open access publication

Article, 2017

Grain interaction mechanisms leading to intragranular orientation spread in tensile deformed bulk grains of interstitial-free steel

International Journal of Plasticity, ISSN 0749-6419, 1879-2154, Volume 88, Pages 108-125, 10.1016/j.ijplas.2016.10.004

Contributors

Winther, Grethe 0000-0002-4178-3449 (Corresponding author) [1] Wright, Jonathan Paul 0000-0002-8217-0884 [2] Schmidt, S Oslash Ren 0000-0002-8694-2044 [1] Oddershede, Jette 0000-0003-2319-7419 [1]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] European Synchrotron Radiation Facility
  4. [NORA names: France; Europe, EU; OECD]

Abstract

The spatially resolved intragranular orientation spread in two representative bulk grains of interstitial-free steel deformed to 9% tension has been investigated. A three-dimensional X-ray diffraction microscopy experiment revealed that the two similarly oriented grains are both embedded in local environments representing the bulk texture, yet their deformation-induced rotations are very different. The ALAMEL model is employed to analyse the grain interaction mechanisms. Predictions of this model qualitatively agree with the directionality and magnitude of the experimental orientation spread. However, quantitative agreement requires fine-tuning of the boundary conditions. The majority of the modelled slip is accounted for by four slip systems also predicted to be active by the classical Taylor model in uniaxial tension, and most of the orientation spread along the grain boundaries is caused by relative variations in the activities of these. Although limited to two grains, the findings prove that shear at the grain boundaries as accounted for by the ALAMEL model is a dominant grain interaction mechanism.

Keywords

ALAMEL, ALAMEL model, Taylor, Taylor model, activity, agreement, boundaries, boundary conditions, bulk grains, conditions, deformation-induced rotation, direction, environment, experimental orientation, experiments, findings, grain, grain boundaries, interaction mechanism, interstitial-free steel, intragranular orientation, local environment, magnitude, mechanism, microscopy experiments, model, model slip, orientation, prediction, quantitative agreement, rotation, shear, slip, slip systems, steel, system, tensile, tension, texture, uniaxial tension, variation

Funders

  • Danish Agency for Science and Higher Education
  • European Synchrotron Radiation Facility

Data Provider: Digital Science