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跨拉伸薄板的一些非牛顿纳米流体模型的比较研究:线性辐射和活化能效应的情况

Comparative study of some non-Newtonian nanofluid models across stretching sheet: a case of linear radiation and activation energy effects.

作者信息

Shah Syed Asif Ali, Idrees Muhammad, Bariq Abdul, Ahmad Bilal, Ali Bagh, Ragab Adham E, Az-Zo'bi Emad A

机构信息

Department of Mathematics and Statistics, The University of Lahore, Lahore, Pakistan.

Department of Mathematics, Laghman University, Mehtarlam City, Laghman, 2701, Afghanistan.

出版信息

Sci Rep. 2024 Feb 28;14(1):4950. doi: 10.1038/s41598-024-54398-x.

Abstract

The use of renewable energy sources is leading the charge to solve the world's energy problems, and non-Newtonian nanofluid dynamics play a significant role in applications such as expanding solar sheets, which are examined in this paper, along with the impacts of activation energy and solar radiation. We solve physical flow issues using partial differential equations and models like Casson, Williamson, and Prandtl. To get numerical solutions, we first apply a transformation to make these equations ordinary differential equations, and then we use the MATLAB-integrated bvp4c methodology. Through the examination of dimensionless velocity, concentration, and temperature functions under varied parameters, our work explores the physical properties of nanofluids. In addition to numerical and tabular studies of the skin friction coefficient, Sherwood number, and local Nusselt number, important components of the flow field are graphically shown and analyzed. Consistent with previous research, this work adds important new information to the continuing conversation in this area. Through the examination of dimensionless velocity, concentration, and temperature functions under varied parameters, our work explores the physical properties of nanofluids. Comparing the Casson nanofluid to the Williamson and Prandtl nanofluids, it is found that the former has a lower velocity. Compared to Casson and Williamson nanofluid, Prandtl nanofluid advanced in heat flux more quickly. The transfer of heat rates are , and at , and , respectively. The heat transfer rate is increased by as the value of Rd rises from 1.0 to 1.5. This study is further strengthened by a comparative analysis with previous research, which is complemented by an extensive table of comparisons for a full evaluation.

摘要

可再生能源的使用正引领着解决世界能源问题的潮流,非牛顿纳米流体动力学在诸如扩展太阳能板等应用中发挥着重要作用,本文对此进行了研究,同时探讨了活化能和太阳辐射的影响。我们使用偏微分方程以及诸如卡森、威廉姆森和普朗特等模型来解决物理流动问题。为了获得数值解,我们首先进行变换将这些方程转化为常微分方程,然后使用MATLAB集成的bvp4c方法。通过研究不同参数下的无量纲速度、浓度和温度函数,我们的工作探索了纳米流体的物理性质。除了对表面摩擦系数、舍伍德数和局部努塞尔数进行数值和表格研究外,还以图形方式展示并分析了流场的重要组成部分。与先前的研究一致,这项工作为该领域正在进行的讨论增添了重要的新信息。通过研究不同参数下的无量纲速度、浓度和温度函数,我们的工作探索了纳米流体的物理性质。将卡森纳米流体与威廉姆森和普朗特纳米流体进行比较,发现前者速度较低。与卡森和威廉姆森纳米流体相比,普朗特纳米流体在热通量方面提升更快。在 、 和 时,热传递速率分别为 、 和 。随着Rd值从1.0增加到1.5,热传递速率提高了 。与先前研究的对比分析进一步加强了本研究,同时辅以广泛的比较表格以进行全面评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5036/10901865/afaa374c4ca2/41598_2024_54398_Fig1_HTML.jpg

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