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Solving Recent Challenges for Wrought Ni-Base Superalloys
M. C. Hardy
*
, M. Detrois
, E. T. McDevitt
, C. Argyrakis
, V. Saraf
, P. D. Jablonski
, J. A. Hawk
, R. C. Buckingham
, H. S. Kitaguchi
, S. Tin
*
Corresponding author for this work
Metallurgy and Materials
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Keyphrases
High Temperature
100%
Phase Stability
100%
Powder Metallurgy
100%
Ni-based Superalloy
100%
Disc Rotor
100%
New Composition
100%
Ingot Metallurgy
100%
Engineering Application
50%
Motivation
50%
Greenhouse Gas
50%
Alloy Composition
50%
Growth Phase
50%
Environmental Damage
50%
Aerospace Sector
50%
High-temperature Strength
50%
Strength Level
50%
Enhanced Resistance
50%
Design Space
50%
Power Plant
50%
Emission Reduction
50%
Oxidation Resistance
50%
Aerospace
50%
Alloy Microstructure
50%
Alloy 718
50%
Thermal Efficiency
50%
Strengthening Precipitates
50%
Life Cycle Stages
50%
High-temperature Properties
50%
Multiple Applications
50%
Current Strength
50%
Gamma Prime
50%
New Alloys
50%
Temperature Capability
50%
Aircraft Engine
50%
Environmental Targets
50%
Steam Temperature
50%
Long-term Creep
50%
Greenhouse Gasses
50%
Design for Manufacturing
50%
Creep Life
50%
National Energy Technology Laboratory
50%
Steady-state Crack Growth
50%
Powder Alloys
50%
Resistance-to-time
50%
Advanced Ultra-supercritical
50%
Advanced Ultra-supercritical Power Plant
50%
Candidate Alloys
50%
Engineering
Phase Stability
100%
Powder Metallurgy
100%
Rotor Disc
100%
Ingot Metallurgy
100%
Engineering Application
50%
Crack Growth
50%
Polycrystalline
50%
Creep
50%
Alloy Composition
50%
Temperature Strength
50%
Review Paper
50%
Growth Phase
50%
Design Space
50%
Electric Power Plant
50%
Thermodynamic Efficiency
50%
Temperature Property
50%
Enhanced Resistance
50%
Greenhouse Gas
50%
Gamma Prime
50%
Oxidation Resistance
50%
Aircraft Engine
50%
Energy Technology
50%
Environmental Damage
50%
Design for Manufacturability
50%
Steam Power Plant
50%
Material Science
Powder Metallurgy
100%
Superalloys
100%
Metallurgy
100%
Creep
50%
Crack Growth
50%
Greenhouse Gas
50%
Aircraft
50%
Oxidation Resistance
50%