Projects per year
Abstract
Periodic composite structures as acoustic metamaterials have caught enormous research interest for the inherent peculiar dynamics characteristics, effective medium properties, and fantastic mechanical features to control vibration and noises at deep subwavelength scales. A 3-D composite metastructure design endowed with ultrawide three-dimensional bandgap is highly desirable for low frequency broadband vibration and noise control. In that context, the present study proposes two types of 3-D composite mechanical metastructure unit cell designs that are capable enough to induce low frequency ultrawide bandgaps by principle of mode separation. A 3-D polymeric casing is designed and spherical/cylindrical steel masses are embedded to enhance the dynamical characteristics and mechanical properties of the resonant systems. By a numerical study on wave dispersion, the presence of ultrawide bandgap and governing physical mechanism resulting in such broadband bandgap are discussed. An asymptotic parametric study is performed to investigate the effect of metastructure geometric parameters on the reported bandgaps. We performed numerical and experimental frequency response study on the periodic and aperiodic arrangements of the composite metastructures to envisage wave attenuation inside the bandgaps. Both periodic and aperiodic arrays of metastructures yield vibration attenuation over ultrawide frequency range that is promising for low frequency broadband vibration and noise control applications. The proposed composite metastructure design morphology and manufacturing/fabrication processes are also explained for practical design and applications. The proposed mechanical metastructure designs, our modelling technique, research methodology, and the reported findings may contribute to the design and application of metadevices where low frequency broadband vibration and noise control are desirable.
| Original language | English |
|---|---|
| Article number | 115324 |
| Journal | Composite Structures |
| Volume | 287 |
| Online published | 7 Feb 2022 |
| DOIs | |
| Publication status | Published - 1 May 2022 |
Funding
The work described in this paper was supported by General Research Grants from the Research Grants Council of the Hong Kong Special Administrative Region (Project No. CityU 11216318), City University of Hong Kong (Project No. 7005273) and Irish Research Council-Enterprise Partnership Scheme Postdoctoral Fellowship Scheme (Project No. 211705.16976-EPSPD/2021/108).
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 9 Industry, Innovation, and Infrastructure
Research Keywords
- Acoustic metamaterial
- Additive manufacturing
- Bandgap
- Composite structure
- Metastructure
RGC Funding Information
- RGC-funded
Fingerprint
Dive into the research topics of 'Periodic and aperiodic 3-D composite metastructures with ultrawide bandgap for vibration and noise control'. Together they form a unique fingerprint.Projects
- 1 Finished
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GRF: Theory, Numerical Simulation and Experiment on Periodically Engineered Metamaterials for Enclosed Regional Protection against Seismic Destruction
LIM, C. W. (Principal Investigator / Project Coordinator), CARRERA, E. (Co-Investigator) & REDDY, J. N. (Co-Investigator)
1/08/18 → 1/08/22
Project: Research
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