Published October 16, 2019 | Version v1

Research data supporting for "Characterization of recovery onset by subgrain and grain boundary migration in experimentally deformed polycrystalline olivine"

  • 1. Université de Lille
  • 2. Université Montpellier

Description

Abstract: To apprehend plate tectonics and the dynamics of the lithosphere–asthenosphere boundary, composed principally of olivine, we need to understand the mechanisms that control plastic deformation of olivine in the relevant temperature domain. After more than 50 years of laboratory studies and investigations on natural rocks, the interplay of several key parameters (e.g. temperature, pressure, vacancy concentration, dislocation densities, grain size, strain rate) controlling polycrystalline olivine plasticity remains difficult to assess. Here, we study four olivine polycrystals, which have been deformed in axial compression under a confining pressure of 300MPa, at 1273 or 1473 K. Despite significant differences in mechanical properties (stress–strain curves), previous characterization by scanning (SEM) and transmission electron microscopy (TEM) did not reveal significant differences in dislocation microstructures which could explain these contrasted behaviours. We have undertaken automatic crystallographic orientation mapping (ACOM) analyses in TEM to increase the spatial resolution of characterization compared to previously obtained electron backscatter diffraction maps to further decipher the microstructures at nanoscale. With this novel technique applied to olivine, a noticeable difference in the onset of microstructural recovery has been identified between specimens deformed at 1273 and 1473 K. The microstructures of the olivine polycrystals deformed at 1473K exhibit numerous curved grain and subgrain boundaries, advocating for recovery by boundary migration. In contrast, the microstructures of the olivine polycrystals deformed at 1273K have significantly fewer subgrain boundaries and show more straight boundaries (i.e. closer to an equilibrium microstructure) than in the specimen deformed at 1473 K. Characterization by ACOM-TEM has permitted the identification of the onset of recovery, which is led by boundary migration even for very low macroscopic finite strains.

 

Notes

This archive contains the files of raw orientation maps formatted as ".ang" which is a TSL single orientation file.

Files

Files (360.5 MB)

Name Size
md5:3553ecce6752b1a94abb30808d9bfa1a
87.6 MB Download
md5:0f5a5386acdf59b4f305f66cdfc5a2f5
25.6 MB Download
md5:c594b2082fefad1b0cbda9822565327d
43.8 MB Download
md5:1fc16876a8522cd47400a64d7db98eb7
33.4 MB Download
md5:e77eeb8e2638cbbef2cbed49c8f3d229
18.3 MB Download
md5:3f55f8223cbca3607b2af415d4087be3
18.3 MB Download
md5:b5b5b4a8fa6ac38657d9aa34a6e44487
18.3 MB Download
md5:63596f7f2e052fb1b9c048bfe5136b2b
26.3 MB Download
md5:4d3c25c8b27566b9e2f333a5ae623a04
26.3 MB Download
md5:1ea5545890d6bb4dbff413e585bf95b8
26.3 MB Download
md5:9e869e395e8db403a061296fe24f254a
18.3 MB Download
md5:e7e78d592e6a7c020a010e3c84c04c57
18.3 MB Download

Additional details

Related works

Is supplement to
Journal article: 10.5194/ejm-31-1-2019 (DOI)

Funding

European Commission
RHEOMAN - MULTISCALE MODELLING OF THE RHEOLOGY OF MANTLE MINERALS 290424