材料科学
吸收(声学)
多孔性
声学
工作(物理)
消散
超材料
多孔介质
振动
降噪系数
声音(地理)
声功率
复合材料
声学超材料
材料性能
噪声控制
有限元法
粒子(生态学)
衰减系数
隔音
光学
减震器
结构声学
材料设计
物理声学
声波
作者
Xiaozhen Li,Tingzhong Xu,Weiwei Wu,H. J. Yang,Xiaobing Cai
标识
DOI:10.1002/adem.202501511
摘要
With the rapid development of micro‐ and nanotechnology, the microlattice plates with geometrical regularity can be precisely designed and fabricated. This material has great potential as a novel acoustic metamaterial for sound absorption applications. The previous work has investigated the unified microlattice materials with a single porosity and demonstrated that it has outstanding sound absorption performance. On this basis, this paper further explored the temperature‐dependent sound absorption characteristics of the multiscale microlattice materials with hierarchically double porosity through theory, simulation, and experiment. The results show that the multiscale microlattice materials can provide stronger sound absorption in both low‐ and broadband‐frequency ranges compared to the microlattice materials with a single porosity. In addition, the sound absorption mechanism and temperature effect are studied by the numerical contours of sound pressure, particle vibration velocity, temperature field, and thermo‐viscous power dissipation density. Finally, the influence of the geometrical arrangement of multiscale microlattice materials is explored, and the optimal configuration for the best sound absorption is found. This work contributes to the design and development of microlattice materials for high‐temperature sound absorption purposes.
科研通智能强力驱动
Strongly Powered by AbleSci AI