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Nonlinear tuning of microresonators for dynamic range enhancement

机译:微型谐振器的非线性调谐可提高动态范围

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摘要

This paper investigates the development of a novel framework and its implementation for the nonlinear tuning of nano/microresonators. Using geometrically exact mechanical formulations, a nonlinear model is obtained that governs the transverse and longitudinal dynamics of multilayer microbeams, and also takes into account rotary inertia effects. The partial differential equations of motion are discretized, according to the Galerkin method, after being reformulated into a mixed form. A zeroth-order shift as well as a hardening effect are observed in the frequency response of the beam. These results are confirmed by a higher order perturbation analysis using the method of multiple scales. An inverse problem is then proposed for the continuation of the critical amplitude at which the transition to nonlinear response characteristics occurs. Path-following techniques are employed to explore the dependence on the system parameters, as well as on the geometry of bilayer microbeams, of the magnitude of the dynamic range in nano/microresonators.
机译:本文研究了纳米/微谐振器非线性调谐的新型框架的开发及其实现。使用几何精确的机械公式,可以得到一个非线性模型,该模型控制多层微束的横向和纵向动力学,并考虑了旋转惯性效应。运动的偏微分方程在重新组合为混合形式后,根据Galerkin方法离散化。在光束的频率响应中观察到零阶位移以及硬化效果。这些结果通过使用多尺度方法的高阶扰动分析得到了证实。然后提出了一个反问题,用于临界振幅的延续,在临界振幅处会发生向非线性响应特性的转变。路径跟踪技术被用来研究纳米/微谐振器中动态范围大小对系统参数以及双层微束几何形状的依赖性。

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