>> English >> Current Issue >> 正文
Gas flow characteristics in micro and nano pores and its LBM numerical simulation
Author: WANG Dengke,YUAN Mingyu,LI Zhen,ZHANG Qingqing,SHANG Zhengjie,FU Jianhua,WANG Yuexu,TANG Jiahao,etal Time: 2024-03-25 Counts:

doi:10.16186/j.cnki.1673-9787.2023010023

Received:2023/01/13

Revised:2023/03/02

Published:2024/03/25

Gas flow characteristics in micro and nano pores and its LBM numerical simulation

WANG Dengke123YUAN Mingyu12LI Zhen4ZHANG Qingqing5SHANG Zhengjie6FU Jianhua6WANG Yuexu6TANG Jiahao12GUO Yujie12PANG Xiaofei12

1.State Key Laboratory Cultivation Base for Gas Geology and Gas ControlHenan Polytechnic UniversityJiaozuo454000HenanChina2.Collgeg of Safety Science and EngineeringHenan Polytechnic UniversityJiaozuo454000HenanChina3.Collaborative Innovation Center of Coal Work Safety and Clean High Efficiency UtilizationJiaozuo 454000HenanChina4.College of Safety and Emergency Management EngineeringTaiyuan University of TechnologyTaiyuan 030024ShanxiChina5.China Coal Technology and Engineering Group Shenyang Research Institute Co.Ltd.Fushun 113122LiaoningChina6.Zhengzhou Coal IndustryGroupCo.Ltd.Zhengzhou 450000HenanChina

Abstract: Objectives It is important to study the flow characteristics of gas in coal seams to reveal the mechanism of coal seam gas storage and transport characteristics.The number and structure of micro and nanoscale pores in coal are very complexand to study the flow characteristics of coal seam gas in micro and nanoscale pores Methods homogeneous nanoporous carbon films were tested and their pore size and porosity were qualitativelyand quantitatively analyzed by scanning electron microscopy experimentsthe experimental study of gas flow in micro and nano pores was carried out by using a nano-scale gas flow characterization experimental device. Results A more accurate characterization of the flow of gases within micro- and nano-pores is obtained by comparing the conventional Darcy percolation model with a model applicable to gas flow at the micro-scale.The apparent permeability of nanoporous carbon films decreases with increasing inlet pressure in a negatively correlated linear lawwhile the gas permeability decreases with decreasing Knudsen number in a positively correlated linear lawindicating that the flow of gas at the micro- and nano-scale does not conform to the conventional Darcys lawand the slip effect and gas diffusion cannot be neglected.The lattice Boltzmann method is used to simulate the gas flow at different inlet pressures to obtain the outlet gas flow rate at different gas pressures.When compared with the experimental resultsthe average error of LBM simulation results is 8.25%which is in good agreement with the test resultsindicating that LBM numerical simulations effectively reveal the flow characteristics of gases at the micro- and nano-scale. Conclusions The results of the study can provide a reference for future research on gas flow mechanisms and flow patterns in coal seams.

Key words:micro-nanoporesnanoporous carbongas flow characteristicsLBM simulationLBM-D2Q9 model

 

Lastest