Influence of Surface Stresses on the Deflection of Circular Nanoplate with Two-Parameter Elastic Substrate

Authors

DOI:

https://doi.org/10.4186/ej.2022.26.10.99 Full article

Abstract

This paper presents the influence of surface energy effects on the deflection of circular nanoplate with two-parameter elastic substrate. The governing equation for axisymmetric bending of the nanoplate, based on the Gurtin-Murdoch surface elasticity theory, resting on a Winkler-Pasternak elastic foundation is derived from a variational approach based on the concept of minimum total potential energy. The analytical general solution to the governing equation is then obtained in terms of the modified Bessel functions. Finally, closed-form solutions for deflections, bending moment and transverse shear in the nanoplate subjected to normally distributed loading are presented explicitly for the boundary conditions of simple, clamped, and free edges.  A set of numerical solutions are selected to demonstrate the influence of surface material parameters and the substrate moduli on the deflection and bending moment profiles of a silicon nanoplate on Winkler-Pasternak foundation. It is found that the nanoplate clearly shows size-dependent behaviors, and becomes stiffer with the existence of surface stresses.

Keywords:

Gurtin-Murdoch model, nanoplate, size-dependent, surface energy, Winkler-Pasternak

Affiliations

  • Supakorn Tirapat Khon Kaen University
  • Teerapong Senjuntichai Chulalongkorn University

Corresponding author: Teerapong Senjuntichai, Teerapong.S@chula.ac.th

1726 1108

Author Biographies

  • Department of Civil Engineering, Faculty of Engineering, Khon Kaen University, Khon Kaen, 40002, Thailand

  • Center of Excellence in Applied Mechanics and Structures, Department of Civil Engineering, Faculty of Engineering, Chulalongkorn University, Bangkok, 10330, Thailand

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How to Cite

[1]
S. Tirapat and T. Senjuntichai, “Influence of Surface Stresses on the Deflection of Circular Nanoplate with Two-Parameter Elastic Substrate”, Eng. J., vol. 26, no. 10, pp. 99–110, Oct. 2022, doi: 10.4186/ej.2022.26.10.99.

Citations

Published

2022-10-31

Issue

Section

Modern Engineering Technology