| Literature DB >> 33949603 |
Sadeq Malakooti1, Mohammad I Hatamleh1, Rui Zhang1, Tahereh Taghvaee2, Max Miller3, Yao Ren1, Ning Xiang3, Dong Qian1, Chariklia Sotiriou-Leventis2, Nicholas Leventis2, Hongbing Lu1.
Abstract
We report a mechanical metamaterial-like behavior as a function of the micro/nanostructure of otherwise chemically identical aliphatic polyurea aerogels. Transmissibility varies dramatically with frequency in these aerogels. Broadband vibration mitigation is provided at low frequencies (500-1000 Hz) through self-assembly of locally resonant metastructures wherein polyurea microspheres are embedded in a polyurea web-like network. A micromechanical constitutive model based on a discrete element method is established to explain the vibration mitigation mechanism. Simulations confirm the metamaterial-like behavior with a negative dynamic material stiffness for the micro-metastructured aerogels in a much wider frequency range than the majority of previously reported locally resonant metamaterials.Entities:
Year: 2021 PMID: 33949603 DOI: 10.1039/d1sm00074h
Source DB: PubMed Journal: Soft Matter ISSN: 1744-683X Impact factor: 3.679