Theoretical stiffness limits of 4D printed self-folding metamaterials
Teunis van Manen, Amir A. Zadpoor

TL;DR
This paper develops a nonlinear analytical model to determine the theoretical stiffness limits of 4D printed self-folding metamaterials, balancing the needs for low stiffness during folding and high stiffness for load-bearing applications.
Contribution
It introduces a finite deformation model predicting curvature, stability, and stiffness of self-folding bilayers, establishing their maximum achievable stiffness.
Findings
Maximum effective modulus of ~1.5 GPa with current shape-memory polymers.
Model predictions align with computational and experimental results.
Identifies optimal geometrical and mechanical properties for stiff self-folding structures.
Abstract
4D printing of flat sheets that self-fold into architected 3D structures is a powerful origami-inspired approach for the fabrication of multi-functional devices and metamaterials. The possibility to endow the initially flat sheet with a variety of surface-related functionalities provides the means to simultaneously achieve multi-functional performance and a complex 3D architecture. One intrinsic limitation of such a production strategy is the contradictory stiffness requirements for the folding and for subsequent load-bearing steps: while a low stiffness is required to allow for the successful completion of the intended self-folding process, a high stiffness is needed for the subsequent application of the folded structure as a load-bearing mechanical metamaterial. The competition between these two requirements determines the theoretical limits of 4D printed self-folding mechanical…
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Taxonomy
TopicsAdvanced Materials and Mechanics · Advanced Sensor and Energy Harvesting Materials · Modular Robots and Swarm Intelligence
