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Research Article

Entropy analysis in a mixed convective Carreau nanofluid flow around a wedge: impact of activation energy and sinusoidal magnetic field

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Article: 2329373 | Received 06 Jan 2024, Accepted 06 Mar 2024, Published online: 16 Mar 2024

References

  • Naganthran K, Nazar R, Siri Z, et al. Entropy analysis and melting heat transfer in the Carreau thin hybrid nanofluid film flow. Math. 2021;9:3092. doi:10.3390/math9233092
  • Khan M, Ahmed J, Rasheed Z. Entropy generation analysis for axisymmetric flow of Carreau nanofluid over a radially stretching disk. Appl Nanosci. 2020;10:5291–5303. doi:10.1007/s13204-020-01399-7
  • Ramesh K, Oudina FM, Ismail AI, et al. Computational analysis of radiative non-Newtonian Carreau nanofluid flow in a microchannel under the magnetic properties. Sci Iran B. 2023;30(2):376–390.
  • Tabrez M, Khan WA, Muhammad T, et al. Significance of thermo-dynamical moment of ferromagnetic nanoparticles and bioconvection analysis for magnetized Carreau fluid under the influence of gyrotactic moment of microorganisms. Tribol Int. 2023;186:108633. doi:10.1016/j.triboint.2023.108633
  • Irfan M, Anwar MS, Kebail I, et al. Thermal study on the performance of Joule heating and Sour-Dufour influence on nonlinear mixed convection radiative flow of Carreau nanofluid. Tribol Int. 2023;188:108789. doi:10.1016/j.triboint.2023.108789
  • Choi SUS, Eastman JA. Enhancing thermal conductivity of fluids with nanoparticles. Proc Int Mech Eng Congress Exhib ASME. 1995;231:99–105.
  • Buongiorno J. Convective transport in nanofluids. ASME J Heat Transf. 2006;128(3):240–250. doi:10.1115/1.2150834
  • Zegeye GB, Haile E, Awgichew G. Combined effects of Joule heating and binary chemical reaction of MHD Williamson nanofluid on Darcy–Forchheimer porous medium past unsteady stretching cylinder. Int J Thermofluids. 2023;20:100474. doi:10.1016/j.ijft.2023.100474
  • Oudina FMP, Sabu AS, et al. Hydromagnetic flow of magnetite–water nanofluid utilizing adapted Buongiorno model. Int J Mod Phys B. 2024;38(1):2450003. doi:10.1142/S0217979224500036
  • Oudina FM, Chabani I, Vaidya H, et al. Hybrid-nanofluid magneto-convective flow and porous media contribution to entropy generation. Int J Numer Methods Heat Fluid Flow. 2024;34(2):809–836. doi:10.1108/HFF-06-2023-0326
  • Chamkha AJ, Rashad AM. Natural convection from a vertical permeable cone in a nanofluid saturated porous media for uniform heat and nanoparticles volume fraction fluxes. Int J Numer Methods Heat Fluid Flow. 2012;22(8):1073–1085. doi:10.1108/09615531211271871
  • Madhu M, Kishan N, Chamkha AJ. Unsteady flow of a Maxwell nanofluid over a stretching surface in the presence of magnetohydrodynamic and thermal radiation effects. Propuls Power Res. 2017;6(1):31–40. doi:10.1016/j.jppr.2017.01.002
  • Krishna MV, Jyoti K, Chamkha AJ. Heat and mass transfer on MHD flow of second-grade fluid through porous medium over a semi-infinite vertical stretching sheet. J Porous Media. 2020;23(8):751–765. doi:10.1615/JPorMedia.2020023817
  • Chamkha AJ, Rashad AM. Unsteady heat and mass transfer by MHD mixed convection flow from a rotating vertical cone with chemical reaction and Soret and Dufour effects. Can J Chem Eng. 2014;92:703–711. doi:10.1002/cjce.21862
  • Ahmed R, Uddin R, Rana BMJ, et al. Study on periodic MHD flow with temperature dependent viscosity and thermal conductivity past an isothermal oscillating cylinder. World J Mech. 2016;06:419–441. doi:10.4236/wjm.2016.611030
  • Al‐Mamun A, Arifuzzaman SM, Rabbi SR, et al. Numerical simulation of periodic MHD Casson nanofluid flow through porous stretching sheet. SN Appl Sci. 2021;3:271. doi:10.1007/s42452-021-04140-3
