Rupture cascades in a discrete element model of a porous sedimentary rock

Ferenc Kun, Imre Varga, Sabine Lennartz-Sassinek, Ian Main

Research output: Contribution to journalLetterpeer-review

Abstract

We investigate the scaling properties of the sources of crackling noise in a fully-dynamic numerical model of sedimentary rocks subject to uniaxial compression. The model is initiated by filling a cylindrical container with randomly-sized spherical particles which are then connected by breakable beams. Loading at a constant strain rate the cohesive elements fail and the resulting stress transfer produces sudden bursts of correlated failures, directly analogous to the sources of acoustic emissions in real experiments. The source size, energy, and duration can all be quantified for an individual event, and the population analyzed for their scaling properties, including the distribution of waiting times between consecutive events. Despite the non-stationary loading, the results are all characterized by power law distributions over a broad range of scales in agreement with experiments. As failure is approached temporal correlation of events emerge accompanied by spatial clustering.
Original languageEnglish
Article number065501
Number of pages5
JournalPhysical Review Letters
Volume112
Early online date14 Feb 2014
DOIs
Publication statusPublished - 14 Feb 2014

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  • LOCAT: LOCAT

    Zaiser, M. (Principal Investigator), Butler, I. (Co-investigator) & Main, I. (Co-investigator)

    EPSRC

    1/01/1130/06/13

    Project: Research

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