首页> 外文期刊>Journal of Fluid Science and Technology >Prediction of Gas-Liquid Two-Phase Slug Flow Characteristics in Vertical Small Diameter Pipes by a One-Dimensional Two-Fluids Model
【24h】

Prediction of Gas-Liquid Two-Phase Slug Flow Characteristics in Vertical Small Diameter Pipes by a One-Dimensional Two-Fluids Model

机译:一维两流体模型预测立式小直径管道中气液两相段塞流动特性

获取原文
       

摘要

The purpose of this study is to improve a two-fluid model applicable to gas-liquid two-phase slug flows in small diameter pipes. Experimental data on void fraction and frictional pressure drop were obtained for vertical upward slug flow in 5 and 9 mm i.d. circular pipes, and those on the interfacial friction force were obtained by substituting the above data into an equation derived from the one-dimensional two-fluids model. The test liquids were a Poly-oxy-ethylene lauryl ether water solution, a 72 wt% glycerin water solution and a tap water at 30 °C, while the test gas was air at near atmospheric pressure. In order to study the effects of liquid properties, surface tension of the test liquids against air was varied from 0.042 to 0.071 N/m, viscosity was 0.797 to 19.6 mPa·s, and density was 996 to 1184 kg/m~(3). The range of volumetric flux of the liquid was 0.1 to 2.0 m/s, and that of the gas was 0.1 to 22 m/s. In addition, the drag coefficient data of the large bubble was determined from the data on the bubble diameter, the respective void fractions of the liquid slug section and the large bubble one, the interfacial friction force and the length ratio of the large bubble to the total of the liquid slug and the large bubble. These data were used to validate representative two-fluid model codes. Since the prediction by the codes did not fit well the present data, a new drag coefficient correlation for the large bubble was proposed using 5 dimensionless parameters. The predictions by the new correlation and familiar ones in literatures have been tested against the present data, and the applicability of the new one has been demonstrated.
机译:这项研究的目的是改进适用于小直径管道中气液两相段塞流的两流体模型。在5mm和9mm内径条件下,垂直向上的弹团流获得了空隙率和摩擦压降的实验数据。通过将上述数据代入一维两流体模型得出的方程,可以得到圆形管道以及与界面摩擦力有关的管道。测试液体为聚氧乙烯月桂基醚水溶液,72 wt%甘油水溶液和30°C的自来水,而测试气体为接近大气压的空气。为了研究液体性能的影响,测试液体对空气的表面张力在0.042至0.071 N / m之间变化,粘度为0.797至19.6 mPa·s,密度为996至1184 kg / m〜(3)。 。液体的体积通量范围为0.1至2.0m / s,气体的体积通量范围为0.1至22m / s。另外,大气泡的阻力系数数据是由以下数据确定的:气泡直径,液塞段和大气泡各自的空隙率,界面摩擦力以及大气泡与气泡的长度比。总共有液团和大气泡。这些数据用于验证代表性的两流体模型代码。由于通过代码进行的预测与当前数据不太吻合,因此提出了使用5个无量纲参数的新的大气泡阻力系数相关性。针对目前的数据,对新的相关性和文献中熟悉的预测进行了检验,并证明了新的相关性。

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