Author:
Moatimid Galal M.,Mohamed Mona A. A.,Gaber Ahmed A.,Mostafa Doaa M.
Abstract
AbstractThe principal purpose of the current investigation is to indicate the behavior of the tangent-hyperbolic micropolar nanofluid border sheet across an extending layer through a permeable medium. The model is influenced by a normal uniform magnetic field. Temperature and nanoparticle mass transmission is considered. Ohmic dissipation, heat resource, thermal radiation, and chemical impacts are also included. The results of the current work have applicable importance regarding boundary layers and stretching sheet issues like rotating metals, rubber sheets, glass fibers, and extruding polymer sheets. The innovation of the current work arises from merging the tangent-hyperbolic and micropolar fluids with nanoparticle dispersal which adds a new trend to those applications. Applying appropriate similarity transformations, the fundamental partial differential equations concerning speed, microrotation, heat, and nanoparticle concentration distributions are converted into ordinary differential equations, depending on several non-dimensional physical parameters. The fundamental equations are analyzed by using the Rung-Kutta with the Shooting technique, where the findings are represented in graphic and tabular forms. It is noticed that heat transmission improves through most parameters that appear in this work, except for the Prandtl number and the stretching parameter which play opposite dual roles in tin heat diffusion. Such an outcome can be useful in many applications that require simultaneous improvement of heat within the flow. A comparison of some values of friction with previous scientific studies is developed to validate the current mathematical model.
Funder
Science and Technology Development Fund
Ain Shams University
Publisher
Springer Science and Business Media LLC
Reference58 articles.
1. Vedavathi, N., Dharmaiah, G., Noeiaghdam, S. & Fernandez-Gamiz, U. A chemical engineering application on hyperbolic tangent flow examination about sphere with Brownian motion and thermophoresis effects using BVP5C. Case Stud. Therm. Eng. 40, 102491 (2022).
2. Dharmaiah, G., Dinarvand, S., Durgaprasad, P. & Noeiaghdam, S. Arrhenius activation energy of tangent hyperbolic nanofluid over a cone with radiation absorption. Res. Eng. 16, 100745 (2022).
3. Gaffar, S. A., Prasad, V. R., Reddy, S. K. & Bég, O. A. Magnetohydrodynamic free convection boundary layer flow of non-Newtonian tangent hyperbolic fluid from a vertical permeable cone with variable surface temperature. J. Braz. Soc. Mech. Sci. Eng. 39, 101–116 (2017).
4. Gaffar, S. A., Prasad, V. R., Reddy, S. K. & Bég, O. A. Free convection flow and heat transfer of non-Newtonian tangent hyperbolic fluid from an isothermal sphere with partial slip. Arab. J. Sci. Eng. 39, 8157–8174 (2014).
5. Gharami, P. P. et al. MHD effect on unsteady flow of tangent hyperbolic nano-fluid past a moving cylinder with chemical reaction. SN Appl. Sci. 2, 1–16 (2020).
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