TY - JOUR
T1 - Topology optimization of multi-gradient composite
AU - Dong, Yihao
AU - Cheng, Ziheng
AU - Gu, Xuechen
AU - He, Shaoming
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/4/1
Y1 - 2022/4/1
N2 - This work presents a computational approach for the design of functionally graded composite with the combination of topology optimization. It is clear that the shell stacking sequence in most exoskeleton sustains their body weight and defends most of the environmental implications. This feature effectively improves the structural robustness in supporting impact waves or defending the failure extensions. Imitate the achievements from bio-inspired laminating, shell is laminated in a coat-base structure and assigned as orthotropic with optimal orientation. Without introducing any new variables, the interpolation model extended from the two-step filter and the multi-gradient topology optimization process precisely defines the location of candidate materials. Besides, another smoothing and projection in the Gradient Norm after the two-step filtration is applied to eliminate the interference of adjacent boundary. Four typical materials are introduced in each layer, and their orientations are optimized by the energy approach at the Base and the gradient approach at the border. We discusses two benchmark problems and an application case in result to demonstrate the effectiveness and orientation independence of the procedure. The optimized structures are evaluated compared to the single-coated result through stress and buckling analysis. The proposed multi-layer composites can be fabricated by filament winding process or hot forming.
AB - This work presents a computational approach for the design of functionally graded composite with the combination of topology optimization. It is clear that the shell stacking sequence in most exoskeleton sustains their body weight and defends most of the environmental implications. This feature effectively improves the structural robustness in supporting impact waves or defending the failure extensions. Imitate the achievements from bio-inspired laminating, shell is laminated in a coat-base structure and assigned as orthotropic with optimal orientation. Without introducing any new variables, the interpolation model extended from the two-step filter and the multi-gradient topology optimization process precisely defines the location of candidate materials. Besides, another smoothing and projection in the Gradient Norm after the two-step filtration is applied to eliminate the interference of adjacent boundary. Four typical materials are introduced in each layer, and their orientations are optimized by the energy approach at the Base and the gradient approach at the border. We discusses two benchmark problems and an application case in result to demonstrate the effectiveness and orientation independence of the procedure. The optimized structures are evaluated compared to the single-coated result through stress and buckling analysis. The proposed multi-layer composites can be fabricated by filament winding process or hot forming.
KW - Bio-inspired laminating
KW - Buckling evaluation
KW - Functionally graded materials
KW - Multi-layered composites
KW - Robustness
KW - Topology optimization
UR - http://www.scopus.com/inward/record.url?scp=85125479289&partnerID=8YFLogxK
U2 - 10.1016/j.cma.2022.114751
DO - 10.1016/j.cma.2022.114751
M3 - Article
AN - SCOPUS:85125479289
SN - 0045-7825
VL - 393
JO - Computer Methods in Applied Mechanics and Engineering
JF - Computer Methods in Applied Mechanics and Engineering
M1 - 114751
ER -