Thermal analysis of hybrid nano-fluids: Modeling and non-similar solutions

Q1 Mathematics
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引用次数: 0

Abstract

The thermal analysis of hybrid nano-fluids is a significant research area with diverse applications in industries such as paint, electronics, and mechanical engineering. Existing literature provides limited solutions to the governing equations for the flow of these fluids. Modeling and deriving non-similar solutions for these equations pose interesting and challenging mathematical problems. This study focuses on investigating heat transfer in the flow of two types of nano-fluids, specifically Al2O3/H2O micropolar nano-fluid and Al2O3 + Ag/H2O hybrid nano-fluid, near an isothermal sphere. Conservation laws are employed to formulate the mathematical problem, and by normalizing the variables, the governing equations are converted into a set of dimensionless partial differential equations. Non-similar solutions are then obtained using numerical methods. A comparative analysis is carried out to assess the influence of various parameters on different profiles and engineering quantities for both types of nano-fluids. Both linear and rotational velocities fall down near the surface of sphere with rising microstructure in hybrid nanofluid. The micro-rotation parameter rises the temperature profile while reduces the Nusselt number of both traditional Al2O3/water based nanofluid as well as hybrid nanofluid.
混合纳米流体的热分析:建模与非相似解
混合纳米流体的热分析是一个重要的研究领域,在涂料、电子和机械工程等行业有着广泛的应用。现有文献对这些流体流动的控制方程提供了有限的解决方案。这些方程的建模和非相似解的推导提出了有趣而具有挑战性的数学问题。本研究的重点是研究两种纳米流体(特别是 Al2O3/H2O 微极性纳米流体和 Al2O3 + Ag/H2O 混合纳米流体)在等温球附近流动时的传热问题。数学问题的表述采用了守恒定律,通过对变量进行归一化处理,将控制方程转换为一组无量纲偏微分方程。然后使用数值方法获得非相似解。对两种纳米流体进行了比较分析,以评估各种参数对不同剖面和工程量的影响。在混合纳米流体中,随着微结构的上升,线速度和旋转速度在球体表面附近都会下降。微旋转参数提高了温度曲线,同时降低了传统 Al2O3/水基纳米流体和混合纳米流体的努塞尔特数。
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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来源期刊
CiteScore
6.20
自引率
0.00%
发文量
138
审稿时长
14 weeks
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