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A Directional Crack Damage Memory Effect in Sandstone Under True Triaxial Loading
Author(s) -
Browning John,
Meredith Philip G.,
Stuart Christopher,
Harland Sophie,
Healy David,
Mitchell Thomas M.
Publication year - 2018
Publication title -
geophysical research letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.007
H-Index - 273
eISSN - 1944-8007
pISSN - 0094-8276
DOI - 10.1029/2018gl078207
Subject(s) - anisotropy , geology , principal stress , stress (linguistics) , acoustic emission , crust , tectonics , geotechnical engineering , crack closure , seismology , fracture mechanics , materials science , petrology , geophysics , composite material , physics , optics , linguistics , philosophy , shear (geology)
Crack damage leading to failure in rocks can be accumulated through cyclic stressing in the crust. However, the vast majority of experimental studies to investigate cyclic stressing apply conventional triaxial stress states ( σ 1  >  σ 2  =  σ 3 ), while in nature the state of stress in the crust is generally truly triaxial ( σ 1  >  σ 2  >  σ 3 ). Furthermore, the magnitude of these crustal stresses can vary over time and their orientations can also rotate over time, generating multiple crack populations and bulk anisotropic crack damage. We investigate the evolution of crack damage under both conventional and true triaxial stress conditions by sequentially and cyclically varying stresses in all three principal directions on cubic samples of dry sandstone using independently controlled stress paths. We have measured, simultaneously with stress, the bulk acoustic emission output, as a proxy for crack damage. We report a directionally controlled crack damage memory effect which has implications for the approach to failure in complex tectonic stress environments.

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