[1] S. Hosseinzadeh, K. Hosseinzadeh, A. Hasibi, D. Ganji, Hydrothermal analysis on non-Newtonian nanofluid flow of blood through porous vessels, Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering, Vol. 236, No. 4, pp. 1604-1615, 2022.
[2] N. Alipour, B. Jafari, K. Hosseinzadeh, Optimization of wavy trapezoidal porous cavity containing mixture hybrid nanofluid (water/ethylene glycol Go–Al2O3) by response surface method, Scientific Reports, Vol. 13, No. 1, pp. 1635, 2023.
[3] M. F. Najafabadi, H. TalebiRostami, K. Hosseinzadeh, D. Ganji, Investigation of nanofluid flow in a vertical channel considering polynomial boundary conditions by Akbari-Ganji's method, Theoretical and Applied Mechanics Letters, Vol. 12, No. 4, pp. 100356, 2022.
[4] K. Hosseinzadeh, M. Mardani, S. Salehi, M. Paikar, D. Ganji, Investigation of micropolar hybrid nanofluid (iron oxide–molybdenum disulfide) flow across a sinusoidal cylinder in presence of magnetic field, International Journal of Applied and Computational Mathematics, Vol. 7, pp. 1-17, 2021.
[5] M. R. Zangooee, K. Hosseinzadeh, D. D. Ganj, Investigation of three-dimensional hybrid nanofluid flow affected by nonuniform MHD over exponential stretching/shrinking plate, Nonlinear Engineering, Vol. 11, No. 1, pp. 143-155, 2022.
[6] M. Fallah Najafabadi, H. Talebi Rostami, K. Hosseinzadeh, D. D. Ganji, Hydrothermal study of nanofluid flow in channel by RBF method with exponential boundary conditions, Proceedings of the Institution of Mechanical engineers, Part E: Journal of process Mechanical engineering, Vol. 237, No. 6, pp. 2268-2277, 2023.
[7] S. U. Choi, J. A. Eastman, Enhancing thermal conductivity of fluids with nanoparticles, Argonne National Lab.(ANL), Argonne, IL (United States), pp. 1995.
[8] Y. Xuan, Q. Li, Heat transfer enhancement of nanofluids, International Journal of heat and fluid flow, Vol. 21, No. 1, pp. 58-64, 2000.
[9] S. Z. Heris, S. G. Etemad, M. N. Esfahany, Convective heat transfer of a Cu/water nanofluid flowing through a circular tube, Experimental heat transfer, Vol. 22, No. 4, pp. 217-227, 2009.
[10] S. Mukhopadhyay, Heat transfer analysis for unsteady MHD flow past a non-isothermal stretching surface, Nuclear engineering and design, Vol. 241, No. 12, pp. 4835-4839, 2011.
[11] S. Nadeem, S. Hussain, Flow and heat transfer analysis of Williamson nanofluid, Applied Nanoscience, Vol. 4, pp. 1005-1012, 2014.
[12] S. Hameed, S. Saha, Analysis of mixed convecto-magnetic Buongiorno nanofluid flow in a non-Darcy porous medium, Journal of Taibah University for Science, Vol. 17, No. 1, pp. 2233755, 2023.
[13] A. Kasaeian, R. Daneshazarian, O. Mahian, L. Kolsi, A. J. Chamkha, S. Wongwises, I. Pop, Nanofluid flow and heat transfer in porous media: a review of the latest developments, International Journal of Heat and Mass Transfer, Vol. 107, pp. 778-791, 2017.
[14] H. I. Andersson, Slip flow past a stretching surface, Acta Mechanica, Vol. 158, No. 1, pp. 121-125, 2002.
[15] Z. Abbas, Y. Wang, T. Hayat, M. Oberlack, Slip effects and heat transfer analysis in a viscous fluid over an oscillatory stretching surface, International Journal for Numerical Methods in Fluids, Vol. 59, No. 4, pp. 443-458, 2009.
[16] S. Mukhopadhyay, Effects of slip on unsteady mixed convective flow and heat transfer past a porous stretching surface, Nuclear Engineering and Design, Vol. 241, No. 8, pp. 2660-2665, 2011.
[17] J. Gbadeyan, E. Titiloye, A. Adeosun, Effect of variable thermal conductivity and viscosity on Casson nanofluid flow with convective heating and velocity slip, Heliyon, Vol. 6, No. 1, 2020.
[18] M. Sheikholeslami, D. D. Ganji, M. Y. Javed, R. Ellahi, Effect of thermal radiation on magnetohydrodynamics nanofluid flow and heat transfer by means of two phase model, Journal of magnetism and Magnetic materials, Vol. 374, pp. 36-43, 2015.
[19] S. Ghosh, S. Mukhopadhyay, MHD slip flow and heat transfer of Casson nanofluid over an exponentially stretching permeable sheet, International Journal of Automotive and Mechanical Engineering, Vol. 14, No. 4, pp. 4785-4804, 2017.
