NUMERICAL SIMULATION OF MARANGONI MAGNETOHYDRODYNAMIC BIO-NANOFLUID CONVECTION FROM A NON-ISOTHERMAL SURFACE WITH MAGNETIC INDUCTION EFFECTS: A BIO-NANOMATERIAL MANUFACTURING TRANSPORT MODEL

被引:21
作者
Beg, O. Anwar [1 ]
Ferdows, M. [2 ]
Shamima, S. [2 ]
Islam, M. Nazrul [3 ]
机构
[1] GortEngovat Biomech & Aerosp, Bradford BD7 3NU, W Yorkshire, England
[2] Univ Dhaka, Dept Math, Dhaka 1000, Bangladesh
[3] Sheffield Hallam Univ, Dept Engn & Math, Sheffield S1 1WB, S Yorkshire, England
关键词
Marangoni flow; magnetic Prandtl number; thermal convection; nanofluids; magnetic induction; nanoparticles; non-isothermal; boundary layers; biotechnology; BOUNDARY-LAYER-FLOW; THERMAL-CONDUCTIVITY; HEAT-TRANSFER; FLAT-PLATE; FIELD; LAMINAR; NANOPARTICLES; RADIATION;
D O I
10.1142/S0219519414500390
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Laminar magnetohydrodynamic Marangoni-forced convection boundary layer flow of a water-based biopolymer nanofluid containing nanoparticles from a non-isothermal plate is studied. Magnetic induction effects are incorporated. A variety of nanoparticles are studied, specifically, silver, copper, aluminium oxide and titanium oxide. The Tiwari-Das model is utilized for simulating nanofluid effects. The normalized ordinary differential boundary layer equations (mass, magnetic field continuity, momentum, induced magnetic field and energy conservation) are solved subject to appropriate boundary conditions using Maple shooting quadrature. The influence of Prandtl number (Pr), magnetohydrodynamic body force parameter (beta), reciprocal of magnetic Prandtl number (alpha) and nanofluid solid volume fraction (phi) on velocity, temperature and magnetic stream function distributions is investigated in the presence of strong Marangoni effects (xi i.e., Marangoni parameter is set as unity). Magnetic stream function is accentuated with body force parameter. The flow is considerably decelerated as is magnetic stream function gradient, with increasing nanofluid solid volume fraction, whereas temperatures are significantly enhanced. Interesting features in the flow regime are explored. The study finds applications in the fabrication of complex biomedical nanofluids, biopolymers, etc.
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页数:32
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