Oxidation during the production of FGH4095 superalloy powders by electrode induction-melt inert gas atomization

被引:4
作者
Feng, Shan [1 ]
Xia, Min [1 ]
Ge, Chang-Chun [1 ]
机构
[1] Univ Sci & Technol Beijing, Sch Mat Sci & Engn, Beijing 100083, Peoples R China
关键词
electrode induction-melt inert gas atomization (EIGA); powder metallurgy (P/M); FGH4095 superalloy powders; supersonic nozzle; oxidation; HOT; MICROSTRUCTURE; BEHAVIOR; HIP;
D O I
10.1088/1674-1056/27/4/044701
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Super-clean and super-spherical FGH4095 superalloy powder is produced by the ceramic-free electrode induction-melt inert gas atomization (EIGA) technique. A continuous and steady-state liquid metal flow is achieved at high-frequency (350 kHz) alternating current and high electric power (100 kW). The superalloy is immersed in a high-frequency induction coil, and the liquid metal falling into a supersonic nozzle is atomized by an Ar gas of high kinetic gas energy. Numerical calculations are performed to optimize the structure parameters for the nozzle tip. The undesired oxidation reaction of alloying elements starts at 1000 degrees C with the reaction originating from the active sites on the powder surfaces, leading to the formation of oxides, MexOy. The role of active sites and kinetic factors associated with the diffusion of oxygen present in the atomization gas streams are also examined. The observed results reveal that the oxidation process occurring at the surface of the produced powders gradually moves toward the core, and that there exists a clear interface between the product layer and the reactant. The present study lays a theoretical foundation for controlling the oxidation of nickel-based superalloy powders from the powder process step.
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页数:6
相关论文
共 18 条
[1]   Processes for production of high-purity metal powders [J].
Antony, LVM ;
Reddy, RG .
JOM-JOURNAL OF THE MINERALS METALS & MATERIALS SOCIETY, 2003, 55 (03) :14-18
[2]   Special Electrometallurgy of Promising Structural Materials Based on Titanium Aluminides: II. Traditional Special Electrometallurgy [J].
Belyanchikov, L. N. .
RUSSIAN METALLURGY, 2008, 7 (07) :588-596
[3]  
Bernhard M, 1998, METAL POWDER REPORT, V53, P30
[4]   Modeling the dynamics of magnetic semilevitation melting [J].
Bojarevics, V ;
Pericleous, K ;
Cross, M .
METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2000, 31 (01) :179-189
[5]   Numerical model of electrode induction melting for gas atomization [J].
Bojarevics, Valdis ;
Roy, Alan ;
Pericleous, Koulis .
COMPEL-THE INTERNATIONAL JOURNAL FOR COMPUTATION AND MATHEMATICS IN ELECTRICAL AND ELECTRONIC ENGINEERING, 2011, 30 (05) :1455-1466
[6]  
Chang D. R., 1984, SUP 1984 5 INT S, P245
[7]  
COBLE RL, 1978, POWDER METALL INT, V10, P128
[8]  
CROMPTON JS, 1986, J MATER SCI, V21, P3445, DOI 10.1007/BF02402986
[9]   Consecutive induction melting of nickel-based superalloy in electrode induction gas atomization [J].
Feng, Shan ;
Xia, Min ;
Ge, Chang-Chun .
CHINESE PHYSICS B, 2017, 26 (06)
[10]  
Franz H, 2008, P TIT