Almessabi Abdulrahman, Li Xuwen, Jamalimehr Amin, Pasini Damiano
Department of Mechanical Engineering, MGill University, Montreal, Quebec H3A 0G4, Canada.
Philos Trans A Math Phys Eng Sci. 2024 Oct 7;382(2283):20240005. doi: 10.1098/rsta.2024.0005.
With a focus on a class of origami-inspired metamaterials, this work explores the role of panel confinement in their mechanical response under cyclic loading. The goal is twofold: (i) quantify the magnitude change in snapping force and energy dissipation attained by varying the severity of confinement of selected panels; and (ii) leverage insights to modulate their mechanical response as dictated by a given application, hence propose panel confinement modulation as a practical design route for response reprogrammability. Through computational modelling, proof-of-concept fabrication and cyclic testing, we first identify and characterize the governing factors enabling either the alteration or the preservation of the snapping force magnitude during repeated cycles of forward and backward loading. Then, we demonstrate how the modulation of the constrained distance between selected panels enables reprogramming their snapping sequence and energy dissipation. The results contribute to expanding the versatility and application of this class of origami metamaterial across sectors, from aerospace to protective equipment, requiring precise control of mechanical damping and energy dissipation.This article is part of the theme issue 'Origami/Kirigami-inspired structures: from fundamentals to applications'.
以一类受折纸启发的超材料为重点,本研究探讨了面板约束在其循环加载下力学响应中的作用。目标有两个:(i)量化通过改变选定面板的约束程度所实现的 snapping 力和能量耗散的大小变化;(ii)利用相关见解来根据特定应用调整其力学响应,从而提出将面板约束调制作为实现响应可重新编程的实用设计途径。通过计算建模、概念验证制造和循环测试,我们首先识别并表征了在向前和向后加载的重复循环过程中,能够改变或保持 snapping 力大小的控制因素。然后,我们展示了如何通过调制选定面板之间的约束距离来重新编程它们的 snapping 顺序和能量耗散。这些结果有助于扩展这类折纸超材料在从航空航天到防护设备等各个领域的通用性和应用范围,这些领域需要精确控制机械阻尼和能量耗散。本文是主题为“受折纸/剪纸启发的结构:从基础到应用”的一部分。