Evaluation of the Compressive Behavior of the Uniform and Graded Octet Lattice Cylindrical Shell Materials

Octet lattice cylindrical shell combines the stretching-dominated load transfer of Octet lattices with the geometric characteristics of the cylindrical shell, but the effects of different density gradients under different compression directions remain unclear. Uniform and three-layer graded 316L Octet LCSs were evaluated using quasi-static compression tests and validated finite element simulations. The results demonstrate that relative density is the primary factor controlling the overall stiffness, strength, and energy-absorption capacity of Octet LCSs. Under vertical compression, rearranging the density layers at a fixed average relative density regulates the yielding sequence and collapse path, enabling more controllable multistage energy absorption but with reduced stiffness and absolute SEA compared with uniform structures. Under transverse compression, the response is governed mainly by cross-sectional flattening, strut bending and local contact, and thus, the influence of layer arrangement on global load-bearing capacity is limited. The validated numerical model agrees well with the experiments and provides insights into the layer-sequence design of lightweight lattice cylindrical shells for protective and energy-absorbing applications.

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Publication Details

Journal
Materials
Published
2026-08-25
DOI
https://doi.org/10.3390/ma19173605
Primary Topic
Cellular and Composite Structures
Type
article
Field-Weighted Citation Impact
0.00

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article

Evaluation of the Compressive Behavior of the Uniform and Graded Octet Lattice Cylindrical Shell Materials

Weidong Cao, Wenchang Luo, Chunwang He, Chengxuan Yu et al.
Materials
Cellular and Composite Structures
article

Evaluation of the Compressive Behavior of the Uniform and Graded Octet Lattice Cylindrical Shell Materials

Weidong Cao, Wenchang Luo, Chunwang He, Chengxuan Yu, Xiaofei Cao, Hao Xu
article en

Abstract

Octet lattice cylindrical shell combines the stretching-dominated load transfer of Octet lattices with the geometric characteristics of the cylindrical shell, but the effects of different density gradients under different compression directions remain unclear. Uniform and three-layer graded 316L Octet LCSs were evaluated using quasi-static compression tests and validated finite element simulations. The results demonstrate that relative density is the primary factor controlling the overall stiffness, strength, and energy-absorption capacity of Octet LCSs. Under vertical compression, rearranging the density layers at a fixed average relative density regulates the yielding sequence and collapse path, enabling more controllable multistage energy absorption but with reduced stiffness and absolute SEA compared with uniform structures. Under transverse compression, the response is governed mainly by cross-sectional flattening, strut bending and local contact, and thus, the influence of layer arrangement on global load-bearing capacity is limited. The validated numerical model agrees well with the experiments and provides insights into the layer-sequence design of lightweight lattice cylindrical shells for protective and energy-absorbing applications.

MaterialsVol. 19(17)
Jiangsu University (CN), Beijing Institute of Technology (CN), Wuhan University of Technology (CN)
National Natural Science Foundation of China
Life below water
Openalex Percentile: Top 19%
Cellular and Composite Structures
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