| 1 | Introduction 
Fracture and fatigue of bulk materials, thin films and surfacesMacroscopic failure modesMicroscopic failure modes | 
| Part I: FRACTURE | 
| 2-3 | Mechanics of Fracture 
Energy release rate and crack driving forceLinear elastic fracture mechanicsElastic-plastic fracture mechanicsResistance curvesMeasurement matters and ASTM standards | 
| 4-5 | Micromechanisms of Fracture 
Ductile failureTransitions in fracture modesStress-based criteriaStrain-based criteriaEnergy-based criteria | 
| 6-7 | Microstructural Effects 
Ferrous alloysAluminum alloysMatrix failure versus grain boundary fractureDamage processes in ceramics and polymersThin films and surface coatings | 
| 8 | Interface Fracture Mechanics and Toughness Locus 
Elasticity aspectsPlasticity aspects | 
| 9 | Toughening Mechanisms 
Deflection tougheningProcess zone tougheningLigament tougheningInterfacial toughening | 
| 10 | Fracture Mechanisms in Polymers 
CrazingShear localizationRubber toughening | 
| 11 | Thin Films, Coatings and Layered Materials 
Thermal residual stressesFracture mechanismsCompositionally graded structural and thin-film layers | 
| 12 | Practical Considerations | 
| 13 | EXAM 1 | 
| Part II: FATIGUE | 
| 14 | Overview 
Historical backgroundDifferent approaches to fatigue | 
| 15 | Micromechanisms of Fatigue Crack Initiation in Ductile and Brittle Solids 
Cyclic hardening and evolution of dislocation patternsPersistent slip bands and surface rougheningSlip-based models for fatigue crack initiationCrack initiation in commercial materials, ceramics and polymers | 
| 16 | Total-Life Approaches to Fatigue 
Stress-life approach (S-N curves)Strain-life approachesConcept of damage accumulationSome practical considerations | 
| 17 | Fatigue Crack Growth in Ductile Metals and Alloys 
Fracture mechanics characterizationFatigue life calculationsDifferent microscopic and macroscopic stages of fatigue crack growthModels of formation of ductile striations and crack growth | 
| 18 | Fatigue Crack Growth in Brittle Solids 
Constitutive models for cyclic deformation in ceramicsRoom and high-fatigue crack growth in ceramics | 
| 19 | Fatigue Crack Growth in Polymeric Materials 
Cyclic deformation characteristicsMicromechanisms of fatigue crack growthMicroscopic "signature" due to crazing and shear banding | 
| 20 | Mechanisms of Fatigue Crack Growth Retardation 
Different types of crack closure (experiments, analyses and numerical simulations)Fatigue crack deflection (models and microstructural examples)Crack-tip versus crack-wake effectsCrack retardation following tensile overloads | 
| 21 | Corrosion Fatigue and Creep Fatigue 
Effect of environmentsFracture mechanics characterization of creep fatigueCase study of failure in power generation equipment, autovalves | 
| 22 | Fatigue at Interfaces 
Fatigue fracture parallel to a bimaterial interfaceFatigue fracture normal to a bimaterial interfaceFatigue of coatingsThermomechanical fatigue of coated and layered materials | 
| 23-24 | Case Studies 
1985 Japan Airlines Plane CrashFailure analysis of a total-hip and knee replacement componentFailure of laser-linked metal interconnects in microelectronicsCritical issues in the failure of mechanical heart valvesFatigue failure in turbogenerators | 
| 25 | EXAM 2 |