Article ID Journal Published Year Pages File Type
278423 International Journal of Solids and Structures 2012 7 Pages PDF
Abstract

Micro/nanomechanical resonators often exhibit nonlinear behaviors due to their small size and their ease to realize relatively large amplitude oscillation. In this work, we design a nonlinear micromechanical cantilever system with intentionally integrated geometric nonlinearity realized through a nanotube coupling. Multiple scales analysis was applied to study the nonlinear dynamics which was compared favorably with experimental results. The geometrically positioned nanotube introduced nonlinearity efficiently into the otherwise linear micromechanical cantilever oscillator, evident from the acquired responses showing the representative hysteresis loop of a nonlinear dynamic system. It was further shown that a small change in the geometry parameters of the system produced a complete transition of the nonlinear behavior from hardening to softening resonance.

Graphical abstractFigure optionsDownload full-size imageDownload as PowerPoint slideHighlights► We realize intentional hardening and softening nonlinearity introduced by a nanotube. ► Local nanoscale modification of a linear microscale cantilever system results in strongly nonlinear global dynamics. ► A small change in geometric design causes a transition between hardening and softening resonance.

Related Topics
Physical Sciences and Engineering Engineering Civil and Structural Engineering
Authors
, , , , , ,