[20] S. Dey, S. Mukhopadhyay, MHD nanofluid flow over an absorbent plate in the company of chemical response and zero nanoparticle flux, Forces in Mechanics, Vol. 7, pp. 100102, 2022.
[21] K. A. Khan, M. F. Javed, M. A. Ullah, M. B. Riaz, Heat and Mass transport analysis for Williamson MHD nanofluid flow over a stretched sheet, Results in Physics, Vol. 53, pp. 106873, 2023.
[22] M. Naveed Khan, A. Alhowaity, Z. Wang, K. A. Gepreel, M. Hussien, Numerical analysis of the heat transfer application on a convective tangent hyperbolic nanofluid flow over a porous stretching cylinder with stratification effects, Numerical Heat Transfer, Part A: Applications, pp. 1-17, 2024.
[23] M. I. Sulaiman Basha, D. M. G. Anthony, Numerical investigation of non-linear radiative flow of hybrid nanofluid past a stretching cylinder with inclined magnetic field, Numerical Heat Transfer, Part B: Fundamentals, Vol. 85, No. 7, pp. 842-866, 2024.
[24] A. Paul, N. Sarma, B. Patgiri, Numerical assessment of MHD thermo-mass flow of Casson ternary hybrid nanofluid around an exponentially stretching cylinder, BioNanoScience, pp. 1-16, 2024.
[25] C. Y. Wang, Fluid flow due to a stretching cylinder, Physics of Fluids, Vol. 31, No. 3, pp. 466-468, 1988.
[26] A. Ishak, R. Nazar, I. Pop, Uniform suction/blowing effect on flow and heat transfer due to a stretching cylinder, Applied Mathematical Modelling, Vol. 32, No. 10, pp. 2059-2066, 2008.
[27] S. Mukhopadhyay, MHD boundary layer slip flow along a stretching cylinder, Ain Shams Engineering Journal, Vol. 4, No. 2, pp. 317-324, 2013.
[28] H. Ashorynejad, M. Sheikholeslami, I. Pop, D. Ganji, Nanofluid flow and heat transfer due to a stretching cylinder in the presence of magnetic field, Heat and Mass Transfer, Vol. 49, pp. 427-436, 2013.
[29] M. Tamoor, M. Waqas, M. I. Khan, A. Alsaedi, T. Hayat, Magnetohydrodynamic flow of Casson fluid over a stretching cylinder, Results in physics, Vol. 7, pp. 498-502, 2017.
[30] A. Mishra, M. Kumar, Velocity and thermal slip effects on MHD nanofluid flow past a stretching cylinder with viscous dissipation and Joule heating, SN Applied Sciences, Vol. 2, No. 8, pp. 1350, 2020.
[31] C. Sowmiya, B. R. Kumar, MHD Maxwell nanofluid flow over a stretching cylinder in porous media with microorganisms and activation energy, Journal of Magnetism and Magnetic Materials, Vol. 582, pp. 171032, 2023.
[32] S. Mukhopadhyay, A. Ishak, Mixed convection flow along a stretching cylinder in a thermally stratified medium, Journal of Applied Mathematics, Vol. 2012, No. 1, pp. 491695, 2012.
[33] N. Roşca, A. Roşca, I. Pop, J. Merkin, Nanofluid flow by a permeable stretching/shrinking cylinder, Heat and Mass Transfer, Vol. 56, pp. 547-557, 2020.
[34] S. Das, R. Jana, Natural convective magneto-nanofluid flow and radiative heat transfer past a moving vertical plate, Alexandria Engineering Journal, Vol. 54, No. 1, pp. 55-64, 2015.
[35] S. Konai, S. Mukhopadhyay, Insight into the Forced Convective Radiative Stefan flow of Nanofluid over an Unsteady Stretched Sheet, International Journal of Computational Materials Science and Engineering, 2024.
[36] R. Parveen, T. R. Mahapatra, Heat and mass source effect on MHD double-diffusive mixed convection and entropy generation in a curved enclosure filled with nanofluid, Nonlinear Analysis: Modelling and Control, Vol. 27, No. 2, pp. 308-330, 2022.
[37] S. Mukhopadhyay, P. R. De, K. Bhattacharyya, G. Layek, Slip effects on mixed convection flow along a stretching cylinder, International Journal of Heat and Technology, Vol. 30, No. 2, pp. 19-24, 2012.
[38] L. Grubka, K. Bobba, Heat transfer characteristics of a continuous stretching surface with variable temperature, Journal of Heat Transfer, Vol. 107, No. 1, pp. 248-250, 1985.
[39] M. E. Ali, Heat transfer characteristics of a continuous stretching surface, Wärme-und Stoffübertragung, Vol. 29, No. 4, pp. 227-234, 1994.
[40] A. Ishak, R. Nazar, Laminar boundary layer flow along a stretching cylinder, European Journal of Scientific Research, Vol. 36, No. 1, pp. 22-29, 2009.