Back to Search Start Over

Low‐Temperature Plasticity and Dislocation Creep of Fangshan Dolomite.

Authors :
Li, Jianfeng
Shao, Tongbin
Song, Maoshuang
Wang, Hao
Source :
Journal of Geophysical Research. Solid Earth; May2021, Vol. 126 Issue 5, p1-24, 24p
Publication Year :
2021

Abstract

To explore the rheology of dolomite and investigate recent findings regarding the so‐called inversion of activation energy between dislocation and diffusion creep, we compressed medium‐grained Fangshan dolomite (113 ± 42 µm) at effective confining pressures of 50–300 MPa, temperatures of 27°C–900°C, and strain rates of 10−6 to 2 × 10−4 s−1 using a Paterson gas‐medium apparatus. Two end‐member deformation regimes with corresponding diagnostic flow laws and microstructures were identified. At temperatures ≤500°C, low‐temperature plasticity (LTP), which is characterized by microstructures of predominant abrupt undulatory extinctions and f‐twins, was determined to dominate the deformation of Fangshan dolomite. The corresponding flow behavior can be described by anε˙=ε˙0×exp(α×σ) with α=0.0806±0.0078 and lnε˙0=−76.66±6.24 (Regime 1). At temperatures ≥800°C, dislocation creep, which shows characteristic microstructures of smooth undulating extinction and new recrystallized grains, dominated the deformation of Fangshan dolomite. The corresponding flow behavior can be expressed by a power law equation, ε˙=Aσnexp(−QRT) with n=4.75±0.58, Q=436±54kJ/mol, and logA=3.48±1.41(Regime 2). At temperatures between ∼500 and 800°C, a transition regime between LTP and dislocation creep was identified (Regime 3) with the dependence of flow stress on strain rate increasing gradually with increasing temperature. When extrapolated to natural conditions, our flow law of dislocation creep for dolomite in combination with that of diffusion creep reported by Davis et al. (2008) suggests that the dislocation creep regime of dolomite is limited to a relatively narrow region of high temperature and relatively high stress, whereas the diffusion creep regime dominates the deformation of dolomite in tectonic settings with low stress levels. Key Points: Low‐temperature plasticity and dislocation creep of dolomite were recognized at T ≤ 500°C and T ≥ 800°C, respectivelyStress exponent (n = 4.75) and activation energy (Q = 436 kJ/mol) were determined for the dislocation creep of Fangshan dolomiteQ for dislocation creep is not only higher than that for diffusion creep, but also is comparable to the values of calcite and magnesite [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
21699313
Volume :
126
Issue :
5
Database :
Complementary Index
Journal :
Journal of Geophysical Research. Solid Earth
Publication Type :
Academic Journal
Accession number :
150515514
Full Text :
https://doi.org/10.1029/2020JB021439