  • Kumar M, Mondal PK. Buoyancy-driven flow of a couple stress fluid from an isothermal vertical plate: the role of spatially periodic magnetic field. Phys Scr. 2021;96(12):125014. doi:10.1088/1402-4896/ac2af3
  • Bestman AR. Natural convection boundary layer with suction and mass transfer in a porous medium. Int J Energy Res. 1990;14(4):389–396. doi:10.1002/er.4440140403
  • Dhlamini M, Kameswaran PK, Sibanda P, et al. Activation energy and binary chemical reaction effects in mixed convective nanofluid flow with convective boundary conditions. J Comput Des Eng. 2019;6(2):149–158. doi:10.1016/j.jcde.2018.05.002
  • Ali M, Shahzad M, Sultan F, et al. Exploring the features of stratification phenomena for the 3D flow of cross nanofluid considering activation energy. Int Commun Heat Mass Transf. 2020;116:104674. doi:10.1016/j.icheatmasstransfer.2020.104674
  • Li S, Raghunath K, Alfaleh A, et al. Effects of activation energy and chemical reaction on unsteady MHD dissipative Darcy–Forchheimer squeezed flow of Casson fluid over horizontal channel. Sci Rep. 2023;13:2666. doi:10.1038/s41598-023-29702-w
  • Chu YM, Jakeer S, Reddy SRR, et al. Double diffusion effect on the bio-convective magnetized flow of tangent hyperbolic liquid by a stretched nano-material with Arrhenius Catalysts. Case Stud Therm Eng. 2023;44:102838. doi:10.1016/j.csite.2023.102838
  • Falkner VM, Khan SW. Some approximate solutions of boundary layer equations. Philos Mag Ser. 1931;12:865–896. doi:10.1080/14786443109461870
  • Kumari M, Takhar HS, Nath G. Mixed convection flow over a vertical wedge embedded in a highly porous medium. Heat Mass Transf. 2001;37:139–146. doi:10.1007/s002310000154
  • Singh PJ, Roy S, Ravindran R. Unsteady mixed convection flow over a vertical wedge. Int J Heat Mass Transf. 2009;52:415–421. doi:10.1016/j.ijheatmasstransfer.2008.06.014
  • Ishak A, Nazar R, Pop I. MHD boundary-layer flow of a micropolar fluid past a wedge with constant wall heat flux. Commun Nonlinear Sci Numer Simul. 2009;14:109–118. doi:10.1016/j.cnsns.2007.07.011
  • Roy NC, Gorla RSR. Unsteady MHD mixed convection flow of a micropolar fluid over a vertical wedge. Int J Appl Mech Eng. 2017;22(2):363–391. doi:10.1515/ijame-2017-0022
  • Bejan A. A study of entropy generation in fundamental convective heat transfer. ASME J Heat Transf. 1979;101:718–725. doi:10.1115/1.3451063
  • Haq F, Saleem M, Khan MI, et al. Entropy generation minimization in bio-convective flow of nanofluid with activation energy and gyrotactic microorganisms. AIP Adv. 2021;11:055017. doi:10.1063/5.0047567
  • Gangadhar K, Lakshmi KB, Kannan T, et al. Entropy generation in magnetized bioconvective nanofluid flow along a vertical cylinder with gyrotactic microorganisms. J Nanofluids. 2020;9:302–312. doi:10.1166/jon.2020.1758
  • Ibrahim W, Gizewu T. Analysis of entropy generation of bio-convective on curved stretching surface with gyrotactic microorganisms and third-order slip flow. Int J Thermofluids. 2023;17:100277. doi:10.1016/j.ijft.2022.100277
  • Gray DD, Giorgini A. The validity of Boussinesq approximation for liquids and gases. Int J Heat Mass Transf. 1976;19(5):545–551. doi:10.1016/0017-9310(76)90168-X
  • Patil PM, Ramane HS, Roy S, et al. Influence of mixed convection in an exponentially decreasing external flow velocity. Int J Heat Mass Transf. 2017;104:392–399. doi:10.1016/j.ijheatmasstransfer.2016.08.024
  • Patil PM, Roy S, Pop I. Flow and heat transfer over a moving vertical plate in a parallel free stream: role of internal heat generation or absorption. Chem Eng Commun. 2012;199:658–672. doi:10.1080/00986445.2011.614978
  • Schlichting H, Gersten K. Boundary layer theory. New York: Springer; 2000.
