A numerical study on oxygen adsorption in porous media of coal rock based on fractal geometry

In order to explore the factors affecting coal spontaneous combustion, the fractal characteristics of coal samples are tested, and a pore-scale model for oxygen adsorption in coal porous media is developed based on self-similar fractal model. The liquid nitrogen adsorption experiments show that the...

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Main Authors: Xianzhe Lv, Xiaoyu Liang, Peng Xu, Linya Chen
Format: Article
Language:English
Published: The Royal Society 2020-02-01
Series:Royal Society Open Science
Subjects:
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191337
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spelling doaj-6bf29d0f03714fe594ea35dbd19853692020-11-25T04:08:29ZengThe Royal SocietyRoyal Society Open Science2054-57032020-02-017210.1098/rsos.191337191337A numerical study on oxygen adsorption in porous media of coal rock based on fractal geometryXianzhe LvXiaoyu LiangPeng XuLinya ChenIn order to explore the factors affecting coal spontaneous combustion, the fractal characteristics of coal samples are tested, and a pore-scale model for oxygen adsorption in coal porous media is developed based on self-similar fractal model. The liquid nitrogen adsorption experiments show that the coal samples indicate evident fractal scaling laws at both low-pressure and high-pressure sections, and the fractal dimensions, respectively, represent surface morphology and pore structure of coal rock. The pore-scale model has been validated by comparing with available experimental data and numerical simulation. The present numerical results indicate that the oxygen adsorption depends on both the pore structures and temperature of coal rock. The oxygen adsorption increases with increased porosity, fractal dimension and ratio of minimum to maximum pore sizes. The edge effect can be clearly seen near the cavity/pore, where the oxygen concentration is low. The correlation between the oxygen adsorption and temperature is found to obey Langmuir adsorption theory, and a new formula for oxygen adsorption and porosity is proposed. This study may help understanding the mechanisms of oxygen adsorption and accordingly provide guidelines to lower the risk of spontaneous combustion of coal.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191337coal oxygen adsorptionporous mediafractalsierpinski carpetnumerical simulation
collection DOAJ
language English
format Article
sources DOAJ
author Xianzhe Lv
Xiaoyu Liang
Peng Xu
Linya Chen
spellingShingle Xianzhe Lv
Xiaoyu Liang
Peng Xu
Linya Chen
A numerical study on oxygen adsorption in porous media of coal rock based on fractal geometry
Royal Society Open Science
coal oxygen adsorption
porous media
fractal
sierpinski carpet
numerical simulation
author_facet Xianzhe Lv
Xiaoyu Liang
Peng Xu
Linya Chen
author_sort Xianzhe Lv
title A numerical study on oxygen adsorption in porous media of coal rock based on fractal geometry
title_short A numerical study on oxygen adsorption in porous media of coal rock based on fractal geometry
title_full A numerical study on oxygen adsorption in porous media of coal rock based on fractal geometry
title_fullStr A numerical study on oxygen adsorption in porous media of coal rock based on fractal geometry
title_full_unstemmed A numerical study on oxygen adsorption in porous media of coal rock based on fractal geometry
title_sort numerical study on oxygen adsorption in porous media of coal rock based on fractal geometry
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2020-02-01
description In order to explore the factors affecting coal spontaneous combustion, the fractal characteristics of coal samples are tested, and a pore-scale model for oxygen adsorption in coal porous media is developed based on self-similar fractal model. The liquid nitrogen adsorption experiments show that the coal samples indicate evident fractal scaling laws at both low-pressure and high-pressure sections, and the fractal dimensions, respectively, represent surface morphology and pore structure of coal rock. The pore-scale model has been validated by comparing with available experimental data and numerical simulation. The present numerical results indicate that the oxygen adsorption depends on both the pore structures and temperature of coal rock. The oxygen adsorption increases with increased porosity, fractal dimension and ratio of minimum to maximum pore sizes. The edge effect can be clearly seen near the cavity/pore, where the oxygen concentration is low. The correlation between the oxygen adsorption and temperature is found to obey Langmuir adsorption theory, and a new formula for oxygen adsorption and porosity is proposed. This study may help understanding the mechanisms of oxygen adsorption and accordingly provide guidelines to lower the risk of spontaneous combustion of coal.
topic coal oxygen adsorption
porous media
fractal
sierpinski carpet
numerical simulation
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.191337
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