. International Journal of Computational Materials Science and Engineering 2021, 10(4), 2150023. [Google Scholar] [CrossRef]
- Mahfoud, B.; Benhacine, H.; Laouari, A.; Bendjaghlouli, A. Magnetohydrodynamic Effect on Flow Structures Between Coaxial Cylinders Heated from Below. Journal of Thermophysics and Heat Transfer 2019, 34(2), 1–10. [Google Scholar] [CrossRef]
- Mahfoud, B.; Laouari, A.; Hadjadj, A.; Benhacine, H. Counter-rotating flow in coaxial cylinders under an axial magnetic field. European Journal of Mechanics-B/Fluids 2019, 78, 139–146. [Google Scholar] [CrossRef]
- Azzoug, M.; Mahfoud, B.; Mahfoud, H.E. Influence of External Magnetic Field on 3D Thermocapillary Convective Flow in Various Thin Annular Pools Filled with Silicon Melt. Journal of Applied Fluid Mechanics 2023, 16, 1853–1864. [Google Scholar] [CrossRef]
- Moussaoui, M.; Mahfoud, B.; Mahfoud, H.E. Using a Magnetic Field to Reduce Thermocapillary Convection in Thin Annular Pools. Journal of Thermophysics and Heat Transfer 2023, 37(4). [Google Scholar] [CrossRef]
- Mahfoud, B.; Azzoug, O.M. MHD effect on the thermocapillary silicon melt flow in various annular enclosures. Crystal Research & Technology 2023, 58(6). [Google Scholar]
- Bendjaghlouli, A.; Ameziani, D.E.; Mahfoud, B.; Bouragbi, L. Magnetohydrodynamic Counter Rotating Flow and Heat Transfer in a Truncated Conical Container. Journal of Thermophysics and Heat Transfer 2019, 33(3), 365–374. [Google Scholar] [CrossRef]
- Benhacine, H.; Mahfoud, B; Salmi, M. Stability of conducting fluid flow between coaxial cylinders under thermal gradient and axial magnetic Field. International Journal of Thermofluid Science and Technology 2022, 9(2), 090202. [Google Scholar] [CrossRef]
- Mahfoud, B. Magnetic Field Effect on Natural Convection in Trapezoidal Geometry. 2023. Available online: https://www.researchgate.net/publication/369040424.
- Mahfoud, B. Simulation of Magnetic Field Effect on Heat Transfer Enhancement of Swirling Nanofluid. International Journal of Computational Materials Science and Engineering 2022, 11(4), 2250007. [Google Scholar] [CrossRef]
- Mahfoud, B.; Bendjaghloli, A. Natural convection of a nanofluid in a conical container. Journal of Thermal Engineering 2018, 4, 1713–1723. [Google Scholar] [CrossRef]
- Mahfoud, B. Effect of Wall Electrical Conductivity on Heat Transfer Enhancement of Swirling Nanofluid-Flow. Journal of Nanofluids 2023, 12, 418–428. [Google Scholar] [CrossRef]
- Mollamahdi, M.; Abbaszadeh, M.; Sheikhzadeh, G. A. Flow field and heat transfer in a channel with a permeable wall filled with Al2O3-Cu/water micropolar hybrid nanofluid, effects of chemical reaction and magnetic field. Journal of Heat and Mass Transfer Research 2016, 3, 101–114. [Google Scholar]
- Mansour, M.A.; Sadia, S.; Gorla, R.; Rashad, A.M. Effects of heat source and sink on entropy generation and MHD natural convection of Al2O3-Cu/water hybrid nanofluid filled with square porous cavity. Thermal Science and Engineering Progress 2017, 6, 57–71. [Google Scholar] [CrossRef]
- Alsaedi, A.; Muhammad, K.; Hayat, T. Numerical study of MHD hybrid nanofluid flow between two coaxial cylinders. Alexandria Engineering Journal 2022, 61, 8355–8362. [Google Scholar] [CrossRef]
- Shagaiya Daniel, Y.; Abdul Aziz, Z.; Ismail, Z.; Bahar, A.; Salah, F. Slip role for unsteady MHD mixed convection of nanofluid over stretching sheet with thermal radiation and electric field. Indian Journal of Physics 2019. May:1-3. [Google Scholar]
