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Plasma oscillation effects on nested Hall thruster operation and stability

Publication ,  Conference
McDonald, MS; Sekerak, MJ; Gallimore, AD; Hofer, RR
Published in: IEEE Aerospace Conference Proceedings
June 12, 2013

High-power Hall thrusters capable of throughput on the order of 100 kW are currently under development, driven by more demanding mission profiles and rapid growth in on-orbit solar power generation capability. At these power levels the nested Hall thruster (NHT), a new design that concentrically packs multiple thrusters into a single body with a shared magnetic circuit, offers performance and logistical advantages over conventional single-channel Hall thrusters. An important area for risk reduction in NHT development is quantifying inter-channel coupling between discharge channels. This work presents time-and frequency-domain discharge current and voltage measurements paired with high-speed video of the X2, a 10-kW class dual channel NHT. Two 'triads' of operating conditions at 150 V, 3.6 kW and 250 V, 8.6 kW were examined, including each channel in individual operation and both channels in joint operation. For both triads tested, dual-channel operation did not noticeably destabilize the discharge. Partial coupling of outer channel oscillations into the inner channel occurred at 150 V, though oscillation amplitudes did not change greatly. As a percentage of mean discharge current, RMS oscillations at 150 V increased from 8% to 13% on the inner channel and decreased from 10% to 8% on the outer channel from single-to dual-channel operation. At 250 V the RMS/mean level stayed steady at 13% on the inner channel and decreased from 7% to 6% on the outer channel. The only mean discharge parameter noticeably affected was the cathode floating potential, which decreased in magnitude below ground with increased absolute cathode flow rate in dual-channel mode. Rotating spokes were detected on high-speed video across all X2 operating cases with wavelength 12-18 cm, and spoke velocity generally increased from single-to dual-channel operation. © 2013 IEEE.

Duke Scholars

Published In

IEEE Aerospace Conference Proceedings

DOI

ISSN

1095-323X

Publication Date

June 12, 2013
 

Citation

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McDonald, M. S., Sekerak, M. J., Gallimore, A. D., & Hofer, R. R. (2013). Plasma oscillation effects on nested Hall thruster operation and stability. In IEEE Aerospace Conference Proceedings. https://doi.org/10.1109/AERO.2013.6497190
McDonald, M. S., M. J. Sekerak, A. D. Gallimore, and R. R. Hofer. “Plasma oscillation effects on nested Hall thruster operation and stability.” In IEEE Aerospace Conference Proceedings, 2013. https://doi.org/10.1109/AERO.2013.6497190.
McDonald MS, Sekerak MJ, Gallimore AD, Hofer RR. Plasma oscillation effects on nested Hall thruster operation and stability. In: IEEE Aerospace Conference Proceedings. 2013.
McDonald, M. S., et al. “Plasma oscillation effects on nested Hall thruster operation and stability.” IEEE Aerospace Conference Proceedings, 2013. Scopus, doi:10.1109/AERO.2013.6497190.
McDonald MS, Sekerak MJ, Gallimore AD, Hofer RR. Plasma oscillation effects on nested Hall thruster operation and stability. IEEE Aerospace Conference Proceedings. 2013.

Published In

IEEE Aerospace Conference Proceedings

DOI

ISSN

1095-323X

Publication Date

June 12, 2013