Simulation of the Ni3Al intermetallic inclusion growth process during direct laser deposition using Ni-based superalloy powder

被引:5
作者
Alekseev, Andrey V. [1 ]
Turichin, Gleb A. [2 ]
Klimova-Korsmik, Olga G. [1 ,2 ]
Valdaytseva, Ekaterina A. [1 ]
Rashkovets, Mariia V. [3 ]
Nikulina, Aelita A. [3 ]
机构
[1] Peter Great St Petersburg Polytech Univ, St Petersburg, Russia
[2] St Petersburg State Marine Tech Univ, St Petersburg, Russia
[3] Novosibirsk State Tech Univ, Novosibirsk, Russia
关键词
Direct laser deposition; Reaction rate constant; New phase inclusion growth; gamma '-phase; Powder EP741; MICROSTRUCTURE;
D O I
10.1016/j.matpr.2020.01.562
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The mechanical properties of Ni-based superalloys are based on the hardening gamma'-phase which is mainly Ni3Al intermetallic compound with an ordered structure (Ll2). A mathematical model of gamma'-phase inclusions growth during direct laser deposition was developed to predict parameters of the hardening phase. The subject of the study is the assessment of the applicability of the model as well as its adjustment if it is necessary. A series of experiments on growing thin walls were carried out to confirm the operability of this model. The power of the laser source was changed (450, 600, 900 and 1200 W) at constant values of the processing speed (1.2 mm/s), powder feed rate (45 g/min) and the beam diameter in the processing region (1.2 mm) in these experiments. The average size of gamma'-phase inclusions was determined by means of a metallographic study and amounted to 10.74, 15.19, 25.62 and 24.49 nm, respectively. A comparison of the calculated and experimental values of the inclusions size showed that the proposed model gives satisfactory results in a limited range of cooling rates. Probably, it is connected with the fact that the growth of grains due to formation of a new phase stops due to a decrease of the concentration of components involved in the chemical reaction in the adjacent zone and the growth due to the absorption of neighboring grains does not have enough time to occur. (c) 2019 Elsevier Ltd. All rights reserved. Selection and Peer-review under responsibility of the scientific committee of the Materials Science: Composites, Alloys and Materials Chemistry.
引用
收藏
页码:756 / 760
页数:5
相关论文
共 22 条
[11]  
Nie J.F., 2009, COMP MATER SCI
[12]   Optimum microstructure combination for maximizing tensile strength in a polycrystalline superalloy with a two-phase structure [J].
Osada, Toshio ;
Gu, Yuefeng ;
Nagashima, Nobuo ;
Yuan, Yong ;
Yokokawa, Tadaharu ;
Harada, Hiroshi .
ACTA MATERIALIA, 2013, 61 (05) :1820-1829
[13]  
Papadaki C., 2018, MAT BASEL
[14]   Microstructure and property based statistically equivalent RVEs for intragranular γ - γ′ microstructures of Ni-based superalloys [J].
Pinz, M. ;
Weber, G. ;
Lenthe, W. C. ;
Uchic, M. D. ;
Pollock, T. M. ;
Ghosh, S. .
ACTA MATERIALIA, 2018, 157 :245-258
[15]   Nickel-based superalloys for advanced turbine engines: Chemistry, microstructure, and properties [J].
Pollock, TM ;
Tin, S .
JOURNAL OF PROPULSION AND POWER, 2006, 22 (02) :361-374
[16]   Selective Laser Melting of Ti2AlNb-based intermetallic alloy using elemental powders: Effect of process parameters and post-treatment on microstructure, composition, and properties [J].
Polozov, Igor ;
Sufiiarov, Vadim ;
Kantyukov, Artem ;
Popovich, Anatoly .
INTERMETALLICS, 2019, 112
[17]  
Rashkovets M., 2018, J MATER ENG PERFORM
[18]  
Smith T.M., 2018, MATER CHARACT
[19]  
Sufiiarov V.S., 2015, TSVETNYE MET
[20]   Prediction of solidification behaviour and microstructure of Ni based alloys obtained by casting and direct additive laser growth [J].
Travyanov, A. Y. ;
Petrovskiy, P. V. ;
Turichin, G. A. ;
Zemlyakov, E. V. ;
Kovac, M. ;
Vondracek, S. ;
Kondratiev, A. ;
Khvan, A. V. ;
Cheverikin, V. V. ;
Ivanov, D. O. ;
Bazhenova, I. A. ;
Dinsdale, A. T. .
MATERIALS SCIENCE AND TECHNOLOGY, 2016, 32 (08) :746-751