65
Views
3
CrossRef citations to date
0
Altmetric
Research Article

Study of parabolic motion effects on fractional order simulation for unsteady MHD nanofluid flow through porous medium

&
Pages 1457-1469 | Received 29 Aug 2022, Accepted 30 Jan 2023, Published online: 15 Feb 2023

References

  • Akhtar, R., M. Awais, M. A. Z. Raja, M. N. Abrar, S. A. Shah, A. Yuan, S. E. Awan, et al. 2021. “Analytical Treatment for the Dynamics of Second Law Analysis of Jeffery Nanofluid with Convective Heat and Mass Conditions.” Journal of Nanoelectronics and Optoelectronics 16 (1): 89–96. (8). doi:10.1166/jno.2021.2909
  • Aleem, M., M. I. Asjad, A. Shaheen, and I. Khan. 2020. “MHD Influence on Different Water Based Nanofluids (TiO2, Al2O3, CuO) in Porous Medium with Chemical Reaction and Newtonian Heating.” Chaos, Solitons & Fractals 130: 109437. 0960–0779. doi:10.1016/j.chaos.2019.109437
  • Asifa, Kumam, P., A. Tassaddiq, W. Watthayu, Z. Shah, and A. Talha. 2022. “Modeling and Simulation-Based Investigation of Unsteady MHD Radiative Flow of Rate Type Fluid.” A Comparative Fractional Analysis, Mathematics and Computers in Simulation 201: 486–507. 0378-4754. doi:10.1016/j.matcom.2021.02.005
  • Awais, M., S. E. Awan, A. Z. R. Muhammad, and M. Shoaib. 2021. “Effects of Gyro-Tactic Organisms in Bio-Convective Nano-Material with Heat Immersion, Stratification, and Viscous Dissipation.” Arabian Journal for Science and Engineering 46: 5907–5920. doi:10.1007/s13369-020-05070-9
  • Awais, M., S. E. Awan, M. A. Z. Raja, N. Parveen, W. U. Khan, M. Y. Malik, and Y. He. 2021. “Effects of Variable Transport Properties on Heat and Mass Transfer in MHD Bioconvective Nanofluid Rheology with Gyrotactic Microorganisms: Numerical Approach.” Coatings 11: 231. doi:10.3390/coatings11020231
  • Awais, M., S. Ehsan Awan, M. A. Z. Raja, M. Nawaz, W. U. Khan, M. Yousaf Malik, and Y. He. 2021. “Heat Transfer in Nanomaterial Suspension (CuO and Al2O3) Using KKL Model.” Coatings 11: 417. doi:10.3390/coatings11040417
  • Awan, S. E., M. Awais, M. A. Z. Raja, N. Parveen, H. M. Ali, W. U. Khan, and Y. He. 2021. “Numerical Treatment for Dynamics of Second Law Analysis and Magnetic Induction Effects on Ciliary Induced Peristaltic Transport of Hybrid Nanomaterial.” Frontiers in Physics 9: 631903. doi:10.3389/fphy.2021.631903
  • Bagh, A., I. Siddique, A. Shafiq, S. Abdal, I. Khan, and A. Khan. 2021. “Magnetohydrodynamic Mass and Heat Transport Over a Stretching Sheet in a Rotating Nanofluid with Binary Chemical Reaction, non-Fourier Heat Flux, and Swimming Microorganisms.” Case Studies in Thermal Engineering 28: 101367. 2214-157X. doi:10.1016/j.csite.2021.101367
  • Choi, S. U. S. 1995. “Enhancing Thermal Conductivity of Fluids with Nanoparticles.” ASME International Mechanical Engineering Congress and Exposition 231: 99–105.
