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基于Cattaneo-Christov热流模型的变热传递辐射发动机油基普朗特-艾林混合纳米流体流动的计算分析

Computational analysis of radiative engine oil-based Prandtl-Eyring hybrid nanofluid flow with variable heat transfer using the Cattaneo-Christov heat flux model.

作者信息

Shah Zahir, Rooman Muhammad, Shutaywi Meshal

机构信息

Department of Mathematical Sciences, University of Lakki Marwat Lakki Marwat 28420 Khyber Pakhtunkhwa Pakistan

Department of Mathematics, College of Science & Arts, King Abdul-Aziz University Rabigh Saudi Arabia.

出版信息

RSC Adv. 2023 Jan 25;13(6):3552-3560. doi: 10.1039/d2ra08197k. eCollection 2023 Jan 24.

Abstract

In the present analysis, we study the energy transference through engine oil-based Prandtl-Eyring nanofluid flow through a heated stretching surface. The nanofluid is prepared by adding copper (Cu) and titanium dioxide (TiO) nanoparticles (NPs) to the base fluid engine oil. The flow mechanism and thermal transmission are observed by exposing the nanofluid flow through the heated slippery surface. The influences of permeable surface, radiative flux and heat absorption/generation are also elaborated in this study. The flow of nanofluids has been designed using a PDEs system, which are then transformed into a set of ODEs resemblance modification. The numerical technique "shooting method" is used to solve the acquired nonlinear set of non - dimensional ODEs. The results are physically exemplified through tables and plots. It has been detected that the accumulation of nanomaterials in the engine oil, reduces the skin friction while accelerating the energy transfer rate. The velocity field significantly decelerates with the encouragement of the porosity factor, and volume fraction of NPs. However, the temperature profile significantly escalates with the encouragement of the porosity factor, and volume fraction of NPs.

摘要

在本分析中,我们研究了基于机油的普朗特 - 艾林纳米流体流经加热拉伸表面时的能量传递。该纳米流体是通过向基础流体机油中添加铜(Cu)和二氧化钛(TiO)纳米颗粒(NPs)制备而成。通过使纳米流体流经加热的光滑表面来观察其流动机制和热传递。本研究还阐述了渗透表面、辐射通量和热吸收/生成的影响。纳米流体的流动是使用偏微分方程(PDEs)系统进行设计的,然后将其转化为一组常微分方程(ODEs)相似性修正。采用数值技术“打靶法”来求解所得到的非线性无量纲常微分方程组。结果通过表格和图表进行了物理示例说明。已检测到机油中纳米材料的积累会降低表面摩擦,同时加快能量传递速率。速度场在孔隙率因子和纳米颗粒体积分数的促进作用下显著减速。然而,温度分布在孔隙率因子和纳米颗粒体积分数的促进作用下显著升高。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/36ce/9890959/2c0358df2471/d2ra08197k-f1.jpg

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