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Bibliographic Details
Main Authors: Zhang, Yong, Chen, Xianfeng
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2508.00310
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author Zhang, Yong
Chen, Xianfeng
author_facet Zhang, Yong
Chen, Xianfeng
contents Quasi-zero stiffness (QZS) metamaterials are highly effective in isolating objects from low-frequency external vibrations, due to their high static stiffness but low dynamic stiffness characteristics. Traditionally, QZS metamaterials are designed by combining a negative-stiffness part with a positive-stiffness counterpart. Here, we present a novel QZS metamaterial design without relying on combining two components. The QZS characteristic is achieved solely through monolithic shell elements' unique geometry and nonlinear deformation. Using experimental and numerical approaches, we investigate the static and dynamic responses of the proposed metamaterials as a function of their geometric parameters. We then tune the structure's geometry to achieve ideal zero-stiffness behaviors and experimentally demonstrate an exceptional low-frequency vibration isolation mechanism. This concept can be further utilized as a building block for constructing metamaterials with multiple zero-stiffness features, enabling a broad range of applications.
format Preprint
id arxiv_https___arxiv_org_abs_2508_00310
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A compact quasi-zero stiffness metamaterial based on monolithic shells for vibration isolation
Zhang, Yong
Chen, Xianfeng
Applied Physics
Quasi-zero stiffness (QZS) metamaterials are highly effective in isolating objects from low-frequency external vibrations, due to their high static stiffness but low dynamic stiffness characteristics. Traditionally, QZS metamaterials are designed by combining a negative-stiffness part with a positive-stiffness counterpart. Here, we present a novel QZS metamaterial design without relying on combining two components. The QZS characteristic is achieved solely through monolithic shell elements' unique geometry and nonlinear deformation. Using experimental and numerical approaches, we investigate the static and dynamic responses of the proposed metamaterials as a function of their geometric parameters. We then tune the structure's geometry to achieve ideal zero-stiffness behaviors and experimentally demonstrate an exceptional low-frequency vibration isolation mechanism. This concept can be further utilized as a building block for constructing metamaterials with multiple zero-stiffness features, enabling a broad range of applications.
title A compact quasi-zero stiffness metamaterial based on monolithic shells for vibration isolation
topic Applied Physics
url https://arxiv.org/abs/2508.00310