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Linear Elasticity: Basics and Material Functions
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Related lectures (42)
Linear Elasticity: 3D
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Covers linearity between stress and strain in 3D and isotropic linear elasticity equations.
Stress and Deformation: Understanding Material Behavior
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Explores stress, strain, elasticity, plasticity, and material behavior, emphasizing the importance of dislocations and microstructure.
Solid Mechanics Principles: Eigenstrains
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Covers eigenstrains, deformations in a body not caused by stress, and their significance in mechanics.
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.
Eshelby 3: Modulus Mismatch
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Covers modulus mismatch in elastic inhomogeneities, Eshelby's solution, and the implications of using Green's function.
Axial Loading: Stress and Strain in Deformable Bodies
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Covers axial loading, stress, strain, and their implications in deformable bodies.
Generalized Hooke Law: 3D
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Explores the Generalized Hooke Law in 3D, stress-strain relationships, and material properties.
Elasticity and Beam Bending
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Explores linear elasticity, stress-strain relationships, and beam bending kinematics with a focus on stress tensors and internal forces.
Eshelby Inclusion Mechanics
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Explores the Eshelby method for ellipsoidal inclusions and the mechanics of particles undergoing shape changes due to eigenstrains.
Elasticity: Constitutive Modelling in Geomechanics
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Explores constitutive modelling in geomechanics, focusing on stress-strain behavior and the application of elastic models in analytical and numerical methods.
Hyperelasticity: Models for Hyperelastic Materials
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Explores hyperelasticity, constitutive models, incompressibility, and stiffness response in isotropic materials.
Solid Mechanics II + Material Models
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Explores material models for elastic objects, including inverse shape optimization and hyperelasticity.
Weibull Model: Random Data
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Structural Mechanics: Basics and Applications
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Covers the basics of Structural Mechanics, including materials behavior, classes of engineering materials, and the Mechanics Tree.
Laminate Analysis: Kirchhoff-Love Plate Theory
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Discusses Kirchhoff-Love Classical Plate theory for laminates and the relationship between displacements and strains.
Quantum Chemistry Fundamentals
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Forces and Energy Conservation
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Explores forces, energy conservation, and potential energy calculations in various scenarios.
Introduction to Continuum Mechanics
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Covers the basics of continuum mechanics, including vector and tensor analysis, kinematics, and fluid mechanics.
Mechanical Properties & Strengthening Mechanisms
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Explores mechanical properties, plastic deformation, dislocations, strengthening mechanisms, and high temperature plasticity in alloys.
Introduction to 3D Constraints and Relative Deformations
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Explores constraints, stresses, and deformations in 3D objects, emphasizing the importance of looking inside to determine stresses.
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