论文标题
关于粘弹性的必要条件
Requisites on viscoelasticity for exceptional points in passive elastodynamic metamaterials
论文作者
论文摘要
弹性动力学中非甲状体物理学的最新进展以及特殊点(EP)的概念(EP)导致了新型的地材料的发展,以控制弹性波传播,超敏感性传感器和执行器。 EPS在平均时间对称系统中的出现依赖于明智地设计的平衡收益和损失机制。创建增益需要复杂的电路和放大机制,从而使工程应用具有挑战性。在这里,我们报告了在被动的非弹性动力学系统中获得EPS的策略,该系统具有从粘弹性材料中得出的差异损失。我们比较了不同的粘弹性材料模型,并表明只有当粘弹性材料的频率依赖性损失区域在运行频率范围内几乎保持恒定时。这种类型的损失切线发生在材料中,这些材料在宽阔的松弛时间上经历应力 - 浮肿,例如,遵循kelvin-voigt分数衍生物(KVFD)模型的材料。使用动态机械分析,我们表明,一些常见的粘弹性弹性体,例如聚二甲基硅氧烷(PDMS)和聚氨酯橡胶遵循KVFD行为,使得损失切线在特定频率后几乎变为恒定。我们提出的材料模型以及广泛可用的物质系统在创建EPS的潜力铺平了道路,以开发非炎性变质材料,对扰动过敏或增强的发射率过敏。
The recent progress of non-Hermitian physics and the notion of exceptional point (EP) degeneracies in elastodynamics has led to the development of novel metamaterials for the control of elastic wave propagation, hypersensitive sensors, and actuators. The emergence of EPs in a Parity-Time symmetric system relies on judiciously engineered balanced gain and loss mechanisms. Creating gain requires complex circuits and amplification mechanisms, making engineering applications challenging. Here, we report strategies to achieve EPs in passive non-Hermitian elastodynamic systems with differential loss derived from viscoelastic materials. We compare different viscoelastic material models and show that the EP emerges only when the frequency-dependent loss-tangent of the viscoelastic material remains nearly constant in the frequency range of operation. Such type of loss tangent occurs in materials that undergo stress-relaxation over a broad spectrum of relaxation times, for example, materials that follow the Kelvin-Voigt fractional derivative (KVFD) model. Using dynamic mechanical analysis, we show that a few common viscoelastic elastomers such as Polydimethylsiloxane (PDMS) and polyurethane rubber follow the KVFD behavior such that the loss tangent becomes almost constant after a particular frequency. The material models we present and the demonstration of the potential of a widely available material system in creating EPs pave the way for developing non-Hermitian metamaterials with hypersensitivity to perturbations or enhanced emissivity.