首页> 外文会议>6th international conference on nanochannels, microchannels and minichannels 2008 >FLOW BOILING HEAT TRANSFER AND TWO-PHASE FLOW PRESSURE DROP IN THIN- RECTANGULAR CHANNELS
【24h】

FLOW BOILING HEAT TRANSFER AND TWO-PHASE FLOW PRESSURE DROP IN THIN- RECTANGULAR CHANNELS

机译:矩形矩形通道内的沸腾传热和两相流压降

获取原文
获取原文并翻译 | 示例

摘要

Heat transfer and pressure drop of single- and two-phase flow in thin-rectangular channels of the width of 10 mm have been examined. The gap clearance 5 of the flow channel covered a range from 0.6 mm to 0.1 mm. In the water single-phase flow condition, the narrowness effect came out around 5 = 0.37 ~ 0.35 mm. Below that value, the friction factor became lower than the value of the usual size in the laminar flow region and the transition from the laminar flow to the turbulent flow was delayed. The Nusselt number also showed dependency on the Reynolds number even in the laminar flow region and became lower than the value for the usual size over the whole Reynolds number region. Bubbly flow, slug flow, semi annular flow and annular flow were observed in boiling flow. The flow pattern transition agreed well with the Baker flow pattern map for the usual size. The Martinelli and Nelson method for the two-phase pressure drop of the boiling flow predicted well present experimental results. Boiling was dominant during the forced flow boiling. The heat transfer coefficient of the boiling flow was larger than the value of the usual sized flow channel. The critical heat flux was lower than the value of the usual sized flow channel. The Koizumi and Ueda method predicted well the trend of the critical heat flux of the present experiments.
机译:已经研究了宽度为10 mm的细矩形通道中单相和两相流的传热和压降。流道的间隙5覆盖从0.6mm到0.1mm的范围。在水单相流动条件下,狭窄效应出现在5 = 0.37〜0.35 mm附近。低于该值,摩擦系数变得低于层流区域中通常尺寸的值,并且延迟了从层流向湍流的过渡。即使在层流区域中,努塞尔数也显示出对雷诺数的依赖性,并且在整个雷诺数区域上都变得低于通常尺寸的值。在沸腾流中观察到气泡流,团状流,半环形流和环形流。对于常规尺寸,流型转变与贝克流型图非常吻合。马蒂内利和纳尔逊方法对沸腾流的两相压降的预测很好地提供了实验结果。在强制流沸腾过程中,沸腾占主导。沸腾流的传热系数大于通常尺寸的流道的值。临界热通量低于通常尺寸的流道的值。小泉和上田方法很好地预测了本实验的临界热通量趋势。

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