Tailoring Stress–Strain Curves of Flexible Snapping Mechanical Metamaterial for On‐Demand Mechanical Responses via Data‐Driven Inverse Design

Author:

Chai Zhiping1,Zong Zisheng1,Yong Haochen1,Ke Xingxing1,Zhu Jiaqi1,Ding Han1,Guo Chuan Fei2,Wu Zhigang1ORCID

Affiliation:

1. State Key Laboratory of Intelligent Manufacturing Equipment and Technology Huazhong University of Science and Technology Wuhan 430074 China

2. Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen 518000 China

Abstract

AbstractBy incorporating soft materials into the architecture, flexible mechanical metamaterials enable promising applications, e.g., energy modulation, and shape morphing, with a well‐controllable mechanical response, but suffer from spatial and temporal programmability towards higher‐level mechanical intelligence. One feasible solution is to introduce snapping structures and then tune their responses by accurately tailoring the stress–strain curves. However, owing to the strongly coupled nonlinearity of structural deformation and material constitutive model, it is difficult to deduce their stress–strain curves using conventional ways. Here, a machine learning pipeline is trained with the finite element analysis data that considers those strongly coupled nonlinearities to accurately tailor the stress–strain curves of snapping metamaterialfor on‐demand mechanical response with an accuracy of 97.41%, conforming well to experiment. Utilizing the established approach, the energy absorption efficiency of the snapping‐metamaterial‐based device can be tuned within the accessible range to realize different rebound heights of a falling ball, and soft actuators can be spatially and temporally programmed to achieve synchronous and sequential actuation with a single energy input. Purely relying on structure designs, the accurately tailored metamaterials increase the devices’ tunability/programmability. Such an approach can potentially extend to similar nonlinear scenarios towards predictable or intelligent mechanical responses.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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