Analytical Solution for MHD Casson Nanofluid Flow and Heat Transfer due to Stretching Sheet in Porous Medium

W. N. N. Noranuar, A. Q. Mohamad, Lim Yeou, Jiann, S. Shafie, M. A. Jamaludin, Ahmad Qushairi
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Abstract

The feature of having a surface that can stretch has garnered attention in numerous industrial and engineering fields because of its advantages. Nevertheless, most fluid mechanics simulations for stretchable surfaces have predominantly relied on numerical solutions, with a notable lack of theoretical investigations into this matter. Consequently, the current research aims to contribute a theoretical exploration of heat transfer and boundary layer flow for Casson nanofluid on a linearly stretching sheet, considering the existence of porosity and magnetic field effects. Two distinct types of water-based nanofluids containing aluminium oxide and silicon dioxide are examined. By employing similarity transformations, the governing momentum and energy equations undergo transformation and subsequent analytical resolution using Laplace transformations. The resulting solutions are graphically presented to examine the influence of key parameters on temperature and velocity distribution. The analysis indicates that heat transfer is improved by the inclusion of nanoparticles, porosity, and a magnetic field. However, the velocity distribution slows down as a result of higher nanoparticle volume fraction, porosity, and magnetic field imposition.
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多孔介质中拉伸片引起的 MHD 卡森纳米流体流动与传热的解析解
可拉伸表面因其优点而在众多工业和工程领域备受关注。然而,大多数针对可拉伸表面的流体力学模拟主要依赖于数值解法,对这一问题的理论研究明显不足。因此,目前的研究旨在对线性拉伸片材上的 Casson 纳米流体的传热和边界层流动进行理论探索,同时考虑到多孔性和磁场效应的存在。研究考察了两种不同类型的含氧化铝和二氧化硅的水基纳米流体。通过采用相似变换,支配动量和能量方程经历了变换,随后利用拉普拉斯变换进行了分析求解。所得到的解决方案以图表形式呈现,以研究关键参数对温度和速度分布的影响。分析表明,加入纳米颗粒、多孔性和磁场后,传热得到改善。然而,由于纳米粒子体积分数、多孔性和磁场的增加,速度分布会减慢。
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