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Theoretical analysis and modeling of flow instability in a mini-channel evaporator

机译:小通道蒸发器内流动不稳定性的理论分析与建模

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摘要

Pressure drop oscillations in micro/mini-channel evaporators and corresponding flow instabilities, temperature fluctuations have received copious of investigations during the last decade. This paper presents a transient lumped model and theoretical analysis for the pressure drop oscillation in a mini-channel evaporator. Based on the model, the effects of saturation temperature, heat and mass flux on the oscillation are investigated. Experimental studies of ammonia and water flow boiling instabilities are conducted. The mini-channel evaporator consists of 4 parallel 1 × 1.1 mm channels with a uniformly heated length of 250 mm. A nonlinear system stability analysis is presented. Apart from upstream compressibility, the inlet sub-cooling degree has a significant effect on the pressure drop oscillation. A maximum allowable inlet sub-cooling degree causing no pressure drop oscillation is proposed. The oscillation period is comprehensively studied, and it is found that the upstream compressible volume required sustaining the oscillation decreases with channel length/diameter ratio dramatically. Despite this, the internal compressibility of the long channel is insufficient to sustain the pressure drop oscillation. In addition, the mass flow rate of the upstream pump can greatly affect the oscillation and the flow boiling system may show different behaviors due to the variation of upstream mass flow rate.
机译:在过去的十年中,微/微型通道蒸发器中的压降振荡以及相应的流量不稳定性,温度波动受到了大量的研究。本文介绍了一个瞬态集总模型和理论分析的微通道蒸发器中的压降振荡。基于该模型,研究了饱和温度,热量和质量通量对振荡的影响。进行了氨和水流沸腾不稳定性的实验研究。微型通道蒸发器由4个平行的1×1.1 mm通道组成,均匀加热长度为250 mm。提出了非线性系统稳定性分析。除上游可压缩性外,入口过冷度对压降振荡也有重要影响。提出了最大允许入口过冷度,不会引起压降振荡。对振动周期进行了全面的研究,发现维持振动所需的上游可压缩体积随通道长度/直径比而急剧减小。尽管如此,长通道的内部可压缩性不足以维持压降振荡。此外,上游泵的质量流量会极大地影响振荡,并且由于上游质量流量的变化,沸腾系统可能会表现出不同的行为。

著录项

  • 来源
  • 作者单位

    Institute of Refrigeration and Cryogenics, School of Mechanical Engineering, Shanghai jiao Tong University, Shanghai 200240, China;

    Institute of Refrigeration and Cryogenics, School of Mechanical Engineering, Shanghai jiao Tong University, Shanghai 200240, China;

    Beijing Key Laboratory of Space Thermal Control Technology, Beijing Institute of Spacecraft System Engineering, Beijing 100094, China;

    Beijing Key Laboratory of Space Thermal Control Technology, Beijing Institute of Spacecraft System Engineering, Beijing 100094, China;

    Institute of Refrigeration and Cryogenics, School of Mechanical Engineering, Shanghai jiao Tong University, Shanghai 200240, China;

  • 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

    Pressure drop oscillation; MicroChannel; Flow boiling instability; Ammonia;

    机译:压降振荡;微通道;流沸腾不稳定性;氨;

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