Turing pattern–based design and fabrication of inflatable shape-morphing structures

Author:

Tanaka Masato1ORCID,Montgomery S. Macrae2ORCID,Yue Liang2ORCID,Wei Yaochi2,Song Yuyang1,Nomura Tsuyoshi3ORCID,Qi H. Jerry2ORCID

Affiliation:

1. Toyota Research Institute of North America, Toyota Motor North America, Ann Arbor, MI 48105, USA.

2. The George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.

3. Toyota Central R&D Laboratories Inc. , Bunkyo-ku, Tokyo 112-0004, Japan.

Abstract

Turing patterns are self-organizing stripes or spots widely found in biological systems and nature. Although inspiring, their applications are limited. Inflatable shape-morphing structures have attracted substantial research attention. Traditional inflatable structures use isotropic materials with geometrical features to achieve shape morphing. Recently, gradient-based optimization methods have been used to design these structures. These methods assume anisotropic materials whose orientation can vary freely. However, this assumption makes fabrication a considerable challenge by methods such as additive manufacturing, which print isotropic materials. Here, we present a methodology of using Turing patterns to bridge this gap. Specifically, we use Turing patterns to convert a design with distributed anisotropic materials to a distribution with two materials, which can be fabricated by grayscale digital light processing 3D printing. This work suggests that it is possible to apply patterns in biological systems and nature to engineering composites and offers new concepts for future material design.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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