论文标题
1D连续体中带隙的整体微态模型
Integral Micromorphic Model for Band Gap in 1D Continuum
论文作者
论文摘要
带隙超材料的设计,即具有抑制特定频率波传播的能力的超材料具有许多潜在的工程应用,例如声过滤器和振动隔离控制。为了描述这种材料的行为,引入了一种新颖的积分微弹性连续体,并在一维环境中研究了其描述带隙的能力。非局部配方基于对势能密度的表达式中两个术语的修改。得出相应的色散方程并将其转换为无量纲格式,因此可以以最有效的方式描述单个参数的效果。结果表明,两者都建议的非局部修饰起着重要作用。原始的局部微态模型仅在特殊的,有点人工的情况下再现带隙,当时与微态可变梯度相关的刚度系数消失了。另一方面,即使对于该系数的非零值,非局部公式也可以提供带隙,前提是,如果微态变性和非局部菌株之间实施耦合的惩罚系数足够高,并且微态刚度足够低。
The design of band-gap metamaterials, i.e., metamaterials with the capability to inhibit wave propagation of a specific frequency range, has numerous potential engineering applications, such as acoustic filters and vibration isolation control. In order to describe the behavior of such materials, a novel integral micromorphic elastic continuum is introduced, and its ability to describe band gaps is studied in the one-dimensional setting. The nonlocal formulation is based on a modification of two terms in the expression for potential energy density. The corresponding dispersion equation is derived and converted to a dimensionless format, so that the effect of individual parameters can be described in the most efficient way. The results indicate that both suggested nonlocal modifications play an important role. The original local micromorphic model reproduces a band gap only in the special, somewhat artificial case, when the stiffness coefficient associated with the gradient of the micromorphic variable vanishes. On the other hand, the nonlocal formulation can provide band gaps even for nonzero values of this coefficient, provided that the penalty coefficient that enforces coupling between the micromorphic variable and nonlocal strain is sufficiently high and the micromorphic stiffness is sufficiently low.