Lattice reinforcement design method based on variable cross-section pillars
LI Hao
ZHU Kui
SUN Fengyong
HAN Jitai
LI Yin
Abstract:Body centered cubic(BCC)structure has excellent mechanical properties,but the stress concentration phenomenon at the nodes limits its further development in mechanical properties.At present,the method of adding spherical nodes or variable cross-section pillars is commonly used to alleviate stress concentration at nodes and achieve strengthening design of lattice structures,but there is a lack of research on the influence of the volume ratio of nodes to pillars on the strengthening effect.A new type of variable cross-section pillar based on trigonometric function reduction is designed,and a variable cross-section body centered cubic lattice(VC-BCC)lattice is designed.Dynamic node design is achieved by directly connecting the pillars to explore the optimal node to pillar volume ratio.Theoretical formula estimation of the volume of VC-BCC lattice is carried out,and based on the Timoshenko beam model,the equivalent elastic modulus of VC-BCC lattice is theoretically analyzed.A simplified model is established using the method of equivalent cross-section.Finite element simula-tion analysis was conducted on VC-BCC lattice with different proportions of node pillars,and lattice specimens were manufactured using selective laser melting technology for quasi-static compression testing.The experimental results show that there is little difference between theoretical calculations and simulation analysis.The maximum stress of the VC-BCC lattice structure is significantly reduced,and the equivalent yield strength is significantly improved.In all analyses,the VC-BCC lat-tice structure with a variable cross-sectional parameter of 0.6 exhibited excellent performance and had the best overall mechanical properties.
Keywords:Node reinforcementLattice structureBody centered cubicFinite element simulationSelective laser melting
Publication Date:2025-03-28
Online Publishing Date:2026-09-12(First online date of this platform, not the publication date of the document)
Pages:8( 143-150 )
