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Fractal characteristics of shale pore structure and its influence on seepage flow

The migration law of shale gas has a significant influence on the seepage characteristics of shale, and the flow of the gas is closely related to the pore structure. To explore the influence of shale pore parameters on permeability in different diffusion zones, the pore structure of the shale in the...

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Autores principales: Wang, Shengwei, Li, Xijian, Xue, Haiteng, Shen, Zhonghui, Chen, Liuyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8131944/
https://www.ncbi.nlm.nih.gov/pubmed/34017601
http://dx.doi.org/10.1098/rsos.202271
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author Wang, Shengwei
Li, Xijian
Xue, Haiteng
Shen, Zhonghui
Chen, Liuyu
author_facet Wang, Shengwei
Li, Xijian
Xue, Haiteng
Shen, Zhonghui
Chen, Liuyu
author_sort Wang, Shengwei
collection PubMed
description The migration law of shale gas has a significant influence on the seepage characteristics of shale, and the flow of the gas is closely related to the pore structure. To explore the influence of shale pore parameters on permeability in different diffusion zones, the pore structure of the shale in the Niutitang Formation in Guizhou, China, was analysed based on liquid nitrogen adsorption experiments and nuclear magnetic resonance experiments. The relationship among fractal dimension, organic carbon content (TOC) and BET-specific surface area was analysed based on the fractal dimension of shale pores calculated using the Frenkel–Halsey–Hill model. Shale permeability was calculated using the Knudsen number (Kn) and permeability equation, and the influence of the fractal dimension and porosity in different diffusion zones on shale permeability was analysed. Previous studies have shown that: (i) the pores of shale in the Niutitang Formation, Guizhou are mainly distributed within 1–100 nm, with a small total pore volume per unit mass, average pore diameter, large BET specific surface area and porosity; (ii) fractal dimension has a negative correlation with average pore diameter and TOC content and a quadratic relationship with BET specific surface area; and (iii) permeability has a positive correlation with Kn, porosity and fractal dimension. In the transitional diffusion zone, fractal dimension and porosity have a significant impact on permeability. In the Knudsen diffusion zone, porosity has no obvious effect on permeability. The methodologies and results presented will enable more accurate characterization of the complexity of pore structures of porous media and allow further understanding of the seepage law of shale gas.
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spelling pubmed-81319442021-05-19 Fractal characteristics of shale pore structure and its influence on seepage flow Wang, Shengwei Li, Xijian Xue, Haiteng Shen, Zhonghui Chen, Liuyu R Soc Open Sci Earth and Environmental Science The migration law of shale gas has a significant influence on the seepage characteristics of shale, and the flow of the gas is closely related to the pore structure. To explore the influence of shale pore parameters on permeability in different diffusion zones, the pore structure of the shale in the Niutitang Formation in Guizhou, China, was analysed based on liquid nitrogen adsorption experiments and nuclear magnetic resonance experiments. The relationship among fractal dimension, organic carbon content (TOC) and BET-specific surface area was analysed based on the fractal dimension of shale pores calculated using the Frenkel–Halsey–Hill model. Shale permeability was calculated using the Knudsen number (Kn) and permeability equation, and the influence of the fractal dimension and porosity in different diffusion zones on shale permeability was analysed. Previous studies have shown that: (i) the pores of shale in the Niutitang Formation, Guizhou are mainly distributed within 1–100 nm, with a small total pore volume per unit mass, average pore diameter, large BET specific surface area and porosity; (ii) fractal dimension has a negative correlation with average pore diameter and TOC content and a quadratic relationship with BET specific surface area; and (iii) permeability has a positive correlation with Kn, porosity and fractal dimension. In the transitional diffusion zone, fractal dimension and porosity have a significant impact on permeability. In the Knudsen diffusion zone, porosity has no obvious effect on permeability. The methodologies and results presented will enable more accurate characterization of the complexity of pore structures of porous media and allow further understanding of the seepage law of shale gas. The Royal Society 2021-05-19 /pmc/articles/PMC8131944/ /pubmed/34017601 http://dx.doi.org/10.1098/rsos.202271 Text en © 2021 The Authors. https://creativecommons.org/licenses/by/4.0/Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, provided the original author and source are credited.
spellingShingle Earth and Environmental Science
Wang, Shengwei
Li, Xijian
Xue, Haiteng
Shen, Zhonghui
Chen, Liuyu
Fractal characteristics of shale pore structure and its influence on seepage flow
title Fractal characteristics of shale pore structure and its influence on seepage flow
title_full Fractal characteristics of shale pore structure and its influence on seepage flow
title_fullStr Fractal characteristics of shale pore structure and its influence on seepage flow
title_full_unstemmed Fractal characteristics of shale pore structure and its influence on seepage flow
title_short Fractal characteristics of shale pore structure and its influence on seepage flow
title_sort fractal characteristics of shale pore structure and its influence on seepage flow
topic Earth and Environmental Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8131944/
https://www.ncbi.nlm.nih.gov/pubmed/34017601
http://dx.doi.org/10.1098/rsos.202271
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