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Effect of saturation temperature and vapor quality on the boiling heat transfer and critical heat flux in a microchannel

机译:饱和温度和蒸汽质量对微通道中沸腾传热和临界热通量的影响

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摘要

In this paper, heat transfer coefficients and critical heat fluxes of the R134a fluid in two-phase flow was studied in a 27-channel, 421 μm hydraulic diameter and 40 mm long microchannel experimental set-up. Data were collected at constant mass flux of 1000 kgm~(-2)s~(-1), saturation inlet temperature range of 20-28°C and at inlet vapor quality range of 0.01-0.20. The heat flux was initiated at 250 kWm~(-2) and gradually increased until reaching the critical heat flux (CHF). The effect of inlet vapor quality, saturation inlet temperature and heat flux on heat transfer coefficient and critical heat flux were investigated in detail and presented graphically. It can be observed that the CHF decreases with the increasing of saturation inlet temperature and inlet vapor quality. However, the heat transfer coefficient at the CHF point increased with the increasing of saturation temperature and the heat transfer coefficient at the CHF point was decreased with the increasing of vapor quality. The test results from the correlations, suggested in well-known articles, were compared with the experimental data, where the Kosaz et al. proposed correlation was showing well fit with the experimental data having absolute error of 9.86%. In this investigation, the new correlations for the heat transfer coefficient for the heat transfer coefficient and the critical heat flux have been proposed by taking into account the effect of the vapor quality.
机译:在本文中,在27通道,421μm液压和40mm长的微通道实验设置中研究了两相流中R134A流体中的传热系数和临界热通量。在1000kgm〜(-2)S〜(-1)的恒定质量通量下收集数据,饱和入口温度范围为20-28°C,进气蒸气质量范围为0.01-0.20。热通量在250kWm〜(-2)处引发,逐渐增加,直至达到临界热通量(CHF)。进样口蒸气质量,饱和入口温度和热通量对传热系数和临界热通量的影响并进行图形化。可以观察到CHF随着饱和入口温度和入口蒸气质量的增加而降低。然而,CHF点的传热系数随着饱和温度的增加而增加,并且CHF点处的传热系数随着蒸汽质量的增加而降低。在众所周知的文章中提出的相关性来自相关性的测试结果,与实验数据进行比较,其中kosaz等人。提出的相关性表现出良好的符合实验数据,绝对误差为9.86%。在该研究中,通过考虑蒸汽质量的影响,提出了传热系数的传热系数和临界热通量的新相关性。

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  • 来源
    《International Communications in Heat and Mass Transfer》 |2020年第10期|104768.1-104768.14|共14页
  • 作者单位

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

    Thermodynamics Division Department of Mechanical Engineering Faculty of Engineering Erzincan University Erzincan 24100 Turkey;

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

    Fluid Mechanics Thermal Engineering and Multiphase Flow Research bob. (FUTURE) Department of Mechanical Engineering Faculty of Engineering King Mongkut's University of Technology Thonburi (KMUTT) Bangkok 10140 Thailand;

    Department of Mechanical Engineering Faculty of Engineering University of Malaya 50603 Kuala Lumpur Malaysia;

    Fluid Mechanics Thermal Engineering and Multiphase Flow Research bob. (FUTURE) Department of Mechanical Engineering Faculty of Engineering King Mongkut's University of Technology Thonburi (KMUTT) Bangkok 10140 Thailand National Science and Technology Development Agency (NSTDA) Pathum Thani 12120 Thailand;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Boiling; CHF; Two phase flow; Criticical heat flux; MicroChannel; R134a;

    机译:沸腾;CHF;两相流动;临界热量;微通道;R134A;

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