Combining Magnetic and Electric Sails for Interstellar Deceleration
arXiv:1603.03015 · doi:10.1016/j.actaastro.2016.07.005
Abstract
The main benefit of an interstellar mission is to carry out in-situ measurements within a target star system. To allow for extended in-situ measurements, the spacecraft needs to be decelerated. One of the currently most promising technologies for deceleration is the magnetic sail which uses the deflection of interstellar matter via a magnetic field to decelerate the spacecraft. However, while the magnetic sail is very efficient at high velocities, its performance decreases with lower speeds. This leads to deceleration durations of several decades depending on the spacecraft mass. Within the context of Project Dragonfly, initiated by the Initiative of Interstellar Studies (i4is), this paper proposes a novel concept for decelerating a spacecraft on an interstellar mission by combining a magnetic sail with an electric sail. Combining the sails compensates for each technologys shortcomings: A magnetic sail is more effective at higher velocities than the electric sail and vice versa. It is demonstrated that using both sails sequentially outperforms using only the magnetic or electric sail for various mission scenarios and velocity ranges, at a constant total spacecraft mass. For example, for decelerating from 5% c, to interplanetary velocities, a spacecraft with both sails needs about 29 years, whereas the electric sail alone would take 35 years and the magnetic sail about 40 years with a total spacecraft mass of 8250 kg. Furthermore, it is assessed how the combined deceleration system affects the optimal overall mission architecture for different spacecraft masses and cruising speeds. Future work would investigate how operating both systems in parallel instead of sequentially would affect its performance. Moreover, uncertainties in the density of interstellar matter and sail properties need to be explored.
References in corpus (1)
Cited by in corpus (12)
- Developing Ecospheres on Transiently Habitable Planets: The Genesis Project
- Propulsion of Spacecrafts to Relativistic Speeds Using Natural Astrophysical Sources
- Why planetary and exoplanetary protection differ: The case of long duration Genesis missions to habitable but sterile M-dwarf oxygen planets
- Electric sails are potentially more effective than light sails near most stars
- Artificial Intelligence for Interstellar Travel
- Universal scaling relation for magnetic sails: momentum braking in the limit of dilute interstellar media
- The Andromeda Study: A Femto-Spacecraft Mission to Alpha Centauri
- Photogravimagnetic assists of light sails: a mixed blessing for Breakthrough Starshot?
- Direct Exoplanet Investigation using Interstellar Space Probes
- Chasing Nomadic Worlds: A New Class of Deep Space Missions
- Galactic Traversability: A New Concept for Extragalactic SETI
- Artificial Intelligence Probes for Interstellar Exploration and Colonization