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On the Relation between Nucleation Site Density and Critical Heat Flux of Pool Boiling

机译:池沸腾成核点密度与临界热通量的关系

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摘要

It is traditionally accepted that the critical heat flux (CHF) decreases with increasing nucleation site density (NSD). However, such a CHF-NSD relation was no longer observed in the BETA-B experiment performed on nano-film heaters; instead the increase of NSD resulted in a gain in CHF. To address this seeming contradiction in the relation between critical heat flux and nucleation site density, the present work employed probabilistic analysis to reveal the different tendencies. A concept of effective NSD was proposed, which concerns the active nucleation sites appear within a bubble lifetime, and the resulting bubbles have the chance of direct interaction. We assumed that the boiling crisis on a heater surface is mainly induced by two mechanisms: dry spot expanding in isolated bubble regime for low-NSD surface, coalescence of dry spots under multiple bubbles in fully developed nucleate boiling regime for high-NSD surface, or a combination of the two in the transition regime for medium-NSD surface. Accordingly, we estimated the critical heat flux of each boiling regime at which the boiling crisis occurs. The result indicated that there is a threshold of nucleation site density below which the increase of NSD is contributing to CHF enhancement, while the trend is inverted beyond the threshold.
机译:传统上,临界热通量(CHF)随着成核位点密度(NSD)的增加而降低。但是,在纳米膜加热器上进行的BETA-B实验中不再观察到这种CHF-NSD关系。相反,NSD的增加导致瑞士法郎的增加。为了解决临界热通量与成核位置密度之间关系的这种看似矛盾,本研究采用概率分析来揭示不同的趋势。提出了有效的NSD概念,该概念涉及气泡寿命内出现的活性成核位点,并且所产生的气泡具有直接相互作用的机会。我们假设加热器表面的沸腾危机主要是由以下两种机制引起的:低NSD表面在孤立气泡状态下的干点扩展,高NSD表面完全发展的成核沸腾状态下多个气泡下的干点聚结,或中NSD表面过渡机制中两者的组合。因此,我们估计了发生沸腾危机的每个沸腾状态的临界热通量。结果表明存在成核位点密度的阈值,低于该阈值时,NSD的增加有助于CHF的增强,而趋势则超过阈值而反转。

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  • 来源
    《Heat Transfer Engineering》 |2018年第20期|1498-1506|共9页
  • 作者

  • 作者单位

    China Univ Petr Beijing Key Lab Proc Fluid Filtrat & Separat Beijing Peoples R China|KTH Dept Phys Stockholm Sweden;

    Shanghai Jiao Tong Univ Sch Nucl Sci & Engn Shanghai Peoples R China;

    Xi An Jiao Tong Univ State Key Lab Multiphase Flow Power Engn Xian Shaanxi Peoples R China;

    KTH Dept Phys Stockholm Sweden;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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