纳米流体在嵌入多孔区域的正弦通道中的热性能

Asif Ali, S. Shuja, BS Yilbas
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引用次数: 0

摘要

微通道中的多孔结构提高了能量收集装置的传热速率,这意味着工作流体变成了纳米流体。本研究比较了具有多孔嵌套的正弦通道中cuo -水、tio2 -水和石墨烯-水纳米流体的热性能。模拟了纳米流体的流动和传热特性,考察了纳米流体体积分数、雷诺数(Re)、孔插入宽度及其渗透率对流动和温度场的影响。研究结果表明,cuo -水纳米流体的传热率高于其他纳米流体。石墨烯-水纳米流体在对流传热方面的性能低于CuO-水纳米流体,尽管石墨烯的导热系数高于CuO。当雷诺数为100时,cu -water纳米流体的努塞尔数下降了6.34%。增加多孔插入体的渗透率可略微提高平均努塞尔数(~ 0.24%)。孔道内较小宽度的多孔插入物提高了换热率(努塞尔数增加2.25%),即平均努塞尔数随着多孔插入物宽度的增加而减小。
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Thermal performance of nanofluids in a sinusoidal channel with embedded porous region
Inclusion of porous structures in micro-channels enhances heat transfer rates in energy harvesting devices, which signifies as the working fluid becomes a nanofluid. The present study compares the thermal performance of CuO-water, TiO2-water and graphene-water nanofluids in a sinusoidal channel with a porous insert. The flow and heat transfer characteristics are simulated and the effects of volumetric fraction of nanofluids, Reynolds number ( Re), porous insert width, and its permeability on the flow and temperature fields are examined. The findings reveal that CuO-water nanofluid results in higher heat transfer rates than those of other nanofluids considered. Graphene-water nanofluid gives rise to lower performance than that of CuO-water nanofluid in terms of convection heat transfer despite the fact that graphene has higher thermal conductivity than CuO. In this case, a decrease in Nusselt number of as much as 6.34% is observed for CuO-water nanofluid among all the cases considered for the Reynolds number of 100. Increasing the permeability of the porous insert slightly enhances (∼0.24%) the average Nusselt number. The porous insert with a small width in the channel improves the heat transfer rates (2.25% increase in Nusselt number), i.e. the average Nusselt number reduces as the porous insert width increases.
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来源期刊
CiteScore
3.30
自引率
5.90%
发文量
114
审稿时长
5.4 months
期刊介绍: The Journal of Power and Energy, Part A of the Proceedings of the Institution of Mechanical Engineers, is dedicated to publishing peer-reviewed papers of high scientific quality on all aspects of the technology of energy conversion systems.
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