Search results for " Additive Manufacturing"

showing 4 items of 14 documents

Numerical modeling of the solid-state sintering at the microstructural level: Multiphysics approach and application to metal additive manufacturing

2023

Numerical modeling of the solid-state sintering at the microstructural level: Multiphysics approach and application to metal additive manufacturing

Solid[SPI] Engineering Sciences [physics]finite element methodmicrostructure evolutionmultiphysics couplingmetal additive manufacturingstate sinteringstain steel 316L.
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Environmental modelling of aluminium based components manufacturing routes: Additive manufacturing versus machining versus forming

2018

Abstract Additive Manufacturing represents, by now, a viable alternative for metal-based components production. Therefore the designer, often, has to select among three options at process design stage: subtractive, mass conserving, and additive approaches. The selection of a given process, besides affecting the manufacturing step impact, influences significantly the impact related to the material production step. If the process enables a part weight reduction (as the Additive Manufacturing approaches do) even the use phase is affected by the manufacturing approach selection. The present research provides a comprehensive environmental manufacturing approaches comparison for components made o…

Sustainable manufacturing Environmental impact comparison Additive manufacturing Machining Forming Decision support tool0209 industrial biotechnologyEnvironmental analysisComputer scienceProcess (engineering)Strategy and ManagementProcess design02 engineering and technology010501 environmental sciences01 natural sciencesIndustrial and Manufacturing Engineeringlaw.invention020901 industrial engineering & automationMachininglawProcess engineeringSettore ING-IND/16 - Tecnologie E Sistemi Di LavorazioneLife-cycle assessment0105 earth and related environmental sciencesGeneral Environmental ScienceSubtractive colorRenewable Energy Sustainability and the Environmentbusiness.industryForming processesSelective laser sinteringbusiness
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Hedysarum coronarium-Based Green Composites Prepared by Compression Molding and Fused Deposition Modeling

2022

In this work, an innovative green composite was produced by adding Hedysarum coronarium (HC) flour to a starch-based biodegradable polymer (Mater-Bi®, MB). The flour was obtained by grinding together stems, leaves and flowers and subsequently sieving it, selecting a fraction from 75 μm to 300 μm. Four formulations have been produced by compression molding (CM) and fused deposition modeling (FDM) by adding 5%, 10%, 15% and 20% of HC to MB. The influence of filler content on the processability was tested, and rheological, morphological and mechanical properties of composites were also assessed. Through CM, it was possible to obtain easily homogeneous samples with all filler amounts.…

biocompositesTechnologyMicroscopyQC120-168.85FDMgreen compositesTQH201-278.5biopolymers3D printingnatural fillerEngineering (General). Civil engineering (General)ArticleMater-BiTK1-9971Settore ING-IND/22 - Scienza E Tecnologia Dei MaterialiDescriptive and experimental mechanicsgreen composites; biocomposites; FDM; biopolymers; Mater-Bi; natural filler; additive manufacturing; 3D printingGeneral Materials ScienceElectrical engineering. Electronics. Nuclear engineeringTA1-2040additive manufacturing3D printing Additive manufacturing Biocomposites Biopolymers FDM Green composites Natural filler Mater-BiMaterials; Volume 15; Issue 2; Pages: 465
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Flame-Retardant and Tensile Properties of Polyamide 12 Processed by Selective Laser Sintering

2022

This research was funded by the European Regional Development Fund within Measure 1.1.1.1 “Industry-Driven Research” of the Specific aid objective 1.1.1 “To increase the research and innovation capacity of scientific institutions of Latvia and their ability to attract external funding by investing in human resources and infrastructure” of the Operational Program “Growth and Employment” (Project No. 1.1.1.1/19/A/143). A.S. and A.Z. are grateful to funding received from the European Union Horizon 2020 Framework programme H2020-WIDESPREAD-01-2016-2017-TeamingPhase2 under grant agreement No. 739508, project CAMART2.

tensile propertiespolyamide 12flame-retardant properties; vertical burn test; tensile properties; anisotropy; additive manufacturing; polyamide 12; selective laser sinteringCeramics and Composites:NATURAL SCIENCES::Physics [Research Subject Categories]vertical burn testanisotropyselective laser sinteringflame-retardant propertiesadditive manufacturingEngineering (miscellaneous)Journal of Composites Science
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