防务技术2024,Vol.35Issue(5) :47-59.DOI:10.1016/j.dt.2023.09.003

Influence of manufacturing process-induced geometrical defects on the energy absorption capacity of polymer lattice structures

Alexandre Riot Enrico Panettieri Antonio Cosculluela Marco Montemurro
防务技术2024,Vol.35Issue(5) :47-59.DOI:10.1016/j.dt.2023.09.003

Influence of manufacturing process-induced geometrical defects on the energy absorption capacity of polymer lattice structures

Alexandre Riot 1Enrico Panettieri 2Antonio Cosculluela 3Marco Montemurro2
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作者信息

  • 1. Université de Bordeaux,Arts et Métiers Institute of Technology,CNRS,INRA,Bordeaux INP,HESAM Université,I2M UMR 5295,F-33405 Talence,France;French Atomic Energy Commission,Route des Gargails,Cedex,F-33114,Le Barp,France
  • 2. Université de Bordeaux,Arts et Métiers Institute of Technology,CNRS,INRA,Bordeaux INP,HESAM Université,I2M UMR 5295,F-33405 Talence,France
  • 3. French Atomic Energy Commission,Route des Gargails,Cedex,F-33114,Le Barp,France
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Abstract

Modern additive manufacturing processes enable fabricating architected cellular materials of complex shape,which can be used for different purposes.Among them,lattice structures are increasingly used in applications requiring a compromise among lightness and suited mechanical properties,like improved energy absorption capacity and specific stiffness-to-weight and strength-to-weight ratios.A dedicated modeling strategy to assess the energy absorption capacity of lattice structures under uni-axial compression loading is presented in this work.The numerical model is developed in a non-linear framework accounting for the strain rate effect on the mechanical responses of the lattice structure.Four geometries,i.e.,cubic body centered cell,octet cell,rhombic-dodecahedron and truncated cuboc-tahedron 2+,are investigated.Specifically,the influence of the relative density of the representative volume element of each geometry,the strain-rate dependency of the bulk material and of the presence of the manufacturing process-induced geometrical imperfections on the energy absorption capacity of the lattice structure is investigated.The main outcome of this study points out the importance of correctly integrating geometrical imperfections into the modeling strategy when shock absorption applications are aimed for.

Key words

Lattice structures/Architected cellular materials/Dynamic simulation/Energy absorption/Geometrical imperfection/Additive manufacturing

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基金项目

CEA(Comissariat à l'Energie Atomique et aux Energies Alternatives)()

DGA(Direction Générale de l'Armement)()

出版年

2024
防务技术
中国兵工学会

防务技术

CSTPCD
影响因子:0.358
ISSN:2214-9147
参考文献量54
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