Acknowledgement
The authors extend their appreciation to the Deanship of Scientific Research at King Khalid University (KKU) for funding this work through the Research Group Program Under the Grant Number: (R.G.P.2/91/43).
References
- Alfven, H. (1942), "Existence of electromagnetic-hydrodynamic waves", Nature, 150(3805), 405-406. https://doi.org/10.1038/150405d0
- Alijani, M. and Bidgoli, M.R. (2018), "Agglomerated SiO2 nanoparticles reinforced-concrete foundations based on higher order shear deformation theory: Vibration analysis", Adv. Concrete Constr., Int. J., 6(6), 585-610. https://doi.org/10.12989/acc.2018.6.6.585
- Alkanhal, T.A., Sheikholeslami, M., Usman, M., Haq, R.U., Shafee, A., Al-Ahmadi, A.S. and Tlili, I. (2019), "Thermal management of MHD nanofluid within the porous medium enclosed in a wavy shaped cavity with square obstacle in the presence of radiation heat source", Int. J. Heat Mass Transfer, 139, 87-94. https://doi.org/10.1016/j.ijheatmasstransfer.2019.05.006
- Alzahrani, J., Vaidya, H., Prasad, K.V., Rajashekhar, C., Mahendra, D.L. and Tlili, I. (2022), "Micro-polar fluid flow over a unique form of vertical stretching sheet: Special emphasis to temperature-dependent properties", Case Stud. Thermal Eng., 34, 102037. https://doi.org/10.1016/j.csite.2022.102037
- Ayodeji, F., Tope, A. and Samuel, O. (2019), "Magneto-Hydrodynamics (MHD) Bioconvection Nanofluid Slip Flow over a Stretching Sheet with Microorganism Concentration and Bioconvection Peclet Number Effects", Am. J. Mech. Indust. Eng., 4(6), 86-95. https://doi.org/10.11648/j.ajmie.20190406.11
- Ayodeji, F., Tope, A. and Pele, O. (2020), "Magnetohydrodynamics (MHD) Bioconvection nanofluid slip flow over a stretching sheet with thermophoresis, viscous dissipation and brownian motion", Mach. Learn. Res., 4(4), 51. https://doi.org/10.11648/j.mlr.20190404.12
- Choi, S.U. and Eastman, J.A. (1995), Enhancing thermal conductivity of fluids with nanoparticles (No. ANL/MSD/CP-84938; CONF-951135-29), Argonne National Lab., IL, USA.
- Demir, A.D. and Livaoglu, R. (2019), "The role of slenderness on the seismic behavior of ground-supported cylindrical silos", Adv. Concrete Constr., Int. J., 7(2), 65-74. https://doi.org/10.12989/acc.2019.7.2.065
- Gao, J., Liu, J., Yue, H., Zhao, Y., Tlili, I. and Karimipour, A. (2022), "Effects of various temperature and pressure initial conditions to predict the thermal conductivity and phase alteration duration of water based carbon hybrid nanofluids via MD approach", J. Molecul. Liquids, 351, 118654. https://doi.org/10.1016/j.molliq.2022.118654
- Gireesha, B.J., Mahanthesh, B. and Rashidi, M.M. (2015), "MHD boundary layer heat and mass transfer of a chemically reacting Casson fluid over a permeable stretching surface with nonuniform heat source/ sink", Int. J. Indust. Mathe., 7(3), 247-260.
- Hassan, A., Wahab, A., Qasim, M.A., Janjua, M.M., Ali, M.A., Ali, H.M., Jadoon, T.R., Ali, E., Raza, A. and Javaid, N. (2020), "Thermal management and uniform temperature regulation of photovoltaic modules using hybrid phase change materialsnanofluids system", Renew. Energy, 145, 282-293. https://doi.org/10.1016/j.renene.2019.05.130
- Hayat, T. and Mehmood, O.U. (2011), "Slip effects on MHD flow of third order fluid in a planar channel", Commun. Nonlinear Sci. Numer. Simul., 16(3), 1363-1377. https://doi.org/10.1016/j.cnsns.2010.06.034
- Hayat, T., Asad, S., Mustafa, M. and Alsaedi, A. (2015), "MHD stagnation-point flow of Jeffrey fluid over a convectively heated stretching sheet", Comput. Fluids, 108, 179-185. https://doi.org/10.1016/j.compfluid.2014.11.016
- Ibanez, G., Lopez, A., Lopez, I., Pantoja, J., Moreira, J. and Lastres, O. (2019), "Optimization of MHD nanofluid flow in a vertical microchannel with a porous medium, nonlinear radiation heat flux, slip flow and convective-radiative boundary conditions", J. Thermal Anal. Calorim., 135(6), 3401-3420. https://doi.org/10.1007/s10973-018-7558-3
