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Lecture
Solid Mechanics: Modeling and Simulation
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Related lectures (46)
3D Linear Elasticity & Beams
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Covers 3D linear elasticity, stress, strain, beams' behavior under loads, and torsion.
Laminate Analysis: Introduction
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Introduces the theory behind laminates and their applications in different industries.
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.
Continuum Mechanics: Theory and Applications
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Explores continuum mechanics, covering laws of thermodynamics, stress analysis, energy conservation, constitutive laws, and material response.
Structural Mechanics Fundamentals
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Covers the fundamentals of structural mechanics, including materials, mechanics vocabulary, the Eiffel Tower, and the collapse of the Quebec Bridge.
Fracture Mechanics: Introduction and Crack Growth Analysis
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Covers the basics of fracture mechanics, including crack shape and growth analysis.
Structural Mechanics: Beam Bending and Boundary Conditions
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Explores the moment-curvature relation for beams, emphasizing stress distribution and typical boundary conditions.
Solid Mechanics II + Material Models
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Explores material models for elastic objects, including inverse shape optimization and hyperelasticity.
Structural Mechanics: Truss/Beam Structures & Stress Analysis
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Covers mechanical equilibrium, stress analysis, materials, CAD, and design principles.
Composite Mechanics: Properties and Failure Criteria
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Covers laminate elasticity, fiber-matrix interactions, and failure criteria in composite materials.
Mechanics of Solids: Concepts and Applications
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Explores mechanics of solids, covering stress concepts, accreditation, evaluation, and moment calculations.
Fracture Mechanics: Crack Growth and Weakest Link
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Explores fracture mechanics, crack growth, and the weakest link theory, emphasizing the statistical distribution of crack sizes and the significance of the largest crack in material failure.
Composite Beams: Stresses and Neutral Axis
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Explains stresses and neutral axis in composite beams, demonstrating calculations and examples.
Eshelby Inclusion: Mechanics and Eigenstrains
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Explores the Eshelby method for mechanics of inclusions and eigenstrains, focusing on stress and strain fields inside inclusions.
Continuum Mechanics: Conservation Laws, Tensor Objects, and Fluid Dynamics
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Covers conservation laws, tensor objects, and fluid dynamics in Continuum Mechanics.
Material Properties and Stress-Strain Curves
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Explores material properties, stress-strain curves, stress concentration, and failure criteria in structural mechanics.
Eshelby Inclusion: Mechanics and Elastic Energy
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Explores the Eshelby method for inclusion mechanics and elastic energy storage.
Simple Traction or Compression
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Covers general notions and hypotheses of simple traction or compression, stress analysis, and strain energy in materials.
Deformation of Planar Systems
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Delves into analyzing equilibrium systems of bars under axial forces and explores support types for structural movement.
Elastic Deformation: Material Properties
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Explores material properties, stress, strain, and deformation gradient in elastic deformation.
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