A Novel Elastic Metamaterial with Multiple Resonators for Vibration Suppression

In this paper, two models of elastic metamaterial containing one and two resonators are proposed to obtain the bandgaps with the aim of providing broadband vibration suppression. The model with one DOF is built by assembling several unite cells in which each unite cell consists of a rectangular fram...

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Main Authors: Saman Ahmadi Nooraldinvand, Hamid M. Sedighi, Amin Yaghootian
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Advances in Condensed Matter Physics
Online Access:http://dx.doi.org/10.1155/2021/3914210
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spelling doaj-6876b97eb06046b1875cb7824910a5b22021-06-14T00:17:00ZengHindawi LimitedAdvances in Condensed Matter Physics1687-81242021-01-01202110.1155/2021/3914210A Novel Elastic Metamaterial with Multiple Resonators for Vibration SuppressionSaman Ahmadi Nooraldinvand0Hamid M. Sedighi1Amin Yaghootian2Mechanical Engineering DepartmentMechanical Engineering DepartmentMechanical Engineering DepartmentIn this paper, two models of elastic metamaterial containing one and two resonators are proposed to obtain the bandgaps with the aim of providing broadband vibration suppression. The model with one DOF is built by assembling several unite cells in which each unite cell consists of a rectangular frame as the base structure and a rack-and-pinion mechanism that is joined to the frame with a linear spring on both sides. In the second model with two DOF, a small mass is added while its center is attached to the center of the pinion on one side and the other side is connected to the rectangular frame via a linear spring. In the first mechanism, the pinion is considered as the single resonator, and in the 2DOF model, on the other hand, the pinion and small mass acted as multiple resonators. By obtaining the governing equations of motion for a single cell in each model, the dynamic behavior of two metastructures is thoroughly investigated. Therefore, the equations of motion for the two models are written in matrix form, and then, the dispersion relations are presented to analyze the influences of system parameters on the bandgaps’ starting/ending frequencies. Finally, two models are successfully compared and then numerically simulated via MATLAB-SIMULINK and MSC-ADAMS software. With the aid of closed-form expressions for starting/ending frequencies, the correlation between the system parameters and bandgap intervals can be readily recognized.http://dx.doi.org/10.1155/2021/3914210
collection DOAJ
language English
format Article
sources DOAJ
author Saman Ahmadi Nooraldinvand
Hamid M. Sedighi
Amin Yaghootian
spellingShingle Saman Ahmadi Nooraldinvand
Hamid M. Sedighi
Amin Yaghootian
A Novel Elastic Metamaterial with Multiple Resonators for Vibration Suppression
Advances in Condensed Matter Physics
author_facet Saman Ahmadi Nooraldinvand
Hamid M. Sedighi
Amin Yaghootian
author_sort Saman Ahmadi Nooraldinvand
title A Novel Elastic Metamaterial with Multiple Resonators for Vibration Suppression
title_short A Novel Elastic Metamaterial with Multiple Resonators for Vibration Suppression
title_full A Novel Elastic Metamaterial with Multiple Resonators for Vibration Suppression
title_fullStr A Novel Elastic Metamaterial with Multiple Resonators for Vibration Suppression
title_full_unstemmed A Novel Elastic Metamaterial with Multiple Resonators for Vibration Suppression
title_sort novel elastic metamaterial with multiple resonators for vibration suppression
publisher Hindawi Limited
series Advances in Condensed Matter Physics
issn 1687-8124
publishDate 2021-01-01
description In this paper, two models of elastic metamaterial containing one and two resonators are proposed to obtain the bandgaps with the aim of providing broadband vibration suppression. The model with one DOF is built by assembling several unite cells in which each unite cell consists of a rectangular frame as the base structure and a rack-and-pinion mechanism that is joined to the frame with a linear spring on both sides. In the second model with two DOF, a small mass is added while its center is attached to the center of the pinion on one side and the other side is connected to the rectangular frame via a linear spring. In the first mechanism, the pinion is considered as the single resonator, and in the 2DOF model, on the other hand, the pinion and small mass acted as multiple resonators. By obtaining the governing equations of motion for a single cell in each model, the dynamic behavior of two metastructures is thoroughly investigated. Therefore, the equations of motion for the two models are written in matrix form, and then, the dispersion relations are presented to analyze the influences of system parameters on the bandgaps’ starting/ending frequencies. Finally, two models are successfully compared and then numerically simulated via MATLAB-SIMULINK and MSC-ADAMS software. With the aid of closed-form expressions for starting/ending frequencies, the correlation between the system parameters and bandgap intervals can be readily recognized.
url http://dx.doi.org/10.1155/2021/3914210
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