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1. Design of an Intake and a Thruster for an Atmosphere-Breathing Electric Propulsion System

2. Development and analysis of novel mission scenarios based on Atmosphere-Breathing Electric Propulsion (ABEP)

3. System Modelling of Very Low Earth Orbit Satellites for Earth Observation

4. Intake Design for an Atmosphere-Breathing Electric Propulsion System (ABEP)

5. The Benefits of Very Low Earth Orbit for Earth Observation Missions

6. RF Helicon-based Inductive Plasma Thruster (IPT) Design for an Atmosphere-Breathing Electric Propulsion system (ABEP)

7. Design of an intake and a thruster for an atmosphere-breathing electric propulsion system

8. Development and analysis of novel mission scenarios based on Atmosphere-Breathing Electric Propulsion (ABEP)

9. Intake design for an Atmosphere-Breathing Electric Propulsion System (ABEP)

11. RF Helicon-based Inductive Plasma Thruster (IPT) Design for an Atmosphere-Breathing Electric Propulsion system (ABEP)

12. The benefits of very low earth orbit for earth observation missions

13. Inductive plasma thruster (IPT) for an atmosphere breathing electric propulsion system: Design and set in operation

14. KeyNote: Discoverer - Making commercial satellite operations in very low earth orbit a reality

15. Attitude control for satellites flying in VLEO using aerodynamic surfaces

16. Demonstration of aerodynamic control manoeuvres in very low earth orbit using SOAR (Satellite for Orbital Aerodynamics Research)

17. Concepts and applications of aerodynamic attitude and orbital control for spacecraft in very low earth orbit

18. Inductive plasma thruster (IPT) design for an atmosphere-breathing electric propulsion system (ABEP)

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