Published July 30, 2012 | Version v1
Journal article

Strain localization and damage development during bending of Al–Mg alloy sheets

  • 1. Department of Materials Science and Engineering, Gent University, Technologiepark 903, 9052 Gent (Belgium)
  • 2. Department of Mechanical Engineering, McMaster University, 1280 Main Street West, Hamilton, L8S 4L7 Ontario (Canada)
  • 3. Department of Materials Science and Engineering, Delft University of Technology, Mekelweg 2, 2628 Delft (Netherlands)
  • 4. Department of Materials Science and Engineering, McMaster University, 1280 Main Street West, Hamilton, L8S 4L7 Ontario (Canada)
  • 5. General Motors Research and Development Center, Mail Code 480-106-212, 30500 Mound Road, Warren, MI 48090-9055 (United States)

Description

Highlights: ► The grain scale strain distribution during bending was studied in AA5754 CC sheets. ► DIC based strain mapping from SEM images of in situ bent samples was applied. ► Tendency for strain localization due to the presence of particle stringers was found. ► Facilitated matrix shearing and decreased local fracture strength were observed. ► Maximum Mises strain of 2.0 was calculated within dominant shear bands. - Abstract: The mechanism triggering failure during deformation in Al–Mg alloys often includes localization of the plastic flow into narrow and intense transgranular shear bands propagating through the microstructure with little evidence of damage prior to the final fracture event. The cracks initiate in the sheared zones and propagate by conventional ductile mechanism of fracture, including nucleation of voids at second-phase particles, followed by their growth and ultimate coalescence. In an attempt to fully understand the mechanism of damage in continuous cast (CC) AA5754 aluminium alloy sheet, a methodology for characterization of the microscopic fracture strain distribution during bending was adopted in this work. A batch of digital images representing the deformation history of the samples bent during in situ V-bending tests performed in a scanning electron microscope (SEM) was recorded and later used as an input to a digital image correlation system (DIC) for strain calculations. Local strain maps of the tensile through-thickness cross-section of the bent sheets were built. The results clearly reveal development of spatial inhomogeneity of the strain at microscopic level. The strain concentration inside the formed intensive shear bands, which were the predecessors of the subsequent crack propagation, was found to be considerably larger than the macro-strains typically suggested by the forming limit diagrams for aluminium sheet materials. The presented results are consistent with previously published results on the general forming characteristics of continuous cast AA5754 aluminium alloy sheet materials.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.msea.2012.04.093

Additional details

Identifiers

DOI
10.1016/j.msea.2012.04.093;
PII
S0921-5093(12)00640-5;

Publishing Information

Journal Title
Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing
Journal Volume
550
Journal Page Range
p. 395-407
ISSN
0921-5093
CODEN
MSAPE3

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
44021333
Subject category
S36: MATERIALS SCIENCE;
Descriptors DEI
ALUMINIUM ALLOYS; BENDING; COALESCENCE; CORRELATIONS; CRACK PROPAGATION; CRACKS; FRACTURE PROPERTIES; FRACTURES; MAGNESIUM ALLOYS; MAPPING; MATERIALS TESTING; MICROSTRUCTURE; NUCLEATION; PARTICLES; SCANNING ELECTRON MICROSCOPY; STRAINS
Descriptors DEC
ALLOYS; DEFORMATION; ELECTRON MICROSCOPY; FAILURES; MECHANICAL PROPERTIES; MICROSCOPY; TESTING

Optional Information

Copyright
Copyright (c) 2012 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.