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Research Article

Joule heating effect on the MHD flow of tangent hyperbolic mixed nanofluid embedded with MgO and CuO nanoparticles

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Pages 1904-1913 | Received 31 Jul 2022, Accepted 10 Mar 2023, Published online: 12 Apr 2023

References

  • Anuar, N. S., N. Bachok, M. Turkyilmazoglu, N. Md Arifin, and H. Rosali. 2020. “Analytical and Stability Analysis of MHD Flow Past a Nonlinearly Deforming Vertical Surface in Carbon Nanotubes.” Alexandria Engineering Journal 59: 497–507. doi:10.1016/j.aej.2020.01.024
  • Ashwinkumar, G. P., M. Girinath Reddy, and N. Sandeep. 2022. “Convective Heat Transfer in MHD Cu-TiO2-H2O Cross Nanofluid Flow Over Three Diverse Surfaces.” Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering. Advance online publication. doi:10.1177/09544089221076696
  • Bilal, J., M. S. Anwar, A. Rasheed, and M. Irfan. 2020. “MHD Maxwell Flow Modeled by Fractional Derivatives with Chemical Reaction and Thermal Radiation.” Chinese Journal of Physics 67: 512–533. doi:10.1016/j.cjph.2020.08.012
  • Choi, S., and J. A. Eastman. 1995. “Enhancing Thermal Conductivity of Fluids with Nanoparticles in Development and Applications of Non- Newtonian Flows.” The American Society of Mechanical Engineers, 951135-29.
  • Dalkilic, A. S., G. Yalcin, B. O. Kucukyildirim, S. Oztuna, A. A. Eker, C. Jumpholkul, S. Nakkaew, and S. Wongwisis. 2018. “Experimental Study on the Thermal Conductivity of Water-Based CNT-SiO2 Hybrid Nanofluids.” International Communications in Heat and Mass Transfer 99: 18–25. doi:10.1016/j.icheatmasstransfer.2018.10.002
  • Hayat, T., M. S. Anwar, M. Farooq, and A. Alsaedi. 2014. “MHD Stagnation Point Flow of Second Grade Fluid Over a Stretching Cylinder with Heat and Mass Transfer.” International Journal of Nonlinear Sciences and Numerical Simulation 15 (6): 365–376. doi:10.1515/ijnsns-2013-010
  • Hayat, T., Sohail A. Khan, and Ahmed Alsaedi. 2020a. “Simulation and Modeling of Entropy Optimized MHD Flow of Second Grade Fluid with Dissipation Effect.” Journal of Materials Research and Technology 9 (5). Korea Institute of Oriental Medicine: 11993–12006. doi:10.1016/j.jmrt.2020.07.067
  • Hayat, T., Sohail A. Khan, and A. Alsaedi. 2021. “Irreversibility Characterization in Nanoliquid Flow with Velocity Slip and Dissipation by a Stretchable Cylinder.” Alexandria Engineering Journal 60 (3). THE AUTHORS: 2835–2844. doi:10.1016/j.aej.2021.01.018
  • Hayat, T., Sohail A. Khan, A. Alsaedi, and Q. M. Zaigham Zai. 2020b. “Computational Analysis of Heat Transfer in Mixed Convective Flow of CNTs with Entropy Optimization by a Curved Stretching Sheet.” International Communications in Heat and Mass Transfer 118 (September). Elsevier: 104881. doi:10.1016/j.icheatmasstransfer.2020.104881
  • Huminic, G., A. Huminic, F. Dumitrache, C. Fleaca, and I. Morjan. 2020. “Study of the Thermal Conductivity of Hybrid Nanofluids: Recent Research and Experimental Study.” Powder Technology 367: 347–357. doi:10.1016/j.powtec.2020.03.052
  • Iskander, T., A. N. Hossam, S. P. Samrat, and N. Sandeep. 2020. “3D MHD Nonlinear Radiative Flow of CuO-MgO / Methanol Hybrid Nanofluid Beyond an Irregular Dimension Surface with Slip Effect.” Scientific Reports 10: 1–14. doi:10.1038/s41598-020-66102-w
  • Jafar, A. B., S. Shafie, and I. Ullah. 2020. “MHD Radiative Nanofluid Flow Induced by a Nonlinear Stretching Sheet in a Porous Medium.” Heliyon 6 (6): e04201. doi:10.1016/j.heliyon.2020.e04201
