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首页> 外文期刊>Heat Transfer Engineering >Three-Dimensional Numerical Analysis on Performance Enhancement of Micropolar Hybrid Nanofluid in Comparison with Simple Nanofluid
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Three-Dimensional Numerical Analysis on Performance Enhancement of Micropolar Hybrid Nanofluid in Comparison with Simple Nanofluid

机译:微基磷杂交纳米流体性能增强的三维数值分析与简单纳米流体相比

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摘要

The objectives of the present research work are the three-dimensional computational analysis and predictions on double-diffusive natural convection in a cubic cavity filled with Cu-Al_2O_3/water micropolar hybrid nanofluid. The governing equations are carefully modified employing vorticity-vector potential formulation and are solved by the finite volume method. Performance enhancement of Cu-Al_2O_3/water micropolar hybrid nanofluid is judiciously compared with the Cu/water simple nanofluid. Besides, the influences of concentration of nanoparticles, Rayleigh number, buoyancy ratio, and micropolar vortex parameter on the flow field and heat transfer are critically analyzed. The results show that heat and mass transfer rates are lower for a micropolar nanofluid model when compared to the pure nanofluid model. The hybrid micropolar nanofluid displays more heat and mass transfer rates for thermal buoyancy-dominated zones when compared with traditional nanofluid. Conversely, the heat and mass transfer rates are decreased when using micropolar hybrid nanofluid for the solutal-dominated regime. The enhancement of micropolar viscosity parameter results in a decrease of average Nusselt and Sherwood numbers which are more perceptible in the thermal buoyancy-dominated flow.
机译:本研究工作的目的是填充Cu-Al_2O_3 /水微量杂交纳米流体的立方体中的三维计算分析和预测。通过有限体积法仔细修改了使用涡旋载体电位制剂的控制方程。与Cu /水简单的纳米流体相比,Cu-Al_2O_3 /水微柱杂交纳米流体的性能增强。此外,纳米颗粒浓度,瑞利数,浮力比和微柱涡旋参数对流场和传热的影响是重大分析的。结果表明,与纯纳米流体模型相比,微基波纳米流体模型的热量和传质速率较低。与传统的纳米流体相比,杂交微基波纳米流体显示出热浮力主导地区的热量和传质速率。相反,当使用微柱杂交纳米流体以进行索特式主导的制度时,热量和传质速率降低。细极粘度参数的增强导致平均NUSELED和舍伍德数量的降低,该尚氏素数在热浮力主导的流动中更令人察觉。

著录项

  • 来源
    《Heat Transfer Engineering》 |2021年第18期|1590-1610|共21页
  • 作者单位

    Department of Physics College of Sciences Abha King Khalid University Saudi Arabia;

    Research Laboratory of Metrology and Energy Systems National Engineering School Energy Engineering Department Monastir University Monastir City Tunisia Department of Physics College of Sciences Abha King Khalid University Saudi Arabia Higher School of Sciences and Technology of Hammam Sousse Sousse University Tunisia;

    Department of Mechanical Engineering College of Engineering King Khalid University Abha Saudi Arabia;

    Department of Mechanical Engineering College of Engineering King Khalid University Abha Saudi Arabia Energetic Laboratory of Thermal and Mass Transfers (LETTM) Faculty of Science Tunis EI Manar University 2092 Tunisia;

    Department of Physics College of Sciences Abha King Khalid University Saudi Arabia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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