• Chinese Journal of Lasers
  • Vol. 52, Issue 8, 0802302 (2025)
Yi Li, Xiaoqiang Wang, Zhiqiao Chen, Shifeng Wen*, and Yusheng Shi
Author Affiliations
  • School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan 430074, Hubei , China
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    DOI: 10.3788/CJL241258 Cite this Article Set citation alerts
    Yi Li, Xiaoqiang Wang, Zhiqiao Chen, Shifeng Wen, Yusheng Shi. Forming Quality and Mechanical Properties of Different Types of NiTi Alloy Gyroid Lattice Structures Fabricated via Selective Laser Melting[J]. Chinese Journal of Lasers, 2025, 52(8): 0802302 Copy Citation Text show less
    References

    [1] Zhao B, Gain A K, Ding W F et al. A review on metallic porous materials: pore formation, mechanical properties, and their applications[J]. The International Journal of Advanced Manufacturing Technology, 95, 2641-2659(2018).

    [2] Zheng M, Yang J, Zhang H. Review on preparation and applications of porous metal materials[J]. Materials Reports, 36, 74-89(2022).

    [3] Hasanzadeh R, Moradian M. Recent developments in research on porous metals and foamed metals[J]. Metals, 12, 1486(2022).

    [4] Wang H. Pore structure design, preparation and properties of ordered porous aluminum-based materials[D](2020).

    [5] Liang J Y, Zhang W Y, Liu W et al. Laser additive manufacturing and heat transfer performance measurement of lattice structure heat exchanger[J]. Chinese Journal of Lasers, 50, 0402014(2023).

    [6] Qiu N, Wan Y H, Shen Y J et al. Experimental and numerical studies on mechanical properties of TPMS structures[J]. International Journal of Mechanical Sciences, 261, 108657(2024).

    [7] Qiu N, Zhang J Z, Yuan F Q et al. Mechanical performance of triply periodic minimal surface structures with a novel hybrid gradient fabricated by selective laser melting[J]. Engineering Structures, 263, 114377(2022).

    [8] Jin M X, Feng Q X, Fan X J et al. Investigation on the mechanical properties of TPMS porous structures fabricated by laser powder bed fusion[J]. Journal of Manufacturing Processes, 76, 559-574(2022).

    [9] Yang L, Yan C Z, Han C J et al. Mechanical response of a triply periodic minimal surface cellular structures manufactured by selective laser melting[J]. International Journal of Mechanical Sciences, 148, 149-157(2018).

    [10] Liu F, Tang Y C, Xie H Q et al. Optimization of structure and performance of minimal surface lattice formed by selective laser melting[J]. Chinese Journal of Lasers, 50, 1202303(2023).

    [11] Fan X J, Tang Q, Feng Q X et al. Design, mechanical properties and energy absorption capability of graded-thickness triply periodic minimal surface structures fabricated by selective laser melting[J]. International Journal of Mechanical Sciences, 204, 106586(2021).

    [12] Zhang L, Feih S, Daynes S et al. Energy absorption characteristics of metallic triply periodic minimal surface sheet structures under compressive loading[J]. Additive Manufacturing, 23, 505-515(2018).

    [13] Shi X, Liao W H, Li P F et al. Comparison of compression performance and energy absorption of lattice structures fabricated by selective laser melting[J]. Advanced Engineering Materials, 22, 2000453(2020).

    [14] Zhang J Q, Liu Y G, Babamiri B B et al. Enhancing specific energy absorption of additively manufactured titanium lattice structures through simultaneous manipulation of architecture and constituent material[J]. Additive Manufacturing, 55, 102887(2022).

    [15] Amadi A, Mohyaldinn M, Ridha S et al. Advancing engineering frontiers with NiTi shape memory alloys: a multifaceted review of properties, fabrication, and application potentials[J]. Journal of Alloys and Compounds, 976, 173227(2024).

    [16] Saedi S, Acar E, Raji H et al. Energy damping in shape memory alloys: a review[J]. Journal of Alloys and Compounds, 956, 170286(2023).

    [17] Es-Souni M, Es-Souni M, Fischer-Brandies H. Assessing the biocompatibility of NiTi shape memory alloys used for medical applications[J]. Analytical and Bioanalytical Chemistry, 381, 557-567(2005).

    [18] Zhang L M, Ren D C, Ji H B et al. Study on the corrosion behavior of NiTi shape memory alloys fabricated by electron beam melting[J]. NPJ Materials Degradation, 6, 79(2022).

    [19] Dzogbewu T C, de Beer D J. Additive manufacturing of NiTi shape memory alloy and its industrial applications[J]. Heliyon, 10, e23369(2024).

    [20] Jalali M, Mohammadi K, Movahhedy M R et al. SLM additive manufacturing of NiTi porous implants: a review of constitutive models, finite element simulations, manufacturing, heat treatment, mechanical, and biomedical studies[J]. Metals and Materials International, 29, 2458-2491(2023).

    [21] Liu B F, Li Z F, Du C Z et al. Molecular dynamics simulation of grain size effect on mechanism of twin martensite transformation of nanocrystalline NiTi shape memory alloys[J]. Computational Materials Science, 210, 111451(2022).

