Page 74 - MSAM-2-1
P. 74
Materials Science in Additive Manufacturing Energy absorption of Moore’s thin-walled structures
of a single cell in a deployable energy absorber. Thin Walled multi-cell and foam-filled thin-walled structures in energy
Struct, 94: 107–119. absorption. Thin Walled Struct, 39: 287–306.
19. Ali M, Ohioma E, Kraft F, et al., 2015, Theoretical, numerical, 34. Dadrasi A, Beynaghi M, Fooladpanjeh S, 2019,
and experimental study of dynamic axial crushing of thin Crashworthiness of thin-walled square steel columns
walled pentagon and cross-shape tubes. Thin Walled Struct, reinforced based on fractal geometries. Trans Indian Inst
94: 253–272. Met, 72: 215–225.
20. Liu YJ, 2008, Crashworthiness design of multi-corner thin- 35. Fan ZG, Lu LX, Wang J, 2015, Effect of fatigue damage on
walled columns. Thin Walled Struct, 46: 1329–1337. energy absorption properties of honeycomb paperboard.
Shock Vib, 2015: 1–7.
21. Wang J, Liu Y, Wang K, et al., 2022, Progressive collapse
behaviors and mechanisms of 3D printed thin-walled 36. Van Vuong N, Quan MH, 2019, Fatigue analysis of jacket
composite structures under multi-conditional loading. Thin support structure for offshore wind turbines. J Sci Technol
Walled Struct, 171: 108810. Civil Eng, 13: 46–59.
22. Vinayagar K, Kumar AS, 2017, Crashworthiness analysis 37. Zou Q, Zhou X, Wang R, et al., 2022, Load-carrying and
of double section bi-tubular thin-walled structures. Thin energy-absorbing performance of honeycombs with
Walled Struct, 112: 184–193. different cross sections under cyclic loading. Mat Today
Commun, 33: 104582.
23. Zhang Y, Wang J, Wang C, et al., 2018, Crashworthiness
of bionic fractal hierarchical structures. Mater Des, 38. Wu C, Do TT, Tran PJ, 2021, Mechanical properties of
158: 147–159. polyjet 3d-printed composites inspired by space-filling
peano curves. Polymers (Basel), 13: 3516.
24. Wang J, Zhang Y, He N, et al., 2018, Crashworthiness behavior
of Koch fractal structures. Mater Des, 144: 229–244. https://doi.org/10.3390/polym13203516
25. Gao Q, Liao W, 2021, Energy absorption of thin walled 39. Wickramasinghe S, Do T, Tran P, 2022, Flexural behavior
tube filled with gradient auxetic structures-theory and of 3D printed bio-inspired interlocking suture structures.
simulation. Int J Mech Sci, 201: 106475. MSAM, 1: 9.
26. Huang J, Zheng Z, Deng X, et al., 2022, Crashworthiness 40. Nguyen-Van V, Panda B, Zhang K, et al., 2021, Digital design
analysis of gradient fractal thin-walled structure. Thin computing and modelling for 3-D concrete printing. Autom
Walled Struct, 181: 110102. Constr, 123: 103529.
27. Hao P, Du J, 2018, Energy absorption characteristics of bio- 41. Liu J, Nguyen-Van V, Panda B, et al., 2022, Additive
inspired honeycomb column thin-walled structure under manufacturing of sustainable construction materials and
impact loading. J Mech Behav Biomed Mater, 79: 301–308. form-finding structures: A review on recent progresses. 3D
Print Addit Manuf, 2022. 9: 12–34.
28. Nguyen-Van V, Wu C, Vogel F, et al., 2021, Mechanical
performance of fractal-like cementitious lightweight 42. Nguyen-Van V, Li S, Liu J, et al., 2022, Modelling of 3D
cellular structures: Numerical investigations. Compos Struct, concrete printing process: A perspective on material and
269: 114050. structural simulations. Addit Manuf, 2022: 103333.
29. Li Z, Shen L, Wei K, et al., 2021, Compressive behaviors of 43. Peng C, Tran P, Mouritz A, 2022, Compression and buckling
fractal-like honeycombs with different array configurations analysis of 3D printed carbon fibre-reinforced polymer
under low velocity impact loading. Materials (Basel), cellular composite structures. Compos Struct, 300: 116167.
163: 107759. 44. Zhang Y, Wei Y, Bai J, et al., 2022, A novel seawater and
sea sand concrete-filled FRP-carbon steel composite tube
https://doi.org/10.3390/ma14175040
column: Cyclic axial compression behaviour and modelling.
30. San Ha N, Pham TM, Chen W, et al., 2021, Crashworthiness Compos Struct, 252: 113531.
analysis of bio-inspired fractal tree-like multi-cell circular
tubes under axial crushing. Thin Walled Struct, 169: 108315. 45. Alhyari O, Newaz G, 2021, Energy absorption in carbon
fiber composites with holes under quasi-static loading. C J
https://doi.org/10.1016/j.tws.2021.108315 Carbon Res, 7: 16.
31. He Q, Wang Y, Gu H, et al., 2022, The dynamic behavior 46. Zhang Y, Lu Z, Yang Z, et al., Resilient carbon fiber network
of fractal-like tubes with Sierpinski hierarchy under axial materials under cyclic compression. Carbon, 155: 344–352.
loading. Eng Comput, 38: 1285–1298.
47. Peng C, Tran P, Nguyen-Xuan H, et al., 2020, Mechanical
32. Li K, Feng Y, Gao Y, et al., 2020, Crashworthiness performance and fatigue life prediction of lattice structures:
optimization design of aluminum alloy thin-walled triangle Parametric computational approach. Compos Struct, 235: 111821.
column based on bioinspired strategy. Materials, 13: 666.
48. Bunsell AR, 2018, Handbook of Properties of Textile and
33. Chen W, Wierzbicki T, 2001, Relative merits of single-cell, Technical Fibres. United Kingdom: Woodhead Publishing.
Volume 2 Issue 1 (2023) 15 https://doi.org/10.36922/msam.53

