Complete mode conversion of elastic waves by utilizing hexapole resonances in a double-scatterers structure

Di Liu, Pai Peng
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Abstract

In recent years, the emergence of elastic metamaterial has provided new methods to manipulate the polarization of elastic waves, achieving elastic mode conversions. This paper theoretically investigates a complete mode conversion effect, where longitudinal waves are completely converted into transverse waves after being reflected by one layer of metamaterial slab. The slab structure contains a pair of cylinders, and the conversion is attributed to the out-of-phase coupled hexapole resonances of the two cylinders. Unlike the monopole, dipole, and quadrupole resonances, the hexapole resonances induce trivially, nearly constantly, effective parameters. The proposed design does not follow the recent popular “reversely designing parameters” method. The conversion based on the hexapole resonances is relatively broadband and wide-angle, which is beneficial for practical applications such as sound absorption.
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利用双散射体结构中的六极共振实现弹性波的完全模式转换
近年来,弹性超材料的出现为操纵弹性波的极化、实现弹性模式转换提供了新方法。本文从理论上研究了一种完全模式转换效应,即纵波经一层超材料板反射后完全转换为横波。板结构包含一对圆柱体,转换归因于两个圆柱体的异相耦合六极共振。与单极共振、偶极共振和四极共振不同,六极共振引起的有效参数微不足道,几乎是恒定的。拟议的设计并不遵循最近流行的 "反向设计参数 "方法。基于六极共振的转换具有相对宽带和广角的特点,有利于吸声等实际应用。
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