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  5. Multiscale modeling of functionally graded shell lattice metamaterials for additive manufacturing
 
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2023
Zweitveröffentlichung
Artikel
Verlagsversion

Multiscale modeling of functionally graded shell lattice metamaterials for additive manufacturing

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Hauptpublikation
s00366-023-01906-8.pdf
CC BY 4.0 International
Format: Adobe PDF
Size: 8.13 MB
TUDa URI
tuda/11243
URN
urn:nbn:de:tuda-tuprints-264758
DOI
10.26083/tuprints-00026475
Autor:innen
Shojaee, Mohammad ORCID 0000-0002-5601-6867
Valizadeh, Iman ORCID 0000-0002-9939-3603
Klein, Dominik K. ORCID 0000-0002-1722-8330
Sharifi, P.
Weeger, Oliver ORCID 0000-0002-1771-8129
Kurzbeschreibung (Abstract)

In this work, an experimentally validated multiscale modeling framework for additively manufactured shell lattice structures with graded parameters is introduced. It is exemplifed in application to the Schwarz primitive triply periodic minimal surface microstructure and 3D printing using masked stereolithography of a photopolymer material. The systematic procedure starts with the characterization of a hyperelastic material model for the 3D printed material. This constitutive model is then employed in the fnite element simulation of shell lattices at fnite deformations. The computational model is validated with experimental compression tests of printed lattice structures. In this way, the numerical convergence behavior and size dependence of the model are assessed, and the range in which it is reasonable to assume linear elastic behavior is determined. Then, representative volume elements subject to periodic boundary conditions are simulated to homogenize the mechanical behavior of Schwarz primitives with varying aspect ratios and shell thicknesses. Subsequently, the parameterized efective linear elasticity tensor of the metamaterial is represented by a physics-augmented neural network model. With this constitutive model, functionally graded shell lattice structures with varying microstructural parameters are simulated as macroscale continua using fnite element and diferential quadrature methods. The accuracy, reliability and efectiveness of this multiscale simulation approach are investigated and discussed. Overall, it is shown that this experimentally validated multiscale simulation framework, which is likewise applicable to other shell-like metamaterials, facilitates the design of functionally graded structures through additive manufacturing.

Freie Schlagworte

Metamaterials

Functionally graded m...

Multiscale modeling

Physics-augmented mac...

Additive manufacturin...

Sprache
Englisch
Fachbereich/-gebiet
16 Fachbereich Maschinenbau > Fachgebiet Cyber-Physische Simulation (CPS)
DDC
600 Technik, Medizin, angewandte Wissenschaften > 620 Ingenieurwissenschaften und Maschinenbau
Institution
Universitäts- und Landesbibliothek Darmstadt
Ort
Darmstadt
Titel der Zeitschrift / Schriftenreihe
Engineering with Computers
ISSN
1435-5663
Verlag
Springer
Ort der Erstveröffentlichung
London
Publikationsjahr der Erstveröffentlichung
2023
Verlags-DOI
10.1007/s00366-023-01906-8
PPN
517138379

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