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Void Growth in High Strength Aluminium Alloy Single Crystals: a Cpfem Based Study

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Date

2017

Journal Title

Journal ISSN

Volume Title

Publisher

Iop Publishing Ltd

Open Access Color

BRONZE

Green Open Access

No

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No
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Top 10%
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Top 10%
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Top 10%

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Abstract

High strength aluminium alloys that are produced through forming and joining processes are widely used in aerospace components. The ductile failure in these metals occurs due to the evolution and accumulation of microscopic defects, such as microvoids and shear bands. The present work investigates the underlying physical mechanisms during ductile failure by performing a rigorous, fully-validated, three-dimensional crystal plasticity, finite element study with aluminium alloy single crystals. Representative volume element (RVE) based simulations of single crystalline aluminium alloys (AA-5xxx) with different void geometries and orientations have been performed. Both local and nonlocal crystal plasticity constitutive models have been implemented in a finite element framework and are used to seek new insights into the interrelationships among void growth, initial porosity, initial void size, plastic anisotropy, and local/nonlocal size effects.

Description

Siddiq, M. Amir/0000-0002-5777-6198; Asim, Umair Bin/0000-0001-9652-4658; Demiral, Murat/0000-0002-7206-1713

Keywords

Nonlocal Crystal Plasticity Theory, Void Growth, Single Crystal Aluminium Alloy, Lattice Rotation, single crystal aluminium alloy, TA Engineering (General). Civil engineering (General), 540, void growth, 620, TA, Engineering and Physical Sciences Research Council (EPSRC), non-local crystal plasticity theory, EP/L021714/1, lattice rotation

Fields of Science

02 engineering and technology, 0203 mechanical engineering, 0210 nano-technology

Citation

Asim, U., Siddiq, M.A., Demiral, M. (2017). Void growth in high strength aluminium alloy single crystals: a CPFEM based study. Modelling and Simulation in Materials Science and Engineering, 25(3). http://dx.doi.org/ 10.1088/1361-651X/aa5bcc

WoS Q

Q3

Scopus Q

Q3
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OpenCitations Citation Count
35

Source

Modelling and Simulation in Materials Science and Engineering

Volume

25

Issue

3

Start Page

035010

End Page

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Citations

CrossRef : 8

Scopus : 37

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Mendeley Readers : 38

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3.1638

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