
Space Engineering Course
Master every discipline that goes into building and launching a spacecraft, from orbital mechanics and rocket propulsion to thermal control and mission systems engineering. This course gives you the technical depth and practical tools that professional space engineers use every day. If you're serious about working in the space industry, this is where you start.
What you will learn:
You will build a solid foundation in orbital mechanics, rocket propulsion, spacecraft structures, thermal control, attitude determination, power systems, and communications. You will learn how to construct integrated mass, power, and data budgets and close them at the system level. The course also covers mission design processes, systems engineering methods, and launch vehicle selection. Supplementary topics include CubeSat engineering, space robotics, space policy, and machine learning applied to spacecraft telemetry. By the end, you will be able to analyse, design, and evaluate complete spacecraft missions with confidence.
How you study in practice Space Engineering Course
How you practise Space Engineering Course
For businesses looking 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 • 36 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Space Engineering
Foundations of Space Engineering
Lesson 1 • Orbital Mechanics Fundamentals
Introduces Kepler's laws, Newton's gravitation, and two-body orbital motion. Provides the mathematical basis for all trajectory and mission design topics.
Lesson 2 • Units, Standards, and Engineering Maths
Reinforces SI units, dimensional analysis, and engineering estimation relevant to space systems. Ensures consistent quantitative reasoning across all chapters.
Lesson 3 • Spacecraft Systems Overview
Surveys the major subsystems of a spacecraft and their interdependencies. Sets the systems-engineering context for all subsequent technical chapters.
Lesson 4 • The Space Environment
Characterises vacuum, radiation, thermal extremes, and microgravity as engineering constraints. Connects environmental factors to design decisions throughout the course.
Chapter 2HideHide detailsSee detailsRocket Propulsion Principles
Rocket Propulsion Principles
Lesson 1 • Propulsion System Design and Testing
Addresses feed systems, tankage, and ground testing of propulsion hardware. Prepares students to evaluate propulsion subsystem designs against mission constraints.
Lesson 2 • Rocket Equation and Delta-V
Derives the Tsiolkovsky rocket equation and applies it to mission delta-V budgets. Directly links propulsion performance to orbital mechanics from Chapter 1.
Lesson 3 • Electric and Advanced Propulsion
Examines ion, Hall-effect, and emerging propulsion technologies for high-efficiency missions. Contrasts high-Isp, low-thrust profiles with chemical propulsion trade-offs.
Lesson 4 • Chemical Propulsion Systems
Covers combustion thermodynamics, nozzle design, and propellant selection for chemical rockets. Connects thermodynamic efficiency to specific impulse values.
Chapter 3HideHide detailsSee detailsSpacecraft Structures and Materials
Spacecraft Structures and Materials
Lesson 1 • Structural Analysis Methods
Applies stress, buckling, and fatigue analysis to spacecraft structural elements. Connects analytical methods to design margins and factors of safety.
Lesson 2 • Spacecraft Materials Selection
Evaluates metals, composites, and advanced materials for mass, stiffness, and thermal performance. Links material properties to structural efficiency metrics.
Lesson 3 • Launch and On-Orbit Load Environments
Quantifies quasi-static, dynamic, and acoustic loads during launch and deployment. Establishes the load cases that drive structural sizing throughout the chapter.
Lesson 4 • Structural Design and Verification
Covers structural configuration, joint design, and test-based verification approaches. Prepares students to close a structural design against requirements.
Chapter 4HideHide detailsSee detailsThermal Control of Spacecraft
Thermal Control of Spacecraft
Lesson 1 • Active Thermal Control Systems
Examines heaters, louvers, pumped fluid loops, and cryogenic cooling for active control. Connects active system power consumption to the spacecraft power budget.
Lesson 2 • Heat Transfer in Space
Applies conduction, radiation, and the absence of convection to spacecraft thermal modelling. Establishes the governing equations for thermal network analysis.
Lesson 3 • Passive Thermal Control Techniques
Covers surface coatings, multilayer insulation, and radiators as passive control elements. Demonstrates how passive design minimises heater power requirements.
Lesson 4 • Thermal Analysis and Verification
Introduces thermal modelling software workflows and thermal vacuum test methods. Closes the thermal design loop from analysis to hardware verification.
Lesson 5 • Spacecraft Thermal Environment
Quantifies solar, albedo, and Earth infrared heat fluxes as thermal design inputs. Builds on the space environment introduced in Chapter 1.
