Homotopy analysis approach to Ferro-hydrodynamic bio-nanofluid flow over a co-axial rotating discs with Stefan blowing and magnetic dipole
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[1] Yulong Zhao,et al. Effect of flow rate on condensation of CO2-water vapor mixture on a vertical flat plate , 2023, Applied Thermal Engineering.
[2] El-Sayed M. Sherif,et al. Inspection of unsteady buoyancy and stagnation point flow incorporated by Ag-TiO2 hybrid nanoparticles towards a spinning disk with Hall effects , 2023, Case Studies in Thermal Engineering.
[3] W. Alghamdi,et al. Comparative analysis of the hydrothermal features of TiO2 water and ethylene glycol-based nanofluid transportation over a radially stretchable disk , 2023, Numerical Heat Transfer, Part B: Fundamentals.
[4] Z. Uddin,et al. Particle swarm optimization based numerical study for pressure, flow, and heat transfer over a rotating disk with temperature dependent nanofluid properties , 2023, Numerical Heat Transfer, Part A: Applications.
[5] W. Kumam,et al. Significance of nanoparticle radius and inter-particle spacing toward the radiative water-based alumina nanofluid flow over a rotating disk , 2023, Nanotechnology Reviews.
[6] P. Kumam,et al. Thermodynamics of second-grade nanofluid over a stretchable rotating porous disk subject to Hall current and cubic autocatalysis chemical reactions , 2022, Frontiers in Physics.
[7] T. Sindhu,et al. Optimization of the numerical treatment of the Darcy–Forchheimer flow of Ree–Eyring fluid with chemical reaction by using artificial neural networks , 2022, International Journal for Numerical Methods in Fluids.
[8] A. Shahzad,et al. Brownian motion and thermophoretic diffusion impact on Darcy-Forchheimer flow of bioconvective micropolar nanofluid between double disks with Cattaneo-Christov heat flux , 2022, Alexandria Engineering Journal.
[9] Rohana Abdul Hamid,et al. Effects of Magnetic Fields, Coupled Stefan Blowing and Thermodiffusion on Ferrofluid Transport Phenomena , 2022, Mathematics.
[10] S. Shehzad,et al. Bayesian and Numerical Techniques for Non-Newtonian Bödewadt Nanofluid Flow Above a Stretchable Stationary Disk , 2022, Arabian Journal for Science and Engineering.
[11] B. Jha,et al. Role of Suction/Injection On Free Convective Flow in a Vertical Channel in the Presence of Point/Line Heat Source/Sink , 2022, Journal of Heat Transfer.
[12] M. Gnaneswara Reddy,et al. Effect of thermal conductivity on Blasius–Rayleigh–Stokes flow and heat transfer over a moving plate by considering magnetic dipole moment , 2021, The European Physical Journal Plus.
[13] B. C. Prasannakumara. Numerical simulation of heat transport in Maxwell nanofluid flow over stretching sheet considering magnetic dipole effect , 2021, Partial Differential Equations in Applied Mathematics.
[14] S. Kadry,et al. Influence of autocatalytic chemical reaction with heterogeneous catalysis in the flow of Ostwald-de-Waele nanofluid past a rotating disk with variable thickness in porous media , 2021, International Communications in Heat and Mass Transfer.
[15] P. Thounthong,et al. Mechanical aspects of Maxwell nanofluid in dynamic system with irreversible analysis , 2021, ZAMM - Journal of Applied Mathematics and Mechanics / Zeitschrift für Angewandte Mathematik und Mechanik.
[16] R. Naveen Kumar,et al. Slip flow of Casson–Maxwell nanofluid confined through stretchable disks , 2021, Indian Journal of Physics.
[17] B. C. Prasannakumara,et al. Impacts of Stefan blowing and mass convention on flow of Maxwell nanofluid of variable thermal conductivity about a rotating disk , 2021 .
[18] F. Mabood,et al. Features of entropy optimization on MHD couple stress nanofluid slip flow with melting heat transfer and nonlinear thermal radiation , 2020, Scientific Reports.
[19] Phatiphat Thounthong,et al. Lorentz Forces Effects on the Interactions of Nanoparticles in Emerging Mechanisms with Innovative Approach , 2020, Symmetry.
[20] A. Bhandari. Water-based ferrofluid flow and heat transfer over a stretchable rotating disk under the influence of an alternating magnetic field , 2020 .
