Graphene-based mass sensors: chaotic dynamics analysis using the nonlocal strain gradient model
From MaRDI portal
Publication:821737
DOI10.1016/J.APM.2020.01.022zbMath1481.74370OpenAlexW2998966236WikidataQ126320630 ScholiaQ126320630MaRDI QIDQ821737
Publication date: 21 September 2021
Published in: Applied Mathematical Modelling (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.apm.2020.01.022
Related Items (6)
Bending and stretching behavior of graphene structures using continuum models calibrated with modal analysis ⋮ Nonlinear vibrations of functionally graded graphene reinforced composite cylindrical panels ⋮ Elastic buckling and free vibration analysis of functionally graded Timoshenko beam with nonlocal strain gradient integral model ⋮ Onset of chaos in nano-resonators based on strain gradient theory: numerical analysis ⋮ Coupled thermal stability analysis of piezomagnetic nano-sensors and nano-actuators considering the flexomagnetic effect ⋮ Modelling, analyzing and simulating the complex dynamics of mass sensors based on a functionally graded nanobeam model
Cites Work
- Unnamed Item
- Nanoscale mass sensing based on vibration of single-layered graphene sheet in thermal environments
- A higher-order nonlocal elasticity and strain gradient theory and its applications in wave propagation
- Melnikov chaos in a periodically driven Rayleigh-Duffing oscillator
- Homoclinic bifurcation and chaos control in MEMS resonators
- Nonlocal nonlinear formulations for bending of classical and shear deformation theories of beams and plates
- On the role of gradients in the localization of deformation and fracture
- Experiments and theory in strain gradient elasticity.
- Vibration analysis of a single-layered graphene sheet-based mass sensor using the Galerkin strip distributed transfer function method
- Prediction of chaos in electrostatically actuated arch micro-nano resonators: analytical approach
- Thermal and surface effects on the pull-in characteristics of circular nanoplate NEMS actuator based on nonlocal elasticity theory
- Modeling of nonlinear vibration of graphene sheets using a meshfree method based on nonlocal elasticity theory
- Prediction of nonlinear vibration of bilayer graphene sheets in thermal environments via molecular dynamics simulations and nonlocal elasticity
- Nonlinear and chaos control of a micro-electro-mechanical system by using second-order fast terminal sliding mode control
- Nonlocal polar elastic continua
- Introduction to Applied Nonlinear Dynamical Systems and Chaos
- The free vibration of rectangular plates
This page was built for publication: Graphene-based mass sensors: chaotic dynamics analysis using the nonlocal strain gradient model