论文标题
小世界无序的晶格:光谱间隙和扩散传输
Small-World Disordered Lattices: Spectral Gaps and Diffusive Transport
论文作者
论文摘要
我们研究了通过非本地网络连接引入的疾病的晶格的动态行为。受Watts-Strogatz小世界模型的启发,我们采用单个参数来确定局部连接被重新连接的可能性,并诱导常规和无序晶格之间的过渡。这些连接添加为非本地弹簧与潜在的周期性一维(1D)和二维(2D)正方形,三角形和六边形晶格。本本志计算说明了各种代表性晶格中光谱间隙的出现,以增加疾病程度。这些间隙表现为频率范围,即模态密度为零,或仅由局部模式填充的频率范围。在这两种情况下,我们都会观察到整个晶格的振动的传播水平较低。总体而言,我们发现这些差距对于具有较低连接性的晶格拓扑更为明显,例如1D晶格或2D六角形晶格。然后,我们说明,无序的晶格经历了从弹道到超扩散或扩散运输的过渡,以增加疾病水平。这些特性通过数值模拟说明,以非本地连接形式推出了疾病的潜力,以实现超材料的其他功能。其中包括与频率过滤器件有关的疾病引起的光谱差距的发生,以及诱导不发生在常规周期性材料中的扩散型转运的可能性,并且可能发现在动态压力缓解中的应用。
We investigate the dynamic behavior of lattices with disorder introduced through non-local network connections. Inspired by the Watts-Strogatz small-world model, we employ a single parameter to determine the probability of local connections being re-wired, and to induce transitions between regular and disordered lattices. These connections are added as non-local springs to underlying periodic one-dimensional (1D) and two-dimensional (2D) square, triangular and hexagonal lattices. Eigenmode computations illustrate the emergence of spectral gaps in various representative lattices for increasing degrees of disorder. These gaps manifest themselves as frequency ranges where the modal density goes to zero, or that are populated only by localized modes. In both cases, we observe low transmission levels of vibrations across the lattice. Overall, we find that these gaps are more pronounced for lattice topologies with lower connectivity, such as the 1D lattice or the 2D hexagonal lattice. We then illustrate that the disordered lattices undergo transitions from ballistic to super-diffusive or diffusive transport for increasing levels of disorder. These properties, illustrated through numerical simulations, unveil the potential for disorder in the form of non-local connections to enable additional functionalities for metamaterials. These include the occurrence of disorder-induced spectral gaps, which is relevant to frequency filtering devices, as well as the possibility to induce diffusive-type transport which does not occur in regular periodic materials, and that may find applications in dynamic stress mitigation.