具有活化能的 Ag-TiO2-Al2O3/H2O 三元混合纳米流体在倾斜片上的耗散 MHD 流动

IF 2.3 4区 工程技术 Q2 ENGINEERING, MECHANICAL
B. Shankar Goud, Utpal Jyoti Das, Nayan Mani Majumdar
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引用次数: 0

摘要

本研究旨在了解水基三元混合纳米流体(包括板状银、二氧化钛[式:见正文]和圆柱形[式:见正文]纳米颗粒)在斜面上的非稳定 MHD 滑动流。上述复杂情景研究了三元混合纳米流体在磁场作用下穿过倾斜表面时的行为。了解这种关系对于复杂的热系统(如能源生成技术和冷却机制)至关重要。这项研究有助于在实际应用中通过调整流动参数和温度分布来优化传热率、改善导热性和提高效率。在存在一阶速度滑移的情况下,考虑到多孔介质、活化能和化学反应,对传热进行了研究。考虑了磁场和三元纳米流体有效热物理性质的新影响,并成功实现了一种新的传热模型。从碳氢化合物资源中提取石油以及熔炼金属和半导体组合以制造半导体器件是这项活动的两个有用的应用领域。由于索雷特效应,这项研究更具包容性。在主方程中应用了相关的相似变换,并使用内置的 bvp4c 程序进行求解。数值方法与过去发表的结果完全一致,这证明了数值方法的有效性。主要结论如下:一阶滑移参数值越大,流动速度越慢;索雷特数越大,流动速度越快;化学反应值越大,流体运动越缓慢。活化能提高了流体浓度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dissipative MHD flow of ternary hybrid Ag–TiO2–Al2O3/H2O nanofluid over an inclined sheet with activation energy
This study has been carried out to understand unsteady MHD slip flow of water-based ternary hybrid nanofluid, including platelet Ag, titanium dioxide [Formula: see text] and cylindrical [Formula: see text] nanoparticles, across an angled sheet. The complicated scenario above investigates how ternary hybrid nanofluid behaves when it stretched across an inclined surface in the existence of magnetic field. Understanding of this relationship is essential in complex thermal systems, such as energy-generating technologies and cooling mechanisms. This study can help optimise heat transfer rates, improve thermal conductivity and increase efficiency in real applications by adjusting flow parameters and temperature distribution. In the existence of first-order velocity slip, heat transfer has been examined, taking into account porous media, activation energy, and chemical reaction. The novel impacts of magnetic field and effective thermophysical properties of ternary nanofluid are considered, and a new model for heat transfer is successfully implemented. Oil extraction from hydrocarbon sources and smelting metal and semiconductor combinations to create semiconductor devices comprise two useful applications for this activity. The study is more accommodating due to the Soret effect. The relevant similarity transformations are applied in primary equations, and a built-in bvp4c program is employed for solutions. The effectiveness of the numerical approach is demonstrated by thorough agreement with results published in the past. Key conclusions are as follows: greater values of first-order slip parameter cause the flow to slow down; increase in the Soret number causes the flow to speed up; and fluid movement slips by higher values of the chemical reaction. Activation energy enhances the fluid concentration.
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来源期刊
CiteScore
3.80
自引率
16.70%
发文量
370
审稿时长
6 months
期刊介绍: The Journal of Process Mechanical Engineering publishes high-quality, peer-reviewed papers covering a broad area of mechanical engineering activities associated with the design and operation of process equipment.
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