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Transformational faulting in Mn2GeO4 from olivine to wadsleyite structure: Implications for physical mechanism of deep-focus earthquakes.

Authors :
Shi, Feng
Wang, Yanbin
Officer, Timothy
Yao, Dongdong
Yu, Tony
Zhu, Lupei
Wen, Jianguo
Zhang, Junfeng
Peng, Zhigang
Source :
Tectonophysics. Oct2024, Vol. 889, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

High-pressure and temperature deformation experiments interfaced with acoustic emission (AE) monitoring have been conducted to study transformational faulting in Mn 2 GeO 4 olivine, which transforms to the β phase, isostructural to wadsleyite. Metastable Mn 2 GeO 4 olivine exhibits a marked embrittlement behavior at temperatures between 800 and 1100 K, emitting numerous AEs. At each temperature, brittle deformation is characterized by a two-stage process: (1) a "preparation" stage with numerous diffusedly located low-magnitude AEs and large b values (>2), and (2) a failure stage where larger-magnitude AEs form a planar distribution with b values about 1. Microstructure analysis reveals extensive kink band development in olivine grains in the recovered samples. Kink band boundaries (KBBs), with a typical thickness of ∼100 nm, are filled with a nanometric β-Mn 2 GeO 4 "gouge". A dense array of secondary shear localizations is often present within the kink bands, suggesting significant shear deformation therein. The combined observations suggest that faulting in metastable Mn 2 GeO 4 olivine is a self-similar process, from grain-scale to the sample-scale. Both observed embrittlement behavior and the microstructure of metastable Mn 2 GeO 4 olivine are essentially identical to those in Mg 2 GeO 4 olivine we have reported previously, indicating that the physical mechanism of faulting in metastable olivine is insensitive to the specific crystallographic structure of the high-pressure phase. The low b values (about 1) observed in the faulting process in our experiments are similar to those of deep focus earthquakes in cold subduction zones. Our observed mechanism explains deep focus seismicity in cold metastable mantle wedges, provided that the self-similarity assumption holds to geological scales. • Mn 2 GeO 4 olivine rock faults when transforming to wadsleyite structure under pressure. • Transformational faulting, detected by AEs, is associated with kink band formation. • Faulting is preceded by a preparation stage with high b values and low magnitude AEs. • Main faults are characterized by b ≈ 1, with AEs distributed in a planar fashion. • Fault development is through a self-similar process. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00401951
Volume :
889
Database :
Academic Search Index
Journal :
Tectonophysics
Publication Type :
Academic Journal
Accession number :
179499398
Full Text :
https://doi.org/10.1016/j.tecto.2024.230467