Gas-driven rapid fracture propagation under unloading conditions in coal and gas outbursts
File(s) IJRMMS_2019_452_Revision 1_V0.pdf (2.93 MB)
Accepted version
Author(s)
Cao, Wenzhuo
Shi, Ji-Quan
Durucan, Sevket
Si, Guangyao
Korre, Anna
Type
Journal Article
Abstract
Coal and gas outbursts have long posed a serious risk to safe and efficient production in coal mines. It is recognised that coal and gas outbursts are triggered by excavation unloading followed by gas-driven rapid propagation of a system of pre-existing or mining-induced fractures. Gas-filled fractures parallel to a working face are likely to experience opening first, then expansion and rapid propagation stages under unloading conditions. The fracture opening is driven by the effective stress inside the fracture, while the fracture expansion and rapid propagation is propelled by the pressure build-up of desorbed gas in the vicinity of the fracture. Based upon this understanding, this research aimed to identify the key factors affecting outburst initiation and its temporal evolution during roadway developments. Specifically, the response of pre-set fractures in a thin coal seam sandwiched between rock layers to roadway development is simulated using a geomechanical model coupled with fracture mechanics for fracture opening and propagation. In addition, kinetic gas desorption and its migration into open fractures is considered. During simulations outburst is deemed to occur when the fracture length exceeds the dimension of a host element. The findings of this research suggest that the simulated coal and gas outburst caused by roadway development may be considered as a dynamic gas desorption-driven fracture propagation process. The occurrence of coal and gas outbursts is found to be influenced mainly by the coal properties, fracture attributes, and initial gas pressure and the in situ stress conditions. Furthermore, the model predictions in terms of dome-shaped erupted-zone and layer-by-layer coal breakage are consistent with the field reports. In addition, the model results suggest that delayed occurrence of coal and gas outbursts, especially after sudden exposure of a coal seam or after blasting disturbance, reported in the literature may be related to the gas desorption behaviour.
Date Issued
2020-06-01
Date Acceptance
2020-03-29
Citation
International Journal of Rock Mechanics and Mining Sciences, 2020, 130
ISSN
1365-1609
Publisher
Elsevier
Journal / Book Title
International Journal of Rock Mechanics and Mining Sciences
Volume
130
Copyright Statement
© 2020 Elsevier Ltd. All rights reserved. This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/
Sponsor
Commission of the European Communities
Grant Number
FRCR-CT-2015-00005
Subjects
Mining & Metallurgy
0905 Civil Engineering
0914 Resources Engineering and Extractive Metallurgy
Publication Status
Published
Article Number
ARTN 104325
Date Publish Online
2020-04-05
