Page 106 - ESAM-1-1
P. 106
Engineering Science in
Additive Manufacturing Mechanical property of metal-based IPC
doi: 10.1002/adfm.202305978 Organization for Standardization; 2015.
30. Liu C, Pham MS. Spatially programmable architected 39. ISO 13314:2011. Mechanical Testing of Metals. Ductility
materials inspired by the metallurgical phase engineering. Testing. Compression Test for Porous and Cellular Metals.
Adv Mater. 2024;36(8):2305846. Geneva, Switzerland: International Organization for
Standardization; 2011.
doi: 10.1002/adma.202305846
40. Tancogne-Dejean T, Li X, Diamantopoulou M, Roth CC,
31. Gu D, Shi X, Poprawe R, Bourell DL, Setchi R, Zhu J.
Material-structure-performance integrated laser-metal Mohr D. High strain rate response of additively-
additive manufacturing. Science. 2021;372(6545):eabg1487. manufactured plate-lattices: Experiments and modeling.
J Dyn Behav Mater. 2019;5(3):361-375.
doi: 10.1126/science.abg1487
doi: 10.1007/s40870-019-00219-6
32. Noronha J, Rogers J, Leary M, et al. Ti-6Al-4V hollow-strut
lattice materials by laser powder bed fusion. Addit Manuf. 41. Seetoh IP, Liu X, Markandan K, Zhen L, Lai CQ. Strength
2023;72:103637. and energy absorption characteristics of Ti6Al4V
auxetic 3D anti-tetrachiral metamaterials. Mech Mater.
doi: 10.1016/j.addma.2023.103637 2021;156:103811.
33. Eren O, Yüksel N, Börklü HR, Sezer HK, Canyurt OE. Deep doi: 10.1016/j.mechmat.2021.103811
learning-enabled design for tailored mechanical properties 42. Rezapourian M, Jasiuk I, Saarna M, Hussainova I. Selective
of SLM-manufactured metallic lattice structures. Eng Appl laser melted Ti6Al4V split-P TPMS lattices for bone tissue
Artif Intell. 2024;130:107685.
engineering. Int J Mech Sci. 2023;251:108353.
doi: 10.1016/j.engappai.2023.107685
doi: 10.1016/j.ijmecsci.2023.108353
34. Lei M, Wang P, Duan S, Wen W, Liang J. An emerging 43. Eren Z, Gokcekaya O, Nakano T, Mecitoğlu Z. In-plane
shellwich lattice material: Unlocking design freedom and quasi-static compression deformation of Ti6Al4V double
enhancing mechanical properties. Compos Part A Appl Sci arrow-headed lattice structures fabricated by electron beam
Manuf. 2024;185:108316.
powder bed fusion process: Build orientation, scan speed
doi: 10.1016/j.compositesa.2024.108316 and failure mechanism. J Mater Res Technol. 2023;27:6192-
6210.
35. Deng J, Xu C, Wang X, Zhao R, Li T, Wang Z. Design
and optimization for honeycomb-like structures with doi: 10.1016/j.jmrt.2023.11.027
hybridizing hierarchy and gradient strategies. Mech Adv 44. Singh A, Al-Ketan O, Karathanasopoulos N. Highly strain-
Mater Struct. 2024;1-15.
rate sensitive and ductile composite materials combining
doi: 10.1080/15376494.2024.2429749 soft with stiff TPMS polymer-based interpenetrating phases.
Compos Struct. 2024;328:117646.
36. Su R, Chen J, Zhang X, et al. 3D-Printed micro/nano-
scaled mechanical metamaterials: Fundamentals, doi: 10.1016/j.compstruct.2023.117646
technologies, progress, applications, and challenges. Small. 45. Wang M, Zhang J, Wang W. Compression and deformation
2023;19(29):2206391.
behaviors of hierarchical circular-cell lattice structure with
doi: 10.1002/smll.202206391 enhanced mechanical properties and energy absorption
capacity. Aerospace. 2022;9(12):786.
37. Wang X, Li Z, Deng J, et al. Unprecedented strength
enhancement observed in interpenetrating phase doi: 10.3390/aerospace9120786
composites of aperiodic lattice metamaterials. Adv Funct 46. Wang M, Zhang J, Wang W, Gao L. Compression behaviors
Mater. 2024;35(1):2406890.
of the bio-inspired hierarchical lattice structure with
doi: 10.1002/adfm.202406890 improved mechanical properties and energy absorption
capacity. J Mater Res Technol. 2022;17:2755-2771.
38. ISO/ASTM 52900:2015. Additive Manufacturing-General
Principles-Terminology. Geneva, Switzerland: International doi: 10.1016/j.jmrt.2022.02.046
Volume 1 Issue 1 (2025) 11 doi: 10.36922/esam.8554

