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A non-Fourier approach towards the analysis of heat transfer enhancement with water based nanofluids through a channel

机译:一种非傅立叶方法,探讨了通过通道用水纳米流体分析的热传递增强方法

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摘要

In this article, a non-Fourier approach to model the heat transfer phenomenon in nanofluids having application to automotive industry is studied. In this respect, a recently proposed hyperbolic heat flux equation is embedded into the heat energy equation and thereby incorporating the effect of thermal relaxation time. Nanofluids are formed by considering copper oxide (CuO), Titanium dioxide (TiO2) and Aluminum oxide (Al2O3) nano-solid particles in the base fluid. The flow governing system of PDEs along with boundary conditions is transformed into its respective coupled system of nonlinear ODEs using suitable similarity functions. Runge-Kutta-Fehlberg (RK-5) numerical scheme embedded with shooting method is implemented and used to solve the obtained boundary value problem. Numerical simulations are performed and tabulated to analyze the influence of solid volume fraction on local coefficient of skin-friction and Nusselt number. A comparison is made between the results by Fourier and present heat flux model. We conclude that the presented new approach is more general and thus allows predicting the influence of thermal relaxation time on the heat transfer characteristics. Moreover, consideration of present model over the Fourier model helps to predict the actual temporal behavior of solution.
机译:在本文中,研究了在纳米流体中模拟具有应用于汽车工业的纳米流体中的传热现象的非傅立叶方法。在这方面,最近提出的双曲线热通量方程嵌入了热能方程中,从而结合了热弛豫时间的效果。通过考虑基础流体中的氧化铜(CuO),二氧化钛(TiO 2)和氧化铝(Al 2 O 3)纳米固体颗粒来形成纳米流体。使用合适的相似性功能将PDE的流量与边界条件一起转换为其相应的非线性杂散系统。跨越拍摄方法的runge-Kutta-Fehlberg(RK-5)数值方案被实施并用于解决所获得的边值问题。进行数值模拟和制表,以分析固体体积分数对局部皮​​肤摩擦局部系数的影响。通过傅里叶和目前的热通量模型在结果之间进行比较。我们得出结论,呈现的新方法更为一般,因此允许预测热弛豫时间对传热特性的影响。此外,对傅立叶模型的本模型考虑有助于预测解决方案的实际时间行为。

著录项

  • 作者

    Taimoor Dil; M. Sabeel Khan;

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  • 年度 2018
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  • 原文格式 PDF
  • 正文语种 eng
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