Chapter 5HideHide detailsSee detailsAttitude Determination and Control
Attitude Determination and Control
Lesson 1 • Attitude Determination Sensors
Surveys sun sensors, star trackers, magnetometers, and inertial measurement units. Links sensor accuracy and noise to achievable pointing knowledge.
Lesson 2 • Attitude Kinematics and Dynamics
Develops rotation matrices, quaternions, and Euler's equations for rigid-body attitude motion. Provides the mathematical foundation for all ADCS design topics.
Lesson 3 • Attitude Control Actuators
Covers reaction wheels, control moment gyros, magnetorquers, and thrusters as actuators. Connects actuator torque and momentum capacity to mission requirements.
Lesson 4 • Control Laws and Stability
Applies PID and nonlinear control laws to attitude stabilisation and manoeuvre design. Introduces stability analysis methods for closed-loop ADCS performance.
Chapter 6HideHide detailsSee detailsPower Systems and Avionics
Power Systems and Avionics
Lesson 1 • Command and Telemetry Systems
Designs command uplink and telemetry downlink protocols for spacecraft operations. Links avionics architecture to ground segment interfaces covered in Chapter 7.
Lesson 2 • Energy Storage Systems
Examines battery chemistry, depth of discharge, and charge control for eclipse survival. Links battery sizing to eclipse duration and load profiles.
Lesson 3 • Power Distribution and Regulation
Addresses bus voltage regulation, power conditioning, and fault protection architectures. Ensures students can design a reliable power distribution network.
Lesson 4 • Onboard Computer and Data Handling
Covers radiation-hardened processors, data buses, and mass memory for space avionics. Connects avionics reliability to mission data management requirements.
Lesson 5 • Solar Array Design and Sizing
Covers photovoltaic cell physics, array configuration, and degradation over mission life. Connects solar array output to the overall power budget.
Chapter 7HideHide detailsSee detailsCommunications and Ground Segment
Communications and Ground Segment
Lesson 1 • Ground Station Architecture
Designs ground station hardware, antenna networks, and contact scheduling for mission support. Connects ground segment capacity to spacecraft link budget requirements.
Lesson 2 • Radio Frequency Link Fundamentals
Introduces electromagnetic wave propagation, frequency bands, and the link budget equation. Provides the RF foundation for all communication system design topics.
Lesson 3 • Modulation, Coding, and Data Rates
Examines digital modulation schemes, channel coding, and their effect on link efficiency. Links coding gain to achievable data rates within power and bandwidth constraints.
Lesson 4 • Spacecraft Antenna Design
Covers omnidirectional, directional, and phased-array antennas for space applications. Connects antenna selection to pointing requirements and link performance.
Lesson 5 • Mission Operations and Data Flow
Covers mission control centre functions, data routing, and operations team organisation. Prepares students to define operational concepts for a complete mission.
Chapter 8HideHide detailsSee detailsMission Design and Systems Engineering
Mission Design and Systems Engineering
Lesson 1 • Mission Concept and Requirements
Translates stakeholder needs into mission objectives, concept of operations, and system requirements. Establishes the requirements baseline that drives all subsequent design decisions.
Lesson 2 • Risk Management and Reliability
Applies failure mode analysis, fault trees, and reliability modelling to mission risk. Connects risk posture to design choices such as redundancy and testing levels.
Lesson 3 • Orbit and Launch Vehicle Selection
Applies orbital mechanics and delta-V analysis to select orbit type and compatible launch vehicles. Integrates propulsion and structural constraints from earlier chapters.
Lesson 4 • Integration, Test, and Launch Campaign
Covers assembly, integration, and test flow from component to system level through launch. Closes the design-to-operations lifecycle for a complete spacecraft mission.
Lesson 5 • Spacecraft Mass and Power Budgets
Constructs integrated mass, power, and data rate budgets with contingency reserves. Demonstrates how subsystem budgets from all chapters close at the system level.
Your valid completion certificate
This course is for you:
Mechanical or electrical engineer: ready to redirect their skills towards spacecraft development.
Aerospace or physics student: seeking a systems-level view beyond individual coursework.
Defence or satellite industry professional: needing formal grounding in spacecraft engineering fundamentals.
Career changer from software or civil engineering: drawn to the growing commercial space sector.
Space enthusiast with a technical background: wanting rigorous knowledge beyond popular science content.
Early-career researcher: preparing to contribute to university CubeSat or small satellite programmes.
What our students say
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