首页> 外文期刊>Journal of Thermal Science and Engineering Applications: Transactions of the ASME >Magnetohydrodynamics, Natural Convection, and Entropy Generation of CuO-Water Nanofluid in an I-Shape Enclosure-A Numerical Study
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Magnetohydrodynamics, Natural Convection, and Entropy Generation of CuO-Water Nanofluid in an I-Shape Enclosure-A Numerical Study

机译:I形外壳中Cuo水纳米流体的磁力流体动力学,自然对流和熵生成 - 一种数值研究

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This paper presents a numerical study of the magnetohydrodynamics, natural convection, and thermodynamic irreversibilities in an I-shape enclosure, filled with CuO-water nano-fluid and subject to a uniform magnetic field. The lateral walls of the enclosure are maintained at different but constant temperatures, while the top and bottom surfaces are adiabatic. The Brownian motion of the nanoparticles is taken into account and an extensive parametric study is conducted. This involves the variation of Rayleigh and Hartmann numbers, and the concentration of nanoparticles and also the geometrical specifications of the enclosure. Further, the behaviors of streamlines and isotherms under varying parameters are visualized. Unlike that in other configurations, the rate of heat transfer in the I-shaped enclosure appears to be highly location dependent and convection from particular surfaces dominates the heat transfer process. It is shown that interactions between the magnetic field and natural convection currents in the investigated enclosure can lead to some peculiarities in the thermal behavior of the system. The results also demonstrate that different parts of the enclosure may feature significantly different levels of heat transfer sensitivity to the applied magnetic field. Further, the analysis of entropy generation indicates that the irreversibility of the system is a strong function of the geometrical parameters and that the variations in these parameters can minimize the total generation of entropy. This study clearly shows that ignoring the exact shape of the enclosure may result in major errors in the prediction of heat transfer and second law performances of the system.
机译:本文对均匀磁场作用下,填充CuO-水纳米流体的I型封闭空间内的磁流体力学、自然对流和热力学不可逆性进行了数值研究。外壳的侧壁保持在不同但恒定的温度下,而顶部和底部表面是绝热的。考虑了纳米颗粒的布朗运动,并进行了广泛的参数研究。这涉及到瑞利数和哈特曼数的变化、纳米粒子的浓度以及外壳的几何规格。此外,流线和等温线在不同参数下的行为也被可视化。与其他配置不同,I形外壳中的传热速率似乎高度依赖于位置,特定表面的对流主导了传热过程。结果表明,在所研究的封闭空间中,磁场和自然对流之间的相互作用可以导致系统热行为的某些特殊性。结果还表明,外壳的不同部分对外加磁场的传热灵敏度可能存在显著差异。此外,熵产生的分析表明,系统的不可逆性是几何参数的强函数,这些参数的变化可以使熵的总产生最小化。这项研究清楚地表明,忽略外壳的确切形状可能会导致在预测系统的传热和第二定律性能时产生重大误差。

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