SLM lattice structures: Properties, performance, applications and challenges
Additive manufacturing (AM), particularly Selective Laser Melting (SLM) has enabled development of lattice structures with unique properties. Through control of various parameters lattice structures can produce unique mechanical, electrical, thermal and acoustic properties, and have received much re...
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doaj-058f379c8b5d49dc8142b3fe50d5143b2020-11-25T01:18:41ZengElsevierMaterials & Design0264-12752019-12-01183SLM lattice structures: Properties, performance, applications and challengesTobias Maconachie0Martin Leary1Bill Lozanovski2Xuezhe Zhang3Ma Qian4Omar Faruque5Milan Brandt6RMIT Centre for Additive Manufacture, RMIT University, Melbourne, Australia; ARC Training Centre for Lightweight Automotive Structures (ATLAS), Australian Research Council Grant IC160100032, AustraliaRMIT Centre for Additive Manufacture, RMIT University, Melbourne, Australia; ARC Training Centre for Lightweight Automotive Structures (ATLAS), Australian Research Council Grant IC160100032, Australia; ARC Training Centre in Additive Biomanufacturing, Australia; Corresponding author at: RMIT Centre for Additive Manufacture, RMIT University, Melbourne, Australia.RMIT Centre for Additive Manufacture, RMIT University, Melbourne, Australia; ARC Training Centre in Additive Biomanufacturing, AustraliaRMIT Centre for Additive Manufacture, RMIT University, Melbourne, AustraliaRMIT Centre for Additive Manufacture, RMIT University, Melbourne, AustraliaARC Training Centre for Lightweight Automotive Structures (ATLAS), Australian Research Council Grant IC160100032, Australia; Ford Motor Company, Research Innovation Centre (RIC), Dearborn, MI, USARMIT Centre for Additive Manufacture, RMIT University, Melbourne, Australia; ARC Training Centre in Additive Biomanufacturing, AustraliaAdditive manufacturing (AM), particularly Selective Laser Melting (SLM) has enabled development of lattice structures with unique properties. Through control of various parameters lattice structures can produce unique mechanical, electrical, thermal and acoustic properties, and have received much research attention. Despite the increasing volume of published data on the mechanical response of specific SLM lattice structures, there exists no overarching analysis. This work addresses this identified deficiency by providing a comprehensive summary of the experimental data reported on the mechanical response of SLM lattice structures. The design, fabrication and performance of SLM lattice structures are reviewed and the quality of data reported is analysed to inform best-practice for future studies. This comprehensive data summary enables meta-analysis of the reported mechanical performance of SLM lattice structures, providing insight into the bounds of their technical capabilities. Correlations were identified between the relative density and mechanical properties of many unit cell topologies consistent with the predictions of the Gibson-Ashby model, indicating its usefulness in describing and predicting the behaviour of SLM lattice structures. This review provides designers with a compiled resource of experimental data and design for AM tools to inform future design applications of SLM lattice structures and facilitates their further commercial adoption. Keywords: Additive manufacturing, SLM, Selective laser melting, Lattice structures, DFAM, Mechanical propertieshttp://www.sciencedirect.com/science/article/pii/S0264127519305751 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Tobias Maconachie Martin Leary Bill Lozanovski Xuezhe Zhang Ma Qian Omar Faruque Milan Brandt |
spellingShingle |
Tobias Maconachie Martin Leary Bill Lozanovski Xuezhe Zhang Ma Qian Omar Faruque Milan Brandt SLM lattice structures: Properties, performance, applications and challenges Materials & Design |
author_facet |
Tobias Maconachie Martin Leary Bill Lozanovski Xuezhe Zhang Ma Qian Omar Faruque Milan Brandt |
author_sort |
Tobias Maconachie |
title |
SLM lattice structures: Properties, performance, applications and challenges |
title_short |
SLM lattice structures: Properties, performance, applications and challenges |
title_full |
SLM lattice structures: Properties, performance, applications and challenges |
title_fullStr |
SLM lattice structures: Properties, performance, applications and challenges |
title_full_unstemmed |
SLM lattice structures: Properties, performance, applications and challenges |
title_sort |
slm lattice structures: properties, performance, applications and challenges |
publisher |
Elsevier |
series |
Materials & Design |
issn |
0264-1275 |
publishDate |
2019-12-01 |
description |
Additive manufacturing (AM), particularly Selective Laser Melting (SLM) has enabled development of lattice structures with unique properties. Through control of various parameters lattice structures can produce unique mechanical, electrical, thermal and acoustic properties, and have received much research attention. Despite the increasing volume of published data on the mechanical response of specific SLM lattice structures, there exists no overarching analysis. This work addresses this identified deficiency by providing a comprehensive summary of the experimental data reported on the mechanical response of SLM lattice structures. The design, fabrication and performance of SLM lattice structures are reviewed and the quality of data reported is analysed to inform best-practice for future studies. This comprehensive data summary enables meta-analysis of the reported mechanical performance of SLM lattice structures, providing insight into the bounds of their technical capabilities. Correlations were identified between the relative density and mechanical properties of many unit cell topologies consistent with the predictions of the Gibson-Ashby model, indicating its usefulness in describing and predicting the behaviour of SLM lattice structures. This review provides designers with a compiled resource of experimental data and design for AM tools to inform future design applications of SLM lattice structures and facilitates their further commercial adoption. Keywords: Additive manufacturing, SLM, Selective laser melting, Lattice structures, DFAM, Mechanical properties |
url |
http://www.sciencedirect.com/science/article/pii/S0264127519305751 |
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