Direct numerical simulation of viscoelastic-fluid-based nanofluid turbulent channel flow with heat transfer

Our previous experimental studies have confirmed that viscoelastic-fluid-based nanofluid(VFBN) prepared by suspending nanoparticles in a viscoelastic base fluid(VBF, behaves drag reduction at turbulent flow state) can reduce turbulent flow resistance as compared with water and enhance heat transfer...

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Published inChinese physics B Vol. 24; no. 8; pp. 404 - 420
Main Author 阳倦成 李凤臣 蔡伟华 张红娜 宇波
Format Journal Article
LanguageEnglish
Published 01.08.2015
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ISSN1674-1056
2058-3834
1741-4199
DOI10.1088/1674-1056/24/8/084401

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Summary:Our previous experimental studies have confirmed that viscoelastic-fluid-based nanofluid(VFBN) prepared by suspending nanoparticles in a viscoelastic base fluid(VBF, behaves drag reduction at turbulent flow state) can reduce turbulent flow resistance as compared with water and enhance heat transfer as compared with VBF. Direct numerical simulation(DNS) is performed in this study to explore the mechanisms of heat transfer enhancement(HTE) and flow drag reduction(DR) for the VFBN turbulent flow. The Giesekus model is used as the constitutive equation for VFBN. Our previously proposed thermal dispersion model is adopted to take into account the thermal dispersion effects of nanoparticles in the VFBN turbulent flow. The DNS results show similar behaviors for flow resistance and heat transfer to those obtained in our previous experiments. Detailed analyses are conducted for the turbulent velocity, temperature, and conformation fields obtained by DNSs for different fluid cases, and for the friction factor with viscous, turbulent, and elastic contributions and heat transfer rate with conductive, turbulent and thermal dispersion contributions of nanoparticles, respectively. The mechanisms of HTE and DR of VFBN turbulent flows are then discussed. Based on analogy theory, the ratios of Chilton–Colburn factor to friction factor for different fluid flow cases are investigated, which from another aspect show the significant enhancement in heat transfer performance for some cases of water-based nanofluid and VFBN turbulent flows.
Bibliography:11-5639/O4
Yang Juan-Cheng;Li Feng-Chen;Cai Wei-Hua;Zhang Hong-Na;Yu Bo;School of Energy Science and Engineering, Harbin Institute of Technology;School of Physics Sciences, University of Chinese Academy of Sciences;Beijing Key Laboratory of Urban Oil and Gas Distribution Technology, China University of Petroleum
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ISSN:1674-1056
2058-3834
1741-4199
DOI:10.1088/1674-1056/24/8/084401