  • Khan, L. A., M. Raza, N. A. Mir, and R. Ellahi. 2020. “Effects of Different Shapes of Nanoparticles on Peristaltic Flow of MHD Nanofluids Filled in an Asymmetric Channel.” Journal of Thermal Analysis and Calorimetry 140 (3): 879–890. doi:10.1007/s10973-019-08348-9
  • Kotha, G., V. R. Kolipaula, M. V. Subba Rao, S. Penki, and Ali J. Chamkha. 2020. “Internal Heat Generation on Bioconvection of an MHD Nanofluid Flow due to Gyrotactic Microorganisms.” The European Physical Journal Plus 135 (7): 1–19. doi:10.1140/epjp/s13360-020-00606-2
  • Krishna, M. V., and A. J. Chamkha. 2020. “Hall and Ion Slip Effects on MHD Rotating Flow of Elastic-Viscous Fluid Through Porous Medium.” International Communications in Heat and Mass Transfer 113: 104494. doi:10.1016/j.icheatmasstransfer.2020.104494
  • Li, Yi-Xia, M. H. Alshbool, Yu-Pei Lu, I. Khan, M. R. Khan, and A. Issakhov. 2021. “Heat and Mass Transfer in MHD Williamson Nanofluid Flow Over an Exponentially Porous Stretching Surface.” Case Studies in Thermal Engineering 26: 100975. doi:10.1016/j.csite.2021.100975
  • Mabood, F., G. P. Ashwinkumar, and N. Sandeep. 2021. “Simultaneous Results for Unsteady Flow of MHD Hybrid Nanoliquid Above a Flat/Slandering Surface.” Journal of Thermal Analysis and Calorimetry 146 (1): 227–239. doi:10.1007/s10973-020-09943-x
  • Madhukesh, J. K., R. N. Kumar, R. J. Punit Gowda, B. C. Prasannakumara, G. K. Ramesh, M. I. Khan, S. U. Khan, and Yu-Ming Chu. 2021. “Numerical Simulation of AA7072-AA7075/Water-Based Hybrid Nanofluid Flow Over a Curved Stretching Sheet with Newtonian Heating: A Non-Fourier Heat Flux Model Approach.” Journal of Molecular Liquids 335: 116103. doi:10.1016/j.molliq.2021.116103
  • Mahabaleshwar, U. S., K. N. Sneha, and Huang -Nan Huang. 2021. “An Effect of MHD and Radiation on CNTs -Water Based Nanofluid Due to a Stretching Sheet in Newtonian Fluid.” Case Studies in Thermal Engineering 28: 101462. doi:10.1016/j.csite.2021.101462
  • Manh, T. D., N. D. Nam, G. K. Abdulrahman, R. Moradi, and H. Babazadeh. 2020. “Impact of MHD on Hybrid Nanomaterial Free Convective Flow Within a Permeable Region.” Journal of Thermal Analysis and Calorimetry 140 (6): 2865–2873. doi:10.1007/s10973-019-09008-8
  • Masuda, H., A. Ebata, and K. Teramane. 1993. “Alteration of Thermal Conductivity and Viscosity of Liquid by Dispersing Ultra-Fine Particles. Dispersion of Al2O3, SiO2 and TiO2 Ultra-Fine Particles.” Netsu Bussei 7 (4): 227–233. doi:10.2963/jjtp.7.227
  • Moldoveanu, G. M., G. Huminic, A. A. Minea, and A. Huminic. 2018. “Experimental Study on Thermal Conductivity of Stabilized Al2O3 and SiO2 Nanofluid and Their Hybrid.” International Journal of Heat and Mass Transfer 127: 450–457. doi:10.1016/j.ijheatmasstransfer.2018.07.024
  • Muhammad, K., T. Hayat, A. Alsaedi, and B. Ahmad. 2021a. “Melting Heat Transfer in Squeezing Flow of Base Fluid (Water), Nanofluid (CNTs + Water) and Hybrid Nanofluid (CNTs + CuO + Water).” Journal of Thermal Analysis and Calorimetry 143: 1157–1174. doi:10.1007/s10973-020-09391-7
  • Muhammad, T., H. Waqas, U. Farooq, and M. S. Alqarni. 2021b. “Numerical Simulation for Melting Heat Transport in Nanofluids Due to Quadratic Stretching Plate with Nonlinear Thermal Radiation.” Case Studies in Thermal Engineering 27: 101300. doi:10.1016/j.csite.2021.101300
  • Mumtaz, Khan, Weam G. Alharbi, Nehad Ali Shah, and Amer Rasheed. 2022c. “A Renovated Scott–Blair Model for Heat and Mass Transfer Analysis.” Waves in Random and Complex Media. doi:10.1080/17455030.2022.2045386
