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首页> 外文期刊>International Journal of Heat and Mass Transfer >An experimental study to determine the maximum efficiency index in turbulent flow of SiO_2/water nanofluids
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An experimental study to determine the maximum efficiency index in turbulent flow of SiO_2/water nanofluids

机译:确定SiO_2 /水纳米流体湍流最大效率指标的实验研究

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摘要

In this work, heat transfer and pressure drop characteristics of nanofluids flowing through a horizontal circular tube have been investigated experimentally. The test tube was made of stainless steel type 304 with an inner diameter of 7.1 mm. The working fluid was SiO_2/water nanofluid where the average diameter of nanoparticles was 7 nm. Nanofluids at three different volume concentrations of 0.5,1, and 2% have been prepared and tested. The experiments have been performed for Reynolds numbers ranging from 3800 to 12000, inlet temperatures of 25, 30, and 35 °C where a constant heat flux was imposed on the tube. The effects of particle volume concentrations, inlet temperature and mass flow rate on convective heat transfer and pressure drop characteristics have been evaluated. The results revealed that with increasing Reynolds number, volume concentration, and inlet temperature the heat transfer coefficient and Nusselt number increased. Moreover, pressure drop increased with increasing volume concentration; conversely, decreased with increasing inlet temperature. The efficiency index reached its maximum quantity (i.e. 1.6) at Reynolds numbers higher than 9000, the volume concentration of 2%, and inlet temperature of 35 °C. On the other hand, the minimum values of efficiency index were obtained for Reynolds numbers less than 7000, the volume fraction of 0.5%, and inlet temperature of 25 °C. Finally, new correlations for predicting the Nusselt number and friction factor of SiO_2/water turbulent flow have been proposed.
机译:在这项工作中,已经对通过水平圆形管流动的纳米流体的传热和压降特性进行了实验研究。试管由内径为7.1mm的304不锈钢制成。工作流体是SiO 2 /水纳米流体,其中纳米颗粒的平均直径为7nm。已经制备并测试了三种不同体积浓度(0.5、1和2%)的纳米流体。对于雷诺数范围为3800至12000,入口温度为25、30和35°C的实验进行了实验,其中在管子上施加了恒定的热通量。评估了颗粒体积浓度,入口温度和质量流速对对流传热和压降特性的影响。结果表明,随着雷诺数,体积浓度和入口温度的增加,传热系数和Nusselt数均增加。此外,压降随着体积浓度的增加而增加;相反,随着入口温度的升高而降低。当雷诺数大于9000,体积浓度为2%,入口温度为35°C时,效率指数达到最大值(即1.6)。另一方面,对于小于7000的雷诺数,0.5%的体积分数和25°C的入口温度,获得了效率指数的最小值。最后,提出了用于预测SiO_2 /水湍流的努塞尔数和摩擦因数的新的相关性。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2017年第9期|1113-1121|共9页
  • 作者单位

    Fluid Mechanics. Thermal Engineering and Multiphase Flow Research Laboratory (FUTURE), Department of Mechanical Engineering, Faculty of Engineering, King Mongkut's University of Technology Thonburi, Bangmod, Bangkok, Thailand;

    Renewable Energies, Magnetism and Nanotechnoiogy Lab., Faculty of Science, Ferdowsi University ofMashhad, Mashhad, Iran;

    Faculty of New Sciences and Technologies, University of Tehran, Tehran, Iran;

    Faculty of New Sciences and Technologies, University of Tehran, Tehran, Iran;

    Heat and Thermodynamics Division, Department of Mechanical Engineering, Yildiz Technical University, Yildiz, Istanbul 34349, Turkey;

    Fluid Mechanics. Thermal Engineering and Multiphase Flow Research Laboratory (FUTURE), Department of Mechanical Engineering, Faculty of Engineering, King Mongkut's University of Technology Thonburi, Bangmod, Bangkok, Thailand,The Academy of Sciences, Royal Society of Thailand, Sanam Suea Pa, Dusit, Bangkok 10300, Thailand;

  • 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

    Efficiency index; SiO_2/water nanofluid; Heat transfer; Pressure drop; Turbulent flow;

    机译:效率指数;SiO_2 /水纳米流体;传播热量;压力下降;湍流;

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