Experimental Investigation of Mechanical Behavior in Auxetic-Inspired Cellular Metamaterials Manufactured by FDM Using PLA and PETG

Additive manufacturing enables the fabrication of cellular structures with complex geometries and tunable mechanical response. This study evaluates auxetic-inspired cellular metamaterials manufactured by fused deposition modeling using polylactic acid (PLA) and polyethylene terephthalate glycol (PETG). Standard specimens and three cellular architectures, namely conventional honeycomb, re-entrant honeycomb, and EigenModes, were investigated under tensile, flexural, and compressive loading. Results are reported as the mean ± standard deviation from three specimens per condition. In standard tensile specimens, PLA reached its highest failure load at 60% infill (1034.7 ± 5.8 N), whereas PETG increased with infill density, reaching 919.0 ± 16.5 N at 100% infill. Under flexural loading, the highest standard-specimen values were 38.7 ± 1.2 N for PLA and 20.0 ± 1.0 N for PETG, both at 90% infill. In compression, PLA standard specimens reached 98,645 ± 448 N at 100% infill, while PETG reached 47,292 ± 16,139 N. For cellular compression specimens manufactured at 90% infill, PLA showed higher failure load values than PETG in all evaluated geometries, with re-entrant honeycomb and EigenModes reaching 9424 ± 1327 N and 9172 ± 157 N, respectively. Scanning electron microscopy indicated brittle fracture and interlayer microcracking in PLA, while PETG showed greater deformation tolerance around voids and local discontinuities. Overall, the mechanical response depended on polymer behavior, loading mode, infill density, and cellular topology. Since Poisson’s ratio was not directly measured, auxetic-inspired metamaterial refers to architectures commonly associated with auxetic behavior in the literature.

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Journal
Journal of Composites Science
Published
2026-08-31
DOI
https://doi.org/10.3390/jcs10090464
Primary Topic
Cellular and Composite Structures
Type
article
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article

Experimental Investigation of Mechanical Behavior in Auxetic-Inspired Cellular Metamaterials Manufactured by FDM Using PLA and PETG

Marcos Garamvölgyi Silva, Jorge Neto, Máira Braga, Luís Ferro et al.
Journal of Composites Science
Cellular and Composite Structures
article

Experimental Investigation of Mechanical Behavior in Auxetic-Inspired Cellular Metamaterials Manufactured by FDM Using PLA and PETG

Marcos Garamvölgyi Silva, Jorge Neto, Máira Braga, Luís Ferro, Carla Guimarães, Ricardo Aguiar
article en

Abstract

Additive manufacturing enables the fabrication of cellular structures with complex geometries and tunable mechanical response. This study evaluates auxetic-inspired cellular metamaterials manufactured by fused deposition modeling using polylactic acid (PLA) and polyethylene terephthalate glycol (PETG). Standard specimens and three cellular architectures, namely conventional honeycomb, re-entrant honeycomb, and EigenModes, were investigated under tensile, flexural, and compressive loading. Results are reported as the mean ± standard deviation from three specimens per condition. In standard tensile specimens, PLA reached its highest failure load at 60% infill (1034.7 ± 5.8 N), whereas PETG increased with infill density, reaching 919.0 ± 16.5 N at 100% infill. Under flexural loading, the highest standard-specimen values were 38.7 ± 1.2 N for PLA and 20.0 ± 1.0 N for PETG, both at 90% infill. In compression, PLA standard specimens reached 98,645 ± 448 N at 100% infill, while PETG reached 47,292 ± 16,139 N. For cellular compression specimens manufactured at 90% infill, PLA showed higher failure load values than PETG in all evaluated geometries, with re-entrant honeycomb and EigenModes reaching 9424 ± 1327 N and 9172 ± 157 N, respectively. Scanning electron microscopy indicated brittle fracture and interlayer microcracking in PLA, while PETG showed greater deformation tolerance around voids and local discontinuities. Overall, the mechanical response depended on polymer behavior, loading mode, infill density, and cellular topology. Since Poisson’s ratio was not directly measured, auxetic-inspired metamaterial refers to architectures commonly associated with auxetic behavior in the literature.

Journal of Composites ScienceVol. 10(9)
Federal Center for Technological Education Celso Suckow da Fonseca (BR), Universidade do Estado do Rio de Janeiro (BR), Instituto Nacional de Traumatologia e Ortopedia (BR)
Openalex Percentile: Top 19%
Cellular and Composite Structures
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