二级机油驱动的二次混合纳米流体流动的临界剪切速率和热跳放大热扩散研究:基于模型的方法

Tusar Kanti Das , Bamdeb Dey , Jintu Mani Nath , Ashish Paul
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引用次数: 0

摘要

考虑热扩散、热跳变和临界剪切速率的影响,研究了由二级机油驱动的四元混合纳米流体的流动动力学。通过使用由石墨烯、铜、二硫化钼和银纳米复合材料组成的混合纳米流体,以及汤姆森和特洛伊滑动速度的影响,优化了导热性。这项研究解决了理解这些因素对纳米流体系统中传热传质的综合影响的空白。这一问题的根源在于缺乏包含这些复杂因素的合格模型,而这些因素对于加强工业过程中基于纳米流体的传热至关重要。该研究的目的是研究滑移速度、热跳跃和流体特性对混合纳米流体的热和质量传递行为的影响。此外,利用MATLAB bvp4c求解器,结合基于目标的策略,开发了数值解,以比较Yamada-Ota和Cross-Hamilton模型。结果表明,浓度、速度和温度分布受Troian和Thomson滑移速度的影响较大。增强的热跳提高了热传递,但质量弥散的增加降低了浓度。二级流体特性和热源强度对热物性影响较大,而施密特比对浓度分布影响较大。与山田-太田模型相比,Cross-Hamilton模型的传热率百分比有所提高。这项研究的发现为在使用纳米流体的工业过程中增强热量和质量的传递提供了实质性的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation on the amplified thermal diffusion with critical shear rate and thermal jump of second-grade engine oil driven quadra hybrid nanofluid flow: A model-based approach
This investigation explores the flow dynamics of a quadra hybrid nanofluid driven by second-grade engine oil, taking into account the impacts of thermal diffusion, thermal jump, and critical shear rate. The significance occurs in optimizing the thermal conductivity by employing a hybrid nanofluid comprising of graphene, copper, molybdenum disulfide, and silver nanocomposites, alongside the impacts of Thomson and Troian slip velocities. This research addresses the gap in understanding the combined effects of these factors on heat and mass transfer in nanofluid systems. The issue stems from the lack of competent models that incorporate these sophisticated factors, which are essential for enhancing heat transfer based on nanofluids in industrial processes. The aim of the study is to investigate the effects of slip velocities, thermal jump, and fluid characteristics on the thermal and mass transport behaviour of the hybrid nanofluid. Furthermore, Numerical solutions are developed using the MATLAB bvp4c solver, in combination with an objective-based strategy, to compare the Yamada-Ota and Cross-Hamilton models. The findings show that the concentration, velocity, and temperature distributions are greatly affected by the Troian and Thomson slip velocities. Augmented thermal jump improves heat conveyance however elevated mass dispersion diminishes concentration. The thermal properties are strongly impacted by the second-grade fluid characteristic and the heating source intensity, whereas the Schmidt ratio impacts the concentration distribution. The percentage of heat transmission rate is boosted in the Cross-Hamilton Model in contrast to the Yamada-Ota Model. The findings from this study offer substantial possibilities for enhancing the transmission of heat and mass in industrial processes that employ nanofluids.
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