Bandgap Dynamics in Locally Resonant Metastructures

A General Theory of Internal Resonator Coupling

Journal Article (2024)
Author(s)

Hossein Alimohammadi (Tallinn University of Technology)

Kristina Vassiljeva (Tallinn University of Technology)

S.H. Hassan HosseinNia (TU Delft - Mechatronic Systems Design)

E. Petlenkov (Tallinn University of Technology)

Research Group
Mechatronic Systems Design
DOI related publication
https://doi.org/10.3390/app14062447
More Info
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Publication Year
2024
Language
English
Research Group
Mechatronic Systems Design
Issue number
6
Volume number
14
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Abstract

The dynamics of metastructures, incorporating both conventional and internally coupled resonators, are investigated to enhance vibration suppression capabilities through a novel mathematical framework. A close-form formulation and a transfer function methodology are introduced, integrating control system theory with metastructure analysis, offering new insights into the role of internal coupling. The findings reveal that precise internal coupling, when matched exactly to the stiffness of the resonator, enables the clear formation of secondary bandgaps, significantly influencing the vibration isolation efficacy of the metastructure. Although the study primarily focuses on theoretical and numerical analyses, the implications of adjusting mass distribution on resonators are also explored. This formulation methodology enables the adjustment of bandgap characteristics, underscoring the potential for adaptive control over bandgaps in metastructures. Such capabilities are crucial for tailoring the vibration isolation and energy harvesting functionalities in mechanically resonant systems, especially when applied to demanding heavy-duty applications.