A comparative entropy based analysis of tangent hyperbolic hybrid nanofluid flow: Implementing finite difference method

纳米流体 埃克特数 材料科学 魏森伯格数 传热 热力学 机械 雷诺数 物理 复合材料 努塞尔数 粘弹性 湍流
作者
Nicholas D. James,Wasim Jamshed
出处
期刊:International Communications in Heat and Mass Transfer [Elsevier]
卷期号:129: 105671-105671 被引量:57
标识
DOI:10.1016/j.icheatmasstransfer.2021.105671
摘要

Due to its application in the industry, heat transport is of crucial relevance. A novel form of nano-fluid known as the hybrid nanofluid helps to increase the thermal transfer capacity of regular fluids and has a larger thermal exponent. The two-part nanoparticle in a standard fluid is connected to the hybrid nanofluids. This study examines the hybrid nanofluid flowing properties and thermal transport passing through a slippy surface. There will be an examination of the forms of Inclined magnetic field, viscous dissipation, inclined joule heating, and thermal radiative impacts. The controlled equations are numerically solved using a numerical methodology, that is the finite difference procedure. This examination has included the hybrid tangent hyperbolic nanofluid which consists of the rich viscous non-Newtonian fluid (CH 2 OH) 2 (ethylene glycol) of the genre of dual different sorts of nano-solid particles i.e., copper (Cu) and silicon dioxide (SiO 2 ). It is worth noting that the heat transmission level of SiO 2 -Cu/(CH 2 OH) 2 which has been steadily increasing compared with the typical nanofluid (Cu-(CH 2 OH) 2 ). The entropy system is amplified to the Inclined magnetic field, radiative heat flux, Eckert and Weissenberg numbers by assimilation of nanoparticles ratio. Furthermore, SiO 2 -Cu/(CH 2 OH) 2 tangent hyperbolic hybrid nanofluid combinations hold an upper hand in the main aspects of heat transfer efficiency while compared to the Cu-(CH 2 OH) 2 tangent hyperbolic nanofluid.

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