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首页> 外文期刊>Quality Control, Transactions >Fractional Modeling and Exact Solutions to Analyze Thermal Performance of Fe3O4-MoS2-Water Hybrid Nanofluid Flow Over an Inclined Surface With Ramped Heating and Ramped Boundary Motion
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Fractional Modeling and Exact Solutions to Analyze Thermal Performance of Fe3O4-MoS2-Water Hybrid Nanofluid Flow Over an Inclined Surface With Ramped Heating and Ramped Boundary Motion

机译:分数建模与精确解决方案分析倾斜表面上Fe3O4-MOS2-水杂交纳米流体流动的热性能,斜坡加热和斜坡边界运动

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摘要

The core determination of this article is to investigate the augmentation in the radiative heat transfer rate of Fe 3 O 4 -MoS 2 -H 2 O hybrid nanofluid specifying a flow over an inclined plate subject to ramped heating and heat generation/consumption effects. The flow of considered hybrid nanofluid is developed due to the ramped motion of the inclined plate that encounters the magnetic effects and immersed in a porous material. The fractional form of energy and momentum equations is obtained by employing the concept of the Atangana-Baleanu fractional derivative. Some unit-free quantities are introduced and the Laplace transform method is operated to construct the exact solutions of these equations. The noteworthy physical significance of involved parameters is discussed with the aid of graphical illustrations. To analyze the behavior of shear stress and heat transfer rate, numerical computations are tabulated in terms of skin friction coefficient and Nusselt number. All the figures and tables are prepared for both ramped and isothermal boundary conditions to highlight the impacts of the ramped heating condition and ramped motion of the inclined plate. It is observed that a water-based hybrid nanofluid that contains equal proportions of Fe 3 O 4 and MoS 2 nanoparticles exhibits an improvement of 6.14% in the heat transfer rate. The motion of hybrid nanofluid is retarded by fractional and inclination parameters, whereas the thermal radiation parameter serves as a flow supportive factor. Moreover, it is realized that ramping of the boundary surface and the fractional model are more effective for enhancing the heat transfer rate and limiting the shear stress. This result accentuates the significance of ramping technique in achieving a faster cooling rate and better flow control for various engineering applications.
机译:本文的核心确定是调查FE 3 O 4 -mos 2 -h 2 o混合纳米流体,指定倾斜板上的流动,受加热和发热/消耗效果的倾斜板。所考虑的杂交纳米流体的流动是由于倾斜板的斜坡运动而遇到磁效果并浸入多孔材料中的倾斜运动。通过采用Atangana-Baleanu分数衍生物的概念来获得能量和动量方程的分数形式。引入了一些无单位量,并操作拉普拉斯变换方法以构建这些方程的精确解。借助图形插图讨论了涉及参数的值得注意的物理意义。为了分析剪切应力和传热速率的行为,在皮肤摩擦系数和良好的数量方面表格计算数值计算。所有附图和表都是为斜坡和等温边界条件制备的,以突出倾斜板的斜坡的加热条件和斜坡运动的冲击。观察到含有水基杂种纳米流体,其包含平等的Fe 3 O 4 和mos 2 纳米粒子在传热速率上表现出6.14%的提高。杂交纳米流体的运动通过分数和倾斜参数延迟,而热辐射参数用作流动支持因子。此外,实现边界表面的斜坡和分数模型对于提高传热速率并限制剪切应力更有效。该结果强调了斜坡技术在实现更快的冷却速率和各种工程应用的流量控制方面的重要性。

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  • 来源
    《Quality Control, Transactions》 |2021年第1期|12389-12404|共16页
  • 作者单位

    Faculty of Science King Mongkut’s University of Technology Thonburi (KMUTT) Bangkok Thailand;

    KMUTT Fixed Point Research Laboratory Room SCL 802 Science Laboratory Building Faculty of Science King Mongkut’s University of Technology Thonburi (KMUTT) Bangkok Thailand;

    Renewable Energy Research Centre Faculty of Technical Education King Mongkut’s University of Technology North Bangkok Bangkok Thailand;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanoparticles; Mathematical model; Heat transfer; Oils; Heat engines; STEM; Iron;

    机译:纳米粒子;数学模型;传热;油;热风机;蒸汽;铁;

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