Significance of Koo-Kleinstreuer-Li model for thermal enhancement in nanofluid under magnetic field and thermal radiation factors using LSM

IF 1.9 4区 工程技术 Q3 ENGINEERING, MECHANICAL Advances in Mechanical Engineering Pub Date : 2023-10-01 DOI:10.1177/16878132231206906
None Adnan, Aneesa Nadeem, Haitham A Mahmoud, Aatif Ali, Sayed M Eldin
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Abstract

Investigation of thermal transport in nanofluid flow squeezed inside a channel formed by two sheets with zero slope is common in industrial and engineering applications. The heat transmission could be affected by various physical constraints which reduce the machine efficiency for desired products. Therefore, this attempt clearly focus on the development of new nanofluid thermal transport model using the significance effects of Koo-Kleinstreuer-Li correlation which used for the estimation of nanofluid thermal conductivity, impacts of magnetic field, internal heating species, and thermal radiations. Then, the LSM (Least Square Method) is magnificently implemented and obtained the physical results for multiple ranges of parameters. It is noticed that when the squeezed parameter varied in the ranges of [Formula: see text] to [Formula: see text] and [Formula: see text] to [Formula: see text], the fluid loss their velocity and more reduction is occurred about [Formula: see text]. However, outward movement of the plate lead to quick declines in the velocity. Further, when the Hartmann number increased for [Formula: see text]–[Formula: see text] then the fluid moves slowly and stronger magnetic field resists its motion. Moreover, the Eckert and Radiation numbers boosted the fluid temperature by keeping the feasible nanoparticles concentration in the range of [Formula: see text]–[Formula: see text].
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ku - kleinstreuer - li模型对纳米流体在磁场和热辐射因素下热增强的意义
在工业和工程应用中,研究纳米流体在由两个零斜率薄片形成的通道内的热传递是很常见的。热传递可能受到各种物理约束的影响,从而降低机器生产所需产品的效率。因此,本次尝试的重点是利用ku - kleinstreuer - li相关的显著效应,建立新的纳米流体热输运模型,该模型用于估计纳米流体导热系数、磁场影响、内部加热种和热辐射。然后,对LSM(最小二乘法)进行了很好的实现,得到了多个参数范围的物理结果。注意到,当压缩参数在[公式:见文]~[公式:见文]和[公式:见文]~[公式:见文]范围内变化时,流体的速度损失较大,且在[公式:见文]附近减小较大。然而,板块向外运动导致速度迅速下降。此外,当哈特曼数增加[公式:见文]-[公式:见文]时,流体移动缓慢,并且更强的磁场抵抗其运动。此外,Eckert和Radiation数值通过将可行的纳米颗粒浓度保持在[公式:见文]-[公式:见文]的范围内来提高流体温度。
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来源期刊
Advances in Mechanical Engineering
Advances in Mechanical Engineering 工程技术-机械工程
CiteScore
3.60
自引率
4.80%
发文量
353
审稿时长
6-12 weeks
期刊介绍: Advances in Mechanical Engineering (AIME) is a JCR Ranked, peer-reviewed, open access journal which publishes a wide range of original research and review articles. The journal Editorial Board welcomes manuscripts in both fundamental and applied research areas, and encourages submissions which contribute novel and innovative insights to the field of mechanical engineering
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