  • Mumtaz, Khan, Showkat Ahmad Lone, Amer Rasheed, and Muhammad Numan Alam. 2022. “Computational Simulation of Scott-Blair Model to Fractional Hybrid Nanofluid with Darcy Medium.” International Communications in Heat and Mass Transfer 130 (December 2021). Elsevier Ltd: 105784. doi:10.1016/j.icheatmasstransfer.2021.105784
  • Mumtaz, Khan, and Amer Rasheed. 2021. “Scott-Blair Model with Unequal Diffusivities of Chemical Species Through a Forchheimer Medium.” Journal of Molecular Liquids 341. Elsevier: 117351. doi:10.1016/j.molliq.2021.117351
  • Mumtaz, Khan, and Amer Rasheed. 2021a. “Computational Analysis of Heat Transfer Intensification of Fractional Viscoelastic Hybrid Nanofluids.” Mathematical Problems in Engineering 2021. doi:10.1155/2021/2544817
  • Mumtaz, Khan, and Amer Rasheed. 2021b. “Slip Velocity and Temperature Jump Effects on Molybdenum Disulfide MoS2 and Silicon Oxide SiO2 Hybrid Nanofluid Near Irregular 3D Surface.” Alexandria Engineering Journal 60 (1). Faculty of Engineering, Alexandria University: 1689–1701. doi:10.1016/j.aej.2020.11.019
  • Mumtaz, Khan, and Amer Rasheed. 2022a. “Numerical Implementation and Error Analysis of Nonlinear Coupled Fractional Viscoelastic Fluid Model with Variable Heat Flux.” Ain Shams Engineering Journal 13 (3). Faculty of Engineering, Ain Shams University: 101614. doi:10.1016/j.asej.2021.10.009
  • Mumtaz, Khan, and Amer Rasheed. 2022b. “Numerical Study of Diffusion-Thermo Phenomena in Darcy Medium Using Fractional Calculus Numerical Study of Diffusion-Thermo Phenomena in Darcy.” Waves in Random and Complex Media, 1–18. doi:10.1080/17455030.2022.2098414
  • Raza, J., F. Mebarek-Oudina, P. Ram, and S. Sharma. 2020. “MHD Flow of Non-Newtonian Molybdenum Disulfide Nanofluid in a Converging/Diverging Channel with Rosseland Radiation.” Defect and Diffusion Forum 401: 92–106. doi:10.4028/www.scientific.net/DDF.401.92
  • Reddy, N. N., V. S. Rao, and B. R. Reddy. 2021. “Chemical Reaction Impact on MHD Natural Convention Flow Through Porous Medium Past an Exponentially Stretching Sheet in Presence of Heat Source /Sink and Viscous Dissipation.” Case Studies in Thermal Engineering 25: 100879. doi:10.1016/j.csite.2021.100879
  • Sajid, M. U., and H. M. Ali. 2018. “Thermal Conductivity of Hybrid Nanofluids: A Critical Review.” International Journal of Heat and Mass Transfer 126: 211–234. doi:10.1016/j.ijheatmasstransfer.2018.05.021
  • Sathyamurthy, R., A. E. Kabeel, A. Chamkha, A. Karthick, A. M. Manokar, and M. G. Sumithra. 2021. “Experimental Investigation on Cooling the Photovoltaic Panel Using Hybrid Nanofluids.” Applied Nanoscience 11: 363–374. doi:10.1007/s13204-01598-2
  • Shah, T. R., and H. M. Ali. 2019a. “Applications of Hybrid Nanofluids in Solar Energy, Practical Limitations and Challenges: A Critical Review.” Solar Energy 183: 173–203. doi:10.1016/j.solener.2019.03.012
  • Shah, Z., E. Bonyah, S. Islam, and T. Gul. 2019b. “Impact of Thermal Radiation on Electrical MHD Rotating Flow of Carbon Nanotubes Over a Stretching Sheet.” AIP Advances 9: 015115. doi:10.1063/1.5048078
  • Shoaib, M., M. A. Z. Raja, M. T. Sabir, S. Islam, Z. Shah, P. Kumam, and H. Alrabaiah. 2020. “Numerical Investigation for Rotating Flow of MHD Hybrid Nanofluid with Thermal Radiation Over a Stretching Sheet.” Scientific Reports 10: 18533. doi:10.1038/s41598-020-75254-8
