同质异相反应对曲线拉伸表面上 MHD 纳米流体流动的影响

IF 1.9 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Pramana Pub Date : 2024-11-23 DOI:10.1007/s12043-024-02809-z
Ram Prakash Sharma, Abhishek Sharma, J K Madhukesh, B C Prasannakumara, K V Nagaraja, Raman Kumar
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引用次数: 0

摘要

目前的研究旨在研究化学反应过程中的传热过程,特别关注导电纳米流体在弯曲扩展表面上的流动。这项工作试图通过将同质和异质过程纳入框架,描述热量和质量传输现象在生物科学、催化过程和燃烧等许多应用中的复杂相互作用。引入对流加热策略是一项新技术,可促进循环现象,从而改善传热性能。此外,Xue 模型和 Tiwari-Das 模型之间的比较有助于深入了解它们各自在表示所研究系统内部传热机制方面的适用性和精确性。边界层近似用于处理数学方程。利用适当的相似变量,控制偏微分方程 (PDE) 被有效地细化为无量纲形式,并利用 Runge-Kutta Fehlberg 4-5 阶技术进行数值计算。对物理参数的建议特性进行了研究,并用图形对其相关行为进行了说明。结果表明,磁性参数的增加会降低速度,同时增强热曲线。均相和异相反应强度会降低质量分布,而热源/沉降、固体分数和比奥特数会改善温度曲线。在所有情况下,Xue 模型都比 Tiwari-Das 模型显示出更高的热扩散率和温度曲线。
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Significance of homogeneous–heterogeneous reaction on MHD nanofluid flow over a curvilinear stretching surface

The current study aims to investigate heat transfer processes in chemically reacting processes, specifically focussing on the flow of an electrically conducting nanofluid over a curved extended surface. The work tries to describe the complex interaction between heat and mass transport phenomena in many applications, such as the biological sciences, catalytic processes and conflagration by including both homogeneous and heterogeneous processes in the framework. Introducing a convective heating strategy is a new technology that may boost circulation phenomena, perhaps leading to improved heat transfer performance. Additionally, the comparison between the Xue and Tiwari–Das models provides helpful insights into their individual suitability and precision in representing the heat transfer mechanism inside the examined system. The boundary layer approximation is used to handle the mathematical equations. Using the proper similarity variables, the controlling partial differential equations (PDEs) are effectively refined into the dimensionless form and computed numerically utilising the Runge–Kutta Fehlberg 4th–5th-order technique. The suggested characteristics of the physical parameters are examined and their relevant behaviour is illustrated graphically. The outcomes declare that the rise in magnetic parameter will decline velocity while enhance thermal profiles. Homogeneous and heterogeneous reaction strengths will decline the mass distribution while heat source/sink, solid fraction and Biot numbers will improve the temperature profile. In all circumstances, the Xue model exhibits a higher rate of thermal dispersion and temperature profile than the Tiwari–Das model.

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来源期刊
Pramana
Pramana 物理-物理:综合
CiteScore
3.60
自引率
7.10%
发文量
206
审稿时长
3 months
期刊介绍: Pramana - Journal of Physics is a monthly research journal in English published by the Indian Academy of Sciences in collaboration with Indian National Science Academy and Indian Physics Association. The journal publishes refereed papers covering current research in Physics, both original contributions - research papers, brief reports or rapid communications - and invited reviews. Pramana also publishes special issues devoted to advances in specific areas of Physics and proceedings of select high quality conferences.
期刊最新文献
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