Abstract
This study explores the high-velocity impact response of 3D-printed composite mechanical metamaterials through a combination of experimental testing and numerical simulations. Auxetic structures demonstrated a marked reduction in transmitted force and an extended force duration, both of which are advantageous for mitigating impact-related injuries. Specifically, the double arrowhead auxetic geometry reduced the transmitted force by 44% compared to conventional hexagonal structures, albeit at the cost of 17% greater deformation. Novel hybrid designs, integrating auxetic and conventional geometries, achieved a decoupled control of deformation and force responses. For instance, a re-entrant auxetic structure on the impact face, transitioning into a hexagonal configuration, led to a 10% increase in deformation compared to the reverse orientation while maintaining a similar transmitted force. Additionally, a comprehensive parametric study was conducted to examine the influence of cell size and relative density on the overall impact performance of these metamaterials.
Original language | English |
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Article number | 109905 |
Number of pages | 10 |
Journal | International Journal of Mechanical Sciences |
Volume | 286 |
Early online date | 28 Dec 2024 |
DOIs | |
Publication status | Published - 15 Jan 2025 |
Keywords
- 3D-printing
- composite
- high-velocity impact
- hybrid structures
- metamaterials
- parametric analysis
ASJC Scopus subject areas
- Civil and Structural Engineering
- General Materials Science
- Condensed Matter Physics
- Aerospace Engineering
- Ocean Engineering
- Mechanics of Materials
- Mechanical Engineering
- Applied Mathematics
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Development of a composite combat helmet using structural metamaterials
Fisher, T. (Author), Kazanci, Z. (Supervisor), Falzon, B. (Supervisor) & Almeida Jr, H. (Supervisor), Jul 2025Student thesis: Doctoral Thesis › Doctor of Philosophy