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Impacts of Freezing Temperature Based Thermal Conductivity on the Heat Transfer Gradient in Nanofluids: Applications for a Curved Riga Surface

机译:基于冻结温度导电性对纳米流体传热梯度的影响:弯曲Riga表面的应用

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摘要

The flow of nanofluid over a curved Riga surface is a topic of interest in the field of fluid dynamics. A literature survey revealed that the impacts of freezing temperature and the diameter of nanoparticles on the heat transfer over a curved Riga surface have not been examined so far. Therefore, the flow of nanoparticles, which comprises the influences of freezing temperature and nanoparticle diameter in the energy equation, was modeled over a curved Riga surface. The model was reduced successfully in the nondimensional version by implementing the feasible similarity transformations and effective models of nanofluids. The coupled nonlinear model was then examined numerically and highlighted the impacts of various flow quantities in the flow regimes and heat transfer, with graphical aid. It was examined that nanofluid velocity dropped by increasing the flow parameters γ and S, and an abrupt decrement occurred at the surface of the Riga sheet. The boundary layer region enhances for larger γ. The temperature distribution was enhanced for a more magnetized nanofluid, and the thermal boundary layer increased with a larger R parameter. The volume fraction of the nanoparticles favors the effective density and dynamic viscosity of the nanofluids. A maximum amount of heat transfer at the surface was observed for a more magnetized nanofluid.
机译:在弯曲的里加表面上纳米流体的流动是流体动力学领域的兴趣题目。迄今为止,文献调查显示,到目前为止,尚未检查冷冻温度和纳米颗粒直径对弯曲Riga表面上的传热的影响。因此,纳米颗粒的流动包括在能量方程中的冷冻温度和纳米颗粒直径的影响,在弯曲的里加表面上进行建模。通过实施可行的相似性转化和纳米流体的有效模型,该模型成功减少了不可行的。然后在数值上检查耦合的非线性模型,并突出显示各种流量在流动方案和传热中的影响,具有图形辅助。检查了通过增加流量参数γ和s的纳米流体速度,并且在里加片材的表面发生突然的衰落。边界层区域增强较大γ。对于更磁化的纳米流体来增强温度分布,并且热边界层随着较大的R参数而增加。纳米颗粒的体积分数有利于纳米流体的有效密度和动态粘度。观察到表面的最大热传递量,用于更磁化的纳米流体。

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