非定常流动中Williamson流体传热特性和化学反应的影响及熵的产生:Keller-Box数值格式

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2025-01-13 DOI:10.1002/htj.23287
Amala Olkha, Mukesh Kumar, Sunil Kumar Meena
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引用次数: 0

摘要

非牛顿流体在拉伸表面上的传热和质量传递及其相关特性的研究在铜线的退火和变薄、塑料和橡胶片的气动挤压、玻璃纤维等工程和工业过程中具有重要意义。基于重要的实际应用,本研究的目的是评估受多孔板以指数方式拉伸,伴随着热传递和质量传递以及熵产生的影响的Williamson流体的时间依赖流动。考虑了影响流体流动、热和质量传递的各种因素(粘性耗散、非线性辐射、多孔介质、化学反应和热源)。利用适当的相似变换关系,将调节偏微分方程转化为无量纲形式的偏微分方程。采用Keller-Box格式在MATLAB上进行了数值求解。通过绘制草图描述了相关参数对流体流动、温度和浓度分布的影响,并进行了讨论。此外,在研究中还引入了伴随贝让数产生的熵的第二定律分析。此外,计算了皮肤摩擦系数、Sherwood数和Nusselt数等物理意义的数量,并与先前的研究结果进行了比较,结果非常一致。结果表明,由于辐射和生热的影响,温度分布被放大。反应系数和反应顺序对浓度分布的影响相反。熵产随着滑移和温差参数的增大而减小,而Brinkman数的增大则相反。此外,表面表面摩擦系数随速度滑移和非牛顿参数的增加而减小,但随非定常参数的增加而减小。研究结果可能会在工程领域,如设计热交换器、冷却过程、改进储能系统等方面找到实际重要的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Heat Transport Characteristics and Chemical Reaction in Unsteady Flow of Williamson Fluid and Entropy Generation: The Keller-Box Numerical Scheme

The study of heat and mass transport in non-Newtonian fluid flow over a stretching surface accompanying relevant characteristics is important in several engineering and industrial processes like annealing and thinning of copper wires, aerodynamic extrusion of plastic and rubber sheet, glass fiber, and so forth. Based on significant practical applications, the objective of this investigation is to assess the time-dependent flow of Williamson fluid influenced by porous sheet stretching in exponential manner accompanied by thermal and mass transport and entropy generation. Various factors affecting fluid flow, thermal and mass transport (viscous dissipation, non-linear radiation, porous media, chemical reaction, and heat source) are considered. The regulating PDEs are turned into ODEs in nondimensional form utilizing adequate similarity transformation relations. The problem is solved numerically on MATLAB adopting the Keller-Box scheme. On fluid flow, temperature, and concentration distribution the effects of relevant parameters are depicted by drawing sketches and discussed. Besides, second law analysis is also evoked in the study in terms of entropy generation accompanying the Bejan number. Moreover, quantities of physical significance such as skin friction coefficient, Sherwood number, and Nusselt number are computed, compared with prior research and found in excellent agreement. It is concluded that temperature profile magnifies due to radiation and heat generation effects. The reaction coefficient and order of the reaction exhibited opposite effects on concentration profile. It is also concluded that entropy production reduces with increasing slips and temperature difference parameter, while opposite effect is observed due to Brinkman number. Furthermore, it is observed that skin-friction coefficient at the surface decreases with velocity slip and non-Newtonian parameter however, trend is reversed due to unsteadiness parameter. The results of the study may find applications of practical importance in engineering fields such as designing heat exchangers, cooling processes, improving energy storage systems, and so forth.

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来源期刊
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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