[1] Maghamfar A, Shahbazi M, Hashemi R. Detection and measurement of warping in FDM additive manufacturing process using artificial intelligence and machine vision. Iranian Journal of Manufacturing Engineering. 2025 Feb 19;11(12):1-5.
doi: 10.22034/IJME.2024.479491.2011 [In Persian]
[2] Moayedi Manizani S, Zamani Ashani J, Salehi M. Experimental investigation of mechanical and microscopic properties of ABS-Ni composite made by Fused Deposition Modeling (FDM) method. Iranian Journal of Manufacturing Engineering. 2022 Nov 22;9(9):10-20. doi:10-20.
doi: 10.22034/IJME.2023.371411.1716 [In Persian]
[3] Sadooghi A, Ebrahimian MR, Hashemi SJ, Sayar R, Rahmani K, Bodaghi M. Impact of Infill Density and Glass Fiber Reinforcement on the Compressive and Bending Strength of Acrylonitrile Butadiene 3D‐Printed Corrugated Sandwich Panels. Advanced Engineering Materials. 2025 Jan;27(1):2401842.
doi: 10.1002/adem.202401842
[4] Bodaghi M, Sadoogi A,bakhsi M,Hashemi S,Rahmani K. Glass fiber reinforced acrylonitrile butadiene styrene composite gears by FDM 3D printing. Advanced Materials Interfaces: A. 2023 July23; 2300337.
doi: 10.1002/admi.202300337
[5] Park SI, Rosen DW, Choi SK, Duty CE. Effective mechanical properties of lattice material fabricated by material extrusion additive manufacturing. Additive Manufacturing. 2014 Oct 1;1:12-23.
doi: 10.1016/j.addma.2014.07.002
[6] Maskery I, Sturm L, Aremu AO, Panesar A, Williams CB, Tuck CJ, Wildman RD, Ashcroft IA, Hague RJ. Insights into the mechanical properties of several triply periodic minimal surface lattice structures made by polymer additive manufacturing. Polymer. 2018 Sep 12;152:62-71.
doi: 10.1016/j.polymer.2017.11.049
[7] Hanks B, Berthel J, Frecker M, Simpson TW. Mechanical properties of additively manufactured metal lattice structures: Data review and design interface. Additive Manufacturing. 2020 Oct 1;35:101301.
doi: 10.1016/j.addma.2020.101301
[8] Teng F, Sun Y, Guo S, Gao B, Yu G. Topological and mechanical properties of different lattice structures based on additive manufacturing. Micromachines. 2022 Jun 27;13(7):1017.
doi: 10.3390/mi13071017
[9] Kandasamy MK, Ganesan A, Srinivasan L. Influence of relative density and strain rate on mechanical behavior and energy absorption of additively manufactured lattice structure. Transactions of the Indian Institute of Metals. 2023 Feb;76(2):505-10.
doi: 10.1007/s12666-022-02780-6
[10] Kankanamge UM, Mohamed OA, Xu W. Superelastic behavior of additively manufactured nylon-12 lattice structures. Journal of Materials Engineering and Performance. 2021 Dec;30(12):9352-8.
doi: 10.1007/s11665-021-06086-4
[11] Ren Y, Nie Y, Ran W, Liu Z, Wang L, Lou C, Chen W. Mechanical properties and energy absorption of soft–hard dual phase lattice structures manufactured via selective laser melting. Metals and Materials International. 2024 Feb;30(2):303-14.
doi: 10.1007/s12540-023-01502-x
[12] Liu T, Zhu JH, Zhang W, Belhabib S, Guessasma S. Microstructure and compressive behaviour of PLA/PHA-wood lattice structures processed using additive manufacturing. Polymer Testing. 2024 Dec 1;141:108612.
doi: 10.1016/j.polymertesting.2024.108612
[13] Cao A, Wan D, Gao C, Elverum CW. A novel method of fabricating designable polylactic acid (PLA)/thermoplastic polyurethane (TPU) composite filaments and structures by material extrusion additive manufacturing. Journal of Manufacturing Processes. 2024 May 30;118:432-47.
doi: 10.1016/j.jmapro.2024.03.015
[14] Myers D, Abdel-Wahab A, Hafeez F, Kovacev N, Essa K. Optimisation of the additive manufacturing parameters of polylactic acid (PLA) cellular structures for biomedical applications. journal of the mechanical behavior of biomedical materials. 2022 Dec 1;136:105447.
doi: 10.1016/j.jmbbm.2022.105447
[15] Black S, Tzagiollari A, Mondal S, Dunne N, MacManus DB. Mechanical behaviour of gel-filled additively-manufactured lattice structures under quasi-static compressive loading. Materials Today Communications. 2023 Jun 1;35:106164.
doi: 10.1016/j.mtcomm.2023.106164
[16] Tanbar F, Nugroho AD, Nugraha AD, Darmanto S, Widagdo D, Santos GN, Muflikhun MA. Hybrid lattice structure with micro graphite filler manufactured via additive manufacturing and growth foam polyurethane. Composites Part C: Open Access. 2024 Oct 1;15:100516.
doi: 10.1016/j.jcomc.2024.100516
[17] Oladipo B, Doner S, Lyngdoh GA, Villada JT, Wanchoo P, Matos H, Shukla A, Das S. Shock response of sandwich panels with additively manufactured polymer gyroid lattice cores. Materials Today Communications. 2024 Dec 1;41:110664.
doi: 10.1016/j.mtcomm.2024.110664
[18] Hulme J, Sakhaei AH, Shafiee M. Mechanical analysis and additive manufacturing of 3D-printed lattice materials for bone scaffolds. Materials Today: Proceedings. 2024 Jan 1;101:30-7.
doi: 10.1016/j.matpr.2023.02.278
[19] Upadhyay RK, Mishra AK, Kumar A. Mechanical degradation of 3D printed PLA in simulated marine environment. Surfaces and Interfaces. 2020 Dec 1;21:100778.
doi: 10.1016/j.surfin.2020.100778
[20] Hedayati R, Alavi M, Sadighi M. Effect of degradation of polylactic acid (PLA) on dynamic mechanical response of 3D printed lattice structures. Materials. 2024 Jul 25;17(15):3674.
doi: 10.3390/ma17153674
[21] Zohoor S, Abolfathi N, Solati-Hashjin M. Accelerated degradation mechanism and mechanical behavior of 3D-printed PLA scaffolds for bone regeneration. Iranian Polymer Journal. 2023 Oct;32(10):1209-27.
doi: 10.1007/s13726-023-01191-8 [In Persian]
[22] Yonezawa A, Yamada A. Deterioration of the mechanical properties of FFF 3d-printed PLA structures. Inventions. 2020 Dec 22;6(1):1.
doi: 10.3390/inventions6010001 [In Persian]