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Title:A recoverable composite auxetic absorber optimized for low-energy impacts
Authors:ID Di Mauro, Sebastiano (Author)
ID Novak, Nejc (Author)
ID Graziosi, Serena (Author)
ID Pugliese, Raffaele (Author)
ID Galbiati, Alessandro (Author)
ID Gadola, Alessandro (Author)
ID Airoldi, Alessandro (Author)
Files:.pdf 1-s2.0-S2666682026000393-main.pdf (11,63 MB)
MD5: 7B8F4D2C40068CA2517E6982F9279963
 
URL https://www.sciencedirect.com/science/article/pii/S2666682026000393?via%3Dihub
 
Language:English
Work type:Article
Typology:1.01 - Original Scientific Article
Organization:FS - Faculty of Mechanical Engineering
Abstract:This study proposes, validates, and optimizes an innovative recoverable composite energy absorber based on a foam-filled hexachiral auxetic architecture made of a visco-hyperelastic polymer. The absorber combined a 3D- printed hexachiral frame made of thermoplastic polyurethane reinforced by waste tire rubber (TPU-WTR) and a strain-rate-sensitive highly compressible open-cell polyurethane foam. While the combination of frame auxeticity with foam filling enhanced localized energy absorption, the specific materials adopted guaranteed full recoverability after impact and the variation of geometrical parameters in the hexachiral topology provided a significant design flexibility. A comprehensive mechanical characterization was performed, based on static and dynamic tests, which were used to calibrate accurately their numerical models. An absorber prototype was produced and experimentally tested, assessing the full recoverability at different impact velocities. Finite element models of the absorber were developed by using the identified material models and were validated from the quantitative and qualitative standpoint. Leveraging the design flexibility of the concept, fully parametric models were used to optimize a configuration for an impact of a 12 kg mass at 9 m/s, with a force constraint representative of the limit referred to a collision between a vehicle bumper and a pedestrian leg. The exploited Gaussian process regression (GPR) surrogate models, combined with a genetic algorithm, were able to predict the largely variable performance indices of the different configurations and enabled the identification of an optimal solution that significantly minimized the indentation of the impactor, while satisfying the force constraint and preserving full recoverability.
Keywords:hexachiral auxetic structure, recoverable absorbers, energy absorption, finite element modelling, surrogate model, optimization technique
Publication status:Published
Publication version:Version of Record
Publication date:27.04.2026
Publisher:Elsevier
Year of publishing:2026
Number of pages:15 str.
Numbering:Vol. 20, [article no.] 100733
PID:20.500.12556/DKUM-98143 New window
UDC:539.2:515.1
ISSN on article:2666-6820
COBISS.SI-ID:276952579 New window
DOI:10.1016/j.jcomc.2026.100733 New window
Publication date in DKUM:20.05.2026
Views:189
Downloads:7
Metadata:XML DC-XML DC-RDF
Categories:Misc.
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Record is a part of a journal

Title:Composites : Open access.
Publisher:Elsevier B.V.
ISSN:2666-6820
COBISS.SI-ID:43265283 New window

Document is financed by a project

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:P2-0063-2022
Name:Konstruiranje celičnih struktur

Funder:ARIS - Slovenian Research and Innovation Agency
Project number:J2-60049-2025
Name:Razvoj naprednih celičnih metamaterialov

Licences

License:CC BY-NC-ND 4.0, Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International
Link:http://creativecommons.org/licenses/by-nc-nd/4.0/
Description:The most restrictive Creative Commons license. This only allows people to download and share the work for no commercial gain and for no other purposes.

Secondary language

Language:Slovenian
Keywords:heksakiralne avksetične strukture, obnovljivi absorberji, absorpcija energije, modeliranje končnih elementov, nadomestni model, tehnika optimizacije


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