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dc.contributor.editorWysocki, Bartłomiej
dc.contributor.editorBuhagiar, Joseph
dc.contributor.editorDurejko, Tomasz
dc.date.accessioned2024-05-14T12:59:13Z
dc.date.available2024-05-14T12:59:13Z
dc.date.issued2024
dc.identifierONIX_20240514_9783036598864_17
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/137414
dc.description.abstractMetal additive manufacturing (AM) has gained significant attention due to its ability to produce functional, net-shape parts using laser, electron beam, or binder jetting methods in various industrial sectors. Recent advancements in AM have opened up new opportunities for design freedom and the fabrication of complex geometries such as cellular solids, metamaterials, or biomimetic materials that are not easily achievable using conventional methods. Today, these objects can be created using computer-aided design (CAD) models and elemental or alloyed metallic powders.This Special Issue of Materials, titled "Design and Post Processing for Metal Additive Manufacturing", sought submissions on the design of elements with predicted microstructure and mechanical properties, the use of artificial intelligence/machine learning (AI/ML) in AM, numerical algorithms for AM, and µ-CT magining for quality control.While AM's powder bed manufacturing provides the possibility of fabricating objects of any shape in one production step, it does come with some disadvantages. A major drawback is the need to generate support for the fabricated parts to dissipate the heat generated during the 3D printing process and minimize the geometrical distortions caused by internal stresses from metallic powders. This Special Issue also covers computer simulations and improved fabrication protocols that can help reduce these issues.
dc.languageEnglish
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issues
dc.subject.otherhybrid additive manufacturing
dc.subject.otherhigh-speed milling
dc.subject.otherselective laser melting
dc.subject.otherconstruction rules
dc.subject.otheradditive manufacturing
dc.subject.otherpowder bed fusion (PBF)
dc.subject.otherCP titanium
dc.subject.otheranodic oxidation
dc.subject.otherTiO2 nanotubes
dc.subject.otherAg nanoparticles
dc.subject.otherSERS platforms
dc.subject.otherplasmonic substrates
dc.subject.otherelemental powders
dc.subject.otherheat treatment
dc.subject.otherin situ alloying
dc.subject.otherlaser powder bed fusion
dc.subject.othernickel-titanium
dc.subject.otherpre-mixed powders
dc.subject.otherIN 625
dc.subject.otherAM
dc.subject.otherPBF-LB
dc.subject.otherdensity
dc.subject.otherballing
dc.subject.otherprocess parameters
dc.subject.otheradditive manufacturing (AM)
dc.subject.other3D printing
dc.subject.othermicrosatellites
dc.subject.otherlightweight mirror
dc.subject.othermetal mirror
dc.subject.other316L steel
dc.subject.otherporous structure
dc.subject.othertriply periodic minimal surface
dc.subject.otherdeformation behavior
dc.subject.otherenergy absorption
dc.subject.othersurface morphology
dc.subject.otherself-growing
dc.subject.otherprocess-quality model
dc.subject.othermachine learning
dc.subject.othertensile strength
dc.subject.other316L stainless-steel
dc.subject.otherLPBF
dc.subject.otherrough surfaces
dc.subject.otherpartial machining
dc.subject.otherWAAM 18Ni 250 Maraging steel
dc.subject.otherdurability
dc.subject.othercrack growth
dc.subject.othershot peening
dc.subject.otherPVD multi-layer coating
dc.subject.othermechanical testing
dc.subject.othercorrosion
dc.subject.otherresidual compressive stresses
dc.subject.otherWAAM
dc.subject.otherAl-Li alloys
dc.subject.otherwire production
dc.subject.otherDED (directed energy deposition)
dc.subject.othersurface engineering
dc.subject.othertribocorrosion
dc.subject.otherTi6Al4V
dc.subject.othermachining
dc.subject.othercutting force
dc.subject.othersurface integrity
dc.subject.othertool wear
dc.subject.otherporosity
dc.subject.otheranisotropy
dc.subject.otherpost-processing processes
dc.subject.otherhybrid manufacturing
dc.subject.otherInconel 718
dc.subject.othercreep
dc.subject.otherHIP
dc.subject.otherpost-processing
dc.subject.otherhot isostatic pressing
dc.subject.otherwire feed electron beam additive manufacturing
dc.subject.otherelectron beam freeform fabrication
dc.subject.otheraluminum alloys
dc.subject.othernickel superalloys
dc.subject.othermultiphase materials
dc.subject.otherin situ composites
dc.titleDesign and Post Processing for Metal Additive Manufacturing
dc.typebook
oapen.identifier.doi10.3390/books978-3-0365-9885-7
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0
oapen.relation.isbn9783036598864
oapen.relation.isbn9783036598857
oapen.pages276


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