【24h】

Heat transfer enhancement with laminar liquid-gas slug flows

机译:层状液-气塞流增强传热

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

This paper investigates a two-phase non-boiling slug flow regime for the purposes of enhancing heat transfer in microchannel heat sinks or compact heat exchangers. The primary focus is upon understanding the mechanisms leading to enhanced heat transfer and also the effect of utilizing different Prandtl number fluids. Experiments were conducted using Infrared thermography and results presented in terms of Nusselt number versus inverse Graetz parameter. These results spanned both the thermal entrance and fully developed flow regions. Nusselt numbers enhancements were observed throughout when data was reduced to account for void fraction. The maximum heat transfer rates observed were up to an order of magnitude greater than those in equivalent single phase flows. However, the extent of enhancement observed was strongly dependent on ratio of slug length to channel dimension with shorter liquid slugs providing optimum performance. It was also highlighted that the thermal entrance region for the slug flow regime analyzed was independent of flow Reynolds number and instead was characterized by the liquid slug length alone. This was verified through Nusselt number measurements over inverse Graetz number ranges from 104 to 100 and slug length to channel diameter ratio from 1 to 32. The results obtained also highlight some interesting variations between the transitions from entrance to fully developed flow when using different Prandtl number fluids. Low Prandtl number fluids show a strong oscillation in heat transfer rates resulting from an internal circulation within liquid slugs however, these diminished significantly when the high Prandtl number fluids were employed. Overall, this study highlights the mechanisms which offer significantly heat transfer enhancements in heat exchange devices employing two-phase gas-liquid flows without boiling.
机译:本文研究了两相非沸腾团状流态,以增强微通道散热器或紧凑型热交换器中的传热。主要重点是理解导致传热增强的机理,以及利用不同普朗特数流体的效果。实验是使用红外热成像技术进行的,结果以Nusselt数与Graetz逆参数的关系表示。这些结果涵盖了热入口区域和充分发展的流动区域。整个数据减少以说明空隙率时,观察到Nusselt数增强。观察到的最大传热速率比等效单相流中的传热速率高一个数量级。但是,观察到的增强程度很大程度上取决于段塞长度与通道尺寸的比率,较短的段塞可提供最佳性能。还强调指出,所分析的团状流态的热入口区域与流动雷诺数无关,而是仅由液体团状体长度来表征。通过在10 -到100的反Graetz数范围内的Nusselt数测量以及从1到32的段长与通道直径之比进行的Nusselt数测量验证了这一点。所获得的结果也突出了从入口过渡之间的一些有趣变化当使用不同的Prandtl数的流体时,流量可以完全发展。低Prandtl数流体显示出由于液体团块内部的内部循环而引起的传热速率的强烈振荡,但是,当使用高Prandtl数流体时,这些显着降低。总的来说,这项研究着重指出了在不沸腾的两相气-液流的热交换装置中,显着提高传热效率的机理。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号