In this work, a peridynamics-based representative volume element approach is implemented to estimate the effective tensile modulus of nanomodified epoxy resins. The results obtained through this homogenization procedure are then used as input for the analysis of nanocomposite fracture toughness, which is carried out by exploiting a classical continuum mechanics-peridynamics coupling strategy. In the coupled model, the small-scale heterogeneity of the crack tip region is preserved by implementing the recently proposed intermediatelyhomogenized peridynamic model. Comparison to experimental data confirms the capability of the peridynamics-based approaches to properly model the effective tensile modulus and fracture toughness of polymer-based nanocomposites.
A multiscale peridynamic framework for modelling mechanical properties of polymer-based nanocomposites / Ongaro, Greta; Bertani, Roberta; Galvanetto, Ugo; Pontefisso, Alessandro; Zaccariotto, Mirco. - In: ENGINEERING FRACTURE MECHANICS. - ISSN 0013-7944. - 274:(2022), p. 108751. [10.1016/j.engfracmech.2022.108751]
A multiscale peridynamic framework for modelling mechanical properties of polymer-based nanocomposites
Greta Ongaro
Primo
;
2022
Abstract
In this work, a peridynamics-based representative volume element approach is implemented to estimate the effective tensile modulus of nanomodified epoxy resins. The results obtained through this homogenization procedure are then used as input for the analysis of nanocomposite fracture toughness, which is carried out by exploiting a classical continuum mechanics-peridynamics coupling strategy. In the coupled model, the small-scale heterogeneity of the crack tip region is preserved by implementing the recently proposed intermediatelyhomogenized peridynamic model. Comparison to experimental data confirms the capability of the peridynamics-based approaches to properly model the effective tensile modulus and fracture toughness of polymer-based nanocomposites.File | Dimensione | Formato | |
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Ongaro_Multiscale_2022.pdf
Open Access dal 16/10/2024
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