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Numerical and experimental investigation on heat transfer characteristics of nanofluids in a circular tube with CDTE

机译:用CDTE圆管纳米流体传热特性的数值和实验研究

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摘要

This paper reported numerical simulation investigations on heat transfer performance of ZrO_2-water and Cu-water nanofluids in the tube with concentric double twisted element(CDTE)(Re =6000-12000). Furthermore, experiments verified that the two-phase flow model method was more suitable for the numerical simulation of nanofluids in the tube with CDTE. The Nusselt numbers with CDTE and nanofluids obviously increased and also showed a positive correlation with the nanofluid concentration. The Nusselt numbers of Cu-water nanofluid were better than ZrO_2-water nanofluid. While the friction factor(f) of CDTE tube between the nanofluids increased little, the maximum difference was only 3.23%. The heat transfer performance was evaluated by performance evaluation criteria (PEC), cross-section entransy efficiency(ψ_c) and radial-flow(RF) number. The heat transfer performance of Cu-water nanofluids was all superior to ZrO_2-water nanofluids. The PEC values in nanofluids increased with increasing concentration. The maximum PEC value was 1.96 in 1% Cu-water nanofluid. Subsequently, the ψ_c of CDTE tube increased with the increase of cross-section position and nanofluid concentration. The maximum ψ_c was 91.22% in 1% Cu-water nanofluid at Re=6000. When an appropriate concentration of nanofluids was used and the nanofluid was passed through the CDTE, the RF numbers increased obviously. The maximum RF number was 0.1028 with 0.5% Cu-water nanofluid at Re=6000.
机译:本文报道了具有同心双绞线(CDTE)(RE = 6000-12000)的管中ZrO_2-水和Cu水纳米流体的数值模拟研究。此外,实验证实,两相流模型方法更适合于用CDTE管中纳米流体的数值模拟。具有CDTE和纳米流体的营养数明显增加,并且还与纳米流体浓度呈正相关。 Cu-water纳米流体的露面数优于ZrO_2-水纳米流体。虽然纳米流体之间的CDTE管的摩擦系数(F)增加少,但最大差异仅为3.23%。通过性能评估标准(PEC),横截截面延长效率(ψ_c)和径向流(rf)数来评估传热性能。 Cu水纳米流体的传热性能均优于ZrO_2-水纳米流体。纳米流体中的PEC值随着浓度的增加而增加。最大PEC值为1%Cu水纳米流体中的1.96。随后,随着横截面位置和纳米流体浓度的增加而增加CDTE管的χ_c。在RE = 6000的1%Cu水纳米流体中,最大ψ_C为91.22%。当使用适当浓度的纳米流体并且通过CDTE通过CDTE时,RF数明显增加。最大RF数为0.1028,RE = 6000时0.5%Cu水纳米流体。

著录项

  • 来源
    《Heat and mass transfer》 |2021年第8期|1329-1345|共17页
  • 作者单位

    School of Energy and Power Engineering Shenyang University of Chemical Technology Economical and Technical Development Zone 11#Street Shenyang Liaoning 110142 People's Republic of China School of New Energy Harbin Institute of Technology at Weihai 2 West Wenhua Road Weihai 264209 People's Republic of China;

    School of Energy and Power Engineering Shenyang University of Chemical Technology Economical and Technical Development Zone 11#Street Shenyang Liaoning 110142 People's Republic of China;

    School of Energy and Power Engineering Shenyang University of Chemical Technology Economical and Technical Development Zone 11#Street Shenyang Liaoning 110142 People's Republic of China;

    School of Energy and Power Engineering Shenyang University of Chemical Technology Economical and Technical Development Zone 11#Street Shenyang Liaoning 110142 People's Republic of China;

    School of Energy and Power Engineering Shenyang University of Chemical Technology Economical and Technical Development Zone 11#Street Shenyang Liaoning 110142 People's Republic of China;

  • 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

    Twisted element; PEC value; Cross-section entransy efficiency; Radial-flow number; Simulation method;

    机译:扭曲的元素;PEC值;横截面效率;径向流量;仿真方法;

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