- Ibrahim, W. and Gamachu, D. (2019), "Nonlinear convection flow of Williamson nanofluid past a radially stretching surface", AIP Adv., 9(8), 085026. https://doi.org/10.1063/1.5113688
- Jha, B.K. and Apere, C.A. (2013), "Unsteady MHD two-phase Couette flow of fluid-particle suspension", Appl. Mathe. Modell., 37(4), 1920-1931. https://doi.org/10.1016/j.apm.2012.04.056
- Kagimoto, H., Yasuda, Y. and Kawamura, M. (2015), "Mechanisms of ASR surface cracking in a massive concrete cylinder", Adv. Concrete Constr., Int. J., 3(1), 39-54. https://doi.org/10.12989/acc.2015.3.1.039
- Khan, W.A. and Pop, I. (2010), "Boundary-layer flow of a nanofluid past a stretching sheet", Int. J. Heat Mass Transfer, 53(11-12), 2477-2483. https://doi.org/10.1016/j.ijheatmasstransfer.2010.01.032
- Khan, A., Ali, H.M., Nazir, R., Ali, R., Munir, A., Ahmad, B. and Ahmad, Z. (2019), "Experimental investigation of enhanced heat transfer of a car radiator using ZnO nanoparticles in H 2 O-ethylene glycol mixture", J. Thermal Anal. Calorim., 138(5), 3007-3021. https://doi.org/10.1007/s10973-019-08320-7
- Kumaran, V. and Ramanaiah. G. (1996), "A note on the flow over a stretching sheet", Acta Mecca, 116(1), 229-233. https://doi.org/10.35940/ijrte.c4861.098319
- Kuznetsov, A.V. and Nield, D.A. (2010), "Natural convective boundary-layer flow of a nanofluid past a vertical plate", Int. J. Thermal Sci., 49(2), 243-247. https://doi.org/10.1016/j.ijthermalsci.2009.07.015
- Liang, G. and Mudawar, I. (2019), "Review of single-phase and two-phase nanofluid heat transfer in macro-channels and microchannels", Int. J. Heat Mass Transfer, 136, 324-354. https://doi.org/10.1016/j.ijheatmasstransfer.2019.02.086
- Makinde, O.D. (2010), "Similarity solution of hydromagnetic heat and mass transfer over a vertical plate with a convective surface boundary condition", Int. J. Phys. Sci., 5(6), 700-710. http://www.academicjournals.org/IJPS
- Makinde, O.D. and Aziz, A. (2010), "MHD mixed convection from a vertical plate embedded in a porous medium with a convective boundary condition", Int. J. Thermal Sci., 49(9), 1813-1820. https://doi.org/10.1016/j.ijthermalsci.2010.05.015
- Makinde, O.D., Khan, W.A. and Khan, Z.H. (2013), "Buoyancy effects on MHD stagnation point flow and heat transfer of a nanofluid past a convectively heated stretching/shrinking sheet", Int. J. Heat Mass Transfer, 62, 526-533. https://doi.org/10.1016/j.ijheatmasstransfer.2013.03.049
- Maleki, H., Safaei, M.R., Togun, H. and Dahari, M. (2019), "Heat transfer and fluid flow of pseudo-plastic nanofluid over a moving permeable plate with viscous dissipation and heat absorption/generation", J. Thermal Anal. Calorim., 135(3), 1643-1654. https://doi.org/10.1007/s10973-018-7559-2
- Mesbah, H.A. and Benzaid, R. (2017), "Damage-based stressstrain model of RC cylinders wrapped with CFRP composites", Adv. Concrete Constr., Int. J., 5(5), 539-561. https://doi.org/10.12989/acc.2017.5.5.539
- Mustafa, M., Hina, S., Hayat, T. and Alsaedi, A. (2013), "Slip effects on the peristaltic motion of nanofluid in a channel with wall properties", J. Heat Transfer, 135(4). https://doi.org/10.1115/1.4023038
- Mustafa, M., Khan, J.A., Hayat, T. and Alsaedi, A. (2015), "Sakiadis flow of Maxwell fluid considering magnetic field and convective boundary conditions", Aip Adv., 5(2), 027106. https://doi.org/10.1063/1.4907927
- Nadeem, S., Hussain, M. and Naz, M. (2010), "MHD stagnation flow of a micropolar fluid through a porous medium", Meccanica, 45(6), 869-880. https://doi.org/10.1007/s11012-010-9297-9
- Nasiri, H., Jamalabadi, M.Y.A., Sadeghi, R., Safaei, M.R., Nguyen, T.K. and Shadloo, M.S. (2019), "A smoothed particle hydrodynamics approach for numerical simulation of nano-fluid flows", J. Thermal Anal. Calorim., 135(3), 1733-1741. https://doi.org/10.1007/s10973-018-7022-4
- Nazari, S., Ellahi, R., Sarafraz, M.M., Safaei, M., Asgari, A. and Akbari, O.A. (2019), "Numerical study on mixed convection of a non-Newtonian nanofluid with porous media in a two liddriven square cavity", J. Thermal Anal. Calorim., 1-25. https://doi.org/10.1007/s10973-019-08841-1