  • Patil PM, Roy S, Pop I. Unsteady mixed convection flow over a vertical stretching sheet in a parallel free stream with variable wall temperature. Int J Heat Mass Transf. 2010;53(21-22):4741–4748. doi:10.1016/j.ijheatmasstransfer.2010.06.018
  • Patil PM. Effects of surface mass transfer on steady mixed convection flow from vertical stretching sheet with variable wall temperature and concentration. Int J Numer Methods Heat Fluid Flow. 2012;22(3):287–305. doi:10.1108/09615531211208015
  • Radbill RJ, McCue AG. Quasilinearization and nonlinear problems in fluid and orbital mechanics. New York: Elsevier Publishing Co; 1970.
  • Patil PM, Doddagoudar SH, Hiremath PS. Impacts of surface roughness on mixed convection nanofluid flow with liquid hydrogen/nitrogen diffusion. Int J Numer Methods Heat Fluid Flow. 2019;29(6):2146–2174. doi:10.1108/HFF-11-2018-0703
  • Patil PM, Roy S, Pop I. Chemical reaction effects on unsteady mixed convection boundary layer flow past a permeable slender vertical cylinder due to a nonlinearly stretching velocity. Chem Eng Commun. 2013;200(3):398–417. doi:10.1080/00986445.2012.712578
  • Bellman RE, Kalaba RE. Quasilinearization and nonlinear boundary value problems. New York: Elsevier Publishing Co. Inc.; 1965.
  • Patil PM, Momoniat E, Roy S. Influence of convective boundary condition on double-diffusive mixed convection from a permeable vertical surface. Int J Heat Mass Transf. 2014;70:313–321. doi:10.1016/j.ijheatmasstransfer.2013.11.021
  • Inouye K, Tate A. Finite difference version of Quasilinearization applied to boundary layer equations. AIAAJ. 1974;12:558–560. doi:10.2514/3.49286
  • Patil PM, Shankar HF. Heat transfer attributes of Al2O3-Fe3O4/H2O hybrid nanofluid flow over a yawed cylinder. Propuls Power Res. 2022;11(3):416–429. doi:10.1016/j.jppr.2022.06.002
  • Patil PM, Benawadi S, Shanker B. Influence of mixed convection nanofluid flow over a rotating sphere in the presence of diffusion of liquid hydrogen and ammonia. Math Comput Simul. 2022;194:764–781. doi:10.1016/j.matcom.2021.12.022
  • Patil PM, Chamkha AJ, Roy S. Effects of chemical reaction on mixed convection flow of a polar fluid through a porous medium in the presence of internal heat generation. Meccanica. 2012;47(2):483–499. doi:10.1007/s11012-011-9443-z
  • Mabood F, Shafiq A, Khan WA, et al. MHD and nonlinear thermal radiation effects on hybrid nanofluid past a wedge with heat source and entropy generation. Int J Numer Methods Heat Fluid Flow. 2022;32(1):120–137. doi:10.1108/HFF-10-2020-0636
  • Ishak SS, Mazlan NN, Ilias MR, et al. Radiation effects on inclined magnetohydrodynamics mixed convection boundary layer flow of hybrid nanofluids over a moving and static wedge. J Adv Res Appl Sci Eng Technol. 2022;28(3):68–84. doi:10.37934/araset.28.3.6884
  • Scribd CA. Mass diffusivity data. https://www.scribd.com/doc/58782633/MassDiffusivity-Data.