Impact of Melting Heat Transfer and Variable Characteristics on an MHD Non-Newtonian Shear-Thinning Fluid Flow with Gyrotactic Microorganisms over a Nonlinear Stretched Surface

Muhammad Ramzan, Naila Shaheen
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Abstract

The objective of this work is to examine how temperature-dependent thermal conductivity and concentration-dependent molecular diffusion affect Reiner-Philippoff nanofluid flow past a nonlinear stretching sheet. At the interface of the elongated surface zero-mass flux and melting heat condition are incorporated. The formulated mathematical problem is simplified by implementing suitable similarity transformations. For the numerical solution bvp4c is utilized. The parameters emerging in the model are discussed versus allied profiles through graphical illustrations. It is perceived that the velocity of the fluid decays on incrementing the Bingham number. The gyrotactic microorganism profile declines on amplifying the Peclet number. The validation of the proposed model is also added to this study.
非线性拉伸表面上带有回旋式微生物的MHD非牛顿剪切减薄流体流动的熔融传热和变特性影响
这项工作的目的是研究温度相关的导热系数和浓度相关的分子扩散如何影响赖纳-菲利普夫纳米流体流过非线性拉伸片。在拉长表面的界面处加入了零质量通量和熔化热条件。通过适当的相似变换,简化了公式化的数学问题。数值解采用bvp4c。通过图形说明讨论了模型中出现的参数与相关的概要文件。可以看出,流体的速度随着宾汉姆数的增加而衰减。随着Peclet数的增加,陀螺趋化微生物谱谱下降。本文还对所提出的模型进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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