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Lecture
Geomechanics: Basic Concepts
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Related lectures (32)
Geomechanics: Basic Concepts
Introduces basic geomechanics concepts, stress paths, and the critical state concept.
Soil Shear Resistance and Failure Criteria
Explains the Von Mises, Drucker-Prager, Mohr-Coulomb, and Cam-Clay failure criteria in soil mechanics.
Unsaturated Soils: Water Retention and Mechanical Behavior
Explores unsaturated soil behavior, emphasizing water retention and mechanical properties.
Critical State Concept: Unsaturated Soils
Explores the critical state concept in geomechanics, focusing on unsaturated soils and Terzaghi's effective stress validity.
Geomechanics: Course Introduction
Introduces the study of geomechanics, covering the behavior of soils, rocks, and concrete in civil engineering applications.
Retaining Structures: Geomechanics
Explores the design and analysis of retaining structures, lateral earth pressure, and unsaturated soils.
Geomechanics: Suction and Shear Strength
Covers suction, shear strength, desiccation consequences, and retaining structures in unsaturated soils.
Soil Mechanics: Plasticity and Failure Criteria
Explores soil mechanics, plasticity, failure criteria, and soil behavior models.
Soil Mechanics: Oedometer Testing and Soil Deformation
Explores soil mechanics, oedometer testing, and soil deformation principles, including Young's modulus and overconsolidation effects.
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.
Critical State Concept
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Explores the critical state concept in geomechanics, covering stress paths, shear strength, and soil behavior under different stress conditions.
Shear Behavior: Evaluation and Laws
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Explores material behavior in shear, shear forces, stress, equilibrium, shear laws, tension/compression, plane shear, shear rate, constrained slip, and shear strength.
Introduction to Structural Mechanics: Stress and Strain
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Covers stress equilibrium, strain, and constitutive equations in 2D and 3D.
3D Linear Elasticity & Beams
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Covers 3D linear elasticity, stress, strain, beams' behavior under loads, and torsion.
Mechanics of Slender Structures: Elasticity & Buckling
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Explores 3D elasticity, beam bending, and buckling phenomena in slender structures.
Solid Mechanics II + Material Models
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Explores material models for elastic objects, including inverse shape optimization and hyperelasticity.
Axial Loading: Stress and Strain in Deformable Bodies
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Covers axial loading, stress, strain, and their implications in deformable bodies.
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.
Linear Elasticity in 3D: Beam Bending
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Covers linear elasticity in 3D, focusing on beam bending and stress-strain behavior of materials.
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.
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