TY - JOUR
T1 - Static analysis of cutout microstructures incorporating the microstructure and surface effects
AU - Alazwari, Mashhour A.
AU - Abdelrahman, Alaa A.
AU - Wagih, Ahmed
AU - Eltaher, Mohamed A.
AU - Abd-El-Mottaleb, Hanaa E.
N1 - Generated from Scopus record by KAUST IRTS on 2023-09-21
PY - 2021/3/10
Y1 - 2021/3/10
N2 - This article develops a nonclassical model to analyze bending response of squared perforated microbeams considering the coupled effect of microstructure and surface stress under different loading and boundary conditions, those are not be studied before. The corresponding material and geometrical characteristics of regularly squared perforated beams relative to fully filled beam are obtained analytically. The modified couple stress and the modified Gurtin-Murdoch surface elasticity models are adopted to incorporate the microstructure as well as the surface energy effects. The differential equations of equilibrium including the Poisson’s effect are derived based on minimum potential energy. Exact closed form solution is obtained for bending behavior of the proposed model considering the classical and nonclassical boundary conditions for both uniformly distributed and concentrated loads. The proposed model is verified with results available in the literature. Influences of the microstructure length scale parameter, surface energy, beam thickness, boundary and loading conditions on the bending behavior of perforated microbeams are investigated. It is observed that microstructure and surface parameters are vital in investigation of the bending behavior of perforated microbeams. The obtained results are supportive for the design, analysis and manufacturing of perforated nanobeams that commonly used in nanoactuators, nanoswitches, MEMS and NEMS systems.
AB - This article develops a nonclassical model to analyze bending response of squared perforated microbeams considering the coupled effect of microstructure and surface stress under different loading and boundary conditions, those are not be studied before. The corresponding material and geometrical characteristics of regularly squared perforated beams relative to fully filled beam are obtained analytically. The modified couple stress and the modified Gurtin-Murdoch surface elasticity models are adopted to incorporate the microstructure as well as the surface energy effects. The differential equations of equilibrium including the Poisson’s effect are derived based on minimum potential energy. Exact closed form solution is obtained for bending behavior of the proposed model considering the classical and nonclassical boundary conditions for both uniformly distributed and concentrated loads. The proposed model is verified with results available in the literature. Influences of the microstructure length scale parameter, surface energy, beam thickness, boundary and loading conditions on the bending behavior of perforated microbeams are investigated. It is observed that microstructure and surface parameters are vital in investigation of the bending behavior of perforated microbeams. The obtained results are supportive for the design, analysis and manufacturing of perforated nanobeams that commonly used in nanoactuators, nanoswitches, MEMS and NEMS systems.
UR - http://koreascience.or.kr/journal/view.jsp?kj=KJKHEW&py=2021&vnc=v38n5&sp=583
UR - http://www.scopus.com/inward/record.url?scp=85103635051&partnerID=8YFLogxK
U2 - 10.12989/scs.2021.38.5.583
DO - 10.12989/scs.2021.38.5.583
M3 - Article
SN - 1598-6233
VL - 38
SP - 583
EP - 597
JO - Steel and Composite Structures
JF - Steel and Composite Structures
IS - 5
ER -