Effects of microstructure variability on intrinsic fatigue resistance of nickel-base superalloys - a computational micromechanics approach
DOI10.1007/s10704-005-3149-yzbMath1197.74171OpenAlexW1997085580MaRDI QIDQ712334
Rajesh Kumar, David L. McDowell, Ai-Jun Wang
Publication date: 28 October 2010
Published in: International Journal of Fracture (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1007/s10704-005-3149-y
microstructurefatiguematerials designmicroplasticitycomputational micromechanicsnickel-base superalloys
Finite element methods applied to problems in solid mechanics (74S05) Fracture and damage (74R99) Crystals in solids (74N05)
Related Items (3)
Uses Software
Cites Work
- Constitutive equations for cyclic plasticity and cyclic viscoplasticity
- Non-associated plastic flow in single crystals
- A nonlinear kinematic hardening theory for cyclic thermoplasticity and thermoviscoplasticity
- Fracture of random matrix-inclusion composites: Scale effects and statistics
- A microstructural model for the monotonic and the cyclic mechanical behavior of single crystals of superalloys at high temperatures
- Polycrystal orientation distribution effects on microslip in high cycle fatigue
- Determination of the size of the representative volume element for random composites: Statistical and numerical approach.
- Gradient-dependent deformation of two-phase single crystals
- Plasticity in fretting contact
- Prediction of the mechanical behavior of nonlinear heterogeneous systems by multi-level finite element modeling
- Modeling and experiments in plasticity
- High– and low–cycle fatigue crack initiation using polycrystal plasticity
- A Dislocation Model for Fatigue Crack Initiation
- Finite element implementation of a generalised non-local rate-dependent crystallographic formulation for finite strains
This page was built for publication: Effects of microstructure variability on intrinsic fatigue resistance of nickel-base superalloys - a computational micromechanics approach