
Aerospace Engineer Course
Master the full spectrum of aerospace engineering — from aerodynamics and propulsion to orbital mechanics and vehicle design. This course delivers rigorous, industry-aligned training built on real engineering principles and systems-level thinking. Whether you're targeting aircraft, spacecraft, or unmanned systems, you'll gain the technical depth employers demand.
What you will learn:
This course covers the core disciplines of aerospace engineering, including fluid mechanics, thermodynamics, structural analysis, propulsion, avionics, and spacecraft systems. You will learn to analyze subsonic and supersonic airflow, design propulsion cycles, and size structural components to meet strength and fatigue requirements. The curriculum also addresses flight mechanics, stability and control, and orbital trajectory design. Computational tools including CFD, FEA, and MATLAB are integrated throughout to reinforce analytical methods. Advanced topics cover UAS design, sustainable aviation technologies, and aerospace program management, giving you a complete engineering foundation.
How you study in a practical way Aerospace Engineer Course
How you practice Aerospace Engineer Course
For companies who want to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Aerospace Engineering
Foundations of Aerospace Engineering
Lesson 1 • Mathematics for Aerospace Applications
Covers vector calculus, differential equations, and linear algebra essential for modeling aerospace systems. Bridges abstract math to physical engineering problems.
Lesson 2 • Thermodynamics and Heat Transfer
Introduces thermodynamic laws, cycles, and heat transfer modes critical to propulsion and thermal management. Connects energy concepts to engine and vehicle thermal analysis.
Lesson 3 • Classical Mechanics and Dynamics
Applies Newton's laws, energy methods, and rigid-body dynamics to aerospace structures and vehicles. Provides the mechanical foundation for later flight and propulsion analysis.
Lesson 4 • Introduction to Materials Science
Surveys metallic, composite, and ceramic materials used in aerospace structures. Establishes material selection criteria based on strength, weight, and thermal properties.
Lesson 5 • Aerospace Industry and Systems Overview
Maps the aerospace industry landscape, key stakeholders, and systems-engineering philosophy. Contextualizes technical study within real-world program structures.
Chapter 2HideHide detailsSee detailsAerodynamics and Fluid Mechanics
Aerodynamics and Fluid Mechanics
Lesson 1 • Subsonic Airfoil and Wing Theory
Analyzes lift generation, pressure distribution, and induced drag for wings in subsonic flow. Connects thin-airfoil theory to practical wing design parameters.
Lesson 2 • Compressible Flow and Shock Waves
Extends flow analysis to transonic and supersonic regimes including normal and oblique shocks. Prepares students for supersonic vehicle and inlet design challenges.
Lesson 3 • Aerodynamic Performance Estimation
Applies drag polar models and aerodynamic coefficients to estimate vehicle performance. Integrates aerodynamic data into preliminary aircraft sizing and trade studies.
Lesson 4 • Fluid Properties and Flow Regimes
Defines viscosity, compressibility, and Reynolds number to classify flow behavior. Establishes the physical basis for all subsequent aerodynamic analysis.
Lesson 5 • Governing Equations of Fluid Flow
Derives continuity, momentum, and energy equations for fluid systems. These equations underpin computational and analytical aerodynamic tools used throughout the course.
Chapter 3HideHide detailsSee detailsAircraft Performance and Flight Mechanics
Aircraft Performance and Flight Mechanics
Lesson 1 • Static and Dynamic Stability
Evaluates longitudinal and lateral-directional stability derivatives and their physical meaning. Links stability margins to handling qualities and control surface sizing.
Lesson 2 • Equations of Motion for Aircraft
Derives six-degree-of-freedom equations governing aircraft translation and rotation. Establishes the mathematical framework for all performance and stability calculations.
Lesson 3 • Flight Envelope and Operational Limits
Defines structural, aerodynamic, and propulsive boundaries of the operational flight envelope. Connects certification requirements to design constraints.
Lesson 4 • Takeoff, Landing, and Maneuvering
Analyzes ground roll, rotation, and obstacle clearance for takeoff and landing phases. Extends to turning flight, load factor, and V-n diagrams.
Lesson 5 • Steady-State Flight Performance
Calculates level flight, climb, descent, and cruise performance using energy and force balance. Provides tools for mission planning and fuel estimation.
Chapter 4HideHide detailsSee detailsAerospace Propulsion Systems
Aerospace Propulsion Systems
Lesson 1 • Combustion and Fuel Systems
Covers combustion chemistry, flame stability, and combustor design for gas turbine engines. Addresses emissions, fuel types, and alternative propellants.
Lesson 2 • Nozzle Design and Propulsion Integration
Applies isentropic nozzle theory to design convergent-divergent nozzles for optimal thrust. Integrates propulsion with airframe for inlet and exhaust system compatibility.
Lesson 3 • Rocket Propulsion Principles
Derives rocket thrust equation, specific impulse, and Tsiolkovsky's equation for mission delta-V. Compares liquid, solid, and hybrid propellant systems.
Lesson 4 • Air-Breathing Engine Fundamentals
Introduces turbojet, turbofan, turboprop, and ramjet operating principles using Brayton cycle analysis. Establishes specific thrust and fuel consumption as key performance metrics.
Lesson 5 • Compressor and Turbine Aerodynamics
Analyzes axial and centrifugal compressor stages and turbine blade aerodynamics using velocity triangles. Connects component efficiency to overall engine performance.
Chapter 5HideHide detailsSee detailsAerospace Structures and Materials
Aerospace Structures and Materials
Lesson 1 • Fatigue, Fracture, and Damage Tolerance
