Boltzmann electron PIC simulation of the E-sail effect
Pekka Janhunen

TL;DR
This paper introduces a novel Boltzmann PIC simulation method for predicting E-sail thrust, accounting for trapped electrons, and demonstrates its effectiveness in producing realistic thrust estimates efficiently.
Contribution
The paper develops a new Boltzmann PIC simulation approach that models electrons as a fluid with a parameter controlling trapped electrons, improving thrust prediction accuracy.
Findings
Thrust estimates align with previous models but are slightly smaller.
The simulation efficiently explores different trapped electron scenarios.
The method provides a rapid and flexible tool for E-sail analysis.
Abstract
The solar wind electric sail (E-sail) is a planned in-space propulsion device that uses the natural solar wind momentum flux for spacecraft propulsion with the help of long, charged, centrifugally stretched tethers. The problem of accurately predicting the E-sail thrust is still somewhat open, however, due to a possible electron population trapped by the tether. Here we develop a new type of particle-in-cell (PIC) simulation for predicting E-sail thrust. In the new simulation, electrons are modelled as a fluid, hence resembling hydrid simulation, but in contrast to normal hybrid simulation, the Poisson equation is used as in normal PIC to calculate the self-consistent electrostatic field. For electron-repulsive parts of the potential, the Boltzmann relation is used. For electron-attractive parts of the potential we employ a power law which contains a parameter that can be used to…
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