Microsegregation behavior of Inconel 718 superalloy prepared by electron beam smelting layered solidification technology

被引:47
作者
Zhao, Longhai [1 ,2 ]
Tan, Yi [1 ,2 ]
Shi, Shuang [1 ,2 ]
You, Xiaogang [1 ,2 ]
Li, Pengting [1 ,2 ]
Cui, Chuanyong [3 ]
机构
[1] Dalian Univ Technol, Sch Mat Sci & Engn, Key Lab Mat Modificat Laser Ion & Electron Beams, Minist Educ, Dalian 116024, Peoples R China
[2] Key Lab Energy Beam Met & Adv Mat Preparat Liaoni, Dalian 116023, Peoples R China
[3] Inst Met Sci & Technol, Shenyang 110016, Peoples R China
基金
中国国家自然科学基金;
关键词
Layered solidification technology; Electron beam smelting; Cooling rate; Microsegregation; Melt superheating treatment; MICROSTRUCTURE EVOLUTION; SOLUTE REDISTRIBUTION; CRYSTAL-GROWTH; MELT TREATMENT; COOLING RATE; CAST; TEMPERATURE; NIOBIUM;
D O I
10.1016/j.jallcom.2020.155019
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Based on the principle of additive manufacturing in a layer-by-layer manner, a new electron beam smelting layered solidification technology (EBS-LST) was curried out to fabricated Inconel 718 superalloy. The microsegregation coefficient and the redistribution were calculated. A well-recognized model associated with secondary dendrite arm spacing was used to investigate the cooling rate during the solidification. The distribution of the surface temperature of the molten pool during EBS-LST was calculated based on the Gaussian distribution. The results show that there is a dendritic-cellular interface with a width of 400 mu m between the layers, and the secondary dendrite arm spacing approximates 23 mm. The value of microsegregation coefficient of Nb, Mo and Ti is approximately 1.97, 1.52 and 1.13, respectively. Its solute distribution is more uniform than conventional processes, which attributed to the high cooling rate of the solidification process. (c) 2020 Elsevier B.V. All rights reserved.
引用
收藏
页数:9
相关论文
共 42 条
[1]   Novel TiB2-reinforced 316L stainless steel nanocomposites with excellent room- and high-temperature yield strength developed by additive manufacturing [J].
AlMangour, Bandar ;
Kim, Young-Kyun ;
Grzesiak, Dariusz ;
Lee, Kee-Ahn .
COMPOSITES PART B-ENGINEERING, 2019, 156 :51-63
[2]   The effect of cooling rate on the solidification of INCONEL 718 [J].
Antonsson, T ;
Fredriksson, H .
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2005, 36 (01) :85-96
[3]   Cold Spray Deposition of Freestanding Inconel Samples and Comparative Analysis with Selective Laser Melting [J].
Bagherifard, Sara ;
Roscioli, Gianluca ;
Zuccoli, Maria Vittoria ;
Hadi, Mehdi ;
D'Elia, Gaetano ;
Demir, Ali Gokhan ;
Previtali, Barbara ;
Kondas, Jan ;
Guagliano, Mario .
JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2017, 26 (07) :1517-1526
[4]  
Barbosa CR, 2019, MATER RES-IBERO-AM J, V22, DOI [10.1590/1980-5373-mr-2018-0365, 10.1590/1980-5373-MR-2018-0365]
[5]  
BOWER TF, 1966, T METALL SOC AIME, V236, P624
[6]   SOLUTE REDISTRIBUTION DURING SOLIDIFICATION WITH RAPID SOLID-STATE DIFFUSION [J].
CLYNE, TW ;
KURZ, W .
METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1981, 12 (06) :965-971
[7]   Effect of rhenium on solidification of Inconel 718 alloy [J].
El-Bagoury, N ;
Yamamoto, K ;
Ogi, K .
MATERIALS SCIENCE AND TECHNOLOGY, 2005, 21 (02) :204-210
[8]   SOLIDIFICATION PROCESSING [J].
FLEMINGS, MC .
METALLURGICAL TRANSACTIONS, 1974, 5 (10) :2121-2134
[9]   Benchmark Study of Thermal Behavior, Surface Topography, and Dendritic Microstructure in Selective Laser Melting of Inconel 625 [J].
Gan, Zhengtao ;
Lian, Yanping ;
Lin, Stephen E. ;
Jones, Kevontrez K. ;
Liu, Wing Kam ;
Wagner, Gregory J. .
INTEGRATING MATERIALS AND MANUFACTURING INNOVATION, 2019, 8 (02) :178-193
[10]   Uncertainty analysis of microsegregation during laser powder bed fusion [J].
Ghosh, Supriyo ;
Mahmoudi, Mohamad ;
Johnson, Luke ;
Elwany, Alaa ;
Arroyave, Raymundo ;
Allaire, Douglas .
MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2019, 27 (03)