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Principle of Least Action
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Mechanics of Slender Structures: Final Review and Overview
Covers the main learning objectives of ME-411, focusing on dimensional analysis, scalings, and mechanical elements.
Mechanics of Slender Structures: Elasticity & Buckling
Explores 3D elasticity, beam bending, and buckling phenomena in slender structures.
Eshelby Inclusion: Mechanics and Eigenstrains
Explores the Eshelby method for mechanics of inclusions and eigenstrains, focusing on stress and strain fields inside inclusions.
Geomechanics: Course Introduction
Introduces the study of geomechanics, covering the behavior of soils, rocks, and concrete in civil engineering applications.
Classical Laminate Theory: Analysis & Equilibrium
Covers the Classical Laminate Theory and its analysis of displacements, strains, stresses, and equilibrium in laminated composites.
Laminate Analysis: Introduction
Introduces laminate analysis, covering plane stress, rotation in 2D, and special laminates.
Laminate Analysis: Introduction
Introduces the theory behind laminates and their applications in different industries.
Classical Laminate Theory
Covers Classical Laminate Theory for solving mechanics problems with multiple material layers, discussing displacements, strains, stresses, and equilibrium.
3D Linear Elasticity & Beams
Introduces 3D linear elasticity, beams, dimensional analysis, and mechanics of slender structures.
Solid Mechanics Principles: Eigenstrains
Covers eigenstrains, deformations in a body not caused by stress, and their significance in mechanics.