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利用温度敏感基液(水)特性分析双对流磁化辐射混合纳米流体流动中的熵产生。

Analysis of entropy production in a bi-convective magnetized and radiative hybrid nanofluid flow using temperature-sensitive base fluid (water) properties.

作者信息

Barman Tapas, Roy S, Chamkha Ali J

机构信息

Mathematics Department, IIT Madras, Chennai, 600036, India.

Faculty of Engineering, Kuwait College of Science and Technology, 35004, Doha District, Kuwait.

出版信息

Sci Rep. 2022 Jul 12;12(1):11831. doi: 10.1038/s41598-022-16059-9.

Abstract

The heat transport characteristics, flow features, and entropy-production of bi-convection buoyancy induced, radiation-assisted hydro-magnetic hybrid nanofluid flow with thermal sink/source effects are inspected in this study. The physical characteristics of hybrid nanofluids (water-hosted) are inherited from the base liquid (water) and none has considered the physical characteristics of base liquid (water) in the study of temperature-sensorial hybrid nanofluid investigations, though the water physical characteristics are not constants in temperature variations. So, the temperature-sensorial attributes of base liquid (water) are taken into account for this hybrid nanofluid ([Formula: see text]) flow analysis. The mathematical forms of the flow configuration (i.e., the set of coupled, nonlinear PDE form of governing equations) are solved by utilizing the subsequent tasks: (i) congenial transformation; (ii) quasilinearization; (iii) methods of finite differences to form block matrix system, and (iv) Varga's iterative algorithm. The preciseness of the whole numerical procedure is ensured by restricting the computation to follow strict convergence conditions. Finally, the numerically extracted results representing the impacts of various salient parameters on different profiles ([Formula: see text]), gradients, and entropy production are exhibited in physical figures for better perception. A few noticeable results are highlighted as: velocity graph shows contrast behaviour under assisting and opposing buoyancy; temperature ([Formula: see text]) is dropping for heightening heat source ([Formula: see text]) surface friction remarkably declines with the outlying magnetic field ([Formula: see text]); thermal transport confronts drastic abatement under radiation ([Formula: see text]), and [Formula: see text]; the characteristics Reynolds and Brinkman numbers promote entropy. Furthermore, the bounding surface acts as a strong source of [Formula: see text]-production. Summarizations are listed at the end to quantify percentage variations.

摘要

本研究考察了具有热沉/热源效应的双对流浮力诱导、辐射辅助的水磁混合纳米流体流动的热传输特性、流动特征和熵产生。混合纳米流体(以水为基液)的物理特性继承自基液(水),然而在温度敏感混合纳米流体研究中,尽管水的物理特性在温度变化时并非恒定,但尚无研究考虑基液(水)的物理特性。因此,在该混合纳米流体([公式:见原文])流动分析中考虑了基液(水)的温度敏感属性。通过执行以下任务求解流动配置的数学形式(即控制方程的耦合非线性偏微分方程形式集):(i)适当变换;(ii)拟线性化;(iii)有限差分法以形成块矩阵系统;(iv)瓦尔加迭代算法。通过限制计算以遵循严格的收敛条件来确保整个数值过程的精确性。最后,以物理图形展示了数值提取的结果,这些结果表示各种显著参数对不同剖面([公式:见原文])、梯度和熵产生的影响,以便更好地理解。突出了一些值得注意的结果:速度图在辅助浮力和反对浮力下表现出对比行为;随着热源([公式:见原文])增强,温度([公式:见原文])下降,表面摩擦力随着外部磁场([公式:见原文])显著下降;在辐射([公式:见原文])下热传输面临急剧减弱,以及[公式:见原文];特征雷诺数和布林克曼数促进熵的产生。此外,边界表面是[公式:见原文]产生的强大源。最后列出总结以量化百分比变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bd8/9276714/a73e8843aee7/41598_2022_16059_Fig1_HTML.jpg

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