- Shagaiya Daniel, Y.; Abdul Aziz, Z.; Ismail, Z.; Bahar, A.; Salah, F. Stratified electromagnetohydrodynamic flow of nanofluid supporting convective role. Korean Journal of Chemical Engineering 2019, 1;36(7), 1021–32. [Google Scholar] [CrossRef]
- Daniel, Y.S.; Daniel, S.K. Effects of buoyancy and thermal radiation on MHD flow over a stretching porous sheet using homotopy analysis method. Alexandria Engineering Journal. 2015, 1;54(3), 705–12. [Google Scholar] [CrossRef]
- Shagaiya Daniel, Y.; Abdul Aziz, Z.; Ismail, Z.; Bahar, A.; Salah, F. Entropy analysis in electrical magnetohydrodynamic (MHD) flow of nanofluid with effects of thermal radiation, viscous dissipation, and chemical reaction. Theoretical and Applied Mechanics Letters 2017, 1;7(4), 235–42. [Google Scholar] [CrossRef]
- Shagaiya Daniel, Y.; Abdul Aziz, Z.; Ismail, Z.; Bahar, A.; Salah, F. Effects of slip and convective conditions on MHD flow of nanofluid over a porous nonlinear stretching/shrinking sheet. Australian Journal of Mechanical Engineering 2018, 2;16(3), 213–29. [Google Scholar]
- Manjunatha, S.; Ammani Kuttan, B.; Jayanthi, S.; Chamkha, Ali; Gireesha e, B.J. Heat transfer enhancement in the boundary layer flow of hybrid nanofluids due to variable viscosity and natural convection. Heliyon 2019, 5, e01469. [Google Scholar] [CrossRef] [PubMed]
- Kotha, G.; Kolipaula, V.R.; Rao Venkata, S.; Surekha Penki, M.; Chamkha, A.J. Internal heat generation on bioconvection of an MHD nanofluid flow due to gyrotactic microorganisms. The European Physical Journal Plus 2020, 135, 600. [Google Scholar] [CrossRef]
- Krishna, M.V.; Chamkha, A.J. Hall and ion slip effects on Unsteady MHD Convective Rotating flow of Nanofluids—Application in Biomedical, Engineering. Journal of the Egyptian Mathematical Society 2020, 28, 1. [Google Scholar] [CrossRef]
- Madani, F.; Mahfoud, B.; Mahfoud, Hibet E. Influences of electrical conductivity of the cylindrical walls on heat transfer enhancement of nanofluid swirling flow. International Journal of Thermofluid Science and Technology 2023, 10, 100201. [Google Scholar] [CrossRef]
- Benhacine, H.; Mahfoud, B.; Salmi, M. Stability of an Electrically Conducting Fluid Flow between Coaxial Cylinders under Magnetic field. Journal of Applied Fluid Mechanics 2022, 15, 1741–1753. [Google Scholar] [CrossRef]












![]() |
Copyright © 2024. This article is licensed under a CC BY-NC-ND 4.0.
Share and Cite
Bendjaghlouli, A.; Mahfoud, B.; Mahfoud, H.E. Impact of wall electrical conductivity on heat transfer enhancement in MHD hybrid nanofluid flow within an annulus. Int. J. Thermofluid Sci. Technol. 2024, 11, 110204. https://doi.org/10.36963/IJTST.2024110204
Bendjaghlouli A, Mahfoud B, Mahfoud HE. Impact of wall electrical conductivity on heat transfer enhancement in MHD hybrid nanofluid flow within an annulus. International Journal of Thermofluid Science and Technology. 2024; 11(2):110204. https://doi.org/10.36963/IJTST.2024110204
Chicago/Turabian StyleBendjaghlouli, Ali, Brahim Mahfoud, and Hibet Errahmane Mahfoud. 2024. "Impact of wall electrical conductivity on heat transfer enhancement in MHD hybrid nanofluid flow within an annulus" International Journal of Thermofluid Science and Technology 11, no. 2: 110204. https://doi.org/10.36963/IJTST.2024110204
APA StyleBendjaghlouli, A., Mahfoud, B., & Mahfoud, H. E. (2024). Impact of wall electrical conductivity on heat transfer enhancement in MHD hybrid nanofluid flow within an annulus. International Journal of Thermofluid Science and Technology, 11(2), 110204. https://doi.org/10.36963/IJTST.2024110204