Applies S-N curves, fracture mechanics, and crack growth models to predict structural life. Connects damage tolerance philosophy to inspection intervals and certification.
Lesson 2 • Stress, Strain, and Elasticity
Introduces stress and strain tensors, Hooke's law, and elastic deformation for isotropic materials. Provides the analytical foundation for all structural sizing tasks.
Lesson 3 • Bending, Shear, and Torsion
Analyzes beams and shafts under bending moments, shear forces, and torsional loads. Applies these results to wing spars, fuselage frames, and drive shafts.
Lesson 4 • Buckling and Structural Instability
Evaluates column buckling, panel buckling, and crippling failure modes critical to thin-walled aerospace structures. Introduces reserve factor and margin of safety concepts.
Lesson 5 • Composite Structures Analysis
Extends classical laminate theory to analyze fiber-reinforced composite panels and joints. Addresses failure criteria and manufacturing effects on structural performance.
Chapter 6HideHide detailsSee detailsAvionics, Control, and Navigation Systems
Avionics, Control, and Navigation Systems
Lesson 1 • Inertial and Satellite Navigation
Analyzes inertial measurement units, GPS, and sensor fusion algorithms for position and attitude estimation. Evaluates accuracy, drift, and integrity for different mission profiles.
Lesson 2 • Avionics Architecture and Data Buses
Surveys federated and integrated modular avionics architectures and their data communication standards. Addresses real-time processing, latency, and cybersecurity considerations.
Lesson 3 • Autopilot and Guidance Law Design
Designs inner-loop attitude and outer-loop guidance laws for autonomous and semi-autonomous flight. Applies optimal control and trajectory optimization to mission scenarios.
Lesson 4 • Control System Fundamentals
Introduces transfer functions, block diagrams, and feedback control theory for dynamic systems. Establishes stability criteria used in autopilot and flight control design.
Lesson 5 • Flight Control System Architecture
Examines fly-by-wire, fly-by-light, and mechanical control system architectures. Connects control law design to handling qualities and pilot-in-the-loop performance.
Chapter 7HideHide detailsSee detailsSpacecraft Systems and Orbital Mechanics
Spacecraft Systems and Orbital Mechanics
Lesson 1 • Communications and Telemetry Systems
Applies link budget analysis to design spacecraft communication systems for data downlink and command uplink. Covers antenna types, modulation, and ground station requirements.
Lesson 2 • Orbital Mechanics and Trajectory Design
Derives Kepler's laws, orbital elements, and maneuver equations for Earth and interplanetary orbits. Provides the foundation for mission design and launch window analysis.
Lesson 3 • Spacecraft Attitude Determination and Control
Analyzes attitude sensors, actuators, and control algorithms for three-axis stabilized spacecraft. Connects attitude accuracy requirements to sensor selection and control law design.
Lesson 4 • Space Environment and Mission Design
Characterizes radiation, microgravity, and debris environments and their effects on spacecraft design. Integrates environmental constraints into mission concept development.
Lesson 5 • Spacecraft Power and Thermal Systems
Sizes solar arrays, batteries, and thermal control hardware for orbital environments. Addresses eclipse periods, heat dissipation, and power budget allocation.
Chapter 8HideHide detailsSee detailsAerospace Vehicle Design and Systems Integration
Aerospace Vehicle Design and Systems Integration
Lesson 1 • Weight, Balance, and Center of Gravity
Estimates component weights using statistical and analytical methods and tracks center-of-gravity travel. Ensures stability and control margins across all loading conditions.
Lesson 2 • Preliminary Design and Trade Studies
Refines the conceptual design through aerodynamic, structural, and propulsion trade studies. Uses sensitivity analysis to identify critical design drivers.
Lesson 3 • Systems Integration and Interface Management
Manages mechanical, electrical, and data interfaces between subsystems using interface control documents. Applies model-based systems engineering tools to track requirements flow.
Lesson 4 • Conceptual Design and Sizing Methods
Applies constraint analysis, mission-weight fractions, and carpet plots to size a new vehicle concept. Translates mission requirements into initial geometry and weight estimates.
Lesson 5 • Verification, Validation, and Certification
Defines test, analysis, inspection, and demonstration methods to verify design compliance. Connects verification evidence to airworthiness and launch certification processes.
Your valid completion certificate
This course is for you:
Mechanical engineering graduate: seeking to pivot into aerospace-specific technical roles.
Military aviation professional: building civilian engineering credentials after service.
Physics or STEM undergraduate: wanting structured applied engineering training beyond theory.
Defense industry technician: aiming to move into an engineering design capacity.
Hobbyist aircraft builder: ready to ground hands-on passion in rigorous engineering principles.
Early-career engineer: expanding expertise to include spacecraft and propulsion system design.
What our students say
Your classes are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of my interest without needing to change platforms... I thank you for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can switch chapters and skip content I don't need.

I like the content and the way videos are presented and transcribed, which speeds up the process!

The platform is fast, simple to use. The diversity of content and complementary videos really help with learning.

Top trainings
FAQs
Who is Dedika?
Is the certificate valid in the Philippines?
Are the courses free?
What is the course workload?
What are the courses like?
How do the courses work?
What is the duration of the courses?
What is the cost or price of the courses?
What is an EAD or online course and how does it work?
PDF Course




















