混合纳米流体热性能、稳定性及热交换效率评价的实验研究

Yubai Xiao, Hu Zhang, Junmei Wu
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摘要

混合纳米流体作为一种新型工质,在适当的组分和配比下制备,具有比单组分纳米流体更好的传热性能,近年来得到了广泛的研究。混合纳米流体作为工作流体应用于核电系统,是提高反应堆发生严重事故时容器内滞留能力的有效途径。为了获得具有优良传热性能的混合纳米流体,采用瞬态平面源法对三种高导热的混合纳米流体进行了测试,并对其粘度和稳定性进行了实验研究。这些实验结果用于评价混合纳米流体的传热效率。结果表明:(1)杂化纳米流体的导热系数随温度和体积浓度的升高而增大。与基液相比,体积浓度为0.25%时Al2O3-CuO/H2O、Al2O3-C/H2O和AlN-TiO2/H2O纳米流体的导热系数分别提高了36%、24%和22%。(2)表面活性剂可提高杂化纳米流体的稳定性。Zeta电位值与杂化纳米流体的导热系数有关,可以用来解释杂化纳米流体的导热系数与分散之间的关系。为后续高导热纳米流体的筛选提供参考。(3) C/H2O的加入可以有效降低混合纳米流体的动态粘度系数。(4)对混合纳米流体的换热效率分析发现,在一定的混合条件下,Al2O3-CuO/H2O和Al2O3-C/H2O的换热能力都优于水。该研究有助于进一步优化混合纳米流体及其在严重反应堆事故容器内滞留中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Study on the Thermal Properties and Stability of Hybrid Nanofluids and Evaluation of its Heat Exchange Efficiency
In recent years, hybrid nanofluids, as a new kind of working fluid, have been widely studied because they possessing better heat transfer performance than single component nanofluids when prepared with proper constituents and proportions. The application of hybrid nanofluids in nuclear power system as a working fluid is an effective way of improving the capability of In-Vessel Retention (IVR) when the reactor is in a severe accident. In order to obtain hybrid nanofluids with excellent heat transfer performance, three kinds of hybrid nanofluids with high thermal conductivity are measured by transient plane source method, and their viscosity and stability are also investigated experimentally. These experimental results are used to evaluate the heat transfer efficiency of hybrid nanofluids. The results show that: (1) The thermal conductivity of hybrid nanofluids increases with increasing temperature and volume concentration. When compared to the base fluid, the thermal conductivity of Al2O3-CuO/H2O, Al2O3-C/H2O and AlN-TiO2/H2O nanofluids at 0.25% volume concentration increased by 36%, 24%, and 22%, respectively. (2) Surfactants can improve the stability of hybrid nanofluids. The Zeta potential value is related to the thermal conductivity of the hybrid nanofluids, and it could be used to explain the relationship between the thermal conductivity of the hybrid nanofluids and the dispersion. It also could provide a reference for subsequent screening of high thermal conductivity nanofluids. (3) The addition of C/H2O can effectively reduce the dynamic viscosity coefficient of hybrid nanofluids. (4) The analysis of heat transfer efficiency of the hybrid nanofluids found that both Al2O3-CuO/H2O and Al2O3-C/H2O have better heat transfer ability than water under certain mixing conditions. This study is conducive to further optimizing hybrid nanofluids and its application to the In-Vessel Retention in severe reactor accidents.
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