  • Goud, B. S., P. Kumar, and B. S. Malga. 2020. “Effect of Heat Source on an Unsteady MHD Free Convection Flow of Casson Fluid Past a Vertical Oscillating Plate in Porous Medium Using Finite Element Analysis.” Partial Differential Equations in Applied Mathematics 2: 100015. 2666-8181. doi:10.1016/j.padiff.2020.100015
  • Jain, S., M. Kumari, and A. Parmar. 2018. “Unsteady MHD Chemically Reacting Mixed Convection Nano-Fluids Flow Past an Inclined Pours Stretching Sheet with Slip Effect and Variable Thermal Radiation and Heat Source.” Materials Today: Proceedings 5: 6297–6312. 2214-7853. doi:10.1016/j.matpr.2017.12.239
  • Jamil, B., M. S. Anwar, A. Rasheed, and I. Muhammad. 2020. “MHD Maxwell Flow Modeled by Fractional Derivatives with Chemical Reaction and Thermal Radiation.” Chinese Journal of Physics 67: 512–533. 0577-9073. doi:10.1016/j.cjph.2020.08.012
  • Jiang, Y., H. G. Sun, Y. Bai, and Y. Zhang. 2022. “MHD Flow, Radiation Heat and Mass Transfer of Fractional Burgers’ Fluid in Porous Medium with Chemical Reaction Image 1.” Computers & Mathematics with Applications 115: 68–79. 0898-1221. doi:10.1016/j.camwa.2022.01.014
  • Kalpana, G., K. R. Madhura, and R. B. Kudenatti. 2022. “Magnetohydrodynamic Boundary Layer Flow of Hybrid Nanofluid with the Thermophoresis and Brownian Motion in an Irregular Channel.” A Numerical Approach, Engineering Science and Technology, an International Journal 32: 101075. doi:10.1016/j.jestch.2021.11.001.
  • Kataria, H. R., and A. S. Mittal. 2017. “Velocity, Mass and Temperature Analysis of Gravity-Driven Convection Nanofluid Flow Past an Oscillating Vertical Plate in the Presence of Magnetic Field in a Porous Medium.” Applied Thermal Engineering 110: 864–874. doi:10.1016/j.applthermaleng.2016.08.129
  • Khan, W. U., M. Awais, N. Parveen, A. Ali, S. E. Awan, M. Y. Malik, and Y. He. 2021. “Analytical Assessment of (Al2O3–Ag/H2O) Hybrid Nanofluid Influenced by Induced Magnetic Field for Second Law Analysis with Mixed Convection, Viscous Dissipation and Heat Generation.” Coatings 11: 498. doi:10.3390/coatings11050498
  • Khan, M., H. Sardar, and M. M. Gulzar. 2018. “On Radiative Heat Transfer in Stagnation Point Flow of MHD Carreau Fluid Over a Stretched Surface.” Results in Physics 8: 524–531. 2211-3797. doi:10.1016/j.rinp.2017.12.046
  • Khashi'ie, N. S., M. A. Norihan, and I. Pop. 2022. “Magnetohydrodynamics (MHD) Boundary Layer Flow of Hybrid Nanofluid Over a Moving Plate with Joule Heating.” Alexandria Engineering Journal 61 (3): 1938–1945. 1110-0168. doi:10.1016/j.aej.2021.07.032
  • Khazayinejad, M., and S. S. Nourazar. 2022. “On the Effect of Spatial Fractional Heat Conduction in MHD Boundary Layer Flow Using Gr-Fe3O4–H2O Hybrid Nanofluid.” International Journal of Thermal Sciences 172 (B): 107265. 1290-0729. doi:10.1016/j.ijthermalsci.2021.107265
  • Li, Y. X., S. R. Mishra, P. K. Pattnaik, S. Baag, Y. M. Li, M. I. Khan, N. B. Khan, M. K. Alaoui, and S. U. And Khan. 2022. “Numerical Treatment of Time Dependent Magnetohydrodynamic Nanofluid Flow of Mass and Heat Transport Subject to Chemical Reaction and Heat Source.” Alexandria Engineering Journal 61 (3): 2484–2491. 1110-0168. doi:10.1016/j.aej.2021.07.030
  • Parveen, N., M. Awais, S. E. Awan, W. U. Khan, Y. He, and M. Y. Malik. 2021. “Entropy Generation Analysis and Radiated Heat Transfer in MHD (Al2O3–Cu/Water) Hybrid Nanofluid Flow.” Micromachines 12: 887. doi:10.3390/mi12080887
  • Parveen, N., M. Awais, S. E. Awan, A. S. Shah, A. Yuan, M. Nawaz, R. Akhtar, and M. Y. Malik. 2021. “Thermophysical Properties of Chemotactic Microorganisms in bio-Convective Peristaltic Heology of Nano-Liquid with Slippage, Joule Heating and Viscous Dissipation.” Case Studies in Thermal Engineering 27: 101285. doi:10.1016/j.csite.2021.101285
  • Patel, H. R., A. S. Mittal, and T. Nagar. 2022. “Fractional Order Simulation for Unsteady mhd Nanofluid Flow in Porous Medium with Soret and Heat Generation Effects.” Heat Transfer. doi:10.1002/htj.22707.
