Microstructure transformations and cracking in the matrix of γ–γ′ superalloy Inconel 713C melted with electron beam

The paper presents the results of metallographic examination of microstructural changes in the matrix of γ–γ′ superalloy Inconel 713C, subject to electron beam fusion. The obtained fusions simulate the phenomena that occur in the weld and the heat-affected zone during welding. Changes of γ′ phase mo...

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Published inMaterials science & engineering. A, Structural materials : properties, microstructure and processing Vol. 479; no. 1; pp. 269 - 276
Main Authors Lachowicz, M., Dudziński, W., Haimann, K., Podrez-Radziszewska, M.
Format Journal Article
LanguageEnglish
Published Amsterdam Elsevier B.V 25.04.2008
Elsevier
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Abstract The paper presents the results of metallographic examination of microstructural changes in the matrix of γ–γ′ superalloy Inconel 713C, subject to electron beam fusion. The obtained fusions simulate the phenomena that occur in the weld and the heat-affected zone during welding. Changes of γ′ phase morphology in the fusion zone, in HAZ and in the areas adjacent to grain boundaries that can affect crack initiation were determined. Changed morphology in the recrystallized γ′ zone can result from its reduced melting point due to impoverishment in niobium and titanium as well as to changed aluminium concentration or accelerated diffusion of alloying elements. The cracks found in HAZ propagate mainly through grain boundaries in the microporosity areas or, possibly, the areas left by molten carbide phases. However, no secondary phases with lower melting point or eutectics like (γ–γ′) (M x C y + Zr + Si) were found in the neighbourhood of cracks. The cracks present in the fusion zone were initiated at high temperature and propagate in the areas of interdendritic voids. The cracks were caused by the high solidification rate in the fusion zone and low thermal conductivity of the alloy.
AbstractList The paper presents the results of metallographic examination of microstructural changes in the matrix of gamma-gamma'superalloy Inconel 713C, subject to electron beam fusion. The obtained fusions simulate the phenomena that occur in the weld and the heat-affected zone during welding. Changes of gamma' phase morphology in the fusion zone, in HAZ and in the areas adjacent to grain boundaries that can affect crack initiation were determined. Changed morphology in the recrystallized gamma' zone can result from its reduced melting point due to impoverishment in niobium and titanium as well as to changed aluminium concentration or accelerated diffusion of alloying elements. The cracks found in HAZ propagate mainly through grain boundaries in the microporosity areas or, possibly, the areas left by molten carbide phases. However, no secondary phases with lower melting point or eutectics like (gamma-gamma') (MxCy+Zr+Si) were found in the neighbourhood of cracks. The cracks present in the fusion zone were initiated at high temperature and propagate in the areas of interdendritic voids. The cracks were caused by the high solidification rate in the fusion zone and low thermal conductivity of the alloy.
The paper presents the results of metallographic examination of microstructural changes in the matrix of γ–γ′ superalloy Inconel 713C, subject to electron beam fusion. The obtained fusions simulate the phenomena that occur in the weld and the heat-affected zone during welding. Changes of γ′ phase morphology in the fusion zone, in HAZ and in the areas adjacent to grain boundaries that can affect crack initiation were determined. Changed morphology in the recrystallized γ′ zone can result from its reduced melting point due to impoverishment in niobium and titanium as well as to changed aluminium concentration or accelerated diffusion of alloying elements. The cracks found in HAZ propagate mainly through grain boundaries in the microporosity areas or, possibly, the areas left by molten carbide phases. However, no secondary phases with lower melting point or eutectics like (γ–γ′) (M x C y + Zr + Si) were found in the neighbourhood of cracks. The cracks present in the fusion zone were initiated at high temperature and propagate in the areas of interdendritic voids. The cracks were caused by the high solidification rate in the fusion zone and low thermal conductivity of the alloy.
Author Haimann, K.
Dudziński, W.
Lachowicz, M.
Podrez-Radziszewska, M.
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Issue 1
Keywords Hot crack
Inconel 713C
Electron beam
Superalloy
Ni 3Al
Welding
Cracking
Metallography
Transition metal
Electron beam melting
Grain boundary
Crack propagation
Transition metal alloy
Gamma phase
Recrystallization
Ni3Al
Microstructure
Melting point
Crack initiation
Concentration distribution
Language English
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Snippet The paper presents the results of metallographic examination of microstructural changes in the matrix of γ–γ′ superalloy Inconel 713C, subject to electron beam...
The paper presents the results of metallographic examination of microstructural changes in the matrix of gamma-gamma'superalloy Inconel 713C, subject to...
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SubjectTerms Applied sciences
Cold working, work hardening; annealing, quenching, tempering, recovery, and recrystallization; textures
Cross-disciplinary physics: materials science; rheology
Electron beam
Exact sciences and technology
Fractures
Hot crack
Inconel 713C
Materials science
Mechanical properties and methods of testing. Rheology. Fracture mechanics. Tribology
Metals. Metallurgy
Ni 3Al
Physics
Superalloy
Treatment of materials and its effects on microstructure and properties
Welding
Title Microstructure transformations and cracking in the matrix of γ–γ′ superalloy Inconel 713C melted with electron beam
URI https://dx.doi.org/10.1016/j.msea.2007.06.064
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