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Computational Analysis of Soret and Dufour Effects on Nanofluid Flow Through a Stenosed Artery in the Presence of Temperature-Dependent Viscosity


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Chan BT, Lim E, Chee KH, Osman NAA. Review on CFD simulation in heart with dilated cardiomyopathy and myocardial infarction. Comput Biol Med. 2013;43(4):377–385. https://doi.org/10.1016/j.compbiomed.2013.01.013. Epub 2013 Search in Google Scholar

Akbar NS, Nadeem S. Blood flow analysis in tapered stenosed arteries with pseudoplastic characteristics. Int J Biomath. 2014;7(6):1450065. https://doi.org/10.1142/S179352451450065X Search in Google Scholar

Sankar DS. Two-phase non-linear model for blood flow in asymmetric and axisymmetric stenosed arteries. Int J Non Linear Mech. 2011;46(1):296–305. https://doi.org/10.1016/j.ijnonlinmec.2010.09.011 Search in Google Scholar

Thurston GB. Erythrocyte rigidity as a factor in blood rheology: viscoelastic dilatancy. J Rheol (N Y N Y). 1979;23(6):703–719. https://doi.org/10.1122/1.549506 Search in Google Scholar

Wolberg AS, Campbell RA. Thrombin generation, fibrin clot formation and hemostasis. Transfus Apher Sci. 2008;38(1):15–23. https://doi.org/10.1016/j.transci.2007.12.005 Search in Google Scholar

Roustaei M, Nikmaneshi MR, Firoozabadi B. Simulation of Low Density Lipoprotein (LDL) permeation into multilayer coronary arterial wall: Interactive effects of wall shear stress and fluid-structure interaction in hypertension. J Biomech. 2018;67(4):114–122. Search in Google Scholar

Huckabe CE, Hahn AW. A generalized approach to the modeling of arterial blood flow. Bull Math Biophys. 1968;30(4):645–662. https://doi.org/10.1007/BF02476681 Search in Google Scholar

Ellahi R, Rahman SU, Nadeem S, Akbar NS. Blood flow of nanofluid through an artery with composite stenosis and permeable walls. Appl Nanosci. 2014;4(8):919–926. https://doi.org/10.1007/s13204-013-0253-6 Search in Google Scholar

Liepsch D, Singh M, Lee M. Experimental analysis of the influence of stenotic geometry on steady flow. Biorheology. 1992;29(4):419–431. https://doi.org/10.3233/bir-1992-29405 Search in Google Scholar

Lowe GD, Drummond MM, Lorimer AR, Hutton I, Forbes CD, Prentice CR, et al. Relation between extent of coronary artery disease and blood viscosity. Br Med J. 1980;280(6215):673–674. https://doi.org/10.1136/bmj.280.6215.673 Search in Google Scholar

Baskurt OK, Meiselman HJ. Blood Rheology and Hemodynamics. Semin Thromb Hemost [Internet]. 2003 Nov 21 [cited 2021 Sep 11];29(05):435–450. Available from: https://doi.org/10.1055/s-2003-44551 Search in Google Scholar

Gandhi R, Sharma BK. Unsteady MHD Hybrid Nanoparticle (Au-Al 2 O 3/Blood) Mediated Blood Flow Through a Vertical Irregular Stenosed Artery: Drug Delivery Applications. In: Nonlinear Dynamics and Applications: Proceedings of the ICNDA 2022. Springer; 2022;12(2):325–337. https://doi.org/10.1007/978-3-030-99792-2_28 Search in Google Scholar

Sharma BK, Kumawat C, Vafai K. Computational biomedical simulations of hybrid nanoparticles (Au-Al2O3/blood-mediated) transport in a stenosed and aneurysmal curved artery with heat and mass transfer: Hematocrit dependent viscosity approach. Chem Phys Lett. 2022;800:139666. https://doi.org/10.1007/978-3-030-99792-2_34 Search in Google Scholar

Thamizharasan T, Reddy AS. Pulsating hydromagnetic flow of au-blood Jeffrey nanofluid in a channel with joule heating and viscous dissipation. Nanoscience and Technology: Nanosci Technol An Int J. 2022;13(2):1-13. https://doi.org/10.1615/NanoSciTechnolIntJ.2022039247 Search in Google Scholar

Tripathi B, Sharma BK, Sharma M. Modeling and analysis of MHD two-phase blood flow through a stenosed artery having temperature-dependent viscosity. Eur Phys J Plus. 2019;134(1):466. https://doi.org/10.1140/epjp/i2019-12813-9 Search in Google Scholar

Tripathi B, Sharma BK. Influence of heat and mass transfer on two-phase blood flow with joule heating and variable viscosity in the presence of variable magnetic field. Int J Comput Methods. 2020;17(03):1850139. https://doi.org/10.1142/S0219876218501396 Search in Google Scholar

Tripathi B, Sharma BK. Two-phase analysis of blood flow through a stenosed artery with the effects of chemical reaction and radiation. Ric di Mat. 2021;3(2):1-7. Search in Google Scholar

