Mastering the art of designing mechanical metamaterials with quasi-zero stiffness for passive vibration isolation: a review

Hamzehei, R., Bodaghi, M. ORCID: 0000-0002-0707-944X and Wu, N., 2024. Mastering the art of designing mechanical metamaterials with quasi-zero stiffness for passive vibration isolation: a review. Smart Materials and Structures, 33 (8): 083001. ISSN 0964-1726

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Abstract

This review serves as a comprehensive design strategy for designing quasi-zero stiffness (QZS) mechanical metamaterials (MMs). It discusses their underlying deformation mechanisms that enable the attainment of QZS behavior under both compressive and tensile loadings. While the QZS characteristic of metamaterials has garnered considerable attention, further research is essential to unlock their potential fully. Numerous QZS metamaterials have been meticulously reviewed. They comprise various elements and mechanisms, including positive and negative stiffness elements (PS and NS), PS elements with variable stiffness, bending mechanisms employing stiff joints/areas, buckling, buckling-rotating, and bending/buckling deformation mechanisms leading to a QZS feature. Furthermore, the capability of multi-material, adaptive, smart metamaterials, origami (bending around the hinge of the folded joints), and kirigami lattices (out-of-plane buckling via cutting patterns) are weighted. These diverse mechanisms contribute to achieving QZS behavior in metamaterials under both compression and tension loads, which is paramount for various mechanical applications such as passive vibration isolation. This review effectively categorizes QZS metamaterials based on their underlying mechanisms, providing scholars with valuable insights to identify suitable mechanisms for the desired QZS feature.

Item Type: Journal article
Publication Title: Smart Materials and Structures
Creators: Hamzehei, R., Bodaghi, M. and Wu, N.
Publisher: IOP Publishing
Date: August 2024
Volume: 33
Number: 8
ISSN: 0964-1726
Identifiers:
NumberType
10.1088/1361-665x/ad5bccDOI
1914618Other
Rights: © 2024 The Author(s). Published by IOP Publishing Ltd. Original content from this work may be used under the terms of the Creative Commons Attribution 4.0 license. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
Divisions: Schools > School of Science and Technology
Record created by: Laura Ward
Date Added: 15 Jul 2024 12:18
Last Modified: 15 Jul 2024 12:18
URI: https://irep.ntu.ac.uk/id/eprint/51754

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