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Surface effect on the nonlinear forced vibration of cantilevered nanobeams
Affiliation:1. Department of Mechanics, Huazhong University of Science and Technology, Wuhan 430074, China;2. Hubei Key Laboratory for Engineering Structural Analysis and Safety Assessment, Wuhan 430074, China;3. Department of Engineering Mechanics, College of Pipeline and Civil Engineering, China University of Petroleum, Qingdao 266580, China;4. The Central China Agricultural High-Tech Industrial Development Zone, Jingzhou 434100, China;1. International Laboratory for Quantum Functional Materials of Henan, and School of Physics and Engineering, Zhengzhou University, Henan 450001, China;2. Center for Clean Energy and Quantum Structures, Zhengzhou University, Zhengzhou, Henan 450001, China;3. Department of Physics, Henan University of Technology, Zhengzhou, Henan 450052, China;4. Department of Basic Courses, Zhengzhou College of Science & Technology, Zhengzhou 450064, China
Abstract:The nonlinear forced vibration behavior of a cantilevered nanobeam is investigated in this paper, essentially considering the effect due to the surface elastic layer. The governing equation of motion for the nano-cantilever is derived, with consideration of the geometrical nonlinearity and the effects of additional flexural rigidity and residual stress of the surface layer. Then, the nonlinear partial differential equation (PDE) is discretized into a set of nonlinear ordinary differential equations (ODEs) by means of the Galerkin’s technique. It is observed that surface effects on the natural frequency of the nanobeam is of significance, especially for the case when the aspect ratio of the nanobeam is large. The nonlinear resonant dynamics of the nanobeam system is evaluated by varying the excitation frequency around the fundamental resonance, showing that the nanobeam would display hardening-type behavior and hence the frequency-response curves bend to the right in the presence of positive residual surface stress. However, with the negative residual surface stress, this hardening-type behavior can be shifted to a softening-type one which becomes even more evident with increase of the aspect ratio parameter. It is also demonstrated that the combined effects of the residual stress and aspect ratio on the maximum amplitude of the nanobeam may be pronounced.
Keywords:Cantilevered nanobeam  Surface effect  Forced vibration  Nonlinear phenomenon
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