Hayat T, Hussain Z, Alsaedi A, Hobiny A. Computational analysis for velocity slip and diffusion species with carbon nanotubes. Results Phys. 2017;7:3049–58. https://doi.org/10.1016/j.rinp.2017.07.070 Search in Google Scholar

Hafeez MB, Krawczuk M, Shahzad H. An overview of heat transfer enhancement based upon nanoparticles influenced by induced magnetic field with slip condition via finite element strategy. acta Mech Autom. 2022;16(3):200–206. https://doi.org/10.2478/ama-2022-0024 Search in Google Scholar

Eckert ERG, Drake Jr RM. Analysis of heat and mass transfer. MC Graw Hill Publishing;1974. https://doi.org/10.1016/j.rinp.2017.07.070 Search in Google Scholar

Sharma BK, Yadav K, Mishra NK, Chaudhary RC. Soret and Dufour effects on unsteady MHD mixed convection flow past a radiative vertical porous plate embedded in a porous medium with chemical reaction. 2012; 3(7):717-723. https://doi.org/10.4236/am.2012.37105 Search in Google Scholar

Sharma BK, Gupta S, Krishna VV, Bhargavi RJ. Soret and Dufour effects on an unsteady MHD mixed convective flow past an infinite vertical plate with Ohmic dissipation and heat source. Afrika Mat. 2014;25(3):799–821. Search in Google Scholar

Xiao X, Wu Z-C, Chou K-C. A multi-label classifier for predicting the subcellular localization of gram-negative bacterial proteins with both single and multiple sites. PLoS One. 2011;6(6):e20592. Search in Google Scholar

Siddique I, Nadeem M, Awrejcewicz J, Pawłowski W. Soret and Dufour effects on unsteady MHD second-grade nanofluid flow across an exponentially stretching surface. Sci Rep. 2022;12(1):11811. https://doi.org/10.1038/s41598-022-16173-8 Search in Google Scholar

Nowar K. Peristaltic flow of a nanofluid under the effect of Hall current and porous medium. Math Probl Eng. 2014;2014:1-15. https://doi.org/10.1155/2014/389581 Search in Google Scholar

Nadeem S, Ijaz S, Akbar NS. Nanoparticle analysis for blood flow of Prandtl fluid model with stenosis. Int Nano Lett. 2013;3(1):1–13. https://doi.org/10.1186/2228-5326-3-35 Search in Google Scholar

Su X, Zheng L. Hall effect on MHD flow and heat transfer of nanofluids over a stretching wedge in the presence of velocity slip and Joule heating. Cent Eur J Phys. 2013;11(12):1694–703. https://doi.org/10.2478/s11534-013-0331-0 Search in Google Scholar

Ellahi R, Rahman SU, Nadeem S. Blood flow of Jeffrey fluid in a catherized tapered artery with the suspension of nanoparticles. Phys Lett A. 2014;378(40):2973–80. https://doi.org/10.1016/j.physleta.2014.08.002 Search in Google Scholar

Ghandi R, Sharma BK, Kumawat C, Beg OA. Modeling and analysis of magnetic hybrid nanoparticle (Au-Al2O3/blood) based drug delivery through a bell-shaped occluded artery with Joule heating, viscous dissipation and variable viscosity effects. Proc Inst Mech Eng Part E J Process Mech Eng. 2022; 236(5):2024-43. https://doi.org/10.1177/09544089221080273 Search in Google Scholar

Hayat T, Hussain Z, Alsaedi A, Muhammad T. An optimal solution for magnetohydrodynamic nanofluid flow over a stretching surface with constant heat flux and zero nanoparticles flux. Neural Comput Appl. 2018;29:1555–62. https://doi.org/10.1007/s00521-016-2685-x Search in Google Scholar

Bhandari A. Mathematical Modelling of Water-Based FeO Nanofluid Due to Rotating Disc and Comparison with Similarity Solution. acta Mech Autom. 2021;15(3):113–121. https://doi.org/10.2478/ama-2021-0016 Search in Google Scholar

Hussain Z, Hayat T, Alsaedi A, Anwar MS. Mixed convective flow of CNTs nanofluid subject to varying viscosity and reactions. Sci Rep. 2021;11(1):22838. https://doi.org/10.1038/s41598-021-02228-9 Search in Google Scholar

Hussain Z, Alshomrani AS, Muhammad T, Anwar MS. Entropy analysis in mixed convective flow of hybrid nanofluid subject to melting heat and chemical reactions. Case Stud inTherm Eng. 2022;34:101972. https://doi.org/10.1016/j.csite.2022.101972 Search in Google Scholar

Miri R, Abbassi MA, Ferhi M, Djebali R. Second Law Analysis of MHD Forced Convective Nanoliquid Flow Through a Two-Dimensional Channel. acta Mech Autom. 2022;16(4):417–431. https://doi.org/10.2478/ama-2022-0050 Search in Google Scholar

Cho HW, Hyun JM. Numerical solutions of pulsating flow and heat transfer characteristics in a pipe. Int J Heat Fluid Flow. 1990;11(4):321–330. https://doi.org/10.1016/0142-727X(90)90056-H Search in Google Scholar