[21] Qayyum Shah,et al. Dynamics with Cattaneo–Christov heat and mass flux theory of bioconvection Oldroyd-B nanofluid , 2020 .
[22] Usman,et al. Steady flow and heat transfer of the power-law fluid between two stretchable rotating disks with non-uniform heat source/sink , 2020, Journal of Thermal Analysis and Calorimetry.
[23] Azizah Mohd Rohni,et al. Stefan Blowing and Slip Effects on Unsteady Nanofluid Transport Past a Shrinking Sheet: Multiple Solutions , 2019, Heat Transfer-Asian Research.
[24] Jawad Ahmed,et al. MHD swirling flow and heat transfer in Maxwell fluid driven by two coaxially rotating disks with variable thermal conductivity , 2019, Chinese Journal of Physics.
[25] Nilankush Acharya,et al. Influence of Hall current on radiative nanofluid flow over a spinning disk: A hybrid approach , 2019, Physica E: Low-dimensional Systems and Nanostructures.
[26] A. Zeeshan,et al. Convective radiative plane Poiseuille flow of nanofluid through porous medium with slip: An application of Stefan blowing , 2019, Journal of Molecular Liquids.
[27] K. Prasad,et al. Series analysis for the flow between two stretchable disks , 2017 .
[28] Mohammad Mehdi Rashidi,et al. Free convective heat transfer with hall effects, heat absorption and chemical reaction over an accelerated moving plate in a rotating system , 2017 .
[29] C. Furtado,et al. Analogue of the quantum Hall effect for neutral particles with magnetic dipole moment , 2017, 1701.01408.
[30] M. J. Uddin,et al. Stefan blowing effect on bioconvective flow of nanofluid over a solid rotating stretchable disk , 2016 .
[31] Annamma Abraham,et al. Ferromagnetic Liquid Flow due to Gravity-Aligned Stretching of an Elastic Sheet , 2015 .
[32] Shijun Liao,et al. Homotopy Analysis Method in Nonlinear Differential Equations , 2012 .
[33] Mustafa Turkyilmazoglu,et al. Effects of uniform radial electric field on the MHD heat and fluid flow due to a rotating disk , 2012 .
[34] Liancun Zheng,et al. Steady flow and heat transfer of the power-law fluid over a rotating disk , 2011 .
[35] M. Turkyilmazoglu. Heat and Mass Transfer on the MHD Fluid Flow Due to a Porous Rotating Disk With Hall Current and Variable Properties , 2011 .
[36] K. Vajravelu,et al. On the selection of auxiliary functions, operators, and convergence control parameters in the application of the Homotopy Analysis Method to nonlinear differential equations: A general approach , 2009 .
[37] M. Turkyilmazoglu. Exact Solutions Corresponding to the Viscous Incompressible and Conducting Fluid Flow Due to a Porous Rotating Disk , 2009 .
[38] E. Osalusi,et al. On the effectiveness of viscous dissipation and joule heating on steady MHD flow and heat transfer of a Bingham fluid over a porous rotating disk in the presence of Hall and ion-slip currents , 2007 .
[39] J. Buongiorno. Convective Transport in Nanofluids , 2006 .
[40] Knox T. Millsaps,et al. Heat Transfer by Laminar Flow from a Rotating Plate , 1951 .
[41] M. Akhtar,et al. Novel thermal aspects of hybrid nanofluid flow comprising of manganese zinc ferrite MnZnFeO, nickel zinc ferrite NiZnFeO and motile microorganisms , 2022, Ain Shams Engineering Journal.
[42] M. T. Akolade,et al. Thermophysical impact on the squeezing motion of non-Newtonian fluid with quadratic convection, velocity slip, and convective surface conditions between parallel disks , 2021 .
[43] M. Shekar,et al. Transient MHD flows through an exponentially accelerated isothermal vertical plate with Hall effect and chemical reaction effect: FEM , 2021 .
[44] S Nadeem,et al. Effect of homogeneous-heterogeneous reactions on ferrofluid in the presence of magnetic dipole along a stretching cylinder , 2017 .
[45] Aly R. Seadawy,et al. Stability analysis for Zakharov-Kuznetsov equation of weakly nonlinear ion-acoustic waves in a plasma , 2014, Comput. Math. Appl..
[46] T. Kármán. Über laminare und turbulente Reibung , 1921 .