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Influence of size effect and elastic boundary condition on the pull-in instability of nano-scale cantilever beams immersed in liquid electrolytes
Affiliation:1. Department of Physics, University of Colombo, Colombo 3, Sri Lanka;2. Department of Engineering Sciences, Uppsala University, Uppsala, Sweden;1. M. Curie-Skłodowska University, Faculty of Chemistry, Department of Analytical Chemistry and Instrumental Analysis, M. Curie-Skłodowska Sq. 3, 20-031 Lublin, Poland;2. M. Curie-Skłodowska University, Faculty of Chemistry, Department of Radio Chemistry and Colloid Chemistry, M. Curie-Skłodowska Sq. 3, 20-031 Lublin, Poland;3. Medical University of Lublin, Department of Prosthetic Dentistry, Karmelicka 7, 20-081 Lublin, Poland;4. Medical University of Lublin, Department of Paediatric Neurology, Prof. A. Gębala 6, 20-093 Lublin, Poland
Abstract:In this study, the static pull-in instability of nanocantilever beams immersed in a liquid electrolyte is theoretically investigated. In modeling the nanocantilever beam, the effects of van der Waals forces, elastic boundary condition and size dependency are considered. The modified couple stress theory, containing material length scale parameter, is used to interpret the size effect which appears in micro/nanoscale structures. The modified Adomian decomposition (MAD) method is used to gain an approximate analytical expression for the critical pull-in parameters which are essential for the design of micro/nanoactuators. The results show that the beam can deflect upward or downward, based on the values of the non-dimensional parameters. It is found that the size effect greatly influences the beam deflection and is more noticeable for small thicknesses. Neglecting size effect overestimates the deflection of the nanobeam. The findings reveal that the increase of ion concentration increases the pull-in voltage but decreases the pull-in deflection. Furthermore, an increase in ion concentration increases the influence of size-dependent effect on pull-in voltage.
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