A Dataset Generation Framework for Symmetry-Induced Mechanical Metamaterials

桁架 超材料 正交异性材料 计算机科学 材料设计 工程设计过程 设计过程 设计方法 过程(计算) 机械工程 材料科学 结构工程 工程类 在制品 有限元法 操作系统 光电子学 万维网 运营管理
作者
Mohammad Abu‐Mualla,Jida Huang
出处
期刊:Journal of Mechanical Design [American Society of Mechanical Engineers]
卷期号:: 1-24 被引量:1
标识
DOI:10.1115/1.4066169
摘要

Abstract The surge in machine learning research and recent advancements in 3D printing technologies have significantly enriched materials science and engineering, particularly in the domain of mechanical metamaterials, which commonly consist of periodic truss materials. Despite the extensive exploration of their tailorable properties, truss-based metamaterial design has predominantly adhered to cubic and orthotropic unit-cells, a limitation arising from the conventional design method, where the type of symmetry related to the designed truss-based material is determined after the design process is done. To overcome this issue, this work introduces a groundbreaking 3D truss material designing framework that departs from this constraint by employing six distinctive material symmetries (cubic, hexagonal, tetragonal, orthotropic, trigonal, and monoclinic) within the design process. This innovative approach represents a versatile paradigm shift compared to previous design approaches. Furthermore, we are able to integrate anisotropy into the design framework, thus enhancing the property space exploration capability of the proposed design framework. Probing materials property space using our design framework demonstrates its capacity to achieve a diverse range of mechanical properties, surpassing even the most extensive datasets available in the literature. The proposed method facilitates the generation of a comprehensive truss dataset, which can be represented in a trainable continuous format suitable for machine learning and data-driven approaches. This advancement paves the way for the development of robust inverse design tools for truss materials, marking a significant contribution to the mechanical metamaterial community.
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