首页> 外文学位 >Heat transfer, pressure drop and void fraction in two-phase, two-component flow in a vertical tube.
【24h】

Heat transfer, pressure drop and void fraction in two-phase, two-component flow in a vertical tube.

机译:垂直管中两相,两成分流中的传热,压降和空隙率。

获取原文
获取原文并翻译 | 示例

摘要

There are very few data existing in two-phase, two-component flow where heat transfer, pressure drop and void fraction have all been measured under the same conditions. Such data are very valuable for two-phase heat-transfer model development and for testing existing heat-transfer models or correlations requiring frictional pressure drop (or wall shear stress) and/or void fraction. An experiment was performed which adds markedly to the available data of the type described in terms of the range of gas and liquid flow rates and liquid Prandtl number. Heat transfer and pressure drop measurements were taken in a vertical 11.68-mm i.d. tube for two-phase (gas-liquid) flows covering a wide range of conditions. Mean void fraction measurements were taken, using quick-closing valves, in a 12.7-mm i.d. tube matching very closely pressures, temperatures, gas-phase superficial velocities and liquid-phase superficial velocities to those used in the heat-transfer and pressure-drop experiments. The gas phase was air while water and two aqueous solutions of glycerine (59 and 82% by mass) were used as the liquid phase. In the two-phase experiments the liquid Prandtl number varied from 6 to 766, the superficial liquid velocity from 0.05 to 8.5 m/s, and the superficial gas velocity from 0.02 to 119 m/s. The measured two-phase heat-transfer coefficients varied by a factor of approximately 1000, the two-phase frictional pressure drop ranged from small negative values (in slug flow) to 93 kPa and the void fraction ranged from 0.01 to 0.99; the flow patterns observed included bubble, slug, churn, annular, froth, the various transitions and annular-mist. Existing heat-transfer models or correlations requiring frictional pressure drop (or wall shear stress) and/or void fraction were: tested against the present data for mean heat-transfer coefficients. It was found that the methods with more restrictions (in terms of the applicable range of void fraction, liquid Prandtl number or liquid superficial Reynolds number) give better predictions. Among the most restrictive methods, the method of Drucker et al. is recommended. A method less restrictive, but still giving good predictions, is the Liquid Acceleration Model for superficial liquid Reynolds numbers greater than 2000. For local heat-transfer coefficients, a method proposed by Vijay, where Spalding's single-phase boundary-layer theory was adapted to the two-phase case, was tested considering the flow patterns individually and various methods of calculating two-phase properties. Good predictions were obtained for the case of bubble and froth flows when liquid properties were used as the two-phase mixture properties.
机译:在两相,两组分流中,几乎没有数据可以在相同条件下测量传热,压降和空隙率。这样的数据对于两相传热模型的开发以及测试现有的传热模型或需要摩擦压降(或壁切应力)和/或空隙率的相关性非常有价值。进行了一项实验,该实验显着地增加了根据气体和液体流速范围以及液体普朗特数描述的类型的可用数据。传热和压降测量是在垂直的11.68-mm内径中进行的。两相(气-液)流管适用于各种情况。使用快速关闭阀在12.7毫米内径中进行平均空隙率测量。该管的压力,温度,气相表观速度和液相表观速度与传热和压降实验中使用的非常接近。气相是空气,而水和两种甘油水溶液(59和82质量%)用作液相。在两阶段实验中,液体普朗特数在6到766之间变化,表观液体速度在0.05到8.5 m / s之间,表观气体速度在0.02到119 m / s之间。测得的两相传热系数相差约1000倍,两相摩擦压降范围从小的负值(在团状流中)到93 kPa,空隙率从0.01到0.99。观察到的流动模式包括气泡,团块,搅动,环形,泡沫,各种过渡和环形雾。现有的传热模型或需要摩擦压降(或壁面剪应力)和/或空隙率的相关性:根据当前数据测试了平均传热系数。发现具有更多限制的方法(就空隙率,液体普朗特数或液体表面雷诺数的适用范围而言)给出了更好的预测。在最严格的方法中,Drucker等人的方法。被推荐。对于表面大于2000的表面雷诺数的液体加速模型,一种方法的限制较少,但仍能给出良好的预测。对于局部传热系数,由Vijay提出的一种方法,采用了Spalding的单相边界层理论,测试了两相情况,分别考虑了流型和计算两相特性的各种方法。当将液体性质用作两相混合物性质时,对于气泡和泡沫流动的情况获得了良好的预测。

著录项

  • 作者

    Sujumnong, Manit.;

  • 作者单位

    The University of Manitoba (Canada).;

  • 授予单位 The University of Manitoba (Canada).;
  • 学科 Engineering Mechanical.; Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 352 p.
  • 总页数 352
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;等离子体物理学;
  • 关键词

  • 入库时间 2022-08-17 11:48:36

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