Numerical Simulation of Deep Coalbed Methane Development Based on Embedded Discrete Fracture Model: A Triple Medium Flow Approach

ABSTRACT China is rich in coalbed methane resources, especially with significant potential for deep coalbed methane development. As shallow coalbed methane resources gradually deplete, the development of deep coalbed methane has become a research focus. Due to the low permeability and micro‐scale mi...

Full description

Saved in:
Bibliographic Details
Main Authors: Yongsheng An, Zhongwen Sun, Jin Wang, Xiaoyu Zhang, Yangfeng Sun
Format: Article
Language:English
Published: Wiley 2025-06-01
Series:Energy Science & Engineering
Subjects:
Online Access:https://doi.org/10.1002/ese3.70085
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849722766932049920
author Yongsheng An
Zhongwen Sun
Jin Wang
Xiaoyu Zhang
Yangfeng Sun
author_facet Yongsheng An
Zhongwen Sun
Jin Wang
Xiaoyu Zhang
Yangfeng Sun
author_sort Yongsheng An
collection DOAJ
description ABSTRACT China is rich in coalbed methane resources, especially with significant potential for deep coalbed methane development. As shallow coalbed methane resources gradually deplete, the development of deep coalbed methane has become a research focus. Due to the low permeability and micro‐scale migration characteristics of deep coalbed methane, its exploitation requires different approaches compared to shallow coalbed methane. This paper, based on the embedded discrete fracture numerical simulation technology used for shale gas, considering the shrinkage effect of coal matrix, establishes a triple‐medium flow model comprising cleats, natural fractures, and artificial fractures to simulate the deep coalbed methane extraction process. When compared with traditional numerical simulation methods using real well data, the new model improves accuracy by 8.08%. The sensitivity analysis of engineering parameters and geological parameters in the development of deep coalbed methane reveals that the gas content coal seams are the main factors affecting gas production. To obtain high‐yield gas wells, it is necessary to create a complex hydraulic pressure fracture network in high gas content layers. This study provides a new numerical simulation model for deep coalbed methane development. The model couples cleats, natural fracture networks, and fractures, and accurately represents the geological characteristics of deep coalbed methane reservoirs. Additionally, this study provides theoretical support for improving the production of deep coalbed methane through one‐factor sensitivity analysis.
format Article
id doaj-art-434fa51cf1914c558bce45cfc900b93d
institution DOAJ
issn 2050-0505
language English
publishDate 2025-06-01
publisher Wiley
record_format Article
series Energy Science & Engineering
spelling doaj-art-434fa51cf1914c558bce45cfc900b93d2025-08-20T03:11:14ZengWileyEnergy Science & Engineering2050-05052025-06-011363045306210.1002/ese3.70085Numerical Simulation of Deep Coalbed Methane Development Based on Embedded Discrete Fracture Model: A Triple Medium Flow ApproachYongsheng An0Zhongwen Sun1Jin Wang2Xiaoyu Zhang3Yangfeng Sun4MOE Key Laboratory of Petroleum Engineering China University of Petroleum Beijing ChinaMOE Key Laboratory of Petroleum Engineering China University of Petroleum Beijing ChinaMOE Key Laboratory of Petroleum Engineering China University of Petroleum Beijing ChinaMOE Key Laboratory of Petroleum Engineering China University of Petroleum Beijing ChinaPetroChina Hangzhou Research Institute of Geology Hangzhou ChinaABSTRACT China is rich in coalbed methane resources, especially with significant potential for deep coalbed methane development. As shallow coalbed methane resources gradually deplete, the development of deep coalbed methane has become a research focus. Due to the low permeability and micro‐scale migration characteristics of deep coalbed methane, its exploitation requires different approaches compared to shallow coalbed methane. This paper, based on the embedded discrete fracture numerical simulation technology used for shale gas, considering the shrinkage effect of coal matrix, establishes a triple‐medium flow model comprising cleats, natural fractures, and artificial fractures to simulate the deep coalbed methane extraction process. When compared with traditional numerical simulation methods using real well data, the new model improves accuracy by 8.08%. The sensitivity analysis of engineering parameters and geological parameters in the development of deep coalbed methane reveals that the gas content coal seams are the main factors affecting gas production. To obtain high‐yield gas wells, it is necessary to create a complex hydraulic pressure fracture network in high gas content layers. This study provides a new numerical simulation model for deep coalbed methane development. The model couples cleats, natural fracture networks, and fractures, and accurately represents the geological characteristics of deep coalbed methane reservoirs. Additionally, this study provides theoretical support for improving the production of deep coalbed methane through one‐factor sensitivity analysis.https://doi.org/10.1002/ese3.70085deep coalbed methaneembedded discrete fractureshydraulic fracturingnatural fracturestriple‐medium flow model
spellingShingle Yongsheng An
Zhongwen Sun
Jin Wang
Xiaoyu Zhang
Yangfeng Sun
Numerical Simulation of Deep Coalbed Methane Development Based on Embedded Discrete Fracture Model: A Triple Medium Flow Approach
Energy Science & Engineering
deep coalbed methane
embedded discrete fractures
hydraulic fracturing
natural fractures
triple‐medium flow model
title Numerical Simulation of Deep Coalbed Methane Development Based on Embedded Discrete Fracture Model: A Triple Medium Flow Approach
title_full Numerical Simulation of Deep Coalbed Methane Development Based on Embedded Discrete Fracture Model: A Triple Medium Flow Approach
title_fullStr Numerical Simulation of Deep Coalbed Methane Development Based on Embedded Discrete Fracture Model: A Triple Medium Flow Approach
title_full_unstemmed Numerical Simulation of Deep Coalbed Methane Development Based on Embedded Discrete Fracture Model: A Triple Medium Flow Approach
title_short Numerical Simulation of Deep Coalbed Methane Development Based on Embedded Discrete Fracture Model: A Triple Medium Flow Approach
title_sort numerical simulation of deep coalbed methane development based on embedded discrete fracture model a triple medium flow approach
topic deep coalbed methane
embedded discrete fractures
hydraulic fracturing
natural fractures
triple‐medium flow model
url https://doi.org/10.1002/ese3.70085
work_keys_str_mv AT yongshengan numericalsimulationofdeepcoalbedmethanedevelopmentbasedonembeddeddiscretefracturemodelatriplemediumflowapproach
AT zhongwensun numericalsimulationofdeepcoalbedmethanedevelopmentbasedonembeddeddiscretefracturemodelatriplemediumflowapproach
AT jinwang numericalsimulationofdeepcoalbedmethanedevelopmentbasedonembeddeddiscretefracturemodelatriplemediumflowapproach
AT xiaoyuzhang numericalsimulationofdeepcoalbedmethanedevelopmentbasedonembeddeddiscretefracturemodelatriplemediumflowapproach
AT yangfengsun numericalsimulationofdeepcoalbedmethanedevelopmentbasedonembeddeddiscretefracturemodelatriplemediumflowapproach