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Experimental investigation on heat transfer performance of Fe_2O_3/water nanofluid in an air-finned heat exchanger

机译:Fe_2O_3 /水纳米流体在翅片式换热器中传热性能的实验研究

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摘要

In this paper, the overall heat transfer coefficient of water based iron oxide nanofluid in a compact air-cooled heat exchanger has been measured experimentally under laminar flow conditions. The concentrations of 0.15, 0.4 and 0.65 vol.% of stabilized Fe_2O_3/water nanofluid have been examined with variation of flow rates in the range of 0.2-0.5 m~3/h. For better dispersion of iron (III) oxide nanoparticles in water, 0.8 wt% polyethylene glycol has been added and pH has been adjusted to 11.1. The air-cooled heat exchanger is consisted of 34 vertical tubes with stadium-shaped cross section and air makes a cross flow through the tube bank with variable flow rates ranging from 740 to 1009 m~3/h. Also, hot working fluid enters the heat exchanger at different temperatures including 50, 65, and 80℃. The results demonstrate that increasing the nanofluid flow rate and concentration and the air Reynolds number can improve the overall heat transfer coefficient and heat transfer rate whereas enhancing the inlet temperature has a negative effect on the overall heat transfer coefficient and a positive effect on the heat transfer rate. Meanwhile, the maximum enhancements of the overall heat transfer coefficient and heat transfer rate compared with base fluid (distilled water) are respectively equal to 13% and 11.5% which is occurred at the concentration of 0.65 vol.%.
机译:在本文中,已经在层流条件下通过实验测量了紧凑型风冷热交换器中水基氧化铁纳米流体的总传热系数。已经检查了稳定的Fe_2O_3 /水纳米流体的浓度为0.15、0.4和0.65 vol。%,流速在0.2-0.5 m〜3 / h范围内变化。为了使氧化铁(III)纳米粒子更好地分散在水中,已添加0.8 wt%的聚乙二醇,并将pH值调整为11.1。风冷换热器由34根垂直于体育场形状的垂直管组成,空气以740至1009 m〜3 / h的可变流速通过管束横流。另外,热的工作流体会在不同的温度(包括50、65和80℃)下进入热交换器。结果表明,增加纳米流体的流量和浓度以及空气雷诺数可以改善整体传热系数和传热速率,而提高入口温度对整体传热系数有负面影响,对传热有正面影响率。同时,与基础流体(蒸馏水)相比,总传热系数和传热速率的最大提高分别等于13%和11.5%,这在0.65vol。%的浓度下发生。

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