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A design and optimisation framework for cold spray additive manufacturing of lightweight aerospace structural components

dc.contributor.authorLomo, FNen
dc.contributor.authorPatel, MJen
dc.contributor.authorVargas-Uscategui, Aen
dc.contributor.authorKing, PCen
dc.contributor.authorCole, ISen
dc.date.accessioned2026-06-13T17:40:32Z
dc.date.available2026-06-13T17:40:32Z
dc.date.issued2023en
dc.description.abstractCold spray additive manufacturing (CSAM) is a solid-state deposition process with the potential to produce near-net shape components with complex geometry at a high fabrication rate, making it an attractive alternative to more widely established additive manufacturing (AM) processes. However, CSAM is still in its early stages and requires numerous advancements. The current literature highlights the lack of a design framework for fabricating structural components that encompasses the advantages and constraints of CSAM. This work proposes such a framework to guide product and process engineers, with its novel aspects including (i) accounting for different spray trajectories and their effect on anisotropic mechanical properties, (ii) accounting for the primary constraint for toolpath planning (maximum overhang angle ‘MOA’), and (iii) virtual development and optimisation of a real-world structural component with complex geometry. To exemplify this framework, tensile properties under two spray trajectories were determined experimentally for a common lightweight metal (titanium) supplemented with a ceramic to form a metal matrix composite with improved strength and hardness. Optimisation of the design was conducted via finite element analysis and topology optimisation (TO). Two different TO processes were conducted, namely (i) minimising the strain energy of the structure and reducing the weight by 60% (best stiffness-to-weight ratio) and (ii) minimising the weight by targeting a maximum factor of safety (FoS) value of 1.2. The final design was fabricated via CSAM with relatively little raw material wastage and reasonably close geometric accuracy. Fabrication defects were, however, noticed after making a demonstration component and mitigation measures are discussed within the context of the design framework proposed here.en
dc.description.statusPeer-revieweden
dc.identifier.otherBibtex:lomo2023designen
dc.identifier.otherORCID:/0000-0001-6582-1457/work/217265319en
dc.identifier.otherORCID:/0000-0003-4121-0197/work/217267138en
dc.identifier.scopus85179625655en
dc.identifier.urihttps://hdl.handle.net/1885/733811333
dc.language.isoenen
dc.provenanceCC BY-NC 4.0en
dc.rights©2023 The authorsen
dc.sourceAdditive Manufacturingen
dc.titleA design and optimisation framework for cold spray additive manufacturing of lightweight aerospace structural componentsen
dc.typeJournal articleen
dspace.entity.typePublicationen
local.contributor.affiliationLomo, FN; RMIT Universityen
local.contributor.affiliationPatel, MJ; RMIT Universityen
local.contributor.affiliationVargas-Uscategui, A; CSIRO Manufacturingen
local.contributor.affiliationKing, PC; CSIRO Manufacturingen
local.contributor.affiliationCole, IS; RMIT Universityen
local.identifier.citationvolume78en
local.identifier.doi10.1016/j.addma.2023.103891en
local.identifier.pure6168f6a5-766d-40ff-8ba9-2d7e868c7871en
local.type.statusPublisheden

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