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Effect of build orientation on fracture behaviour of AlSi10Mg produced by selective laser melting

Sultan AlRedha (Abu Dhabi National Oil Company - Offshore, Abu Dhabi, United Arab Emirates)
Anton Shterenlikht (Hewlett-Packard Enterprise UK, Bristol, UK)
Mahmoud Mostafavi (Department of Mechanical Engineering, University of Bristol, Bristol, UK)
Derreck Van Gelderen (PA Consulting Group Ltd, London, UK)
Omar Eduardo Lopez-Botello (Tecnologico de Monterrey, Escuela de Ingenieria y Ciencias, Monterrey, Mexico and National Laboratory for Additive and Digital Manufacturing, Mexico City, Mexico)
Luis Arturo Reyes (Centro de Investigación e Innovación en Ingeniería Aeronáutica (CIIIA), Universidad Autonoma de Nuevo Leon, San Nicolas de los Garza, Mexico and National Laboratory for Additive and Digital Manufacturing, Mexico City, Mexico)
Patricia Zambrano (Centro de Investigación e Innovación en Ingeniería Aeronáutica (CIIIA), Universidad Autonoma de Nuevo Leon, San Nicolas de los Garza, Mexico and National Laboratory for Additive and Digital Manufacturing, Mexico City, Mexico)
Carlos Garza (Consejo Nacional de Ciencia y Tecnologia, Mexico DF, Mexico and Centro de Investigación e Innovación en Ingeniería Aeronáutica (CIIIA), Universidad Autonoma de Nuevo Leon, San Nicolas de los Garza, Mexico)

Rapid Prototyping Journal

ISSN: 1355-2546

Article publication date: 5 November 2020

Issue publication date: 8 January 2021

413

Abstract

Purpose

A key challenge found in additive manufacturing is the difficulty to produce components with replicable microstructure and mechanical performance in distinct orientations. This study aims to investigate the influence of build orientation on the fracture toughness of additively manufactured AlSi10Mg specimens.

Design/methodology/approach

The AlSi10Mg specimens were manufactured using the selective laser melting (SLM) technology. The fracture toughness was experimentally determined (under ASTM E399-09) using C(T) specimens manufactured in different orientations. The microstructure of the specimens was examined using metallography to determine the effects of grain orientation on fracture toughness.

Findings

The fracture toughness magnitude of manufactured specimens ranged between 36 and 50 MPam, which closely matched conventional bulk material and literature values regarding AlSi10Mg components. The C(T) specimens printed in the T-L orientation yielded the highest fracture toughness. The grain orientation and fracture toughness values confirm the anisotropic nature of SLM parts where the T-L-oriented specimen obtained the highest KIC value. A clear interaction between the melt pool boundaries and micro-slipping during the loading application was observed.

Originality/value

The novelty of this paper consists in elucidating the relationship between grain orientation and fracture toughness of additively manufactured AlSi10Mg specimens because of the anisotropy generated by the different melting pool boundaries and orientations in SLM. The findings show that melt pool boundaries can behave as easier pathways for cracks to propagate and subsequently reduce the fracture toughness of specimens with cracks perpendicular to the build direction.

Keywords

Acknowledgements

Conflicts of interest: The authors declare no conflict of interest.

Citation

AlRedha, S., Shterenlikht, A., Mostafavi, M., Van Gelderen, D., Lopez-Botello, O.E., Reyes, L.A., Zambrano, P. and Garza, C. (2021), "Effect of build orientation on fracture behaviour of AlSi10Mg produced by selective laser melting", Rapid Prototyping Journal, Vol. 27 No. 1, pp. 112-119. https://doi.org/10.1108/RPJ-02-2020-0041

Publisher

:

Emerald Publishing Limited

Copyright © 2020, Emerald Publishing Limited

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