具有手性双谐振器的弯曲板中的单向界面波

G. Carta, D. Colquitt, A. Movchan, N. Movchan, I. Jones
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引用次数: 15

摘要

在本文中,我们展示了一种控制结构手性板中弯曲弹性波的新方法。主要重点是通过在双周期弯曲系统中使用双谐振器在给定频率下创建单向界面波传播。谐振器由两束连接到陀螺仪旋转器组成,其作用是耦合弯曲和旋转变形,从而在系统中诱导手性。我们展示了这种弹性结构支持单向弯曲波,定位在分离两个子域的界面上,陀螺仪在相反的方向旋转,但具有其他相同的性质。我们证明了双谐振器的一个特殊特点是在保持外部时谐激励频率不变的情况下,通过改变旋回率的值来控制波的传播方向。相反,对于相同的旋度值,可以通过调整外部激励的频率来逆转波的传播方向。本文是主题“结构化媒体中动态现象的建模和定位(第二部分)”的一部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
One-way interfacial waves in a flexural plate with chiral double resonators
In this paper, we demonstrate a new approach to control flexural elastic waves in a structured chiral plate. The main focus is on creating one-way interfacial wave propagation at a given frequency by employing double resonators in a doubly periodic flexural system. The resonators consist of two beams attached to gyroscopic spinners, which act to couple flexural and rotational deformations, hence inducing chirality in the system. We show that this elastic structure supports one-way flexural waves, localized at an interface separating two sub-domains with gyroscopes spinning in opposite directions, but with otherwise identical properties. We demonstrate that a special feature of double resonators is in the directional control of wave propagation by varying the value of the gyricity, while keeping the frequency of the external time-harmonic excitation fixed. Conversely, for the same value of gyricity, the direction of wave propagation can be reversed by tuning the frequency of the external excitation. This article is part of the theme issue ‘Modelling of dynamic phenomena and localization in structured media (part 2)’.
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