APPLIED LASER, Volume. 44, Issue 10, 147(2024)

Study on Compression and Energy Absorption Properties of Bionic Butterfly Lattice Structure Made by Photo-Curing Molding Technology

Xie Weihao1,2 and Yang Yongtai1,2,3、*
Author Affiliations
  • 1College of Mechanical and Electrical Engineering, Fujian Agriculture and Forestry University, Fuzhou 350000, Fujian, China
  • 2Quanzhou Institute of Equipment Manufacturing, Haixi Institute, Chinese Academy of Sciences, Jinjiang 362200, Fujian, China
  • 3University of Chinese Academy of Science, Beijing 100049, China
  • show less
    References(17)

    [2] [2] LI C L, LEI H S, LIU Y B, et al. Crushing behavior of multi-layer metal lattice panel fabricated by selective laser melting[J]. International Journal of Mechanical Sciences, 2018, 145: 389-399.

    [3] [3] CHOY S Y, SUN C N, LEONG K F, et al. Compressive properties of functionally graded lattice structures manufactured by selective laser melting[J]. Materials & Design, 2017, 131: 112-120.

    [4] [4] ABUEIDDA D W, BAKIR M, ABU AL-RUB R K, et al. Mechanical properties of 3D printed polymeric cellular materials with triply periodic minimal surface architectures[J]. Materials & Design, 2017, 122: 255-267.

    [5] [5] MASKERY I, AREMU A O, SIMONELLI M, et al. Mechanical properties of Ti-6Al-4V selectively laser melted parts with body-centred-cubic lattices of varying cell size[J]. Experimental Mechanics, 2015, 55(7): 1261-1272.

    [6] [6] MASKERY I, HUSSEY A, PANESAR A, et al. Aninvestigation into reinforced and functionally graded lattice structures[J]. Journal of Cellular Plastics, 2017, 53(2): 151-165.

    [8] [8] BI J, WU L K, LIU Z Q, et al. Formability, surface quality and compressive fracture behavior of AlMgScZr alloy lattice structure fabricated by selective laser melting[J]. Journal of Materials Research and Technology, 2022, 19: 391-403.

    [9] [9] MAZUR M, LEARY M, SUN S J, et al. Deformation and failure behaviour of Ti-6Al-4V lattice structures manufactured by selective laser melting (SLM)[J]. The International Journal of Advanced Manufacturing Technology, 2016, 84(5): 1391-1411.

    [10] [10] YE G Y, BI H J, HU Y C. Compression behaviors of 3D printed pyramidal lattice truss composite structures[J]. Composite Structures, 2020, 233: 111706.

    [11] [11] XIE C, WANG D F, ZONG L, et al. Crash worthiness analysis and multi-objective optimization of spatial lattice structure under dynamic compression[J]. International Journal of Impact Engineering, 2023, 180: 104713.

    [12] [12] HE M, LI Y, YIN J, et al. Compressive performance and fracture mechanism of bio-inspired heterogeneous glass sponge lattice structures manufactured by selective laser melting[J]. Materials & Design, 2022, 214: 110396.

    [13] [13] CHEN X H, HU M J, SUN Y X, et al. Wide-range tuning of the mechanical properties of TPMS lattice structures through frequency variation[J]. Materials & Design, 2022, 224; 111370.

    [14] [14] FENG Y X, HUANG T, GONG Y H, et al. Stiffness optimization design for TPMS architected cellular materials[J]. Materials & Design, 2022, 222: 111078.

    [15] [15] SONG K H, LI D W, ZHANG C D, et al. Bio-inspired hierarchical honeycomb metastructures with superior mechanical properties[J]. Composite Structures, 2023, 304: 116452.

    [16] [16] LIU R Y, YAO G F, GAO K Y, et al. Study on mechanical properties oflattice structures strengthened by synergistic hierarchical arrangement[J]. Composite Structures, 2023, 304: 116304.

    [17] [17] SHARMA D, HIREMATH S S. Experimental and FEM study on the in-plane and out-plane loaded reversible dual-material bio-inspired lattice structures with improved energy absorption performance[J]. Composite Structures, 2023, 303: 116353.

    [18] [18] LI Q Q, ZHAN L Y, MIAO X J, et al. Morning glory-inspired lattice structure with negative Poisson’s ratio effect[J]. International Journal of Mechanical Sciences, 2022, 232: 107643.

    [19] [19] BURR A, PERSENOT T, DOUTRE P T, et al. A numerical framework to predict the fatigue life of lattice structures built by additive manufacturing[J]. International Journal of Fatigue, 2020, 139: 105769.

    Tools

    Get Citation

    Copy Citation Text

    Xie Weihao, Yang Yongtai. Study on Compression and Energy Absorption Properties of Bionic Butterfly Lattice Structure Made by Photo-Curing Molding Technology[J]. APPLIED LASER, 2024, 44(10): 147

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Received: Sep. 6, 2023

    Accepted: Mar. 11, 2025

    Published Online: Mar. 11, 2025

    The Author Email: Yongtai Yang (yangyongtai@fjirsm.ac.cn)

    DOI:10.14128/j.cnki.al.20244410.147

    Topics