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Enhancement in the mechanical behaviour of a Schwarz Primitive periodic minimal surface lattice structure design
被引:94
|作者:
Guo, Xiao
[1
,3
]
Ding, Junhao
[2
]
Li, Xinwei
[1
]
Qu, Shuo
[2
]
Song, Xu
[2
]
Fuh, Jerry Ying Hsi
[1
,3
,4
]
Lu, Wen Feng
[1
,3
,4
]
Zhai, Wei
[1
,4
]
机构:
[1] Natl Univ Singapore, Dept Mech Engn, Singapore 117575, Singapore
[2] Chinese Univ Hong Kong, Dept Mech & Automat Engn, Shatin, Hong Kong, Peoples R China
[3] Natl Univ Singapore, Chongqing Res Inst, Chongqing 401123, Peoples R China
[4] Natl Univ Singapore, Ctr Addit Mfg, Singapore 117581, Singapore
关键词:
Triply periodic minimal surface;
Mechanical properties;
Energy absorption;
Micro-selective laser melting;
Deformation mode;
Finite element modelling;
INTERPENETRATING PHASE COMPOSITES;
ENERGY-ABSORPTION;
STAINLESS-STEEL;
CELLULAR MATERIALS;
STRENGTH;
IMPACT;
DYNAMICS;
TI6AL4V;
MODELS;
D O I:
10.1016/j.ijmecsci.2021.106977
中图分类号:
TH [机械、仪表工业];
学科分类号:
0802 ;
摘要:
Triply periodic minimal surface (TPMS) sheet lattice structures are composed of continuous and smooth shells, enabling the achievement of a high surface-to-volume ratio and pore interconnectivity, which represent an emerging solution for lightweight applications. In this study, an improved Schwarz primitive lattice (P-lattice) structure was proposed by redefining the original opening diameter with a shape parameter. Prototypes of different configurations, such as the original P-lattice (OP) structure, modified P-lattice structure with a small opening diameter (SP), and modified P-lattice structure with a big opening diameter (BP) were fabricated via micro-selective laser melting using 316 L stainless steel. Quasi-static compression tests were performed on the fabricated samples. The experimental results indicated that the Young's modulus, compressive strength, and energy absorption of the SP lattice were increased by 25.84%, 15.63%, and 33.02%, respectively, compared with those of the OP structure. A finite element model was established to investigate the mechanical properties and energy absorption of all the designed configurations, and the results showed good agreement with the experimental observations. A rigid-plastic hardening model was also introduced to macroscopically predict the mechanical response and energy absorption of the as-designed lattice structures. The mechanical properties and energy absorption of the SP structure outperformed those of the OP and BP structures.
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