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Fundamental Issues Related to Flow Boiling and Two-Phase Flow Patterns in Microchannels - Experimental Challenges and Opportunities

机译:与微通道流沸腾和两相流模式相关的基本问题 - 实验挑战和机遇

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摘要

Flow boiling heat transfer in microchannels is used today in many diverse applications. The previous studies addressing the effect of channel size, heat flux, vapor quality, and mass flux on heat transfer during flow boiling are reviewed in the present paper. The relationship between flow characteristics and flow boiling heat transfer was studied experimentally for refrigerant R-C318 at moderate reduced pressures where the contribution of nucleate boiling is decisive. Flow boiling mechanisms were identified using an annular microchannel with transparent outer wall for successive visualization of boiling. The considerable suppression of nucleate boiling heat transfer was observed at transition to annular flow and explained by formation of a liquid flow with thin film and dry spots. A general equation for prediction of two-phase flow boiling heat transfer inside the circular, annular, and rectangular microchannels is proposed and verified using the experimental data. This equation accounts for the nucleate boiling suppression, forced convection, and thin film evaporative heat transfer in the form that allows to distinguish more clearly the contribution of each mechanism of heat transfer under the conditions, when it is predominant. A new approach for prediction of transition to the annular flow is proposed and verified, using the experimental data.
机译:在许多不同的应用中,今天使用微通道的流沸热传热。在本文中回顾了解决通道尺寸,热通量,蒸汽质量和质量通量对流动沸腾过程中的热传递效果的先前研究。实验对制冷剂R-C318的流动特性和流沸腾热传递之间的关系在中等降低的压力下,核心沸腾的贡献是决定性的。使用具有透明外壁的环形微通道识别流沸机制,用于连续可视化沸腾。在过渡到环形流动时观察到核心沸腾热传递的相当大的抑制,并通过形成薄膜和干斑的液体流动解释。提出了一种预测圆形,环形和矩形微通道内的两相流沸腾热传递的一般方程,并使用实验数据验证。该方程占核心沸腾抑制,强制对流和薄膜蒸发热传递的形式,允许更清楚地区分各种机制在条件下的每种机制的贡献,当它是主要的。提出了一种使用实验数据来预测到环形流动过渡的新方法。

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  • 来源
    《Heat Transfer Engineering》 |2019年第12期|711-724|共14页
  • 作者

    Kuznetsov Vladimir V.;

  • 作者单位

    SB RAS Kutateladze Inst Thermophys 1 Lavrentiev Ave Novosibirsk 630090 Russia|Novosibirsk State Univ Novosibirsk Russia;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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