部分滑移的阿伦尼乌斯活化能可逆酯化过程中热量传递的意义

IF 6.4 2区 工程技术 Q1 THERMODYNAMICS Case Studies in Thermal Engineering Pub Date : 2024-11-05 DOI:10.1016/j.csite.2024.105316
R. Umadevi , D. Arivukkodi , Sultan Alshehery , Ilyas Khan
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引用次数: 0

摘要

研究了磁流体边界层卡松流体沿垂直拉伸板流动的可逆酯化过程中热量传递的重要性。考虑了多孔介质中的多滑移条件。分析中考虑了需要活化能的化学过程。研究还探讨了带有部分滑移条件的水磁边界层卡松流体在垂直拉伸板上的流动。在多孔介质中加入多滑移约束条件以及磁场和其他参数,突出了其在热能工程、聚合和生物柴油工业等不同工程领域的相关性。了解此类流体在复杂条件下的特性对于优化工业应用中的传热和传质至关重要,因此这项研究既及时又有价值。非线性微分方程组采用基于 Runge-Kutta 的四阶射击法进行数值求解,并使用 bvp4c 工具对结果进行验证,同时使用图表对研究结果进行探讨。对流动配置中的重要因素进行了分析,并以图表形式呈现。全面分析了反应速率常数、磁参数、吸力参数、质量格拉肖夫数、普朗特尔数、卡森参数、热辐射参数和滑移参数等不同参数对速度、浓度和温度的影响。表中列出了阻力系数、传质速率和努塞尔特数对各种重要参数的流动配置的不利影响。据推断,对于可逆和不可逆流动,当磁力参数从 0.5 升至 1.5 时,剪应力率会增加 29%;当卡森参数从 0.5 升至 1.5 时,剪应力率会增加约 35%。在吸力参数方面,不可逆流和可逆流的阻力系数分别增加了 27% 和 26%。当反应速率从 0.5 增加到 1.5 时,不可逆流和可逆流的剪应力速率依次增加了 0.5% 和 0.02%。当磁性参数和卡松参数从 0.5 升至 1.5 时,不可逆流动和可逆流动的努塞尔特数分别下降了约 7% 和 8%。值得注意的是,之前的研究与本次调查完全一致。
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Significance of heat transfer in a reversible esterification of Arrhenius activation energy with partial slip
The significance of heat transfer during a reversible esterification process in a magnetohydrodynamic boundary layer Casson fluid flow along a vertical stretching plate is examined. The multi-slip conditions are considered in a porous medium. The presence of chemical process requiring an activation energy is considered in the analysis. The study also investigates the hydromagnetic boundary layer Casson fluid flow alongwith partial slip conditions across a vertical stretching plate. The incorporation of multi-slip constraints in a porous medium, alongside magnetic fields and other parameters, highlights its relevance in diverse engineering fields such as thermal engineering, polymerization, and biodiesel industries. Understanding the characteristics of such fluids under complex conditions is vital for optimizing heat and mass transfer in industrial applications, making this investigation timely and valuable. The nonlinear differential set of equations are solved numerically involving Runge-Kutta based shooting approach of fourth order and the results are verified with the bvp4c tool and the findings are explored using graphical plots. The predominance of significant factors on flow configurations are analyzed and presented in graphs and tables. A comprehensive analysis is provided on the effects on velocity, concentration, and temperature of diverse parameters such as reaction rate constant, magnetic parameter, suction parameter, mass Grashof number, Prandtl number, Casson parameter, thermal radiation parameter and slip parameters. The tabular representation of the adverse effects of drag coefficient, rate of mass transfer and Nusselt number on flow configurations for various significant parameters is presented. It is inferred that for the case of reversible and irreversible flows, the shear stress rate escalates by 29% when the magnetic parameter elevates from 0.5 to 1.5 and about 35% when the Casson parameter elevates from 0.5 to 1.5. For the suction parameter, the coefficient of drag increased by 27% and 26% for irreversible and reversible flows respectively. When the reaction rate increases from 0.5 to 1.5, the rate of shear stress elevates by 0.5% and 0.02% for irreversible and reversible flows in order. The Nusselt number decreased about 7% and 8% when the magnetic parameter and Casson parameter rises from 0.5 to 1.5 respectively, for irreversible and reversible flows. It is noteworthy that the previous studies are in precise agreement with the present investigation.
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来源期刊
Case Studies in Thermal Engineering
Case Studies in Thermal Engineering Chemical Engineering-Fluid Flow and Transfer Processes
CiteScore
8.60
自引率
11.80%
发文量
812
审稿时长
76 days
期刊介绍: Case Studies in Thermal Engineering provides a forum for the rapid publication of short, structured Case Studies in Thermal Engineering and related Short Communications. It provides an essential compendium of case studies for researchers and practitioners in the field of thermal engineering and others who are interested in aspects of thermal engineering cases that could affect other engineering processes. The journal not only publishes new and novel case studies, but also provides a forum for the publication of high quality descriptions of classic thermal engineering problems. The scope of the journal includes case studies of thermal engineering problems in components, devices and systems using existing experimental and numerical techniques in the areas of mechanical, aerospace, chemical, medical, thermal management for electronics, heat exchangers, regeneration, solar thermal energy, thermal storage, building energy conservation, and power generation. Case studies of thermal problems in other areas will also be considered.
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