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오주환

Oh, Joo Hwan
Wave, Acoustics and Vibration Lab.
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Nonlinear elastic metamaterial for tunable bandgap at quasi-static frequency

Author(s)
Bae, Myung HwanOh, Joo Hwan
Issued Date
2022-05
DOI
10.1016/j.ymssp.2022.108832
URI
https://scholarworks.unist.ac.kr/handle/201301/58595
Fulltext
https://www.sciencedirect.com/science/article/pii/S0888327022000292?via%3Dihub
Citation
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, v.170, pp.108832
Abstract
We propose a new nonlinear elastic metamaterial which shows tunable bandgap at quasi-static frequency, starting from zero frequency. While there have been active researches on nonlinear induced tunable bandgap in elastic metamaterials at high or mid-frequency range, these researches were not suitable to achieve bandgap tunability at the quasi-static frequency range since unfeasible design, such as extremely huge size or unrealistic resonators, was required. Also, achieving sufficient nonlinearity at this frequency range has been a formidable challenge that hinders the realization of bandgap tunability at the quasi-static frequency. Here, we propose the elastic metamaterial which utilizes geometric nonlinearity to realize the bandgap tunability at the quasi-static frequency range. From theoretical investigations, we found that the nonlinearity of the proposed elastic metamaterial provides two kinds of the bandgap tunability - by wave amplitude and by length change of the attached springs. Also, we found that our nonlinear metamaterial exhibits tunable negative effective mass around the quasi-static frequency, due to the nonlinear effect. To support these findings, numerical simulation and experimental realization are carried out. We expect that this research provides a route for opening a new field in vibrations engineering dealing with the quasi-static frequencies.
Publisher
ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
ISSN
0888-3270
Keyword (Author)
Tunable metamaterialNonlinearBandgapLow frequencyNegative effective mass
Keyword
WAVE-PROPAGATIONIMPACTBEAM

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