Mass transfer mechanism and relationship of gas–liquid annular flow in a microfluidic cross-junction device
Full Length Article|Updated:2026-01-06
|
Mass transfer mechanism and relationship of gas–liquid annular flow in a microfluidic cross-junction device
Chinese Journal of Chemical EngineeringVol. 64, Issue 12, Pages: 37-48(2023)
Affiliations:
1. Shanxi Key Laboratory of Chemical Product Engineering, College of Chemical Engineering and Technology, Taiyuan University of Technology,Taiyuan,China,030024
2. Shanxi Coking Coal in Yuncheng Salt Refco Group Ltd.,Yuncheng,China,044000
Author bio:
Funds:
DOI:
CLC:
Published:2023
Accepted:
Scan QR Code
Xin Xu, Na Xu, Wei Zhang, Junwen Wang, Yao Li, Chen Yang. Mass transfer mechanism and relationship of gas–liquid annular flow in a microfluidic cross-junction device[J]. Chinese Journal of Chemical Engineering, 2023, 64(12): 37-48.
DOI:
Xin Xu, Na Xu, Wei Zhang, Junwen Wang, Yao Li, Chen Yang. Mass transfer mechanism and relationship of gas–liquid annular flow in a microfluidic cross-junction device[J]. Chinese Journal of Chemical Engineering, 2023, 64(12): 37-48.DOI:
Mass transfer mechanism and relationship of gas–liquid annular flow in a microfluidic cross-junction device
摘要
Abstract
Mass transfer performance of gas–liquid two-phase flow at microscale is the basis of application of microreactor in gas–liquid reaction systems. At present
few researches on the mass transfer property of annular flow have been reported. Therefore
the mass transfer mechanism and relationship of gas–liquid annular flow in a microfluidic cross-junction device are studied in the present study. We find that the main factors
i.e.
flow pattern
liquid film thickness
liquid hydraulic retention time
phase interface fluctuation
and gas flow vorticity
which influence the flow mass transfer property
are directly affected both by gas and liquid flow velocities. But the influences of gas and liquid velocities on different mass transfer influencing factors are different. Thereout
the fitting relationships between gas and liquid flow velocities and mass transfer influencing factors are established. By comparing the results from calculations using fitting equations and simulations
it shows that the fitting equations have relatively high degrees of accuracy. Finally
the Pareto front
namely the Pareto optimal solution set
of gas and liquid velocity conditions for the best flow mass transfer property is obtain
ed using the method of multi-objective particle swarm optimization. It is proved that the mass transfer property of the gas–liquid two-phase flow can be obviously enhanced under the guidance of the obtained Pareto optimal solution set through experimental verification.
关键词
Keywords
references
The trial reading is over, you can activate your VIP account to continue reading.
Mechanochemical preparation and properties of B-N doped carbon materials based on calcium carbide
Preparation of novel hierarchical porous Fe2O3/SBA-15 with microporous plugs from coal gasification fine residue and its degradation of phenol in coal chemical wastewater
Bubble dispersion intensification via flow guidance and drainage in a bubble column with internals
Revealing critical factors in lignite-water interactions: From atomic to macroscopic
CO2 leakage behavior from CO2 hydrate-liquid CO2-seawater coexistence system in unsealed sediments