    [23] Khanna N, Zadafiya K, Patel T et al. Review on machining of additively manufactured nickel and titanium alloys[J]. Journal of Materials Research and Technology, 15, 3192-3221(2021).

    [24] Shang Y L. Hot and cold working of NiTi shape memory alloy[J]. Metal Forming Technology, 18, 3-5, 52(2000).

    [25] Yang Q, Lu Z L, Huang F X et al. Research on status and development trend of laser additive manufacturing[J]. Aeronautical Manufacturing Technology, 59, 26-31(2016).

    [26] Xiong Z W, Li Z H, Sun Z et al. Selective laser melting of NiTi alloy with superior tensile property and shape memory effect[J]. Journal of Materials Science & Technology, 35, 2238-2242(2019).

    [27] Sharma N, Jangra K K, Raj T. Fabrication of NiTi alloy: a review[J]. Proceedings of the Institution of Mechanical Engineers, 232, 250-269(2018).

    [28] Mohamed O A, Masood S H, Xu W. Nickel-titanium shape memory alloys made by selective laser melting: a review on process optimisation[J]. Advances in Manufacturing, 10, 24-58(2022).

    [29] Si G C, Xiang Z, Yang Q et al. Effects of cell configuration and micro defects on fatigue properties of NiTi alloy lattice structure having with rigidity prepared by SLM[J]. Laser & Optoelectronics Progress, 60, 2114009(2023).

    [30] Gustmann T, Gutmann F, Wenz F et al. Properties of a superelastic NiTi shape memory alloy using laser powder bed fusion and adaptive scanning strategies[J]. Progress in Additive Manufacturing, 5, 11-18(2020).

    [31] Saghaian S E, Amerinatanzi A, Moghaddam N S et al. Mechanical and shape memory properties of triply periodic minimal surface (TPMS) NiTi structures fabricated by selective laser melting[J]. Biology, Engineering and Medicine, 3, 1-7(2018).

    [32] Biffi C A, Bassani P, Fiocchi J et al. Microstructural and mechanical response of NiTi lattice 3D structure produced by selective laser melting[J]. Metals, 10, 814(2020).

    [33] Andani M T, Saedi S, Turabi A S et al. Mechanical and shape memory properties of porous Ni50.1Ti49.9 alloys manufactured by selective laser melting[J]. Journal of the Mechanical Behavior of Biomedical Materials, 68, 224-231(2017).

    [34] Yang L, Mertens R, Ferrucci M et al. Continuous graded gyroid cellular structures fabricated by selective laser melting: design, manufacturing and mechanical properties[J]. Materials & Design, 162, 394-404(2019).

    [35] Chen W, Gu D D, Yang J K et al. Compressive mechanical properties and shape memory effect of NiTi gradient lattice structures fabricated by laser powder bed fusion[J]. International Journal of Extreme Manufacturing, 4, 045002(2022).

    [36] Yang L. Research on mechanical properties of three-period minimal surface lattice structure by additive manufacturing[D](2020).

    [37] Yang X, Yang Q, Shi Y S et al. Effect of volume fraction and unit cell size on manufacturability and compressive behaviors of Ni-Ti triply periodic minimal surface lattices[J]. Additive Manufacturing, 54, 102737(2022).

    [38] Chen Z Q, Wang X Q, Tao Y K et al. Volume fraction effect on the mechanical and shape memory properties of NiTi gyroid lattice structure fabricated by laser powder bed fusion[J]. JOM, 76, 1715-1725(2024).

    [39] Sun L Q. Study on mechanical and shape memory properties of nickel-titanium alloy lattice structure formed by selective laser melting[D](2023).

    [40] Zhou H L, Zhao M, Ma Z B et al. Sheet and network based functionally graded lattice structures manufactured by selective laser melting: design, mechanical properties, and simulation[J]. International Journal of Mechanical Sciences, 175, 105480(2020).

    [41] Hao B, Zhao Y X, Zhu Z M. Study on the mechanical properties and energy absorption of Gyroid sandwich structures with different gradient rules[J]. Archive of Applied Mechanics, 94, 3535-3553(2024).

    [42] Wang Y Z, Ren X B, Chen Z H et al. Numerical and experimental studies on compressive behavior of Gyroid lattice cylindrical shells[J]. Materials & Design, 186, 108340(2020).

    [43] Wallat L, Selzer M, Wasmuth U et al. Energy absorption capability of graded and non-graded sheet-based gyroid structures fabricated by microcast processing[J]. Journal of Materials Research and Technology, 21, 1798-1810(2022).

    [44] Wei S S, Song B, Zhang L et al. Effect of structural configurations on mechanical and shape recovery properties of NiTi triply periodic minimal surface porous structures[J]. Chinese Journal of Mechanical Engineering, 37, 125(2024).

    Yi Li, Xiaoqiang Wang, Zhiqiao Chen, Shifeng Wen, Yusheng Shi. Forming Quality and Mechanical Properties of Different Types of NiTi Alloy Gyroid Lattice Structures Fabricated via Selective Laser Melting[J]. Chinese Journal of Lasers, 2025, 52(8): 0802302
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