Steel and Composite Structures
Volume 51, Number 2, 2024, pages 203-223
DOI: 10.12989/scs.2024.51.2.203
Stress-based topology optimization under buckling constraint using functionally graded materials
Minh-Ngoc Nguyen, Dongkyu Lee and Soomi Shin
Abstract
This study shows functionally graded material structural topology optimization under buckling constraints. The
SIMP (Solid Isotropic Material with Penalization) material model is used and a method of moving asymptotes is also employed
to update topology design variables. In this study, the quadrilateral element is applied to compute buckling load factors. Instead
of artificial density properties, functionally graded materials are newly assigned to distribute optimal topology materials
depending on the buckling load factors in a given design domain. Buckling load factor formulations are derived and confirmed
by the resistance of functionally graded material properties. However, buckling constraints for functionally graded material
topology optimization have not been dealt with in single material. Therefore, this study aims to find the minimum compliance
topology optimization and the buckling load factor in designing the structures under buckling constraints and generate the
functionally graded material distribution with asymmetric stiffness properties that minimize the compliance. Numerical
examples verify the superiority and reliability of the present method.
Key Words
buckling constrains; Finite Element Method; functionally graded materials; topology optimization
Address
Minh-Ngoc Nguyen:Department of Architectural Engineering, Sejong University, Seoul, 05006, Republic of Korea
Dongkyu Lee:Department of Architectural Engineering, Sejong University, Seoul, 05006, Republic of Korea
Soomi Shin:Research Institute of Industrial Technology, Pusan National University, Busan, 46241, Republic of Korea