Space-coiling fractal metamaterial with multi-bandgaps on subwavelength scale

Publication Type:
Journal Article
Citation:
Journal of Sound and Vibration, 2018, 423 pp. 322 - 339
Issue Date:
2018-06-09
Full metadata record
Files in This Item:
Filename Description Size
1-s2.0-S0022460X18301561-main.pdfPublished Version6.8 MB
Adobe PDF
© 2018 Elsevier Ltd Acoustic metamaterials are remarkably different from conventional materials, as they can flexibly manipulate and control the propagation of sound waves. Unlike the locally resonant metamaterials introduced in earlier studies, we designed an ultraslow artificial structure with a sound speed much lower than that in air. In this paper, the space-coiling approach is proposed for achieving artificial metamaterial for extremely low-frequency airborne sound. In addition, the self-similar fractal technique is utilized for designing space-coiling Mie-resonance-based metamaterials (MRMMs) to obtain a band-dispersive spectrum. The band structures of two-dimensional (2D) acoustic metamaterials with different fractal levels are illustrated using the finite element method. The low-frequency bandgap can easily be formed, and multi-bandgap properties are observed in high-level fractals. Furthermore, the designed MRMMs with higher order fractal space coiling shows a good robustness against irregular arrangement. Besides, the proposed artificial structure was found to modify and control the radiation field arbitrarily. Thus, this work provides useful guidelines for the design of acoustic filtering devices and acoustic wavefront shaping applications on the subwavelength scale.
Please use this identifier to cite or link to this item: