Design Synthesis of a 4D-Printed Self-Tying Knot With Programmable Morphology

Author:

Bhattacharyya Anurag1,Kim Jinyoung2,Alacoque Lee R.3,James Kai A.4

Affiliation:

1. Palo Alto Research Center , Palo Alto, CA 94304

2. Seoul National University Department of Aerospace Engineering, , Seoul , South Korea

3. University of Illinois at Urbana-Champaign Department of Aerospace Engineering, , Urbana, IL 61820

4. Georgia Institute of Technology School of Aerospace Engineering, , Atlanta, GA 30315

Abstract

Abstract Smart materials provide a means by which we can create engineered mechanisms that artificially mimic the adaptability, flexibility, and responsiveness found in biological systems. Previous studies have developed material-based actuators that could produce targeted shape changes. Here, we extend this capability by introducing a novel computational and experimental method for design and synthesis of a material-based mechanism capable of achieving complex pre-programmed motion. By combining active and passive materials, the algorithm can encode the desired movement into the material distribution of the mechanism. We use multimaterial, multiphysics topology optimization to design a set of kinematic elements that exhibit basic bending and torsional deflection modes. We then use a genetic algorithm to optimally arrange these elements into a sequence that produces the desired motion. We also use experimental measurements to accurately characterize the angular deflection of the 3D-printed kinematic elements in response to thermomechanical loading. We demonstrate this new capability by de novo design of a 3D-printed self-tying knot. This method advances a new paradigm in mechanism design that could enable a new generation of material-driven machines that are lightweight, adaptable, robust to damage, and easily manufacturable by 3D printing.

Funder

Directorate for Engineering

Publisher

ASME International

Subject

Computer Graphics and Computer-Aided Design,Computer Science Applications,Mechanical Engineering,Mechanics of Materials

Reference23 articles.

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2. Skills for Physical Artificial Intelligence;Miriyev;Nat. Mach. Intell.,2020

3. Active Origami by 4D Printing;Ge;Smart Mater. Struct.,2014

4. Active Printed Materials for Complex Self-Evolving Deformations;Raviv;Sci. Rep.,2014

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