Inductive Plasma Thruster (IPT) design for an Atmosphere-Breathing Electric Propulsion System (ABEP)
View/Open
2019_IAC_paper_Romano.pdf (2,201Mb) (Restricted access)
Request copy
Què és aquest botó?
Aquest botó permet demanar una còpia d'un document restringit a l'autor. Es mostra quan:
- Disposem del correu electrònic de l'autor
- El document té una mida inferior a 20 Mb
- Es tracta d'un document d'accés restringit per decisió de l'autor o d'un document d'accés restringit per política de l'editorial
Cita com:
hdl:2117/330156
Document typeConference report
Defense date2019
PublisherInternational Astronautical Federation
Rights accessRestricted access - publisher's policy
All rights reserved. This work is protected by the corresponding intellectual and industrial
property rights. Without prejudice to any existing legal exemptions, reproduction, distribution, public
communication or transformation of this work are prohibited without permission of the copyright holder
Abstract
Challenging space missions include those at very low altitudes, where the atmosphere is source of aerodynamic drag on the spacecraft, therefore an efficient propulsion system is required to extend the mission lifetime. One solution is Atmosphere-Breathing Electric Propulsion (ABEP). It collects atmospheric particles to use as propellant for an electric thruster. This would minimize the requirement of limited propellant availability. The system could be applied to any planet with atmosphere, enabling new mission at these altitude ranges for continuous orbiting. Challenging is also the presence of reactive chemical species, such as atomic oxygen in Earth orbit. Such components are erosion source of (not only) propulsion system components, i.e. acceleration grids, electrodes, and discharge channels of conventional EP systems (RIT and HET). IRS is developing within the DISCOVERER project an intake and a thruster for an ABEP system. This paper deals with the design and first operation of the inductive plasma thruster (IPT) developed at IRS. The paper describes itsdesignaided by numerical toolssuch as HELIC andADAMANT. Such a device is based on RF electrodeless discharge aided by externally applied static magnetic field. The IPT is composed by a movable injector, to variate the discharge channel length, and a movable electromagnet to variate position and intensity of the magnetic field. By changing these parameters along with a novel antenna design for electric propulsion, the aim is to achieve the highest efficiency for the ionization stage by enabling the formation of helicon-based discharge.Finally, the designed IPT is presented and the feature of the birdcage antenna highlighted.
CitationRomano, F. [et al.]. Inductive Plasma Thruster (IPT) design for an Atmosphere-Breathing Electric Propulsion System (ABEP). A: International Astronautical Congress. "Proceedings of the International Astronautical Congress, IAC". International Astronautical Federation, 2019, p. 1-7. ISBN 0074-1795.
ISBN0074-1795
Collections
- Departament de Física - Ponències/Comunicacions de congressos [719]
- Departament d'Enginyeria de Projectes i de la Construcció - Ponències/Comunicacions de congressos [190]
- L'AIRE - Laboratori Aeronàutic i Industrial de Recerca i Estudis - Ponències/Comunicacions de congressos [51]
- TUAREG - Turbulence and Aerodynamics in Mechanical and Aerospace Engineering Research Group - Ponències/Comunicacions de congressos [87]
Files | Description | Size | Format | View |
---|---|---|---|---|
2019_IAC_paper_Romano.pdf![]() | 2,201Mb | Restricted access |