Seismic events miss important kinematically governed grain scale mechanisms during shear failure of porous rock

Author:

Cartwright-Taylor AlexisORCID,Mangriotis Maria-Daphne,Main Ian G.ORCID,Butler Ian B.,Fusseis Florian,Ling Martin,Andò EdwardORCID,Curtis AndrewORCID,Bell Andrew F.ORCID,Crippen Alyssa,Rizzo Roberto E.ORCID,Marti Sina,Leung Derek. D. V.ORCID,Magdysyuk Oxana V.ORCID

Abstract

AbstractCatastrophic failure in brittle, porous materials initiates when smaller-scale fractures localise along an emergent fault zone in a transition from stable crack growth to dynamic rupture. Due to the rapid nature of this critical transition, the precise micro-mechanisms involved are poorly understood and difficult to image directly. Here, we observe these micro-mechanisms directly by controlling the microcracking rate to slow down the transition in a unique rock deformation experiment that combines acoustic monitoring (sound) with contemporaneous in-situ x-ray imaging (vision) of the microstructure. We find seismic amplitude is not always correlated with local imaged strain; large local strain often occurs with small acoustic emissions, and vice versa. Local strain is predominantly aseismic, explained in part by grain/crack rotation along an emergent shear zone, and the shear fracture energy calculated from local dilation and shear strain on the fault is half of that inferred from the bulk deformation.

Funder

RCUK | Natural Environment Research Council

Diamond Light Source

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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