Ductile deformation of single inclusions in simple shear with a finite-strain hyperelastoviscoplastic rheology

Christoph Eckart Schrank*, Ali Karrech, David Alexandre Boutelier, Klaus Regenauer-Lieb

*Corresponding author for this work

Research output: Chapter in Book/Report/Conference proceedingChapterpeer-review

1 Scopus citations

Abstract

We examine the two-dimensional plane-strain deformation of initially round, matrix-bonded, deformable single inclusions in isothermal simple shear using a recently introduced hyperelastoviscoplastic rheology. The broad parameter space spanned by the wide range of effective viscosities, yield stresses, relaxation times, and strain rates encountered in the ductile lithosphere is explored systematically for weak and strong inclusions, the effective viscosity of which varies with respect to the matrix. Most inclusion studies to date focused on elastic or purely viscous rheologies. Comparing our results with linear-viscous inclusions in a linear-viscous matrix, we observe significantly different shape evolution of weak and strong inclusions over most of the relevant parameter space. The evolution of inclusion inclination relative to the shear plane is more strongly affected by elastic and plastic contributions to rheology in the case of strong inclusions. In addition, we found that strong inclusions deform in the transient viscoelastic stress regime at high Weissenberg numbers (≥10-2) up to bulk shear strains larger than 3. Studies using the shapes of deformed objects for finite-strain analysis or viscosity-ratio estimation should establish carefully which rheology and loading conditions reflect material and deformation properties. We suggest that relatively strong, deformable clasts in shear zones retain stored energy up to fairly high shear strains. Hence, purely viscous models of clast deformation may overlook an important contribution to the energy budget, which may drive dissipation processes within and around such inclusions in nature.

Original languageEnglish
Title of host publicationDuctile Shear Zones
Subtitle of host publicationFrom Micro- to Macro-scales
Publisherwiley
Pages46-58
Number of pages13
ISBN (Electronic)9781118844953
ISBN (Print)9781118844960
DOIs
StatePublished - 14 Dec 2015
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2016 by John Wiley & Sons, Ltd. All rights reserved.

Keywords

  • Ductile shear zones
  • Finite strain
  • Inclusions
  • Rheology
  • Simple shear

ASJC Scopus subject areas

  • General Earth and Planetary Sciences

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