Experimental study on the law of transitional gas flow in porous media

Abstract There are many nanoscale pores in deep low permeability coal seams. The flow of coalbed methane (gas) in nanoscale pores belongs to the gas flow in porous media with medium and high Knudsen numbers. Its flow mechanism is one of the key unsolved scientific problems. In order to explore the g...

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Main Authors: Jian Miao, Haojie Jia, Peibo Li, Guanzheng Feng
Format: Article
Language:English
Published: SpringerOpen 2022-12-01
Series:Journal of Petroleum Exploration and Production Technology
Subjects:
Online Access:https://doi.org/10.1007/s13202-022-01590-2
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author Jian Miao
Haojie Jia
Peibo Li
Guanzheng Feng
author_facet Jian Miao
Haojie Jia
Peibo Li
Guanzheng Feng
author_sort Jian Miao
collection DOAJ
description Abstract There are many nanoscale pores in deep low permeability coal seams. The flow of coalbed methane (gas) in nanoscale pores belongs to the gas flow in porous media with medium and high Knudsen numbers. Its flow mechanism is one of the key unsolved scientific problems. In order to explore the gas transport law in nanopores of coal, a gas transport model based on microscopic boundary restriction was adopted to describe the gas flow law, and its rationality was verified by experimental data. The Field Emission Scanning Electron Microscope was used to scan the nanopores of customized anodized aluminum membrane. Then, the Maximally Stable Extremal Regions (MSER) algorithm of MATLAB and binarization algorithm were employed to quantify the pore structure parameters (equivalent pore size and porosity) of the membrane nanoscale pores. Finally, PMI micro-flow permeability tester was used to carry out different rarefied degree gas penetration experiments through anodized aluminum membranes, and the adopted gas transport model was verified. The results show that the binarization method is more accurate to characterize sample whose theoretical pore sizes are 20–35 nm, while MSER characterizes samples whose theoretical pore sizes are 110–150 nm and 200–300 nm more accurately. In other words, binarization method is more accurate for characterizing mesopores, while MSER algorithm is more accurate for macropores. The results have important reference value for more accurate extraction of nanopore parameters of porous media. Compared with traditional gas transport model, the adopted model considering the microscopic boundary restriction in this paper is closer to the experimental results. Moreover, it is suitable for describing the gas flow law in multiscale nanopores. The study provided important guiding significance for ascertaining the gas migration law in low permeability coal seam, improving the prediction accuracy of gas extraction and taking effective measures to increase production. The research results can further enrich the theoretical system of gas transport in coal, which is conducive to the efficient gas extraction, and is of great significance to promote the realization of carbon peak and carbon neutrality.
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spelling doaj.art-20d005d3b7bc4420a318d0cdcf1279732023-03-22T10:29:33ZengSpringerOpenJournal of Petroleum Exploration and Production Technology2190-05582190-05662022-12-0113272373310.1007/s13202-022-01590-2Experimental study on the law of transitional gas flow in porous mediaJian Miao0Haojie Jia1Peibo Li2Guanzheng Feng3School of Safety Science and Engineering, Henan Polytechnic UniversitySchool of Safety Science and Engineering, Henan Polytechnic UniversityState Key Laboratory for Geomechanics and Deep Underground Engineering, China University of Mining and TechnologyConstruction Third Engineering Bureau, The Second Construction Engineering Limited Company of ChinaAbstract There are many nanoscale pores in deep low permeability coal seams. The flow of coalbed methane (gas) in nanoscale pores belongs to the gas flow in porous media with medium and high Knudsen numbers. Its flow mechanism is one of the key unsolved scientific problems. In order to explore the gas transport law in nanopores of coal, a gas transport model based on microscopic boundary restriction was adopted to describe the gas flow law, and its rationality was verified by experimental data. The Field Emission Scanning Electron Microscope was used to scan the nanopores of customized anodized aluminum membrane. Then, the Maximally Stable Extremal Regions (MSER) algorithm of MATLAB and binarization algorithm were employed to quantify the pore structure parameters (equivalent pore size and porosity) of the membrane nanoscale pores. Finally, PMI micro-flow permeability tester was used to carry out different rarefied degree gas penetration experiments through anodized aluminum membranes, and the adopted gas transport model was verified. The results show that the binarization method is more accurate to characterize sample whose theoretical pore sizes are 20–35 nm, while MSER characterizes samples whose theoretical pore sizes are 110–150 nm and 200–300 nm more accurately. In other words, binarization method is more accurate for characterizing mesopores, while MSER algorithm is more accurate for macropores. The results have important reference value for more accurate extraction of nanopore parameters of porous media. Compared with traditional gas transport model, the adopted model considering the microscopic boundary restriction in this paper is closer to the experimental results. Moreover, it is suitable for describing the gas flow law in multiscale nanopores. The study provided important guiding significance for ascertaining the gas migration law in low permeability coal seam, improving the prediction accuracy of gas extraction and taking effective measures to increase production. The research results can further enrich the theoretical system of gas transport in coal, which is conducive to the efficient gas extraction, and is of great significance to promote the realization of carbon peak and carbon neutrality.https://doi.org/10.1007/s13202-022-01590-2Transitional flowMicroscopic boundary restrictionMaximally Stable Extremal RegionsBinarization algorithm
spellingShingle Jian Miao
Haojie Jia
Peibo Li
Guanzheng Feng
Experimental study on the law of transitional gas flow in porous media
Journal of Petroleum Exploration and Production Technology
Transitional flow
Microscopic boundary restriction
Maximally Stable Extremal Regions
Binarization algorithm
title Experimental study on the law of transitional gas flow in porous media
title_full Experimental study on the law of transitional gas flow in porous media
title_fullStr Experimental study on the law of transitional gas flow in porous media
title_full_unstemmed Experimental study on the law of transitional gas flow in porous media
title_short Experimental study on the law of transitional gas flow in porous media
title_sort experimental study on the law of transitional gas flow in porous media
topic Transitional flow
Microscopic boundary restriction
Maximally Stable Extremal Regions
Binarization algorithm
url https://doi.org/10.1007/s13202-022-01590-2
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AT peiboli experimentalstudyonthelawoftransitionalgasflowinporousmedia
AT guanzhengfeng experimentalstudyonthelawoftransitionalgasflowinporousmedia