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首页> 外文期刊>Steel & Composite Structures: An International Journal >Analysis of critical fluid velocity and heat transfer in temperature-dependent nanocomposite pipes conveying nanofluid subjected to heat generation, conduction, convection and magnetic field
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Analysis of critical fluid velocity and heat transfer in temperature-dependent nanocomposite pipes conveying nanofluid subjected to heat generation, conduction, convection and magnetic field

机译:输送纳米流体经受发热,传导,对流和磁场的温度依赖性纳米复合液中临界流体速度和传热分析

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摘要

In this paper, analysis of critical fluid velocity and heat transfer in the nanocomposite pipes conveying nanofluid is presented. The pipe is reinforced by carbon nanotubes (CNTs) and the fluid is mixed by AL(2)O(3) nanoparticles. The material properties of the nanocomposite pipe and nanofluid are considered temperature-dependent and the structure is subjected to magnetic field. The forces of fluid viscosity and turbulent pressure are obtained using momentum equations of fluid. Based on energy balance, the convection of inner and outer fluids, conduction of pipe and heat generation are considered. For mathematical modeling of the nanocomposite pipes, the first order shear deformation theory (FSDT) and energy method are used. Utilizing the Lagrange method, the coupled pipe-nanofluid motion equations are derived. Applying a semi-analytical method, the motion equations are solved for obtaining the critical fluid velocity and critical Reynolds and Nusselt numbers. The effects of CNTs volume percent, AL(2)O(3) nanoparticles volume percent, length to radius ratio of the pipe and shell surface roughness were shown on the critical fluid velocity, critical Reynolds and Nusselt numbers. The results are validated with other published work which shows the accuracy of obtained results of this work. Numerical results indicate that for heat generation of Q = 10 MW/m(3), adding 6% AL(2)O(3) nanoparticles to the fluid increases 20% the critical fluid velocity and 15% the Nusselt number which can be useful for heat exchangers.
机译:本文介绍了输送纳米流体纳米复合材料中的临界流体速度和传热分析。通过碳纳米管(CNT)加强管,通过Al(2)O(3)纳米颗粒混合流体。纳米复合材料管和纳米流体的材料特性被认为是温度依赖性的,并且对结构进行磁场。使用流体的动量方程获得流体粘度和湍流的力。基于能量平衡,考虑了内部和外部流体的对流,管道和发热的传导。对于纳米复合液管的数学建模,使用第一阶剪切变形理论(FSDT)和能量方法。利用拉格朗日方法,推导耦合管纳米流体运动方程。应用半分析方法,解决了运动方程,用于获得临界流体速度和临界雷诺和纽带数。 CNTs体积百分比,Al(2)O(3)纳米颗粒体积百分比,管道和壳表面粗糙度的长度的影响,临界流体速度,临界雷诺和纽带数。结果验证了其他公布的工作,该工作表明了这项工作的获得结果的准确性。数值结果表明,对于Q = 10mW / m(3)的发热,向流体中加入6%Al(2)O(3)纳米颗粒增加了临界流体速度的20%和15%的营养数量用于热交换器。

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