Page 65 - ESAM-1-1
P. 65
Engineering Science in
Additive Manufacturing Additive manufacturing of EH36 steels
63. Wang P, Lei Y, Ma J, et al. Influence of Mo micro-particles on doi: 10.1007/s11665-021-05919-6
crack formation, microstructure, and mechanical behaviour 73. Yao S, Wang J, Li M, et al. LPBF-Formed 2024Al alloys:
of laser powder bed fusion fabricated CuZrAl bulk metallic Process, microstructure, properties, and thermal cracking
glass composites. Virtual Phys Prototyp. 2023;18:e2224307. behavior. Metals. 2023;13:268.
doi: 10.1080/17452759.2023.2224307 doi: 10.3390/met13020268
64. Meng LX, Ben DD, Yang HJ, et al. Effects of embedded 74. Liu X, Hu R, Zou H, et al. Investigation of cracking
spherical pore on the tensile properties of a selective laser mechanism and yield strength associated with scanning
melted Ti6Al4V alloy. Mater Sci Eng A. 2021;815:141254. strategy for an additively manufactured nickel-based
doi: 10.1016/j.msea.2021.141254 superalloy. J Alloys Compd. 2023;938:168532.
65. Wolff SJ, Wang H, Gould B, et al. In situ X-ray imaging of doi: 10.1016/j.jallcom.2022.168532
pore formation mechanisms and dynamics in laser powder- 75. Uddin SZ, Murr LE, Terrazas CA, Morton P, Roberson DA,
blown directed energy deposition additive manufacturing. Wicker RB. Processing and characterization of crack-free
Int J Mach Tools Manuf. 2021;166:103743. aluminum 6061 using high-temperature heating in laser
powder bed fusion additive manufacturing. Addit Manuf.
doi: 10.1016/j.ijmachtools.2021.103743
2018;22:405-415.
66. Wang H, Pfefferkorn FE, Wolff SJ. Investigation of pore
formation mechanisms induced by spherical-powder doi: 10.1016/j.addma.2018.05.047
delivery in directed energy deposition using in situ high- 76. Svetlizky D, Das M, Zheng B, et al. Directed energy
speed X-ray imaging. Addit Manuf Lett. 2022;3:100050. deposition (DED) additive manufacturing: Physical
characteristics, defects, challenges and applications. Mater
doi: 10.1016/j.addlet.2022.100050
Today. 2021;49:271-295.
67. Nagalingam AP, Shamir M, Tureyen EB, et al. Recent progress doi: 10.1016/j.mattod.2021.03.020
in wire-arc and wire-laser directed energy deposition (DED)
of titanium and aluminium alloys. Int J Adv Manuf Technol. 77. Gurmesa FD, Lemu HG, Adugna YW, Harsibo MD. Residual
2025;136:2035-2073. stresses in wire arc additive manufacturing products and
their measurement techniques: A systematic review. Appl
doi: 10.1007/s00170-024-14967-w Mech. 2024;5:420-449.
68. Fang Q, Zhao L, Chen C, Zhu Y, Peng Y, Yin F. Effect of doi: 10.3390/applmech5030025
heat input on microstructural and mechanical properties
of high strength low alloy steel block parts fabricated by 78. Bai Y, Wang D, Li C. Research on A131 EH36 AISI 1045
wire arc additive manufacturing. Mater Today Commun. bimetallic material fabricated by laser directed energy
2023;34:105146. deposition. Chin J Lasers. 2022;49:1402304.
doi: 10.1016/j.mtcomm.2022.105146 doi: 10.3788/CJL202249.1402304
69. Liu L, Wang D, Yang Y, et al. Effect of scanning strategies 79. Shin HS, Park KT, Lee CH, Chang KH, Van Do VN. Low
on the microstructure and mechanical properties of inconel temperature impact toughness of structural steel welds
718 alloy fabricated by laser powder bed fusion. Adv Eng with different welding processes. KSCE J Civil Eng. 2015;19:
Mater. 2023;25:2200492. 1431-1437.
doi: 10.1007/s12205-015-0042-8
doi: 10.1002/adem.202200492
80. ASTM. Specification for Structural Steel for Ships, A131/
70. Eichler F, Balc N, Bremen S, Nink P. Investigation of laser A131M-19. Philadelphia, PA: ASTM; 2019.
powder bed fusion parameters with respect to their influence
on the thermal conductivity of 316L samples. J Manuf Mater doi: 10.1520/A0131_A0131M-19
Process. 2024;8:166. 81. Sun SH, Hagihara K, Nakano T. Effect of scanning strategy
doi: 10.3390/jmmp8040166 on texture formation in Ni-25 at.%Mo alloys fabricated by
selective laser melting. Mater Des. 2018;140:307-316.
71. Eo DR, Park SH, Cho JW. Controlling inclusion evolution
behavior by adjusting flow rate of shielding gas during doi: 10.1016/j.matdes.2017.11.060
direct energy deposition of AISI 316 L. Addit Manuf. 82. Ishimoto T, Morita N, Ozasa R, et al. Superimpositional
2020;33:101119. design of crystallographic textures and macroscopic
doi: 10.1016/j.addma.2020.101119 shapes via metal additive manufacturing-Game-change in
component design. Acta Mater. 2025;286:120709.
72. Brennan MC, Keist JS, Palmer TA. Defects in metal
additive manufacturing processes. J Materi Eng Perform. doi: 10.1016/j.actamat.2025.120709
2021;30:4808-4818. 83. Sun SH, Ishimoto T, Hagihara K, Tsutsumi Y, Hanawa T,
Volume 1 Issue 1 (2025) 16 doi: 10.36922/ESAM025060005

