A Breakthrough in Penta-Hybrid Nanofluid Flow Modeling for Heat Transfer Enhancement in a Spatially Dependent Magnetic Field: Machine Learning Approach

IF 2.5 4区 工程技术 Q3 CHEMISTRY, PHYSICAL
Shabbir Ahmad, Kashif Ali, Hafiz Humais Sultan, Fareeha Khalid, Moin-ud-Din Junjua, Farhan Lafta Rashid, Humberto Garcia Castellanos, Yashar Aryanfar, Tamer M. Khalaf, Ahmed S. Hendy
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引用次数: 0

Abstract

A versatile penta-hybrid nanofluid has been successfully developed by combining silver (Ag), single-walled carbon nanotubes (SWCNTs), titanium dioxide (TiO2), copper (Cu), and iron oxide (Fe3O4) nanoparticles with a base fluid. This nanofluid is utilized in a range of advanced applications, including coatings, sensors, energy storage, water purification, enhanced heat transfer, biomedical uses, and lubricants. The synergistic properties of these nanoparticles significantly enhance the performance of the base fluid, offering substantial benefits across various industries. Therefore, this study delves into the influence of localized magnetic fields, augmented by machine learning, on vortex dynamics under the light of penta-hybrid nanofluid flow, confined in a horizontal cavity with a 2:1 aspect ratio. The Stream-Vorticity formulation tackles the dimensionless governing partial differential equation. Single-phase model has been employed to model the nanofluid. An Alternating Direction Implicit (ADI) technique has been employed to address the governing equations. The research highlights a significant increase in the Nusselt number (Nu) with intensified magnetic fields. Additionally, introducing more nanoparticles enhances Nu with varied effects for different particles. Silver (Ag) and Copper (Cu) exhibit the highest increase in Nu (53%), indicating robust thermal-fluid coupling, while Titanium Dioxide (TiO2) shows lower increases (37%), implying weaker coupling in the flow. These findings hold relevance for diverse applications, including transportation, energy, medical technology, materials science, and fundamental physics.

空间依赖磁场中强化传热的五元混合纳米流体流动模型的突破:机器学习方法
通过将银(Ag)、单壁碳纳米管(SWCNTs)、二氧化钛(TiO2)、铜(Cu)和氧化铁(Fe3O4)纳米颗粒与基液结合,成功开发了一种多功能的五杂化纳米流体。这种纳米流体被用于一系列先进的应用,包括涂层、传感器、储能、水净化、增强传热、生物医学用途和润滑剂。这些纳米颗粒的协同特性显著提高了基液的性能,为各行各业带来了巨大的好处。因此,本研究深入研究了局部磁场,通过机器学习增强,在五混合纳米流体流动的光下,对涡旋动力学的影响,限制在2:1宽高比的水平空腔中。流-涡量公式处理无量纲控制偏微分方程。采用单相模型对纳米流体进行建模。采用交替方向隐式(ADI)技术求解控制方程。研究表明,随着磁场的增强,努塞尔数(Nu)显著增加。此外,引入更多的纳米粒子可以增强Nu,并且对不同的粒子有不同的效果。其中,银(Ag)和铜(Cu)的Nu增加最多(53%),表明热-流耦合较强,而二氧化钛(TiO2)的Nu增加较少(37%),表明流动中的耦合较弱。这些发现与多种应用相关,包括交通运输、能源、医疗技术、材料科学和基础物理学。
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
4.10
自引率
9.10%
发文量
179
审稿时长
5 months
期刊介绍: International Journal of Thermophysics serves as an international medium for the publication of papers in thermophysics, assisting both generators and users of thermophysical properties data. This distinguished journal publishes both experimental and theoretical papers on thermophysical properties of matter in the liquid, gaseous, and solid states (including soft matter, biofluids, and nano- and bio-materials), on instrumentation and techniques leading to their measurement, and on computer studies of model and related systems. Studies in all ranges of temperature, pressure, wavelength, and other relevant variables are included.
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