- Pramuanjaroenkij, A., Tongkratoke, A. and Kakac, S. (2018), "Numerical study of mixing thermal conductivity models for nanofluid heat transfer enhancement", J. Eng. Phys. Thermophys., 91(1), 104-114. https://doi.org/10.1007/s10891-018-1724-0
- Qi, X., Sidi, M.O., Tlili, I., Ibrahim, T.K., Elkotb, M.A., El- Shorbagy, M.A. and Li, Z. (2022), "Optimization and sensitivity analysis of extended surfaces during melting and freezing of phase changing materials in cylindrical Lithium-ion battery cooling", J. Energy Storage, 51, 104545. https://doi.org/10.1016/j.est.2022.104545
- Rashidi, S., Javadi, P. and Esfahani, J.A. (2019), "Second law of thermodynamics analysis for nanofluid turbulent flow inside a solar heater with the ribbed absorber plate", J. Thermal Anal. Calorim., 135(1), 551-563. https://doi.org/10.1007/s10973-018-7164-4
- Razi, S.M., Soid, S.K., Aziz, A.S.A., Adli, N. and Ali, Z.M. (2019), "Williamson nanofluid flow over a stretching sheet with varied wall thickness and slip effects", In: Journal of Physics: Conference Series, Vol. 1366, No. 1, p. 012007. https://doi.org/10.1088/1742-6596/1366/1/012007
- Samadvand, H. and Dehestani, M. (2020), "A stress-function variational approach toward CFRP-concrete interfacial stresses in bonded joints", Adv. Concrete Constr., Int. J., 9(1), 43-54. https://doi.org/10.12989/acc.2020.9.1.043
- Sheikholeslami, M., Gerdroodbary, MB., Moradi, R., Shafee, A. and Li, Z. (2019a), "Application of Neural Network for estimation of heat transfer treatment of Al2O3-H2O nanofluid through a channel", Comput. Methods Appl. Mech. Eng., 344, 1-12. https://doi.org/10.1016/j.cma.2018.09.025
- Sheikholeslami, M., Mehryan, S.A.M., Shafee, A. and Sheremet, M.A. (2019b), "Variable magnetic forces impact on magnetizable hybrid nanofluid heat transfer through a circular cavity", J. Molecular Liquids, 277, 388-396. https://doi.org/10.1016/j.molliq.2018.12.104
- Siddiqa, S., Begum, N., Saleem, S., Hossain, M.A. and Gorla, R.S.R. (2016), "Numerical solutions of nanofluid bioconvection due to gyrotactic microorganisms along a vertical wavy cone", Int. J. Heat Mass Transfer, 101, 608-613. https://doi.org/10.1016/j.ijheatmasstransfer.2016.05.076
- Szilagyi, I.M., Santala, E., Heikkila, M., Kemell, M., Nikitin, T., Khriachtchev, L., Rasanen, M., Ritala, M. and Leskela, M. (2011), "Thermal study on electrospun polyvinylpyrrolidone/ammonium metatungstate nanofibers: optimising the annealing conditions for obtaining WO3 nanofibers", J. Thermal Anal. Calorim., 105(1), 73. https://doi.org/10.1007/s10973-011-1631-5
- Tlili, I. and Alharbi, T. (2022), "Investigation into the effect of changing the size of the air quality and stream to the trombe wall for two different arrangements of rectangular blocks of phase change material in this wall", J. Build. Eng., 52, 104328. https://doi.org/10.1016/j.jobe.2022.104328
- Tlili, I., Sajadi, S.M., Baleanu, D. and Ghaemi, F. (2022), "Flat sheet direct contact membrane distillation study to decrease the energy demand for solar desalination purposes", Sustain. Energy Technol. Assessm., 52, 102100. https://doi.org/10.1016/j.seta.2022.102100
- Ullah, A., Shah, Z., Kumam, P., Ayaz, M., Islam, S. and Jameel, M. (2019), "Viscoelastic MHD nanofluid thin film flow over an unsteady vertical stretching sheet with entropy generation", Processes, 7(5), 262. https://doi.org/10.3390/pr7050262
- Williamson, R.V. (1929), "The flow of pseudoplastic materials", Indust. Eng. Chem., 21(11), 1108-1111. https://doi.org/10.1021/ie5023
- Zhang, J., Sajadi, S.M., Chen, Y., Tlili, I. and Fagiry, M.A. (2022), "Effects of Al2O3 and TiO2 nanoparticles in order to reduce the energy demand in the conventional buildings by integrating the solar collectors and phase change materials", Sustain. Energy Technol. Assessm., 52, 102114. https://doi.org/10.1016/j.seta.2022.102114