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Adaptive Twisting Metamaterials.
Mattia Utzeri1, Maria L Gatto1, Edoardo Mancini2
1Department of Industrial Engineering and Mathematical Sciences, Polytechnic University of Marche, Ancona, 60121, Italy.
Advanced Materials (Deerfield Beach, Fla.)
|October 22, 2025
Summary
Researchers developed twisting metamaterials for adaptive crashworthiness. These architected lattices offer tunable force-displacement pathways, enhancing energy absorption in protective systems.
Area of Science:
- Materials Science
- Mechanical Engineering
- Metamaterials
Background:
- Next-generation protective systems need materials that adapt to impact severity.
- Existing materials often have fixed responses, limiting protection effectiveness.
- Adaptive materials offer multiple force-displacement pathways for tailored impact response.
Purpose of the Study:
- Introduce twisting metamaterials as a novel class of adaptive architected lattices.
- Investigate the mechanics and adaptive crashworthiness of these structures.
- Demonstrate a multiscale predictive framework for their design and application.
Main Methods:
- Utilized micropolar elasticity to model the mechanics of twisting metamaterials.
- Employed a multiscale predictive framework combining Cosserat continuum mechanics, finite element modeling, and experimental validation.
- Additively manufactured and tested twisting gyroid structures under quasi-static and dynamic compression with varying torsional constraints.
Main Results:
- Twisting metamaterials exhibit geometry-induced torsional actuation and nonlinear responses.
- Constrained rotation leads to high axial stiffness (4.8 GPa), collapse stress (21 MPa), and specific energy absorption (15.36 J/g).
- Free-to-twist and over-rotation conditions reduce performance by up to 33%, demonstrating adaptive energy absorption.
Conclusions:
- Twisting metamaterials offer tunable mechanical responses for adaptive crashworthiness.
- The developed multiscale framework accurately predicts performance and guides design.
- These materials show promise for advanced protection systems in automotive, aerospace, and defense applications.
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