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Please use this identifier to cite or link to this item: https://dspace.lboro.ac.uk/2134/23451

Title: Assessing extraterrestrial regolith material simulants for in-situ resource utilization based 3D printing
Authors: Goulas, Athanasios
Binner, J.G.P.
Harris, Russell A.
Friel, Ross J.
Keywords: 3D printing
Additive manufacturing
Issue Date: 2017
Publisher: © Elsevier
Citation: GOULAS, A. ... et al., 2017. Assessing extraterrestrial regolith material simulants for in-situ resource utilization based 3D printing. Applied Materials Today, 6, pp.54-61.
Abstract: This research paper investigates the suitability of ceramic multicomponent materials, which are found on the Martian and Lunar surfaces, for 3D printing (aka Additive Manufacturing) of solid structures. 3D printing is a promising solution as part of the cutting edge field of future in‐situ space manufacturing applications. 3D printing of physical assets from simulated Martian and Lunar regolith was successfully performed during this work by utilising laser‐based powder bed fusion equipment. Extensive evaluation of the raw regolith simulants was conducted via Optical and Electron Microscopy (SEM), Visible‐Near Infrared/Infrared (Vis‐NIR/IR) Spectroscopy and thermal characterisation via Thermogravimetric Analysis (TGA) and Differential Scanning Calorimetry (DSC). The analysis results led to the characterisation of key properties of these multicomponent ceramic materials with regards to their processability via powder bed fusion 3D printing. The Lunar and Martian simulant regolith analogues demonstrated spectral absorbance values of up to 92% within the Vis‐NIR spectra. Thermal analysis demonstrated that these materials respond very differently to laser processing, with a high volatility (30% weight change) for the Martian analogue as opposed to its less volatile Lunar counterpart (<1% weight change). Results also showed a range of multiple thermal occurrences associated with melting, glass transition and crystallisation reactions. The morphological features of the powder particles are identified as contributing to densification limitations for powder bed fusion processing. This investigation has shown that – provided that the simulants are good matches for the actual regoliths – the lunar material is a viable candidate material for powder bed fusion 3D printing, whereas Martian regolith is not.
Description: This paper was published in the journal Applied Materials Today and the definitive published version is available at http://dx.doi.org/10.1016/j.apmt.2016.11.004.
Version: Accepted for publication
DOI: 10.1016/j.apmt.2016.11.004
URI: https://dspace.lboro.ac.uk/2134/23451
Publisher Link: http://dx.doi.org/10.1016/j.apmt.2016.11.004
ISSN: 2352-9407
Appears in Collections:Published Articles (Mechanical, Electrical and Manufacturing Engineering)

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