Tangent hyperbolic nanofluid flow through a vertical cone: Unraveling thermal conductivity and Darcy–Forchheimer effects

A. A. Khan, Saliha Zafar, Aziz Khan, Th. Abdeljawad
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Abstract

Purpose: This paper demonstrates the way tangent hyperbolic nanofluid flow through a vertical cone is influenced by varying viscosity and varying thermal conductivity. This study also seeks to illustrate the impact of convective boundary conditions on a fluid. The mathematical modeling also takes the Darcy–Forchheimer effect into account. Methodology: Using the appropriate similarity transformation, the fluid problem is reduced into a set of nonlinear ordinary differential equations. These systems of differential equations are evaluated numerically by applying the Optimal Homotopy Asymptotic Method. Findings: The nature of emergent parameters is examined in relation to the temperature distribution, nanoparticle concentration profile, and velocity profile. An increase in variable viscosity corresponds to a decrease in fluid velocity, while enhanced thermal conductivity results in elevated fluid temperature. The skin friction coefficient, Sherwood, and Nusselt numbers are numerically examined for active concerned parameters. These findings can be put into practice in a variety of fields such as polymer cooling systems and medication. Originality: Existing literature has yet to explore the combination of tangent hyperbolic nanofluids with varying viscosity and thermal conductivity under convective boundary conditions.
流经垂直锥体的切线双曲面纳米流体:揭示导热性和达西-福克海默效应
目的:本文展示了切线双曲纳米流体流经垂直锥体时受不同粘度和不同导热系数影响的方式。本研究还试图说明对流边界条件对流体的影响。数学建模还考虑了达西-福克海默效应。方法:利用适当的相似性变换,将流体问题简化为一组非线性常微分方程。应用最优同调渐近法对这些微分方程系进行数值评估。研究结果:研究了与温度分布、纳米粒子浓度分布和速度分布相关的突发参数的性质。可变粘度的增加对应于流体速度的降低,而热导率的增强则导致流体温度的升高。针对活跃的相关参数,对皮肤摩擦系数、Sherwood 和 Nusselt 数值进行了数值检验。这些发现可应用于聚合物冷却系统和药物治疗等多个领域。原创性:现有文献尚未探讨对流边界条件下具有不同粘度和热导率的切线双曲纳米流体的组合。
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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