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Aeronautical Engineering
Advanced Control System Design for Aerospace Vehicles
Advanced Control System Design for Aerospace Vehicles
Curriculum
1 Section
40 Lessons
10 Weeks
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Advanced Control System Design for Aerospace Vehicles
40
2.1
Introduction and Motivation for Advanced Control Design
2.2
Classical Control Overview – I
2.3
Classical Control Overview – II
2.4
Classical Control Overview – III
2.5
Classical Control Overview – IV
2.6
Basic Principles of Atmospheric Flight Mechanics
2.7
Overview of Flight Dynamics – I
2.8
Overview of Flight Dynamics – II
2.9
Representation of Dynamical Systems – I
2.10
Representation of Dynamical Systems – II
2.11
Representation of Dynamical Systems – III
2.12
Review of Matrix Theory – I
2.13
Review of Matrix Theory – II
2.14
Review of Matrix Theory – III
2.15
Review of Numerical Methods
2.16
Linearization of Nonlinear Systems
2.17
First and Second Order Linear Differential Equations
2.18
Time Response of Linear Dynamical Systems
2.19
Stability of Linear Time Invariant Systems
2.20
Controllability and Observability of linear Time Invariant Systems
2.21
Pole Placement Control Design
2.22
Pole Placement Observer Design
2.23
Static Optimization: An Overview
2.24
Calculus of Variations: An Overview
2.25
Optimal Control Formulation using Calculus of Variations
2.26
Classical Numerical Methods for Optimal Contro
2.27
Linear Quadratic Regulator (LQR) Design – 1
2.28
Linear Quadratic Regulator (LQR) Design – 2
2.29
Linear Control Design Techniques in Aircraft Control – I
2.30
Linear Control Design Techniques in Aircraft Control – I
2.31
Lyapunov Theory – I
2.32
Lyapunov Theory -II
2.33
Constructions of Lyapunov Functions
2.34
Dynamic Inversion – I
2.35
Dynamic Inversion -II
2.36
Neuro-Adaptive Design -I
2.37
Neuro-Adaptive Design — II
2.38
Neuro-Adaptive Design for Flight Control
2.39
Integrator Back-Stepping & Linear Quadratic (lQ) Observer
2.40
An Overview of Kalman Filter Theory
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