377
Views
0
CrossRef citations to date
0
Altmetric
Research Article

MHD natural convection in a wavy nanofluid enclosure with an internally corrugated porous cylinder

, , , , ORCID Icon &
Article: 2335685 | Received 08 Dec 2023, Accepted 23 Mar 2024, Published online: 01 Apr 2024

References

  • Tayebi T, Chamkha AJ. Effects of various configurations of an inserted corrugated conductive cylinder on MHD natural convection in a hybrid nanofluid-filled square domain. J Therm Anal Calorim. 2021;143:1399–1411.
  • Dogonchi AS, Armaghani T, Chamkha AJ, et al. Natural convection analysis in a cavity with an inclined elliptical heater subject to shape factor of nanoparticles and magnetic field. Arab J Sci Eng. 2019;44:7919–7931.
  • El Mansouri A, Hasnaoui M, Amahmid A, et al. Numerical analysis of conjugate convection-conduction heat transfer in an air-filled cavity with a rhombus conducting block subjected to subdivision: Cooperating and opposing roles. Int J Heat Mass Transfer. 2020;150:119375.
  • Parvin S, Roy NC, Saha LK. Magnetohydrodynamic natural convection of a hybrid nanofluid from a sinusoidal wavy cylinder placed in a curve-shaped cavity. AIP Adv. 2021;11(8).
  • Mandal DK, Biswas N, Manna NK, et al. Thermo-fluidic transport process in a novel M-shaped cavity packed with non-Darcian porous medium and hybrid nanofluid: application of artificial neural network (ANN). Phys Fluids. 2022;34(3).
  • Abdulkadhim A, Abed IM, Said NM. Computational investigation of magnetohydrodynamics convective heat transfer in I-shaped wavy enclosure considering various shapes of inner bodies filled with nanofluid–porous layers. Braz J Chem Eng. 2023;40(2):427–447.
  • Biswas N, Mondal MK, Mandal DK, et al. A narrative loom of hybrid nanofluid-filled wavy walled tilted porous enclosure imposing a partially active magnetic field. Int J Mech Sci. 2022;217:107028.
  • Hamza NH, Abdulrazzaq NM, Theeb MA, et al. The influence of magnetic field on entropy generation in a wavy cavity equipped with internal heated plate using Darcy-Brinkman-Forchheimer model. Int J Therm. 2023: 100463.
  • Khanafer K, Vafai K, Lightstone M. Buoyancy-driven heat transfer enhancement in a two-dimensional enclosure utilizing nanofluids. Int J Heat Mass Transfer. 2003;46(19):3639–3653.
  • Abu-Nada E, Chamkha AJ. Effect of nanofluid variable properties on natural convection in enclosures filled with a CuO–EG–water nanofluid. Int J Therm Sci. 2010;49(12):2339–2352.
  • Rashad AM, Chamkha AJ, Ismael MA, et al. Magnetohydrodynamics natural convection in a triangular cavity filled with a Cu-Al2O3/water hybrid nanofluid with localized heating from below and internal heat generation. J Heat Transfer. 2018;140(7):072502.
  • Abdulkadhim A. On simulation of the natural convection heat transfer between circular cylinder and an elliptical enclosure filled with nanofluid [part I: the effect of MHD and internal heat generation/absorption]. Math Model Eng Prob. 2019;6(4):599–610.
  • Hatami M. Nanoparticles migration around the heated cylinder during the RSM optimization of a wavy-wall enclosure. Adv Powder Technol. 2017;28(3):890–899.
  • Sheikholeslami M, Hayat T, Alsaedi A. On simulation of nanofluid radiation and natural convection in an enclosure with elliptical cylinders. Int J Heat Mass Transfer. 2017;115:981–991. doi:10.1016/j.ijheatmasstransfer.2017.07.119
  • Abdelmalek Z, Tayebi T, Dogonchi AS, et al. Role of various configurations of a wavy circular heater on convective heat transfer within an enclosure filled with nanofluid. Int Commun Heat Mass Transfer. 2020;113:104525.
  • Oztop HF, Abu-Nada E, Varol Y, et al. Natural convection in wavy enclosures with volumetric heat sources. Int J Therm Sci. 2011;50(4):502–514.
  • Ma Y, Mohebbi R, Rashidi MM, et al. Nanoliquid thermal convection in I-shaped multiple-pipe heat exchanger under magnetic field influence. Physica A. 2020;550:124028.
  • Kim BS, et al. A numerical study of natural convection in a square enclosure with a corrugated cylinderat different vertical locations. Int J Heat Mass Transfer. 2008;51(7-8):1888–1906.
  • Hussein AK, Hussain SH. Heatline visualization of natural convection heat transfer in an inclined wavy cavities filled with nanofluids and subjected to a discrete isoflux heating from its left sidewall. Alexandria Eng J. 2016;55(1):169–186.
  • Lee JM, Ha MY, Yoon HS. Natural convection in a square enclosure with a circular cylinder at different horizontal and diagonal locations. Int J Heat Mass Transfer. 2010;53(25-26):5905–5919.
  • Choi C, Jeong S, Ha MY, et al. Effect of a circular cylinder’s location on natural convection in a rhombus enclosure. Int J Heat Mass Transfer. 2014;77:60–73.
