open access publication

Article, 2019

Local stress and strain in heterogeneously deformed aluminum: A comparison analysis by microhardness, electron microscopy and finite element modelling

International Journal of Plasticity, ISSN 0749-6419, 1879-2154, Volume 115, Pages 93-110, 10.1016/j.ijplas.2018.11.014

Contributors

Zhang, Xiao-Dan 0000-0002-2874-1519 (Corresponding author) [1] Nielsen, Chris Valentin 0000-0001-7774-4399 [1] Hansen, Niels [1] Silva, Carlos M A 0000-0003-3837-5185 [2] Martins, Paulo A F 0000-0002-2630-4593 [2]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] University of Lisbon
  4. [NORA names: Portugal; Europe, EU; OECD]

Abstract

The local stress and strain are analyzed in a heterogeneous microstructure induced by compression of aluminium rings under nearly full sticking conditions. This analysis is based on characterization of mechanical behavior and microstructure applying three complementary techniques covering multiple length scales: microhardness, electron microscopy (electron backscatter diffraction) and finite element modelling. The findings are underpinned by applying those techniques in an analysis of a homogeneous microstructure induced by compression of hot-extruded aluminium cylinders. The local stress and strain are estimated at 14 different positions in two rings representing large variations in strain. A comparison with the stress and strain in the homogeneously compressed cylinders related to the average spacing between deformation induced low and high angle boundaries, validates the characterization techniques and supports a hypothesis that the microstructure of local regions in a heterogeneous structure evolve in accordance with universal principles and mechanisms established for the evolution of the deformation microstructure of polycrystalline metals.

Keywords

aluminum, aluminum cylinder, aluminum ring, analysis, angle boundaries, average spacing, behavior, boundaries, characterization, characterization of mechanical behavior, characterization techniques, comparison, comparison analysis, compression, cylinder, deformation, deformation microstructures, electron, electron microscopy, element model, evolution, findings, finite element model, heterogeneous microstructure, heterogeneous structure, high-angle boundaries, homogeneous microstructure, hypothesis, length scales, local regions, local stress, mechanical behavior, mechanism, metal, microhardness, microscopy, microstructure, model, multiple length scales, polycrystalline metals, position, region, ring, scale, space, strain, stress, structure, technique, variation

Funders

  • Danish Agency for Science and Higher Education
  • Fundação para a Ciência e Tecnologia

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