Vibration analysis of axially compressed nanobeams and its critical pressure using a new nonlocal stress theory

C. Li, C.W. Lim, Z. Zhu

Research output: Conference PapersRGC 32 - Refereed conference paper (without host publication)peer-review

Abstract

The transverse vibration of a nanobeam subject to initial axial compressive forces based on nonlocal elasticity theory is investigated. The effects of a small nanoscale parameter at molecular level unavailable in classical mechanics theory are presented and analyzed. Explicit solutions for natural frequency, vibration mode shapes are derived through two different methods: separation of variables and multiple scales. The respective numerical solutions are in close agreement. Validity of the models and approaches presented in the work are verified. Unlike the previous studies for a nonlocal nanostructure, this paper adopts the effective nonlocal bending moment instead of the pure traditional nonlocal bending moment. The analysis yields an infinite-order differential equation of motion which governs the vibrational behaviors. For practical analysis and as examples, an eight-order governing differential equation of motion is solved and the results are discussed. The paper presents a complete nonlocal nanobeam model and the results may be helpful for the application and design of various nano-electro-mechanical devices, e.g. nano-drivers, nano-oscillators, nano-sensors, etc., where a nanobeam acts as a basic element.
Original languageEnglish
Pages1788-1792
Publication statusPublished - 21 Oct 2011
Event2011 International Conference on Vibration, Structural Engineering and Measurement, ICVSEM2011 - Shanghai, China
Duration: 21 Oct 201123 Oct 2011

Conference

Conference2011 International Conference on Vibration, Structural Engineering and Measurement, ICVSEM2011
PlaceChina
CityShanghai
Period21/10/1123/10/11

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