Chen H, Li X P, Chen Y Y, Huang G L
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO 65211, USA.
Department of Mechanical and Aerospace Engineering, University of Missouri, Columbia, MO 65211, USA.
Ultrasonics. 2017 Apr;76:99-108. doi: 10.1016/j.ultras.2016.12.014. Epub 2016 Dec 26.
In this study, a sandwich beam with periodic multiple dissipative resonators in the sandwich core material is investigated for broadband wave mitigation and/or absorption. An analytical approach based on the transfer matrix method and Bloch theorem is developed for both infinite and finite sandwich structures. Wave attenuation constants are theoretically obtained to examine the effects of various system parameters on the position, width and wave attenuation performance of the band gaps. The wave absorption coefficient of the sandwich beam is quantitatively studied to distinguish wave attenuation mechanisms caused by reflection and absorption. It is numerically demonstrated that a transient blast-induced elastic wave with broadband frequencies can be almost completely mitigated or absorbed at a subwavelength scale. The results of this study could be used for developing new multifunctional composite materials to suppress impact-induced and/or blast-induced elastic waves which may cause severe local damage to engineering structures.
在本研究中,对夹层芯材中具有周期性多耗散谐振器的夹层梁进行了研究,以实现宽带波的减缓及/或吸收。针对无限和有限夹层结构,开发了一种基于传递矩阵法和布洛赫定理的解析方法。从理论上获得了波衰减常数,以研究各种系统参数对带隙的位置、宽度和波衰减性能的影响。对夹层梁的波吸收系数进行了定量研究,以区分由反射和吸收引起的波衰减机制。数值结果表明,具有宽带频率的瞬态爆炸诱发弹性波在亚波长尺度下几乎可以被完全减缓或吸收。本研究结果可用于开发新型多功能复合材料,以抑制可能对工程结构造成严重局部损伤的冲击诱发和/或爆炸诱发弹性波。