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Lecture
Deformation and Rupture of Materials
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Related lectures (41)
Plastic Deformation: Introduction to the Dislocation Model
Covers plastic deformation, dislocation model, stages, shear stress, distortion, dislocation loops, strain hardening, and crystal growth.
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Mechanical Properties of Materials: Elastic Limit and Dislocations
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Geometrically Necessary Dislocations in Materials
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Explains geometrically necessary dislocations in materials and their role in reducing work hardening.
Mechanical Behavior of Materials: Deformation & Fatigue
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Explores deformation mechanisms, cyclic loading, and fatigue phenomena in materials.
Plastic Deformation and Energy Accumulation
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Explores energy accumulation in materials during plastic deformation and the effects of dislocation density and heating.
Deformation and Dislocations
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Explores the sliding of dislocations in single crystals, plastic deformation, and stress fields induced by dislocations.
Mechanical Properties & Strengthening Mechanisms
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Explores mechanical properties, plastic deformation, dislocations, strengthening mechanisms, and high temperature plasticity in alloys.
Lamination: Deformation, Ductility, and Dislocations
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Explores lamination, ductility, plastic deformation, and dislocations in materials, emphasizing the effects of strain rate and temperature.
Dislocations and Deformation
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Explores dislocations in crystals, deformation mechanisms, and the effects of obstacles on dislocation movement.
Shock Waves and Brittle Material Response
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Covers shock waves, brittle material response, phase transformation, and Hugoniot relationships in materials under stress.
Generalized Hooke Law: Deformation and Stiffness Matrices
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Explores the Generalized Hooke Law, stiffness matrices, and deformation effects in materials.
Cyclic Deformation and Recrystallization
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Explores cyclic deformation, dislocation structures, fatigue resistance, and recrystallization kinetics.
Mechanical Behavior of Materials
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Explores large deformations, dislocations, grain boundaries, and material behavior under different conditions.
Plastic Deformation and Work Hardening
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Explores plastic deformation, work hardening, and strategies to reduce hardening in materials.
Empirical Constitutive Relations
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Explores empirical constitutive relations, dislocation movement, and thermally activated motion in material science.
Introduction to Structural Mechanics
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Covers the basics of structural mechanics, including static forces, stress, strain, and structural elements like bars, cables, trusses, and beams.
Deformation Part 2: Plasticity and Torsion Tests
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Delves into plasticity, torsion tests, hardness techniques, and material stability criteria.
Thermally Activated Dislocation Motion
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Explores thermally activated dislocation motion and physically based constitutive models in materials at high strain rates.
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