Impact of Navier’s slip and chemical reaction on the hydromagnetic hybrid nanofluid flow and mass transfer due to porous stretching sheet

被引:0
作者
U. S. Mahabaleshwar
T. Anusha
O. Anwar Bég
Dhananjay Yadav
Thongchai Botmart
机构
[1] Davangere University,Department of Mathematics
[2] University of Salford,School of Science, Engineering and Environment, Aeronautical and Mechanical Engineering
[3] University of Nizwa,Department of Mathematical and Physical Sciences
[4] Khon Kaen University,Department of Mathematics, Faculty of Science
来源
Scientific Reports | / 12卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Hybrid nanofluids (HNFs) comprise combinations of different nanoparticles suspended in base fluid. Applications of such nanofluids are rising in the areas of energy and biomedical engineering including smart (functional) coatings. Motivated by these developments, the present article examines theoretically the magnetohydrodynamic coating boundary layer flow of HNFs from a stretching sheet under the transverse magnetic field in porous media with chemically reactive nanoparticles. Darcy’s law is deployed. Momentum slips of both first and second order are included as is solutal slip. The transformed boundary value problem is solved analytically. Closed form solutions for velocity are derived in terms of exponential functions and for the concentration field in terms of incomplete Gamma functions by the application of the Laplace transformation technique. The influence of selected parameters e.g. suction/injection, magnetic field and slips on velocity and concentration distributions are visualized graphically. Concentration magnitudes are elevated with stronger magnetic field whereas they are suppressed with greater wall solutal slip. Magnetic field suppresses velocity and increases the thickness of the hydrodynamic boundary layer. The flow is accelerated with reduction in inverse Darcy number and stronger suction direct to reduce in skin friction. The concentration magnitudes are boosted with magnetic field whereas they are depleted with increasing solutal slip. The analysis provides a good foundation for further investigations using numerical methods.
引用
收藏
相关论文
共 161 条
  • [1] Sagala F(2019)Nanopyroxene-based nanofluids for enhanced oil recovery in sandstone cores at reservoir temperature Energy Fuels 33 877-890
  • [2] Montoya T(2016)Al-nanoparticle-containing nanofluid fuel: Synthesis, stability, properties, and propulsion performance Ind. Eng. Chem. Res. 55 2738-2745
  • [3] Hethnawi A(2013)Preparation and characterization of properties of nanographite-based cutting fluid for machining operations Proc. Inst. Mech. Eng. Part J: J. Eng. Tribol. 228 243-252
  • [4] Vitale G(2014)Investigating corrosion effects and heat transfer enhancement in smaller size radiators using CNT-nanofluids J. Mater. Sci. 49 4544-4551
  • [5] Nassar NN(2017)Electrical and thermal conductivities of 50/50 water-ethylene glycol based TIO Energy Procedia 110 101-108
  • [6] Xiu TF(2010) nanofluids to be used as coolants in PEM fuel cells Mater. Chem. Phys. 121 198-201
  • [7] Pan L(2018)ZnO nanofluids: Green synthesis, characterization, and antibacterial activity J. Mech. Med. Biol. 18 1850007.1-1850007.20
  • [8] Wang F(2019)B-spline collocation simulation of nonlinear transient magnetic nano-bio-tribological squeeze film flow Joule 3 124-135
  • [9] Wang L(2020)Hard-magnet L1 Heat Transf. 5 1901-492
  • [10] Zhang X(2016)-CoPt nanoparticles advance fuel cell catalysis Springerplus 33 2050028-990