Influence of Fibre Distribution and Grain Size on the Mechanical Behaviour of Friction Stir Processed Mg-C Composites

Mertens, Anne;Simar, Aude;Adrien, Jérôme;Maire, Eric;Lecomte-Beckers, Jacqueline;et.al.
(2015) Materials Characterization — Vol. 107, p. 125-133 (2015)

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Authors
  • Mertens, AnneUniversité de Liège
    Author
  • Simar, AudeUCLouvain
    Author
  • Adrien, JérômeINSA-LYON
    Author
  • Maire, EricINSA-LYON
    Author
  • Delannay, Francisorcid-logoUCLouvain
    Author
  • Lecomte-Beckers, JacquelineUniversité de Liège
    Author
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Abstract
Short C fibres-Mg matrix composites have been produced by friction stir processing sandwiches made of a layer of C fabric stacked between two sheets of Mg alloy AZ31B or AZ91D. This novel processing technique can allow the easy production of large-scale metal matrix composites. The paper investigates the microstructure of FSPed C fibre-Mg composites in relation with the fragmentation of the C fibres during FSP and their influence on the tensile properties. 3D X-ray tomography reveals that the fibres orient like onion rings and are more or less fragmented depending on the local shear stress during the process. The fibre volume fraction can be increased from 2.3% to 7.1% by reducing the nugget volume, i.e. by using a higher advancing speed in AZ31B alloy or a stronger matrix alloy, like AZ91D alloy. A higher fibre volume fraction leads to a smaller grain size which brings about an increase of the composite yield strength by 15 to 25%. However, a higher fibre volume fraction also leads to a lower fracture strain. Fracture surface observations reveal that damage occurs by fibre/matrix decohesion along fibres oriented perpendicularly to the loading direction.
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Citations

Mertens, A., Simar, A., Adrien, J., Maire, E., Montrieux, H.-M., Delannay, F., & Lecomte-Beckers, J. (2015). Influence of Fibre Distribution and Grain Size on the Mechanical Behaviour of Friction Stir Processed Mg-C Composites. Materials Characterization, 107, 125-133. https://doi.org/10.1016/j.matchar.2015.07.010 (Original work published 2015)