State Key Laboratory for Strength and Vibration of Mechanical Structures, Xi'an Jiaotong University, Xi'an 710049, P.R. China.
MOE Key Laboratory for Multifunctional Materials and Structures, Xi'an Jiaotong University, Xi'an 710049, P.R. China.
Sci Rep. 2017 Feb 27;7:43340. doi: 10.1038/srep43340.
A hybrid acoustic metamaterial is proposed as a new class of sound absorber, which exhibits superior broadband low-frequency sound absorption as well as excellent mechanical stiffness/strength. Based on the honeycomb-corrugation hybrid core (H-C hybrid core), we introduce perforations on both top facesheet and corrugation, forming perforated honeycomb-corrugation hybrid (PHCH) to gain super broadband low-frequency sound absorption. Applying the theory of micro-perforated panel (MPP), we establish a theoretical method to calculate the sound absorption coefficient of this new kind of metamaterial. Perfect sound absorption is found at just a few hundreds hertz with two-octave 0.5 absorption bandwidth. To verify this model, a finite element model is developed to calculate the absorption coefficient and analyze the viscous-thermal energy dissipation. It is found that viscous energy dissipation at perforation regions dominates the total energy consumed. This new kind of acoustic metamaterials show promising engineering applications, which can serve as multiple functional materials with extraordinary low-frequency sound absorption, excellent stiffness/strength and impact energy absorption.
提出了一种混合声学超材料作为一种新型吸声体,它具有卓越的宽带低频吸声性能和优异的机械刚度/强度。基于蜂窝波纹混合芯(H-C 混合芯),我们在两个上下面板和波纹上引入穿孔,形成穿孔蜂窝波纹混合(PHCH)以获得超宽带低频吸声。应用微穿孔板(MPP)理论,我们建立了一种计算这种新型超材料吸声系数的理论方法。在几百赫兹时就能实现完美吸声,0.5 吸声带宽可达两个八度。为了验证该模型,开发了有限元模型来计算吸声系数并分析粘性-热能耗散。结果发现,穿孔区域的粘性能量耗散主导着总能量消耗。这种新型声学超材料具有广阔的工程应用前景,可作为具有非凡低频吸声、优异刚度/强度和冲击能量吸收的多功能材料。