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Numerical Investigation of Convective Heat Transfer of Refined Kerosene-Alumina Nanofluid Under Laminar and Turbulent Regime

机译:层状氧化物 - 氧化铝纳米流体在层流和湍流状态下对流传热的数值研究

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The study reports Computational Fluid Dynamics (CFD) investigations of the convective heat transfer coefficient of Al_(2)O_(3)/refined kerosene nanofluids. The study was carried out under laminar and turbulent regime in a circular tube under uniform and constant heatflux on the wall. The study was carried out for Re 500 to 5500 for base refined kerosene and with alumina added with 0.01% and 0.05% volume concentration in the base refined kerosene. The size of the alumina nanoparticle was 35 nm. Different computational models of Ansys-Fluent were used forthe study. For laminar flows, laminar viscous models and K-Epsilon model for turbulence modelling was used. Energy model was used to define convective heat transfer and a discrete phase model to study particle behaviour and flow pattern in the tube. Multi-phase model with two phase refinedkerosene suspended with alumina nano particles were used for the study. Experimental and simulation results showed that as the Reynolds number and the particle concentration increased there was an enhancement in the thermal performance of nanofluids which was found to be higher than that ofthe base fluid. The convective heat transfer increased by 14% for volume concentration of 0.05% and Reynolds number of 5500.
机译:该研究报告了Al_(2)O_(3)/精制煤油纳米流体的对流传热系数的计算流体动力学(CFD)研究。该研究在层状和湍流状态下在壁上的圆形管中进行,沿壁的恒定恒温。该研究对于RE 500至5500进行基础精制煤油,并在碱精制煤油中加入0.01%和0.05%体积浓度的氧化铝。氧化铝纳米粒子的尺寸为35nm。使用不同的ansys流利的计算模型。对于层流式流动,使用了层流模型和湍流建模的K-EPSILON模型。能量模型用于定义对流传热和离散相模型,以研究管中的颗粒行为和流动模式。用两相重氨基乙烯悬浮用氧化铝纳米颗粒的多相模型用于研究。实验和仿真结果表明,随着雷诺数和颗粒浓度的增加,纳米流体的热性能增加了纳米流体的增强,其被发现高于基础流体的热性能。对流热传递的体积浓度为0.05%的浓度增加14%,雷诺数为5500。

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