Sharma BK, Gandhi R. Combined effects of Joule heating and nonuniform heat source/sink on unsteady MHD mixed convective flow over a vertical stretching surface embedded in a Darcy-Forchheimer porous medium. Propuls Power Res. 2022;11(2):276–292. https://doi.org/10.1016/j.jppr.2022.06.001 Search in Google Scholar

Craciunescu OI, Clegg ST. Pulsatile blood flow effects on temperature distribution and heat transfer in rigid vessels. J Biomech Eng. 2001;123(5):500–505. https://doi.org/10.1115/1.1392318 Search in Google Scholar

Naqvi SMRS, Farooq U, Aiyashi MA, Waqas H. Comprehensive analysis of thermally radiative transport of Sisko fluid over a porous stretchable curved surface with gold nanoparticles. Int J Mod Phys B. 2022;36(03):2250028. https://doi.org/10.1142/S021797922250028X Search in Google Scholar

Hussain Z. Heat transfer through temperature dependent viscosity hybrid nanofluid subject to homogeneous-heterogeneous reactions and melting condition: A comparative study. Phys Scr. 2020;96(1):15210. https://doi.org/10.1088/1402-4896/abc5ef Search in Google Scholar

Sharma BK, Kumawat C, Makinde OD. Hemodynamical analysis of MHD two phase blood flow through a curved permeable artery having variable viscosity with heat and mass transfer. Biomech Model Mechanobiol. 2022;21(3):797–825. https://doi.org/10.1007/s10237-022-01561-w Search in Google Scholar

Sharma BK, Kumawat C. Impact of temperature dependent viscosity and thermal conductivity on MHD blood flow through a stretching surface with ohmic effect and chemical reaction. Nonlinear Eng. 2021;10(1):255–271. https://doi.org/10.1515/nleng-2021-0020 Search in Google Scholar

Chakravarty S, Mandal PK. Mathematical modelling of blood flow through an overlapping arterial stenosis. Math Comput Model. 1994;19(1):59–70. https://doi.org/10.1016/0895-7177(94)90116-3 Search in Google Scholar

Chakravarty S, Mandal P. A nonlinear two-dimensional model of blood flow in an overlapping arterial stenosis subjected to body acceleration. Math Comput Model. 1996;24(1):43–58. https://doi.org/10.1016/0895-7177(96)00079-9 Search in Google Scholar

Nadeem S, Ijaz S. Theoretical analysis of metallic nanoparticles on blood flow through stenosed artery with permeable walls. Phys Lett A. 2015;379(6):542–554. https://doi.org/10.1016/j.physleta.2014.12.013 Search in Google Scholar

Datta BN. Numerical linear algebra and applications: Siam. 2010; 116. https://www.mdpi.com/journal/mathematics/specialissues/numelinearalgebra Search in Google Scholar

Sharma BK, Gandhi R, Mishra NK, Al-Mdallal QM. Entropy generation minimization of higher-order endothermic/exothermic chemical reaction with activation energy on MHD mixed convective flow over a stretching surface. Sci Rep. 2022;12(1):17688. https://doi.org/10.1038/s41598-022-22521-5 Search in Google Scholar

Sharma BK, Poonam, Chamkha AJ. Effects of heat transfer, body acceleration and hybrid nanoparticles (Au–Al2O3) on MHD blood flow through a curved artery with stenosis and aneurysm using hematocrit-dependent viscosity. Waves in Random and Complex Media. 2022;2(3):1–31. https://doi.org/10.1080/17455030.2022.2125597 Search in Google Scholar

Ali U, Irfan M, Rehman KU, Alqahtani AS, Malik MY, Shatanawi W. On the Cattaneo–Christov heat flux theory for mixed convection flow due to the rotating disk with slip effects. Waves in Random and Complex Media. 2022;4(3):1–15. Search in Google Scholar

Sharma BK, Khanduri U, Mishra NK, Mekheimer KS. Combined effect of thermophoresis and Brownian motion on MHD mixed convective flow over an inclined stretching surface with radiation and chemical reaction. Int J Mod Phys B. 2022;2350095. https://doi.org/10.1142/S0217979223500959 Search in Google Scholar

Gandhi R, Sharma BK, Makinde OD. Entropy analysis for MHD blood flow of hybrid nanoparticles (Au–Al2O3/blood) of different shapes through an irregular stenosed permeable walled artery under periodic body acceleration: Hemodynamical applications. ZAMM-Journal Appl Math Mech für Angew Math und Mech. 2022;e202100532. https://doi.org/10.1002/zamm.202100532 Search in Google Scholar

Sharma BK, Kumar A, Gandhi R, Bhatti MM. Exponential space and thermal-dependent heat source effects on electro-magneto-hydrodynamic Jeffrey fluid flow over a vertical stretching surface. Int J Mod Phys B. 2022;36(30):2250220. https://doi.org/10.1142/S0217979222502204 Search in Google Scholar