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首页> 外文期刊>Heat and mass transfer >Analyses of exergy efficiency for forced convection heat transfer in a tube with CNT nanofluid under laminar flow conditions
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Analyses of exergy efficiency for forced convection heat transfer in a tube with CNT nanofluid under laminar flow conditions

机译:具有CNT纳米流体在层流条件下用CNT纳米流体施用效率的高效效率分析

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摘要

In the present study, the theoretical and experimental results of the second law analysis on the performance of a uniform heat flux tube using are presented in the laminar flow regime. For this purpose, carbon nanotube/ water nanofluids is considered as the base fluid. The experimental investigations were undertaken in the Reynolds number range from 800 to 2600, volume concentrations of 0.1-1 %. Results are verified with well-known correlations. The focus will be on the entrance region under the laminar flow conditions for SWCNT nanofluid. The results showed that the Nu number increased about 90-270 % with the enhancement of nanoparticles volume concentration compared to water. The enhancement was particularly significant in the entrance region. Based on the exergy analysis, the results show that exergetic heat transfer effectiveness is increased by 22-67 % employing nanofluids. The exergetic efficiency is increase with increase in nanoparticles concentration. On the other hand, exergy loss was reduced by 23-43 % employing nanofluids as a heat transfer medium with comparing to conventional fluid. In addition, the empirical correlation for exergetic efficiency has also been developed. The consequential results obtained from the correlation are found to be in good agreement with the experimental results within ±5 % variation.
机译:在本研究中,在层流状态中提出了均匀热通量管的性能的第二法律分析的理论和实验结果。为此目的,碳纳米管/水纳米流体被认为是基础流体。在雷诺数范围内的实验研究范围为800至2600,体积浓度为0.1-1%。结果以众所周知的相关性验证。焦点将位于Laminar流体条件下的入口区域上,用于SWCNT纳米流体。结果表明,与水相比,Nu数量增加约90-270%,增强纳米颗粒体积浓度。增强在入射区中特别显着。基于Deertgy分析,结果表明,促进的传热效果增加了22-67%纳米流体。随着纳米颗粒浓度的增加,前培养效率增加。另一方面,与常规流体相比,使用纳米流体作为传热介质的纳米流体减少23-43%。此外,还开发了exerget效率的经验相关性。从相关性获得的结果结果始终与实验结果良好,在±5%变化范围内。

著录项

  • 来源
    《Heat and mass transfer》 |2017年第5期|1503-1516|共14页
  • 作者单位

    Department of Chemical Engineering Shahrood Branch Islamic Azad University Shahrood Iran;

    Department of Mechanical Engineering Shahrood Branch Islamic Azad University Shahrood Iran;

    Department of Chemistry Sciences Faculty Arak Branch Islamic Azad University Arāk Iran;

    Chemical Engineering Department Tarbiat Modares University Tehran 14155-143 Tehran Iran;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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