Locally Resonant Sonic Materials
Zhengyou Liu, Xixiang Zhang, Yiwei Mao, Yuanming Zhu, Zhiyu Yang, C. T. Chan, Ping Sheng
Abstract
Zhengyou Liu, Xixiang Zhang, Yiwei Mao, Yuanming Zhu, Zhiyu Yang, C. T. Chan, Ping Sheng
Abstract
We have fabricated sonic crystals, based on the idea of localized resonant structures, that exhibit spectral gaps with a lattice constant two orders of magnitude smaller than the relevant wavelength. Disordered composites made from such localized resonant structures behave as a material with effective negative elastic constants and a total wave reflector within certain tunable sonic frequency ranges. A 2-centimeter slab of this composite material is shown to break the conventional mass-density law of sound transmission by one or more orders of magnitude at 400 hertz.
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We have fabricated sonic crystals, based on the idea of localized resonant structures, that exhibit spectral gaps with a lattice constant two orders of magnitude smaller than the relevant wavelength. Disordered composites made from such localized resonant structures behave as a material with effective negative elastic constants and a total wave reflector within certain tunable sonic frequency ranges. A 2-centimeter slab of this composite material is shown to break the conventional mass-density law of sound transmission by one or more orders of magnitude at 400 hertz.
Key concepts: Wavelength, Slab, Materials science, Lattice constant, Reflector (photography), Condensed matter physics, Lattice (music), Optics