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Article

Fracture Network Influence on Rock Damage and Gas Transport following an Underground Explosion

Los Alamos National Laboratory, Los Alamos, NM 87544, USA
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Author to whom correspondence should be addressed.
Geotechnics 2024, 4(1), 180-193; https://doi.org/10.3390/geotechnics4010009
Submission received: 19 December 2023 / Revised: 19 January 2024 / Accepted: 27 January 2024 / Published: 31 January 2024
(This article belongs to the Special Issue Recent Advances in Geotechnical Engineering (2nd Edition))

Abstract

Simulations of rock damage and gas transport following underground explosions that omit preexisting fracture networks in the subsurface cannot fully characterize the influence of geo-structural variability on gas transport. Previous studies do not consider the impact that fracture network structure and variability have on gas seepage. In this study, we develop a sequentially coupled, axi-symmetric model to look at the damage pattern and resulting gas breakthrough curves following an underground explosion given different fracture network realizations. We simulate 0.327 and 0.164 kT chemical explosives with burial depths of 100 m for 90 stochastically generated fracture networks. Gases quickly reach the surface in 30% of the higher yield simulations and 5% of the lower yield simulations. The fast breakthrough can be attributed to the formation of connected pathways between fractures to the surface. The formation of a connected damage pathway to the surface is not clearly correlated with the fracture intensity (P32) in our simulations. Breakthrough curves with slower transport are highly variable depending on the fracture network sample. The variability in the breakthrough behavior indicates that ignoring the influence of fracture networks on rock damage, which strongly influences the hydraulic properties following an underground explosion, will likely lead to a large underestimation of the uncertainty in the gas transport to the surface. This work highlights the need for incorporation of fracture networks into models for accurately predicting gas seepage following underground explosions.
Keywords: underground explosion; gas transport; rock damage; fracture network; numerical model underground explosion; gas transport; rock damage; fracture network; numerical model

Share and Cite

MDPI and ACS Style

Stansberry, A.; Sweeney, M.R.; Hyman, J.D.; Strait, J.; Lei, Z.; Viswanathan, H.S.; Stauffer, P.H. Fracture Network Influence on Rock Damage and Gas Transport following an Underground Explosion. Geotechnics 2024, 4, 180-193. https://doi.org/10.3390/geotechnics4010009

AMA Style

Stansberry A, Sweeney MR, Hyman JD, Strait J, Lei Z, Viswanathan HS, Stauffer PH. Fracture Network Influence on Rock Damage and Gas Transport following an Underground Explosion. Geotechnics. 2024; 4(1):180-193. https://doi.org/10.3390/geotechnics4010009

Chicago/Turabian Style

Stansberry, Aidan, Matthew R. Sweeney, Jeffrey D. Hyman, Justin Strait, Zhou Lei, Hari S. Viswanathan, and Philip H. Stauffer. 2024. "Fracture Network Influence on Rock Damage and Gas Transport following an Underground Explosion" Geotechnics 4, no. 1: 180-193. https://doi.org/10.3390/geotechnics4010009

APA Style

Stansberry, A., Sweeney, M. R., Hyman, J. D., Strait, J., Lei, Z., Viswanathan, H. S., & Stauffer, P. H. (2024). Fracture Network Influence on Rock Damage and Gas Transport following an Underground Explosion. Geotechnics, 4(1), 180-193. https://doi.org/10.3390/geotechnics4010009

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