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May 10, 2026Results in Engineering0 citationsOpen Access

Design and experimental evaluation of a topology-optimized metamaterial cell fabricated via 3D printing for enhanced energy absorption

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ASAmir ShahmoradMRMajid RajabiRHRamin Hashemi

Key Points

  • The study aims to investigate the mechanical performance of topology-optimized PLA metamaterials under compression and impact loading.
  • Three structures (TV, TH, TVH) were fabricated using polylactide (PLA) via material extrusion (MEX).
  • Structures were tested under quasi-static compressive loading and dynamic impact conditions to assess performance.
  • The study focused on the trade-off between compressive strength and energy absorption characteristics.
  • The TV structure exhibited a 50% weight reduction while maintaining high compressive strength.
  • The TH structure achieved a 30% weight reduction and demonstrated superior energy absorption under impact.
  • Significant differences in load-bearing capacity and energy dissipation were noted across different structural designs.

Abstract

• Topology-optimized PLA metamaterials were fabricated via FDM. • Compression and impact tests revealed distinct responses. • Topology governs strength–energy absorption trade-off. • TV structure achieved high strength with 50% weight reduction. • TH structure showed superior impact energy absorption at 30% weight. In this study, three topology-optimized structures were constructed using polylactide (PLA) via material extrusion (MEX) to investigate their mechanical performance under compression and impact loading. The structures, named TV, TH, and TVH, underwent quasi-static compressive loading and dynamic impact testing to assess their load-bearing capacity and energy absorption characteristics. The results revealed significant differences in behavior across structural designs. While one structure exhibited the highest compressive strength, another demonstrated superior energy absorption under impact, highlighting the influence of topology on mechanical performance. For example, the weight of TV structure reduced to 50%, while these structures indicated highest compressive strength. Moreover, the weight of TH structures reduced to 30%, and these structures showed highest energy absorption. The findings indicate that topology optimization enables tailored structural responses, enabling the design of lightweight components with enhanced strength and energy dissipation.

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Cite This Study

Shahmorad et al. (2026) studied this question.

synapsesocial.com/papers/6a0021fec8f74e3340f9cf63https://doi.org/10.1016/j.rineng.2026.110912
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