Steel and Composite Structures
Volume 52, Number 1, 2024, pages 89-107
DOI: 10.12989/scs.2024.52.1.089
Multi-objective optimization of anisogride composite lattice plate for free vibration, mass, buckling load, and post-buckling
F. Rashidia, A. Farrokhabadi and M. Karamooz Mahdiabadi
Abstract
This article focuses on the static and dynamic analysis and optimization of an anisogrid lattice plate subjected to
axial compressive load with simply supported boundary conditions. The lattice plate includes diagonal and transverse ribs and is
modeled as an orthotropic plate with effective stiffness properties. The study employs the first-order shear deformation theory
and the Ritz method with a Legendre approximation function. In the realm of optimization, the Non-dominated Sorting Genetic
Algorithm-II is utilized as an evolutionary multi-objective algorithm to optimize. The research findings are validated through
finite element analysis. Notably, this study addresses the less-explored areas of optimizing the geometric parameters of the plate
by maximizing the buckling load and natural frequency while minimizing mass. Furthermore, this study attempts to fill the gap
related to the analysis of the post-buckling behavior of lattice plates, which has been conspicuously overlooked in previous
research. This has been accomplished by conducting nonlinear analyses and scrutinizing post-buckling diagrams of this type of
lattice structure. The efficacy of the continuous methods for analyzing the natural frequency, buckling, and post-buckling of
these lattice plates demonstrates that while a degree of accuracy is compromised, it provides a significant amount of
computational efficiency.
Key Words
anisogride; buckling; free vibration; lattice plate; multi-objective optimization; post-buckling; Ritz method
Address
F. Rashidia, A. Farrokhabadi and M. Karamooz Mahdiabadi:Department of Mechanical Engineering, Tarbiat Modares University, Tehran, Iran