  • Massoudi MD, Ben Hamida MB. Enhancement of MHD radiative CNT-50% water+ 50% ethylene glycol nanoliquid performance in cooling an electronic heat sink featuring wavy fins. Waves Random Complex Media. 2022;32:1–26.
  • Massoudi MD, Hamida MBB, Almeshaal MA, et al. The influence of multiple fins arrangement cases on heat sink efficiency of MHD MWCNT-water nanofluid within tilted T-shaped cavity packed with trapezoidal fins considering thermal emission impact. Int Commun Heat Mass Transfer. 2021;126:105468.
  • Dhia Massoudi M, Ben Hamida MB, Mohammed HA, et al. MHD heat transfer in W-shaped inclined cavity containing a porous medium saturated with Ag/Al2O3 hybrid nanofluid in the presence of uniform heat generation/absorption. Energies. 2020;13(13):3457.
  • Alshare A, Abderrahmane A, Guedri K, et al. Hydrothermal and entropy investigation of nanofluid natural convection in a lid-driven cavity concentric with an elliptical cavity with a wavy boundary heated from below. Nanomaterials. 2022;12(9):1392.
  • Maneengam A, Bouzennada T, Abderrahmane A, et al. Numerical study of lid-driven hybrid nanofluid flow in a corrugated porous cavity in the presence of magnetic field. Nanomaterials. 2022;12(14):2390.
  • Maneengam A, Laidoudi H, Abderrahmane A, et al. Entropy generation in 2D lid-driven porous container with the presence of obstacles of different shapes and under the influences of Buoyancy and Lorentz forces. Nanomaterials. 2022;12(13):2206.
  • Biswas N, Mandal DK, Manna NK, et al. Magnetohydrodynamic thermal characteristics of water-based hybrid nanofluid-filled non-Darcian porous wavy enclosure: effect of undulation. Int J Numer Methods Heat Fluid Flow. 2022;32(5):1742–1777.
  • Mandal DK, Biswas N, Manna NK, et al. Magneto-hydrothermal performance of hybrid nanofluid flow through a non-Darcian porous complex wavy enclosure. Eur Phys J Spec Top. 2022;231(13-14):2695–2712.
  • Mondal MK, Biswas N, Mandal DK, et al. Assessment of thermal performance of hybrid nanofluid flow in a tilted porous enclosure by imposing partial magnetic fields. Waves Random Complex Media. 2022;32:1–34.
  • Tayebi T, Dahmane F, Jamshed W, et al. Double-diffusive magneto-natural convection of nanofluid in an enclosure equipped with a wavy porous cylinder in the local thermal non-equilibrium situation. Case Stud Therm Eng. 2023;43:102785.
  • Sheremet MA, Oztop HF, Pop I, et al. MHD free convection in a wavy open porous tall cavity filled with nanofluids under an effect of corner heater. Int J Heat Mass Transfer. 2016;103:955–964.
  • Sheikholeslami M, Gorji-Bandpy M, Ganji DD, et al. Natural convection of nanofluids in an enclosure between a circular and a sinusoidal cylinder in the presence of magnetic field. Int Commun Heat Mass Transfer. 2012;39(9):1435–1443.
  • Mahmoudi AH, Pop I, Shahi M. Effect of magnetic field on natural convection in a triangular enclosure filled with nanofluid. Int J Therm Sci. 2012;59:126–140.
  • Ali FH, Hamzah HK, Egab K, et al. Non-Newtonian nanofluid natural convection in a U-shaped cavity under magnetic field. Int J Mech Sci. 2020;186:105887.
  • Dogonchi AS, Sadeghi M, Ghodrat M, et al. Natural convection and entropy generation of a nanoliquid in a crown wavy cavity: effect of thermo-physical parameters and cavity shape. Case Stud Therm Eng. 2021;27:101208.
  • Malekpour A, Karimi N, Mehdizadeh A. Magnetohydrodynamics, natural convection, and entropy generation of CuO–water nanofluid in an I-shape enclosure – a numerical study. J Therm Sci Eng Appl. 2018;10(6):061016.
  • Hussain SH, Rahomey MS. Comparison of natural convection around a circular cylinder with different geometries of cylinders inside a square enclosure filled with Ag-nanofluid superposed porous-nanofluid layers. J Heat Transfer. 2019;141(2):1–12.
  • Ho CJ, Liu WK, Chang YS, et al. Natural convection heat transfer of alumina-water nanofluid in vertical square enclosures: An experimental study. Int J Therm Sci. 2010;49(8):1345–1353.
  • Chon CH, Kihm KD, Lee SP, et al. Empirical correlation finding the role of temperature and particle size for nanofluid (Al2O3) thermal conductivity enhancement. Appl Phys Lett. 2005;87(15):1–4.
  • Fusegi T, Hyun JM, Kuwahara K, et al. A numerical study of three-dimensional natural convection in a differentially heated cubical enclosure. Int J Heat Mass Transfer. 1991;34(6):1543–1557.
  • de Vahl Davis G. Natural convection of air in a square cavity: a bench mark numerical solution. Int J Numer Methods Fluids. 1983;3(3):249–264.
  • Barakos G, Mitsoulis E, Assimacopoulos DO. Natural convection flow in a square cavity revisited: laminar and turbulent models with wall functions. Int J Numer Methods Fluids. 1994;18(7):695–719.