Bioconvective flow analysis of non-Newtonian fluid over a porous curved stretching surface

Naveed Ahsan, M. N. Aslam, Muhammad Naveed Khan, Emad A. Az-Zo’bi
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Abstract

The aim of current investigation is to explore the two-dimensional Darcy flow of second grade fluid with homogenous and heterogeneous reactions toward a porous curved stretching surface. The thermal features the bioconvective flow are observed with the impact of joule heating, nonlinear thermal radiation, and non-uniform heat source/sink. The thermal stratification conditions are imposed on the boundary of the surface with magnetic field which is normal to surface. Flow model momentum and energy equations are converted into the system of nonlinear ordinary differential equations with some appropriative transformation. These nonlinear equations are tackled numerically with the utilization of Bvp4c approach. The graphical and tabulated results are obtained and discussed thoroughly. It is noticed that for the larger Darcy-Forchheimer number F, porosity parameter [Formula: see text], and Hartman number M, the fluid velocity decreases, while curvature parameter [Formula: see text] exhibits the reverse trend on the velocity field. Further, increment in the fluid temperature is observed by the escalation of the Hartman number M and Eckert number Ec, because more resistance produces larger energy in the fluid. This research contributes to understanding the complex interplay of parameters governing fluid dynamics and thermal behavior near porous curved surfaces, shedding light on the impact of various factors on velocity and temperature distributions.
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多孔弯曲拉伸表面上非牛顿流体的生物对流分析
本次研究的目的是探索具有同质和异质反应的二级流体流向多孔弯曲拉伸表面的二维达西流。在焦耳加热、非线性热辐射和非均匀热源/沉的影响下,观察了生物对流的热特征。在表面边界上施加了热分层条件,磁场为表面法线。通过一些适当的变换,流动模型动量和能量方程被转换为非线性常微分方程系统。利用 Bvp4c 方法对这些非线性方程进行数值处理。得到的结果以图形和表格形式显示,并进行了深入讨论。我们注意到,当达西-福克海默数 F、孔隙度参数[计算公式:见正文]和哈特曼数 M 越大时,流体速度越小,而曲率参数[计算公式:见正文]对速度场的影响呈相反趋势。此外,通过哈特曼数 M 和埃克特数 Ec 的增大可以观察到流体温度的升高,因为更多的阻力会在流体中产生更大的能量。这项研究有助于理解多孔曲面附近流体动力学和热行为参数之间复杂的相互作用,阐明各种因素对速度和温度分布的影响。
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