From Fundamentals to Advanced Satellite Design & Development
| Tool | Purpose | Type |
|---|---|---|
| STK (Systems Tool Kit) | Mission analysis, orbit propagation, coverage analysis | Commercial |
| GMAT (General Mission Analysis Tool) | Trajectory optimization, mission planning | Open Source (NASA) |
| Orekit | Space flight dynamics library (Java/Python) | Open Source |
| Poliastro | Astrodynamics in Python | Open Source |
| FreeFlyer | Mission design and analysis | Commercial |
| Tool | Purpose | Type |
|---|---|---|
| SolidWorks | 3D CAD modeling | Commercial |
| ANSYS | FEA, thermal, electromagnetic analysis | Commercial |
| Nastran | Structural analysis | Commercial |
| FreeCAD | 3D parametric modeling | Open Source |
| OpenFOAM | CFD analysis | Open Source |
| Tool | Purpose | Type |
|---|---|---|
| Altium Designer | Professional PCB design | Commercial |
| KiCad | PCB design and schematic capture | Open Source |
| LTspice | Circuit simulation | Free |
| HFSS | High-frequency electromagnetic simulation | Commercial |
| Tool | Purpose | Type |
|---|---|---|
| MATLAB/Simulink | Algorithm development, simulation | Commercial |
| Python (NumPy, SciPy) | Scientific computing, data analysis | Open Source |
| Core Flight System (cFS) | Flight software framework | Open Source (NASA) |
| FreeRTOS | Real-time operating system | Open Source |
| GNU Radio | Software-defined radio development | Open Source |
| Tool | Purpose | Type |
|---|---|---|
| GNURadio | SDR signal processing | Open Source |
| SatNOGS | Global satellite ground station network | Open Source |
| Gpredict | Satellite tracking and prediction | Open Source |
| COSMOS | Command and telemetry system | Open Source |
| Component | Specification | Quantity | Est. Cost (USD) |
|---|---|---|---|
| Solar Panels | Triple-junction GaAs, 30% efficiency, deployable | 4-6 panels | $15,000 - $25,000 |
| Battery Pack | Li-ion, 40-80 Wh, with BMS | 1 | $5,000 - $10,000 |
| EPS Board | MPPT, power distribution, protection | 1 | $3,000 - $8,000 |
| DC-DC Converters | Various voltage rails (3.3V, 5V, 12V) | Multiple | $500 - $2,000 |
| Component | Specification | Quantity | Est. Cost (USD) |
|---|---|---|---|
| Onboard Computer | ARM Cortex-M7, 216 MHz, radiation tolerant | 1-2 (redundant) | $5,000 - $15,000 |
| Mass Storage | SD card or SSD, 32-128 GB | 1-2 | $500 - $2,000 |
| Real-Time Clock | High-precision RTC with battery backup | 1 | $100 - $500 |
| Component | Specification | Quantity | Est. Cost (USD) |
|---|---|---|---|
| Magnetorquers | 3-axis, air-core or rod | 3 | $2,000 - $5,000 |
| Reaction Wheels | 3-axis, momentum capacity 1-10 mNms | 3-4 | $10,000 - $30,000 |
| Magnetometer | 3-axis, ±50 μT range | 1-2 | $1,000 - $3,000 |
| Sun Sensors | Coarse or fine, multiple faces | 4-6 | $2,000 - $8,000 |
| Gyroscope | MEMS or fiber optic, 3-axis | 1 | $1,000 - $5,000 |
| Star Tracker (optional) | High precision, arcsecond accuracy | 1 | $50,000 - $150,000 |
| Component | Specification | Quantity | Est. Cost (USD) |
|---|---|---|---|
| UHF Transceiver | 435-438 MHz, 1-2W output | 1 | $3,000 - $8,000 |
| S-band Transmitter (optional) | 2.2-2.3 GHz, higher data rate | 1 | $10,000 - $25,000 |
| Antennas | Deployable dipole or patch | 2-4 | $2,000 - $10,000 |
| Component | Specification | Quantity | Est. Cost (USD) |
|---|---|---|---|
| CubeSat Frame | 3U aluminum structure | 1 | $2,000 - $5,000 |
| Deployment System | Solar panel/antenna deployment | 1-2 | $3,000 - $10,000 |
| Separation System | P-POD compatible | 1 | $1,000 - $3,000 |
| Component | Specification | Quantity | Est. Cost (USD) |
|---|---|---|---|
| MLI Blankets | Multi-layer insulation | As needed | $1,000 - $3,000 |
| Heaters | Kapton heaters with thermostats | Multiple | $500 - $2,000 |
| Temperature Sensors | Thermistors or RTDs | 10-20 | $200 - $500 |
| Component | Specification | Quantity | Est. Cost (USD) |
|---|---|---|---|
| Camera Module | 5-12 MP, visible spectrum | 1 | $5,000 - $20,000 |
| Optics | Lens assembly, focal length optimized | 1 | $3,000 - $15,000 |
| Class | Mass Range | Examples | Typical Applications |
|---|---|---|---|
| Large Satellites | > 1,000 kg | Hubble, GOES, GPS satellites | Communications, Earth observation, scientific |
| Medium Satellites | 500 - 1,000 kg | Landsat, SPOT | Earth observation, navigation |
| Mini Satellites | 100 - 500 kg | RapidEye, SkySat | Earth observation, technology demonstration |
| Micro Satellites | 10 - 100 kg | Planet Labs Doves | Earth observation, IoT, communications |
| Nano Satellites | 1 - 10 kg | CubeSats (1U-6U) | Technology demonstration, education, science |
| Pico Satellites | 0.1 - 1 kg | PocketQubes | Education, amateur radio |
| Femto Satellites | < 0.1 kg | Sprite, ChipSats | Technology demonstration, research |
Objective: Build a basic ground station to receive satellite signals
Skills Learned: RF basics, signal processing, antenna design
Objective: Develop software to predict satellite passes
Skills Learned: Orbital mechanics, programming, data visualization
Objective: Simulate attitude control on a test platform
Skills Learned: Control systems, sensor fusion, embedded programming
Objective: Test and characterize solar cells
Skills Learned: Power systems, data acquisition, analysis
Objective: Build a can-sized satellite simulator
Skills Learned: System integration, telemetry, data analysis
Objective: Design and build CubeSat frame
Skills Learned: Mechanical design, CAD, manufacturing
Objective: Build communication system
Skills Learned: RF design, protocols, link analysis
Objective: Build attitude control actuator
Skills Learned: Mechanical design, motor control, dynamics
Objective: Design full functional CubeSat
Skills Learned: Systems engineering, integration, testing
Estimated Cost: $50,000-150,000
Objective: Multi-satellite coordination
Skills Learned: Advanced control, multi-agent systems
Objective: Build Earth observation camera
Skills Learned: Optics, image processing, payload design
Objective: Design miniature propulsion
Skills Learned: Propulsion, fluid dynamics, safety
Objective: Multi-satellite system
Skills Learned: System architecture, operations
Objective: Autonomous operations
Skills Learned: AI/ML, autonomous systems
Objective: Optical data link
Skills Learned: Optical communication, precision control
Objective: Satellite servicing capability
Skills Learned: Robotics, GNC, computer vision