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Multiscale Analysis of Reinforced Concrete Frames with Embedded Metamaterials Under Progressive Collapse

  • Xu Long
  • , Christopher Samuneti
  • , Percy M. Iyela
  • , Khaja Wahaajuddin Kawkabi
  • , Prince Manyanya Ngangura
  • , Kunjie Fan
  • Northwestern Polytechnical University Xian

Research output: Contribution to journalArticlepeer-review

Abstract

Progressive collapse represents a catastrophic failure mode for reinforced concrete (RC) structures, yet the use of architected materials to mitigate this risk remains largely unexplored. This study presents a numerical feasibility investigation of RC beam–column sub-assemblages with auxetic metamaterial inserts embedded in critical joint regions. A hierarchical multiscale framework is developed to link the effective behavior of auxetic metamaterials with structure-scale collapse response. The framework couples macroscale structural analysis with mesoscale fracture simulations through a hybrid voxel–Voronoi discretization strategy. Baseline finite element models are validated against published experimental results for conventional RC specimens, while the auxetic-enhanced configurations are evaluated numerically. Under high tensile strain, the auxetic insert expands laterally because of its negative Poisson’s ratio and generates a localized confining stress field within the surrounding concrete. The simulations suggest that this mechanism may promote crack bifurcation, redistribute localized cracking into a more distributed damage pattern, and delay compressive crushing and crack coalescence. Compared with the corresponding conventional RC configurations, the auxetic-enhanced models predict a 25% increase in load redistribution capacity and a 20% enhancement in deformation ductility. These predicted improvements require future experimental validation using physical auxetic-enhanced RC specimens. The findings provide a computational basis for exploring material-by-design strategies aimed at improving the robustness of critical RC joint regions under progressive collapse demands.

Original languageEnglish
Article number2363
JournalMaterials
Volume19
Issue number11
DOIs
StatePublished - Jun 2026

Keywords

  • auxetic concrete
  • embedded metamaterials
  • mesoscale modelling
  • negative Poisson’s ratio
  • progressive collapse
  • reinforced concrete
  • sub-modelling

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