Parnian, Pooyan ; Shojaee, Mohammad ; Weeger, Oliver ; D’Amore, Alberto (2024)
Multiscale modelling and characterisation of fused filament fabricated neat and graphene nanoplatelet reinforced G-polymers.
In: Progress in Additive Manufacturing
doi: 10.1007/s40964-024-00789-5
Artikel, Bibliographie
Kurzbeschreibung (Abstract)
In this study, the fused filament fabrication of novel biodegradable G-polymer is investigated, including also filaments reinforced by graphene nanoplatelets. A combined framework of computational multiscale modelling and experimental studies is applied to characterise and model the mechanical behaviour of composite and nanocomposite materials, fabricated using a 3D-printer by depositing G-polymer filaments in +45° and -45° angles. The investigation is performed on both hot-extruded single filaments and 3D-printed specimens. Experimental results of hot-extruded single filaments are utilized on the microscale to extract the macroscale constitutive models. At the microscale level, representative volume elements with different percentages of penetration are analyzed to compute the effective orthotropic elastic material properties. A comprehensive comparison study is conducted using different micromechanical models, multiscale simulation outputs, and the mechanical properties resulting from experiments. The accuracy of the results obtained from the homogenization technique is validated against realistic finite element microstructural models and experimental measurements. The results demonstrate that computational homogenization, when coupled with accurate property characterisation, serves as a reliable tool for predicting the elastic response of 3D-printed parts. Furthermore, the proposed framework reduces the need for extensive experimental replication and lowers manufacturing costs.
Typ des Eintrags: | Artikel |
---|---|
Erschienen: | 2024 |
Autor(en): | Parnian, Pooyan ; Shojaee, Mohammad ; Weeger, Oliver ; D’Amore, Alberto |
Art des Eintrags: | Bibliographie |
Titel: | Multiscale modelling and characterisation of fused filament fabricated neat and graphene nanoplatelet reinforced G-polymers |
Sprache: | Englisch |
Publikationsjahr: | 10 September 2024 |
Ort: | [Cham] |
Verlag: | Springer |
Titel der Zeitschrift, Zeitung oder Schriftenreihe: | Progress in Additive Manufacturing |
Kollation: | 16 Seiten |
DOI: | 10.1007/s40964-024-00789-5 |
Kurzbeschreibung (Abstract): | In this study, the fused filament fabrication of novel biodegradable G-polymer is investigated, including also filaments reinforced by graphene nanoplatelets. A combined framework of computational multiscale modelling and experimental studies is applied to characterise and model the mechanical behaviour of composite and nanocomposite materials, fabricated using a 3D-printer by depositing G-polymer filaments in +45° and -45° angles. The investigation is performed on both hot-extruded single filaments and 3D-printed specimens. Experimental results of hot-extruded single filaments are utilized on the microscale to extract the macroscale constitutive models. At the microscale level, representative volume elements with different percentages of penetration are analyzed to compute the effective orthotropic elastic material properties. A comprehensive comparison study is conducted using different micromechanical models, multiscale simulation outputs, and the mechanical properties resulting from experiments. The accuracy of the results obtained from the homogenization technique is validated against realistic finite element microstructural models and experimental measurements. The results demonstrate that computational homogenization, when coupled with accurate property characterisation, serves as a reliable tool for predicting the elastic response of 3D-printed parts. Furthermore, the proposed framework reduces the need for extensive experimental replication and lowers manufacturing costs. |
Freie Schlagworte: | Fused filament fabrication, G-polymer, Experiment and simulation, Nanocomposite polymer, Multiscale modelling, Micromechanical modelling |
Fachbereich(e)/-gebiet(e): | 16 Fachbereich Maschinenbau 16 Fachbereich Maschinenbau > Fachgebiet Cyber-Physische Simulation (CPS) |
Hinterlegungsdatum: | 09 Dez 2024 13:03 |
Letzte Änderung: | 20 Dez 2024 08:54 |
PPN: | 52494850X |
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