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Lecture
Introduction to Structural Mechanics
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Related lectures (35)
Beams under Flexure
Discusses stresses in beams under flexure, including shear forces and bending moments.
Plastic Hinge Method: Analysis and Design
Explores the plastic hinge method for inelastic deformation estimation and discusses the challenges of force-based design.
Introduction to Structural Mechanics
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Introduces structural mechanics concepts like distributed loads, centroids, and equilibrium in 2D and 3D.
Mechanics of Slender Structures: Elasticity & Buckling
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Explores 3D elasticity, beam bending, and buckling phenomena in slender structures.
3D Linear Elasticity & Beams
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Covers 3D linear elasticity, stress, strain, beams' behavior under loads, and torsion.
Introduction to Structural Mechanics
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Covers beams with distributed and concentrated forces, bending moment, shear force, and internal load diagrams.
Introduction to Structural Mechanics: Stress and Strain
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Covers stress equilibrium, strain, and constitutive equations in 2D and 3D.
Introduction to Structural Mechanics
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Introduces the basics of structural mechanics, covering static forces, stress, strain, and historical contributions.
Systems of Forces in 3D
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Explores systems of forces in three dimensions, emphasizing moments and couples, equilibrium, and scalar components.
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.
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.
Beam Bending II
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Explores the relationship between moment, curvature, and deflection in beam bending scenarios, emphasizing the consideration of shear forces and deformations.
Internal Equilibrium of Solids
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Covers internal equilibrium of solids, stress analysis, beam deformation, and rupture criteria.
Structural Mechanics: Systems of Forces
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Covers systems of forces, moments, couples, and stress in 2D and 3D, as well as the effect of force-couple systems.
Beams: Internal Loads
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Covers the analysis of beams, internal loads, stress distribution, and reaction calculations.
Plates III: Buckling Theory and Applications
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Explores Föppl-von Kármán plate theory, including buckling equations and an example of plate compression.
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.
Nonlinear Beam Theory: Mechanics of Slender Structure
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Covers strain-displacement relations, simplifications, constitutive relations, equilibrium equations, and circular rings.
Dimensional Analysis & Scaling Laws
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Covers dimensional analysis, physical similarity, and structural mechanics, emphasizing the importance of scaling laws in solving complex problems.
Structural Mechanics: Beams I
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Explores beam types, internal loads computation, and load diagrams, with a focus on historical context and practical examples.
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