  • Rosseland, S. 1931. Astrophysik und Atom-Theoretische Grundlagen. Berlin: Springer-Verlag.
  • Roy, N. C., and I. Pop. 2022. “Unsteady Magnetohydrodynamic Stagnation Point Flow of a Nanofluid Past a Permeable Shrinking Sheet.” Chinese Journal of Physics 75: 109–119. 0577-9073. doi:10.1016/j.cjph.2021.12.018
  • Sana, M., A. Aamir, M. Awais, M. Shutaywi, and Z. Shah. 2020. “Entropy Generation in Electrical Magnetohydrodynamic Flow of Al 2O3–Cu/H2O Hybrid Nanofluid with non–Uniform Heat Flux.” Journal of Thermal Analysis and Calorimetry. doi:10.1007/s10973-020-09603-0.
  • Sene, N. 2022. “Analytical Investigations of the Fractional Free Convection Flow of Brinkman Type Fluid Described by the Caputo Fractional Derivative.” Results in Physics 37: 105555. 2211-3797. doi:10.1016/j.rinp.2022.105555
  • Shehzad, S. A., M. Sheikholeslami, T. Ambreen, and S. Ahmad. 2020. “Convective MHD Flow of Hybrid-Nanofluid Within an Elliptic Porous Enclosure.” Physics Letters A 384 (28): 126727. 0375-9601. doi:10.1016/j.physleta.2020.126727
  • Sheikholeslami, M. 2022. “Analyzing Melting Process of Paraffin Through the Heat Storage with Honeycomb Configuration Utilizing Nanoparticles.” Journal of Energy Storage 52 (B): 104954. doi:10.1016/j.est.2022.104954
  • Sheikholeslami, M., and Z. Ebrahimpour. 2022. “Thermal Improvement of Linear Fresnel Solar System Utilizing Al2O3-Water Nanofluid and Multi-way Twisted Tape.” International Journal of Thermal Sciences 176: 107505. doi:10.1016/j.ijthermalsci.2022.107505
  • Sheikholeslami, M., Z. Said, and M. Jafaryar. 2022. “Hydrothermal Analysis for a Parabolic Solar Unit with Wavy Absorber Pipe and Nanofluid.” Renewable Energy 188: 922–932. doi:10.1016/j.renene.2022.02.086
  • Sheikholeslami, M., and S. A. Shehzad. 2017. “Magnetohydrodynamic Nanofluid Convection in a Porous Enclosure Considering Heat Flux Boundary Condition.” International Journal of Heat and Mass Transfer 106: 1261–1269. 0017-9310. doi:10.1016/j.ijheatmasstransfer.2016.10.107
  • Sheikholeslami, M., S. A. Shehzad, Z. Li, and A. Shafee. 2018. “Numerical Modeling for Alumina Nanofluid Magnetohydrodynamic Convective Heat Transfer in a Permeable Medium Using Darcy law.” International Journal of Heat and Mass Transfer 127 (A): 614–622. ISSN 0017-9310. doi:10.1016/j.ijheatmasstransfer.2018.07.013
  • Shoaib, M., A. Z. R. Muhammad, T. S. Muhammad, M. Awais, I. Saeed, Z. Shah, and P. Kumam. 2021. “Numerical Analysis of 3-D MHD Hybrid Nanofluid Over a Rotational Disk in Presence of Thermal Radiation with Joule Heating and Viscous Dissipation Effects Using Lobatto IIIA Technique.” Alexandria Engineering Journal 60: 3605–3619. doi:10.1016/j.aej.2021.02.015
  • Stehfest, H. 1970. “Algorithm 368, Numerical Inversion of Laplace Transform.” Communications of the Acm 13: 47–49. doi:10.1145/361953.361969
  • Tzou, D. 1970. Macro to Microscale Heat Transfer: The Behavior. Washington: Taylor and Francis.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.