Nanobeams and AFM Subject to Piezoelectric and Surface Scale Effects

Vibration dynamics of elastic beams that are used in nanotechnology, such as atomic force microscope modeling and carbon nanotubes, are considered in terms of a fundamental response within a matrix framework. The modeling equations with piezoelectric and surface scale effects are written as a matrix...

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Published inAdvances in Mathematical Physics Vol. 2018; no. 2018; pp. 1 - 24
Main Authors Carvalho, Joao, Tonetto, Leticia, Copetti, Rosemaira, Claeyssen, Julio
Format Journal Article
LanguageEnglish
Published Cairo, Egypt Hindawi Publishing Corporation 01.01.2018
Hindawi
John Wiley & Sons, Inc
Wiley
Subjects
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ISSN1687-9120
1687-9139
DOI10.1155/2018/9268973

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Abstract Vibration dynamics of elastic beams that are used in nanotechnology, such as atomic force microscope modeling and carbon nanotubes, are considered in terms of a fundamental response within a matrix framework. The modeling equations with piezoelectric and surface scale effects are written as a matrix differential equation subject to tip-sample general boundary conditions and to compatibility conditions for the case of multispan beams. We considered a quadratic and a cubic eigenvalue problem related to the inclusion of smart materials and surface effects. Simulations were performed for a two stepped beam with a piezoelectric patch subject to pulse forcing terms. Results with Timoshenko models that include surface effects are presented for micro- and nanoscale. It was observed that the effects are significant just in nanoscale. We also simulate the frequency effects of a double-span beam in which one segment includes rotatory inertia and shear deformation and the other one neglects both phenomena. The proposed analytical methodology can be useful in the design of micro- and nanoresonator structures that involve deformable flexural models for detecting and imaging of physical and biochemical quantities.
AbstractList Vibration dynamics of elastic beams that are used in nanotechnology, such as atomic force microscope modeling and carbon nanotubes, are considered in terms of a fundamental response within a matrix framework. The modeling equations with piezoelectric and surface scale effects are written as a matrix differential equation subject to tip-sample general boundary conditions and to compatibility conditions for the case of multispan beams. We considered a quadratic and a cubic eigenvalue problem related to the inclusion of smart materials and surface effects. Simulations were performed for a two stepped beam with a piezoelectric patch subject to pulse forcing terms. Results with Timoshenko models that include surface effects are presented for micro- and nanoscale. It was observed that the effects are significant just in nanoscale. We also simulate the frequency effects of a double-span beam in which one segment includes rotatory inertia and shear deformation and the other one neglects both phenomena. The proposed analytical methodology can be useful in the design of micro- and nanoresonator structures that involve deformable flexural models for detecting and imaging of physical and biochemical quantities.
Audience Academic
Author Carvalho, Joao
Copetti, Rosemaira
Tonetto, Leticia
Claeyssen, Julio
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ContentType Journal Article
Copyright Copyright © 2018 Julio Claeyssen et al.
COPYRIGHT 2018 John Wiley & Sons, Inc.
Copyright © 2018 Julio Claeyssen et al. This is an open access article distributed under the Creative Commons Attribution License (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. https://creativecommons.org/licenses/by/4.0
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Snippet Vibration dynamics of elastic beams that are used in nanotechnology, such as atomic force microscope modeling and carbon nanotubes, are considered in terms of...
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SubjectTerms Analysis
Atomic force microscopes
Atomic force microscopy
Boundary conditions
Carbon nanotubes
Computer simulation
Differential equations
Eigenvalues
Elastic beams
Formability
Mathematical problems
Microscopy
Modelling
Nanotechnology
Nanotubes
Physical properties
Physics
Piezoelectricity
Sensors
Shear deformation
Signal processing
Smart materials
Stress analysis
Vibration
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Title Nanobeams and AFM Subject to Piezoelectric and Surface Scale Effects
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