Using thermo-mechanical models of subduction to constrain effective mantle viscosity

被引:8
|
作者
Garel, Fanny [1 ]
Thoraval, Catherine [1 ]
Tommasi, Andrea [1 ]
Demouchy, Sylvie [1 ]
Davies, D. Rhodri [2 ]
机构
[1] Univ Montpellier, CNRS, Geosci Montpellier, Montpellier, France
[2] Australian Natl Univ, Res Sch Earth Sci, Canberra, ACT, Australia
基金
澳大利亚研究理事会;
关键词
olivine; dislocation creep; subduction dynamics; mantle viscosity; rheology parameterization; thermo-mechanical numerical modeling; OLIVINE SINGLE-CRYSTALS; SEISMIC ANISOTROPY; EARTHS MANTLE; DEFORMATION; CREEP; STRESS; TEMPERATURE; PRESSURE; FLOW; LITHOSPHERE;
D O I
10.1016/j.epsl.2020.116243
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Mantle convection and plate dynamics transfer and deform solid material on scales of hundreds to thousands of km. However, viscoplastic deformation of rocks arises from motions of defects at subcrystal scale, such as vacancies or dislocations. In this study, results from numerical experiments of dislocation dynamics in olivine for temperatures and stresses relevant for both lithospheric and asthenospheric mantle (800-1700K and 50-500MPa; Gouriet et al., 2019) are used to derive three sigmoid parameterizations (erf, tanh, algebraic), which express stress evolution as a function of temperature and strain rate. The three parameterizations fit well the results of dislocation dynamics models and may be easily incorporated into geodynamical models. Here, they are used in an upper mantle thermo-mechanical model of subduction, in association with diffusion creep and pseudo-brittle flow laws. Simulations using different dislocation creep parameterizations exhibit distinct dynamics, from unrealistically fast-sinking slabs in the erfcase to very slowly-sinking slabs in the algebraiccase. These differences could not have been predicted a priori from comparison with experimentally determined mechanical data, since they principally arise from feedbacks between slab sinking velocity, temperature, drag, and buoyancy, which are controlled by the strain rate dependence of the effective asthenosphere viscosity. Comparison of model predictions to geophysical observations and to uppermantle viscosity inferred from glacial isostatic adjustment shows that the tanhparameterization best fits both crystal-scale and Earth-scale constraints. However, the parameterization of diffusion creep is also important for subduction bulk dynamics since it sets the viscosity of slowly deforming domains in the convecting mantle. Within the range of uncertainties of experimental data and, most importantly, of the actual rheological parameters prevailing in the upper mantle (e.g. grain size, chemistry), viscosity enabling realistic mantle properties and plate dynamics may be reproduced by several combinations of parameterizations for different deformation mechanisms. Deriving mantle rheology cannot therefore rely solely on the extrapolation of semi-empirical flow laws. The present study shows that thermo-mechanical models of plate and mantle dynamics can be used to constrain the effective rheology of Earth's mantle in the presence of multiple deformation mechanisms. (c) 2020 Elsevier B.V. All rights reserved.
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页数:12
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