An internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extraction

Abstract Owing to the characteristics of coal reservoirs, the gas flow capacity and permeability exhibit strong anisotropy. The anisotropy in terms of the magnitude, which corresponds to the permeability in the horizontal direction being several orders of magnitude larger than that in the vertical d...

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Main Authors: Zhigang Zhang, Yanbao Liu, Haitao Sun, Wei Xiong, Kai Shen, Quanbin Ba
Format: Article
Language:English
Published: Wiley 2020-10-01
Series:Energy Science & Engineering
Subjects:
Online Access:https://doi.org/10.1002/ese3.780
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spelling doaj-4d025509c2294aa69fcac22e83bfe9ec2020-11-25T03:59:34ZengWileyEnergy Science & Engineering2050-05052020-10-018103753376810.1002/ese3.780An internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extractionZhigang Zhang0Yanbao Liu1Haitao Sun2Wei Xiong3Kai Shen4Quanbin Ba5National Key Laboratory of Gas Disaster Detecting, Preventing and Emergency Controlling Chongqing ChinaNational Key Laboratory of Gas Disaster Detecting, Preventing and Emergency Controlling Chongqing ChinaNational Key Laboratory of Gas Disaster Detecting, Preventing and Emergency Controlling Chongqing ChinaNational Key Laboratory of Gas Disaster Detecting, Preventing and Emergency Controlling Chongqing ChinaNational Key Laboratory of Gas Disaster Detecting, Preventing and Emergency Controlling Chongqing ChinaNational Key Laboratory of Gas Disaster Detecting, Preventing and Emergency Controlling Chongqing ChinaAbstract Owing to the characteristics of coal reservoirs, the gas flow capacity and permeability exhibit strong anisotropy. The anisotropy in terms of the magnitude, which corresponds to the permeability in the horizontal direction being several orders of magnitude larger than that in the vertical direction, has been investigated. However, the anisotropy in terms of the mechanical boundaries, specifically, the presence of constant volume and stress boundaries in the horizontal and vertical directions, respectively, has not been examined. Therefore, a coupling model of the gas flow and coal seam deformation was developed, and a model to reflect the permeabilities in the horizontal and vertical directions was established considering the internal swelling factor. The models were verified considering field production data, and a numerical analysis was performed. In the early and later stages of gas production, the gas appeared from the fracture and matrix systems, and it was extracted in different regions in the timescale and synchronously, respectively. Owing to the constant stress boundary condition in the vertical direction of the coal seam, the reduction in the gas pressure in the fractures decreased the horizontal fracture opening, thereby decreasing the permeability in the horizontal direction. Because the horizontal direction exhibited a constant volume boundary condition, the desorption of the adsorbed gas resulted in volumetric shrinkage of the matrix, thereby increasing the permeability in the vertical direction. Non‐Darcy effects reduced the gas flow rate and exerted considerable influence in the early stage of the extraction. Moreover, this effect exhibited anisotropy, which was more pronounced in the horizontal direction. The surface diffusion coefficient continuously increased, which promoted the flow of the adsorbed gas in the matrix. The proposed model can be used to estimate the impact of the permeability anisotropy on the coalbed methane and underground gas extraction.https://doi.org/10.1002/ese3.780constant stressconstant volumenon‐Darcy flowpermeability modelsurface diffusion
collection DOAJ
language English
format Article
sources DOAJ
author Zhigang Zhang
Yanbao Liu
Haitao Sun
Wei Xiong
Kai Shen
Quanbin Ba
spellingShingle Zhigang Zhang
Yanbao Liu
Haitao Sun
Wei Xiong
Kai Shen
Quanbin Ba
An internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extraction
Energy Science & Engineering
constant stress
constant volume
non‐Darcy flow
permeability model
surface diffusion
author_facet Zhigang Zhang
Yanbao Liu
Haitao Sun
Wei Xiong
Kai Shen
Quanbin Ba
author_sort Zhigang Zhang
title An internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extraction
title_short An internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extraction
title_full An internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extraction
title_fullStr An internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extraction
title_full_unstemmed An internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extraction
title_sort internal swelling factor model to examine the influence of permeability anisotropy on coalbed methane extraction
publisher Wiley
series Energy Science & Engineering
issn 2050-0505
publishDate 2020-10-01
description Abstract Owing to the characteristics of coal reservoirs, the gas flow capacity and permeability exhibit strong anisotropy. The anisotropy in terms of the magnitude, which corresponds to the permeability in the horizontal direction being several orders of magnitude larger than that in the vertical direction, has been investigated. However, the anisotropy in terms of the mechanical boundaries, specifically, the presence of constant volume and stress boundaries in the horizontal and vertical directions, respectively, has not been examined. Therefore, a coupling model of the gas flow and coal seam deformation was developed, and a model to reflect the permeabilities in the horizontal and vertical directions was established considering the internal swelling factor. The models were verified considering field production data, and a numerical analysis was performed. In the early and later stages of gas production, the gas appeared from the fracture and matrix systems, and it was extracted in different regions in the timescale and synchronously, respectively. Owing to the constant stress boundary condition in the vertical direction of the coal seam, the reduction in the gas pressure in the fractures decreased the horizontal fracture opening, thereby decreasing the permeability in the horizontal direction. Because the horizontal direction exhibited a constant volume boundary condition, the desorption of the adsorbed gas resulted in volumetric shrinkage of the matrix, thereby increasing the permeability in the vertical direction. Non‐Darcy effects reduced the gas flow rate and exerted considerable influence in the early stage of the extraction. Moreover, this effect exhibited anisotropy, which was more pronounced in the horizontal direction. The surface diffusion coefficient continuously increased, which promoted the flow of the adsorbed gas in the matrix. The proposed model can be used to estimate the impact of the permeability anisotropy on the coalbed methane and underground gas extraction.
topic constant stress
constant volume
non‐Darcy flow
permeability model
surface diffusion
url https://doi.org/10.1002/ese3.780
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