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LEC #TOPICSKEY DATES
1Course Overview

Single Particle Dynamics: Linear and Angular Momentum Principles, Work-energy Principle
2Examples of Single Particle Dynamics
3Examples of Single Particle Dynamics (cont.)
4Dynamics of Systems of Particles: Linear and Angular Momentum Principles, Work-energy Principle
5Dynamics of Systems of Particles (cont.): Examples

Rigid Bodies: Degrees of Freedom
Problem set 1 due
6Translation and Rotation of Rigid Bodies

Existence of Angular Velocity Vector
7Linear Superposition of Angular Velocities

Angular Velocity in 2D

Differentiation in Rotating Frames
Problem set 2 due
8Linear and Angular Momentum Principle for Rigid Bodies
9Work-energy Principle for Rigid BodiesProblem set 3 due
10Examples for Lecture 8 Topics
11Examples for Lecture 9 TopicsProblem set 4 due
12Gyroscopes: Euler Angles, Spinning Top, Poinsot Plane, Energy Ellipsoid

Linear Stability of Stationary Gyroscope Motion
13Generalized Coordinates, Constraints, Virtual DisplacementsProblem set 5 due
14Exam 1
15Generalized Coordinates, Constraints, Virtual Displacements (cont.)
16Virtual Work, Generalized Force, Conservative Forces

Examples
17D'Alembert's Principle

Extended Hamilton's Principle

Principle of Least Action
Problem set 6 due
18Examples for Lecture 16 Topics

Lagrange's Equation of Motion
19Examples for Lecture 17 TopicsProblem set 7 due
20Lagrange Multipliers, Determining Holonomic Constraint Forces, Lagrange's Equation for Nonholonomic Systems, ExamplesProblem set 8 due
21Stability of Conservative Systems

Dirichlet's Theorem

Example
22Linearized Equations of Motion Near Equilibria of Holonomic SystemsProblem set 9 due
23Linearized Equations of Motion for Conservative Systems

Stability

Normal Modes

Mode Shapes

Natural Frequencies
24Examples for Lecture 23 Topics

Orthogonality of Modes Shapes

Principal Coordinates
Problem set 10 due
25Damped and Forced Vibrations Near Equilibria
26Exam 2

 








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