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用于可编程弹性超材料中无监督损伤恢复的主动机械隐身

Active mechanical cloaking for unsupervised damage resilience in programmable elastic metamaterials.

作者信息

Kundu D, Naskar S, Mukhopadhyay T

机构信息

Theoretical and Applied Mechanics Program, Northwestern University, Evanston, IL, USA.

Faculty of Physical Sciences and Engineering, University of Southampton, Southampton, UK.

出版信息

Philos Trans A Math Phys Eng Sci. 2024 Sep 9;382(2278):20230360. doi: 10.1098/rsta.2023.0360. Epub 2024 Jul 29.

Abstract

Owing to the architected void-filled low-density configurations, metamaterials are prone to defects during the complex manufacturing process, or damages under operational conditions. Recently mechanical cloaking has been proposed to shield the effect of such disorders in terms of homogenized mechanical responses. The major drawback in these studies are that the damage location should be known , and the cloak is designed around that damaged zone before manufacturing. Such postulation does not allow unsupervised damage resilience during the manufacturing and service life of metamaterials by active reconfiguration of the stress field depending on the random and unpredictable evolution of damage. Here, we propose a radically different approach by introducing piezoelectric lattices where the effect of random appearance of any single or multiple disorders and damages with complex shapes, sizes and distributions can be shielded through active multi-physically controlled cloaks by voltage-dependent modulation of the stress fields within the cloaking region. Notably, this can be achieved without breaking periodicity and any additional material in the cloaking region unlike earlier studies concerning mechanical cloaks. The proposed active class of elastic metamaterials will bring a step-change in the on-demand mechanical performance of critically important structural components and unsupervised damage resilience for enhanced durability and sustainability.This article is part of the theme issue 'Current developments in elastic and acoustic metamaterials science (Part 1)'.

摘要

由于具有架构化的填充空隙低密度结构,超材料在复杂制造过程中容易出现缺陷,或在运行条件下受到损坏。最近,人们提出了机械隐身衣,以在均匀化机械响应方面屏蔽此类紊乱的影响。这些研究的主要缺点是,损伤位置必须已知,并且隐身衣是在制造前围绕该损伤区域设计的。这种假设不允许超材料在制造和使用寿命期间通过根据损伤的随机和不可预测演变对应力场进行主动重新配置来实现无监督的损伤恢复能力。在此,我们提出了一种截然不同的方法,即引入压电晶格,通过对隐身区域内的应力场进行电压依赖性调制,利用主动多物理场控制的隐身衣来屏蔽任何单个或多个具有复杂形状、尺寸和分布的紊乱和损伤随机出现的影响。值得注意的是,与早期关于机械隐身衣的研究不同,这可以在不破坏隐身区域的周期性和不添加任何额外材料的情况下实现。所提出的主动型弹性超材料将在至关重要的结构部件的按需机械性能以及增强耐久性和可持续性的无监督损伤恢复能力方面带来巨大变革。本文是主题特刊“弹性与声学超材料科学的当前发展(第1部分)”的一部分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2937/11529627/3a7fd65561b4/rsta.2023.0360.f001.jpg

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