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Fracture mechanics approach to TRISO fuel particle failure analysis
Antonio M. Recuero
,
Gyanender Singh
,
Wen Jiang
Nuclear Fuels & Materials
Research output
:
Contribution to journal
›
Article
›
peer-review
6
Scopus citations
Overview
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Dive into the research topics of 'Fracture mechanics approach to TRISO fuel particle failure analysis'. Together they form a unique fingerprint.
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Keyphrases
Fracture Mechanics
100%
Failure Analysis
100%
Fuel Particles
100%
Particle Failure
100%
Weibull Stress
100%
Stress Intensity Factor
66%
Tristructural Isotropic Particle
66%
Interaction Integral
66%
Finite Element
33%
Mesh Dependency
33%
Operating Conditions
33%
Sensitivity Study
33%
Porosity
33%
Mechanical Properties
33%
Silicon Carbide
33%
Irradiation
33%
Failure Mode
33%
Functionally Graded Materials
33%
Carbide Layer
33%
Stress Failure
33%
Pyrolytic Carbon
33%
Crack Tip
33%
Carbon Layer
33%
Finite Element Mesh
33%
Eigenstrain
33%
Material Stiffness
33%
Numerical Sensitivity
33%
Stress-driven
33%
Transition Zone
33%
Material Creep
33%
Fracture Probability
33%
Failure Probability Estimation
33%
Isotropic Layer
33%
Stress Concentrate
33%
Stress-based Failure Criteria
33%
Fracture Prediction
33%
Fuel Life Cycle
33%
Mesh Convergence
33%
Probability Assessment
33%
Engineering
Porosity
100%
Failure Analysis
100%
Method in Fracture Mechanics
100%
Stress-Intensity Factor
50%
Finite Element Analysis
25%
Sensitivity Study
25%
Failure Criterion
25%
Failure Mode
25%
Functionally Graded Material
25%
Creep
25%
Mesh Size
25%
Crack Tip
25%
Carbon Layer
25%
Finite Element Mesh
25%
Eigenstrain
25%
Material Stiffness
25%
Failure Probability
25%
Failure Approach
25%
Integral Approach
25%
Isotropic Layer
25%
Fuel Life Cycle
25%