首页> 外文期刊>中国化学工程学报(英文版) >Influence of nanoparticle concentrations on flow boiling heat transfer coefficients of Al2O3/R141b in micro heat exchanger by direct metal laser sintering
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Influence of nanoparticle concentrations on flow boiling heat transfer coefficients of Al2O3/R141b in micro heat exchanger by direct metal laser sintering

机译:直接金属激光烧结对纳米换热器中Al2O3 / R141b的沸腾传热系数的影响

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摘要

Al2O3/R141b+Span-80 nanorefrigerant for 0.05 wt.% to 0.4 wt.% is prepared by ultrasonic vibration to investi-gate the influence of nanoparticle concentrations on flow boiling heat transfer of Al2O3/R141b+Span-80 in micro heat exchanger by direct metal laser sintering.Experimental results show that nanoparticle concentrations have significantly impact on heat transfer coefficients by homogeneity test of variances according to mathemat-ical statistics.The heat transfer performance of Al2O3/R141b+Span-80 nanorefrigerant is enhanced after adding nanoparticles in the pure refrigerant R141b.The heat transfer coefficients of 0.05 wt.%,0.1 wt.%,0.2 wt.%,0.3 wt.% and 0.4 wt.% Al2O3/R141b+Span-80 nanorefrigerant respectively increase by 55.0%,72.0%,53.0%,42.3% and 39.9% compared with the pure refrigerant R141b.The particle fluxes from viscosity gradient,non-uniform shear rate and Brownian motion cause particles to migrate in fluid especially in the process of flow boiling.This mi-gration motion enhances heat transfer between nanoparticles and fluid.Therefore,the heat transfer performance of nanofluid is enhanced. It is important to note that the heat transfer coefficients nonlinearly increase with nanoparticle concentrations increasing.The heat transfer coefficients reach its maximum value at the mass concentration of 0.1% and then it decreases slightly.There exists an optimal mass concentration corresponding to the best heat transfer enhancement. The reason for the above phenomenon is attributed to nanoparticles deposition on the minichannel wall by Scanning Electron Microscopy observation.The channel surface wettability increases during the flow boiling experiment in the mass concentration range from 0.2 wt.% to 0.4 wt.%.The channel surface with wettability increasing needs more energy to produce a bubble.Therefore,the heat transfer coefficients decrease with nanoparticle concentrations in the range from 0.2 wt.% to 0.4 wt.%.In addition,a new correlation has been proposed by fitting the experimental data considering the influence of mass concentrations on the heat trans-fer performance.The new correlation can effectively predict the heat transfer coefficient.
机译:通过超声振动制备0.05%(重量)至0.4%(重量)的Al2O3 / R141b + Span-80纳米制冷剂,以研究纳米颗粒浓度对微热交换器中Al2O3 / R141b + Span-80的沸腾传热的影响。实验结果表明,根据数理统计的方差均匀性测试,纳米颗粒的浓度对传热系数有显着影响。在纳米颗粒中加入纳米颗粒后,Al2O3 / R141b + Span-80纳米制冷剂的传热性能得到了提高。纯的制冷剂R141b.Al2O3 / R141b + Span-80纳米制冷剂的0.05重量%,0.1重量%,0.2重量%,0.3重量%和0.4重量%的传热系数分别增加了55.0%,72.0%,与纯制冷剂R141b相比,颗粒流量为53.0%,42.3%和39.9%。粘度梯度,非均匀剪切速率和布朗运动引起的颗粒通量导致颗粒在流体中迁移,尤其是在沸腾过程中。增强了纳米粒子与流体之间的传热。因此,纳米流体的传热性能得到增强。重要的是要注意,随着纳米粒子浓度的增加,传热系数呈非线性增加;在0.1%的质量浓度下,传热系数达到最大值,然后略有下降;存在与最佳传热相对应的最佳质量浓度。增强。出现上述现象的原因是通过扫描电镜观察到纳米颗粒在微通道壁上的沉积。在沸腾实验中,通道表面的润湿性在质量浓度为0.2 wt%至0.4 wt。%的范围内增加。随着润湿性的增加,产生气泡需要更多的能量。因此,传热系数随纳米粒子浓度在0.2 wt。%至0.4 wt。%的范围内而降低。此外,通过考虑实验数据拟合提出了新的相关性新的相关关系可以有效地预测传热系数。

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  • 来源
    《中国化学工程学报(英文版)》 |2017年第12期|1714-1726|共13页
  • 作者单位

    School of Mechanical and Automobile Engineering,South China University of Technology,Guangzhou 510640,China;

    School of Mechanical and Marine Engineering,Qinzhou University,Qinzhou 535011,China;

    School of Mechanical and Automobile Engineering,South China University of Technology,Guangzhou 510640,China;

    School of Mechanical and Automobile Engineering,South China University of Technology,Guangzhou 510640,China;

    School of Mechanical and Automobile Engineering,South China University of Technology,Guangzhou 510640,China;

    School of Mechanical and Automobile Engineering,South China University of Technology,Guangzhou 510640,China;

    School of Mechanical and Automobile Engineering,South China University of Technology,Guangzhou 510640,China;

    School of Mechanical and Automobile Engineering,South China University of Technology,Guangzhou 510640,China;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-19 03:47:46
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