  • Sohail, Khan A., T. Hayat, and A. Alsaedi. 2020a. “Entropy Optimization in Passive and Active Flow of Liquid Hydrogen Based Nanoliquid Transport by a Curved Stretching Sheet.” International Communications in Heat and Mass Transfer 119 (October). Elsevier: 104890. doi:10.1016/j.icheatmasstransfer.2020.104890
  • Sohail, Khan A., T. Hayat, A. Alsaedi, and B. Ahmad. 2021. “Melting Heat Transportation in Radiative Flow of Nanomaterials with Irreversibility Analysis.” Renewable and Sustainable Energy Reviews 140 (January). Elsevier Ltd: 110739. doi:10.1016/j.rser.2021.110739
  • Sohail, Khan A., T. Hayat, M. Ijaz Khan, and A. Alsaedi. 2020b. “Salient Features of Dufour and Soret Effect in Radiative MHD Flow of Viscous Fluid by a Rotating Cone with Entropy Generation.” International Journal of Hydrogen Energy 45 (28). Elsevier Ltd: 14552–14564. doi:10.1016/j.ijhydene.2020.03.123
  • Sohail, Khan A., Tareq Saeed, M. Ijaz Khan, T. Hayat, M. Imran Khan, and A. Alsaedi. 2019. “Entropy Optimized CNTs Based Darcy-Forchheimer Nanomaterial Flow Between Two Stretchable Rotating Disks.” International Journal of Hydrogen Energy 44 (59). Elsevier Ltd: 31579–31592. doi:10.1016/j.ijhydene.2019.10.053
  • Ullah, Zakir, Gul Zaman, and Anuar Ishak. 2020. “Magnetohydrodynamic Tangent Hyperbolic Fluid Flow Past a Stretching Sheet.” Chinese Journal of Physics 66 (March). Elsevier: 258–268. doi:10.1016/j.cjph.2020.04.011
  • Urmi, W. T., M. M. Rahman, and W. A. W. Hamzah. 2020. “An Experimental Investigation on the Thermophysical Properties of 40% Ethylene Glycol Based TiO2-Al2O3 Hybrid Nanofluids.” International Communications in Heat and Mass Transfer 116: 1044663. doi: 10.1016/j.icheatmasstransfer.2020.104663
  • Venkateswarlu, B., and P. V. S. Narayana. 2020. “Cu- Al2O3,/H2O Hybrid Nano Fluid Flow Past a Porous Stretching Sheet Due to Temperature-Dependent Viscosity and Viscous Dissipation.” Heat Transfer 50 (1): 432–449. doi: 10.1002/htj.21884
  • Wole-Osho, I., E. C. Okonkwo, H. Adun, D. Kavaz, and S. Abbasoglu. 2021. “An Intelligent Approach to Predicting the Effect of Nanoparticle Mixture Ratio, Concentration and Temperature on Thermal Conductivity of Hybrid Nanofluids.” Journal of Thermal Analysis and Calorimetry 144: 671–688. doi:10.1007/s10973-020-09594-y
  • Xian, H. W., N. A. C. Sidik, and R. Saidur. 2020. “Impact of Different Surfactants and Ultrasonication Time on the Stability and Thermophysical Properties of Hybrid Nanofluids.” International Communications in Heat and Mass Transfer 110: 104389. doi:10.1016/j.icheatmasstransfer.2019.104389
  • Yuan Ma, Y., R. Mohebbi, M. M. Rashidi, and Z. Yang. 2019. “MHD Convective Heat Transfer of Ag-MgO/Water Hybrid Nanofluid in a Channel with Active Heaters and Coolers.” International Journal of Heat and Mass Transfer 137: 714–726. doi:10.1016/j.ijheatmasstransfer.2019.03.169
  • Zakir, H., T. Hayat, A. Alsaedi, and M. S. Anwar. 2021. “Mixed Convective Flow of CNTs Nanofluid Subject to Varying Viscosity and Reactions.” Scientific Reports 11 (1): 1–14. doi:10.1038/s41598-021-02228-9
  • Zakir, H., A. Hussain, M. S. Anwar, and M. Farooq. 2022. “Analysis of Cattaneo–Christov Heat Flux in Jeffery Fluid Flow with Heat Source Over a Stretching Cylinder.” Journal of Thermal Analysis and Calorimetry 147 (4): 3391–3402. doi:10.1007/s10973-021-10573-0
  • Zufar, M., P. Gunnasegaran, H. M. Kumar, and K. C. Ng. 2020. “Numerical and Experimental Investigations of Hybrid Nanofluids on Pulsating Heat Pipe Performance.” International Communications in Heat and Mass Transfer 146: 118887. doi:10.1016/j.ijheatmasstransfer.2019.118887

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