Comparison of the Eulerian and Lagrangian approaches in studying the flow pattern and heat transfer in a separated axisymmetric turbulent gas-droplet flow
Eulerian and Lagrangian approaches;
separated gas-droplet flow;
turbulence;
dispersion and evaporation of droplets;
FACING STEP FLOW;
PARTICLE FLOWS;
2-PHASE FLOW;
EXPANSION;
EQUATION;
LADEN;
MODEL;
D O I:
10.1134/S002189441304010X
中图分类号:
O3 [力学];
学科分类号:
08 ;
0801 ;
摘要:
The Eulerian and Lagrangian approaches are used to perform a numerical study of the disperse phase dynamics, turbulence, and heat transfer in a turbulent gas-droplet flow in a tube with sudden expansion with the following ranges of two-phase flow parameters: initial droplet size d (1) = 0-200 A mu m and mass fraction of droplets M (L1) = 0-0.1. The main difference between the Eulerian and Lagrangian approaches is the difference in the predictions of the droplet mass fraction: the Eulerian approach predicts a smaller value of M (L) both in the recirculation region and in the flow core (the difference reaches 15-20%). It is demonstrated that the disperse phase mass fraction calculated by the Lagrangian approach agrees better with measured data than the corresponding value predicted by the Eulerian approach.