High temperature microstructure stability of Waspaloy produced by Wire Arc Additive Manufacturing

被引:7
|
作者
Sazerat, Marjolaine [1 ]
Nait-Ali, Azdine [1 ]
Cervellon, Alice [2 ]
Lopez-Galilea, Inmaculada [3 ]
Burlot, Guillaume [1 ]
Gillet, Sophie [2 ]
Eyidi, Dominique [4 ]
Joulain, Anne [4 ]
Villechaise, Patrick [1 ]
Weber, Sebastian [3 ]
Fortunier, Roland [5 ]
Cormier, Jonathan [1 ]
机构
[1] Inst Pprime, Phys & Mech Mat Dept, UPR CNRS 3346, ISAE ENSMA, 1 Ave Clment Ader,BP 40109, F-86961 Chasseneuil, France
[2] Safran Aircraft Engines, Engn Dept, Proc Methods Team, 1 Rue Maryse Bastie, F-86100 Chatellerault, France
[3] Ruhr Univ Bochum, Inst Mat, Univ Str 150, D-44801 Bochum, Germany
[4] Univ Poitiers, Phys & Mech Mat Dept, UPR CNRS 3346, SP2MI,Inst Pprime, 11 Blvd Marie & Pierre Curie,TSA 41123, F-86073 Poitiers 9, France
[5] ENISE, LTDS, UMR CNRS 5513, 58 Rue Jean Parot, F-42100 St Etienne, France
关键词
Waspaloy; Wire arc additive manufacturing; Cold metal transfer; Microstructure; Thermal stability; OSTWALD RIPENING THEORIES; NICKEL-BASE SUPERALLOYS; INCONEL; 718; SUPERALLOY; PRIMARY MC CARBIDE; MECHANICAL-PROPERTIES; M23C6; CARBIDE; ETA-PHASE; COARSENING KINETICS; MU-PHASE; ALLOY;
D O I
10.1016/j.jallcom.2023.171626
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
The microstructural stability of Waspaloy produced by wire arc-based Cold Metal Transfer (CMT) was studied in the 700-1050 C-circle temperature range. Major process-induced chemical segregation resulted in heterogeneous gamma' precipitation between dendrite cores and interdendritic spacings up to 1050 C-circle. The coarsening behavior of gamma' followed the Lifshitz-Slyozov-Wagner theory between 760 and 900 C-circle. Diffusion activation energies revealed that kinetics in the dendrite cores are faster than within the interdendritic spacings, although precipitates in the latter appear more stable at higher temperatures. Fine globular (Cr,Mo)(23)C-6 and blocky (Ti,Mo)C carbides were observed to decorate grain boundaries. The formation of plate-like (Cr,Mo)(23)C-6 was found in both interdendritic spacings and grain boundaries. The laths were predominantly aligned along the <110>gamma directions and precipitated as a result of (Ti,Mo)C degeneration associated with the presence of lattice defects such as stacking faults and dislocations. Thermo-Calc (R) calculations were performed and correlated well with experimental Time-Temperature-Transformation diagrams.
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页数:16
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