Computational design of 3D printed flexible Voronoi lattices
Identifikátory výsledku
Kód výsledku v IS VaVaI
<a href="https://www.isvavai.cz/riv?ss=detail&h=RIV%2F46747885%3A24210%2F25%3A00014217" target="_blank" >RIV/46747885:24210/25:00014217 - isvavai.cz</a>
Výsledek na webu
<a href="https://link.springer.com/article/10.1007/s40964-025-01274-3" target="_blank" >https://link.springer.com/article/10.1007/s40964-025-01274-3</a>
DOI - Digital Object Identifier
<a href="http://dx.doi.org/10.1007/s40964-025-01274-3" target="_blank" >10.1007/s40964-025-01274-3</a>
Alternativní jazyky
Jazyk výsledku
angličtina
Název v původním jazyce
Computational design of 3D printed flexible Voronoi lattices
Popis výsledku v původním jazyce
This study introduces a novel computational framework for designing and analyzing highly flexible, stochastic lattice structures using 3D Voronoi tessellations. This design replicates the stochastic cellular morphology of porous foams while allowing precise control over structural parameters, which offers great versatility for engineering applications such as lightweight construction, energy dissipation, and acoustic insulation. A computational design methodology is developed, including additive manufacturing, mechanical testing, and numerical modeling. First, the mechanical behavior of 3D-printed materials is examined under cyclic tension using a visco-hyperelastic constitutive model, which is then integrated into nonlinear finite element simulations incorporating large deformations and contact interactions. Numerical simulations are validated against experimental compression tests under cyclic loading, showing strong agreement, particularly for relative densities ranging from 6 to 18%. Strain responses at 20% and 60% compression were analyzed at 2 to 50 mm/min deformation rates. Furthermore, the stress distribution exhibited heterogeneity during initial buckling and the plateau phase due to randomly oriented struts. However, as the load increased and strain reached 0.6, stress distribution became more uniform, marking the onset of densification, and suggesting that stochastic lattices may offer mechanical advantages such as smoother energy absorption compared to regular cellular structures. By bridging computational modeling with experimental validation, this work enhances the understanding of highly deformable lattice structures, enabling optimized engineering designs.
Název v anglickém jazyce
Computational design of 3D printed flexible Voronoi lattices
Popis výsledku anglicky
This study introduces a novel computational framework for designing and analyzing highly flexible, stochastic lattice structures using 3D Voronoi tessellations. This design replicates the stochastic cellular morphology of porous foams while allowing precise control over structural parameters, which offers great versatility for engineering applications such as lightweight construction, energy dissipation, and acoustic insulation. A computational design methodology is developed, including additive manufacturing, mechanical testing, and numerical modeling. First, the mechanical behavior of 3D-printed materials is examined under cyclic tension using a visco-hyperelastic constitutive model, which is then integrated into nonlinear finite element simulations incorporating large deformations and contact interactions. Numerical simulations are validated against experimental compression tests under cyclic loading, showing strong agreement, particularly for relative densities ranging from 6 to 18%. Strain responses at 20% and 60% compression were analyzed at 2 to 50 mm/min deformation rates. Furthermore, the stress distribution exhibited heterogeneity during initial buckling and the plateau phase due to randomly oriented struts. However, as the load increased and strain reached 0.6, stress distribution became more uniform, marking the onset of densification, and suggesting that stochastic lattices may offer mechanical advantages such as smoother energy absorption compared to regular cellular structures. By bridging computational modeling with experimental validation, this work enhances the understanding of highly deformable lattice structures, enabling optimized engineering designs.
Klasifikace
Druh
J<sub>imp</sub> - Článek v periodiku v databázi Web of Science
CEP obor
—
OECD FORD obor
21100 - Other engineering and technologies
Návaznosti výsledku
Projekt
—
Návaznosti
S - Specificky vyzkum na vysokych skolach
Ostatní
Rok uplatnění
2025
Kód důvěrnosti údajů
S - Úplné a pravdivé údaje o projektu nepodléhají ochraně podle zvláštních právních předpisů
Údaje specifické pro druh výsledku
Název periodika
PROGRESS IN ADDITIVE MANUFACTURING>
ISSN
2363-9512
e-ISSN
—
Svazek periodika
10
Číslo periodika v rámci svazku
5
Stát vydavatele periodika
SZ - Svazijské království
Počet stran výsledku
18
Strana od-do
11061-11078
Kód UT WoS článku
001561219900001
EID výsledku v databázi Scopus
2-s2.0-105014881334