Published March 14, 2023 | Version v1

Numerical simulations reproduce field observations showing transient weakening during shear zone formation by diffusional hydrogen influx and H2O inflow

  • 1. Institute of Geological Sciences, Freie Universität Berlin, D-12249 Berlin, Germany
  • 2. Institute of Earth Sciences, University of Lausanne, CH-1015 Lausanne, Switzerland

Description

Abstract of the corresponding paper:

Exposures on Holsnøy island (Bergen Arcs, Norway) indicate fluid infiltration through fractures into a dry, metastable granulite, which triggered a kinetically delayed eclogitization, a transient weakening during fluid-rock interaction, and formation of shear zones that widened during shearing. It remains unclear whether the effects of grain boundary-assisted aqueous fluid inflow on the duration of granulite hydration were influenced by a diffusional hydrogen influx accompanying the fluid inflow. To better estimate the fluid infiltration efficiencies and the parameter interdependencies, a 1D numerical model of a viscous shear zone is utilized and validated using measured mineral phase abundance distributions and H2O-contents in nominally anhydrous minerals (NAMs) of the original granulite assemblage to constrain the hydration by aqueous fluid inflow and diffusional hydrogen influx, respectively. Both hydrations are described with a diffusion equation and affect the effective viscosity. Shear zone kinematics are constrained by the observed shear strain and thickness. The model fits the phase abundance and H2O-content profiles if the effective hydrogen diffusivity is approximately one order of magnitude higher than the diffusivity for aqueous fluid inflow. The observed shear zone thickness is reproduced if the viscosity ratio between dry granulite and deforming, re-equilibrating eclogite is ~104 and that between dry granulite and hydrated granulite is ~102. The results suggest shear velocities <10-2 cm/a, hydrogen diffusivities of ~10-13±1 m2/s, and a shearing duration of <10 years. This study successfully links and validates field data to a shear zone model and highlights the importance of hydrogen diffusion for shear zone widening and eclogitization.

 

The files uploaded here represents the numerical codes and dataset utilized to produce the results presented in the associated paper.
Find a description of the single code files ([name].m) in the ST1.doxc file.

Files

Files (50.5 kB)

Name Size Download all
md5:fcf0cdad30ffe4d50a601ea450aff303
233 Bytes Download
md5:9811ad9e3800bf1b5b0ec8d542152e21
3.9 kB Download
md5:c13c5439717fa9386146805d933d3c9d
7.7 kB Download
md5:81d7b0d33d4b4b1802e8579901fc5d82
760 Bytes Download
md5:2254cd233abbca2e67a50fa7786cab3d
759 Bytes Download
md5:4de7464ff5d76a2facf15a60796b8507
1.8 kB Download
md5:b8057f68c91bd52b70d971f113d6e209
212 Bytes Download
md5:f4bad086dc981296bab11e9cc831a13a
17.9 kB Download
md5:4f1882c6a485886881de32efc4760f11
14.3 kB Download
md5:93f821250504d7eb1a43e1c6dd44aaa3
2.9 kB Download