TY - JOUR
T1 - 2D particle-in-cell simulations of the electron drift instability and associated anomalous electron transport in Hall-effect thrusters
AU - Croes, Vivien
AU - Lafleur, Trevor
AU - Bonaventura, Zdeněk
AU - Bourdon, Anne
AU - Chabert, Pascal
N1 - Publisher Copyright:
© 2017 IOP Publishing Ltd.
PY - 2017/2/6
Y1 - 2017/2/6
N2 - In this work we study the electron drift instability in Hall-effect thrusters (HETs) using a 2D electrostatic particle-in-cell (PIC) simulation. The simulation is configured with a Cartesian coordinate system modeling the radial-azimuthal (rq) plane for large radius thrusters. A magnetic field, Bo, is aligned along the Oy axis (r direction), a constant applied electric field, Eo, along the Oz axis (perpendicular to the simulation plane), and theEo×Bo direction is along the Ox axis (Odirection). Although electron transport can be well described by electronneutral collisions for low plasma densities, at high densities (similar to those in typical HETs), a strong instability is observed that enhances the electron cross-field mobility; even in the absence of electronneutral collisions. The instability generates high frequency (of the order of MHz) and short wavelength (of the order of mm) fluctuations in both the azimuthal electric field and charged particle densities, and propagates in the Eo×Bo direction with a velocity close to the ion sound speed. The correlation between the electric field and density fluctuations (which leads to an enhanced electronion friction force) is investigated and shown to be directly responsible for the increased electron transport. Results are compared with a recent kinetic theory, showing good agreement with the instability properties and electron transport.
AB - In this work we study the electron drift instability in Hall-effect thrusters (HETs) using a 2D electrostatic particle-in-cell (PIC) simulation. The simulation is configured with a Cartesian coordinate system modeling the radial-azimuthal (rq) plane for large radius thrusters. A magnetic field, Bo, is aligned along the Oy axis (r direction), a constant applied electric field, Eo, along the Oz axis (perpendicular to the simulation plane), and theEo×Bo direction is along the Ox axis (Odirection). Although electron transport can be well described by electronneutral collisions for low plasma densities, at high densities (similar to those in typical HETs), a strong instability is observed that enhances the electron cross-field mobility; even in the absence of electronneutral collisions. The instability generates high frequency (of the order of MHz) and short wavelength (of the order of mm) fluctuations in both the azimuthal electric field and charged particle densities, and propagates in the Eo×Bo direction with a velocity close to the ion sound speed. The correlation between the electric field and density fluctuations (which leads to an enhanced electronion friction force) is investigated and shown to be directly responsible for the increased electron transport. Results are compared with a recent kinetic theory, showing good agreement with the instability properties and electron transport.
KW - 2D particle-in-cell (PIC) simulation
KW - Hall effect thruster (HET)
KW - anomalous electron transport
KW - electron drift instability
U2 - 10.1088/1361-6595/aa550f
DO - 10.1088/1361-6595/aa550f
M3 - Article
AN - SCOPUS:85014903493
SN - 0963-0252
VL - 26
JO - Plasma Sources Science and Technology
JF - Plasma Sources Science and Technology
IS - 3
M1 - 034001
ER -