Standard

Oscillations of iodine LaB6 hollow cathode. / Li, X.; Meng, T.; Ning, Z.; Liu, H.; Sun, C.; Liu, Y.; Eliseev, S.I.; Yu, D.

в: Vacuum, Том 242, 13.09.2025.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Li, X, Meng, T, Ning, Z, Liu, H, Sun, C, Liu, Y, Eliseev, SI & Yu, D 2025, 'Oscillations of iodine LaB6 hollow cathode', Vacuum, Том. 242. https://doi.org/10.1016/j.vacuum.2025.114744

APA

Li, X., Meng, T., Ning, Z., Liu, H., Sun, C., Liu, Y., Eliseev, S. I., & Yu, D. (2025). Oscillations of iodine LaB6 hollow cathode. Vacuum, 242. https://doi.org/10.1016/j.vacuum.2025.114744

Vancouver

Li X, Meng T, Ning Z, Liu H, Sun C, Liu Y и пр. Oscillations of iodine LaB6 hollow cathode. Vacuum. 2025 Сент. 13;242. https://doi.org/10.1016/j.vacuum.2025.114744

Author

Li, X. ; Meng, T. ; Ning, Z. ; Liu, H. ; Sun, C. ; Liu, Y. ; Eliseev, S.I. ; Yu, D. / Oscillations of iodine LaB6 hollow cathode. в: Vacuum. 2025 ; Том 242.

BibTeX

@article{94d7a57f988d4e9c8b5d72092aa4ce5f,
title = "Oscillations of iodine LaB6 hollow cathode",
abstract = "Iodine-fed electric propulsion systems have achieved significant technological progress in recent years, the operating range of these systems remains fundamentally limited by ampere level iodine compatible hollow cathode technology. Preliminary studies on discharge characteristics have found that LaB6 hollow cathode is a potential strategy. In this study, a conventional LaB6 hollow cathode made with iodine-resistant materials was designed and tested in an iodine-compatible vacuum facility. The waveform, bispectral characteristics, and dispersion relation of the iodine hollow cathode were obtained and compared with the estimated collision reaction frequency. We analyzed the potential reaction processes both inside and outside the cathode and assessed how oscillation affects the lifetime of the iodine hollow cathode. The results indicate that the chaotic low-frequency oscillations were the main oscillation mode affecting the performance of the iodine cathode, involving multiple reaction processes that interfere with each other. The oscillation inside the cathode was mainly affected by vibrational excitation and iodine molecular ionization, while the oscillation outside the cathode was affected primarily by processes such as neutral gas flow, excitation, ionization, dissociation, and ion transit-time instability. The overall oscillation of iodine cathode is a non-dominant unstable mode with uniform energy distribution. A single 27-h self-sustaining experiment found that low-frequency oscillation has a significant impact on the emitter and the orifice, thereby reducing the cathode lifetime. The main reaction process inside and outside the iodine cathode and the influence relationship between the reactions were understood by the oscillation characteristics. It provides a theoretical basis to improve the performance of the iodine hollow cathode in the future. {\textcopyright} 2025 Elsevier B.V., All rights reserved.",
keywords = "Electric propulsion, Hollow cathode, Iodine propellant, Oscillation characteristic, Boron compounds, Electric discharges, Iodine, Iodine compounds, Ionization of gases, Oscillating flow, Vacuum applications, Electric propulsion systems, Frequency oscillations, Hollow cathodes, LaB 6, Lower frequencies, Oscillation characteristics, Performance, Reaction process, Technological progress, Cathodes, Flow of gases",
author = "X. Li and T. Meng and Z. Ning and H. Liu and C. Sun and Y. Liu and S.I. Eliseev and D. Yu",
note = "Export Date: 01 November 2025; Cited By: 0; Correspondence Address: Z. Ning; Plasma Propulsion Laboratory, Harbin Institute of Technology, Harbin, 150001, China; email: ningzx@hit.edu.cn; T. Meng; Plasma Propulsion Laboratory, Harbin Institute of Technology, Harbin, 150001, China; email: mengtianhang1989@163.com; CODEN: VACUA",
year = "2025",
month = sep,
day = "13",
doi = "10.1016/j.vacuum.2025.114744",
language = "Английский",
volume = "242",
journal = "Vacuum",
issn = "0042-207X",
publisher = "Elsevier",

}

RIS

TY - JOUR

T1 - Oscillations of iodine LaB6 hollow cathode

AU - Li, X.

AU - Meng, T.

AU - Ning, Z.

AU - Liu, H.

AU - Sun, C.

AU - Liu, Y.

AU - Eliseev, S.I.

AU - Yu, D.

N1 - Export Date: 01 November 2025; Cited By: 0; Correspondence Address: Z. Ning; Plasma Propulsion Laboratory, Harbin Institute of Technology, Harbin, 150001, China; email: ningzx@hit.edu.cn; T. Meng; Plasma Propulsion Laboratory, Harbin Institute of Technology, Harbin, 150001, China; email: mengtianhang1989@163.com; CODEN: VACUA

PY - 2025/9/13

Y1 - 2025/9/13

N2 - Iodine-fed electric propulsion systems have achieved significant technological progress in recent years, the operating range of these systems remains fundamentally limited by ampere level iodine compatible hollow cathode technology. Preliminary studies on discharge characteristics have found that LaB6 hollow cathode is a potential strategy. In this study, a conventional LaB6 hollow cathode made with iodine-resistant materials was designed and tested in an iodine-compatible vacuum facility. The waveform, bispectral characteristics, and dispersion relation of the iodine hollow cathode were obtained and compared with the estimated collision reaction frequency. We analyzed the potential reaction processes both inside and outside the cathode and assessed how oscillation affects the lifetime of the iodine hollow cathode. The results indicate that the chaotic low-frequency oscillations were the main oscillation mode affecting the performance of the iodine cathode, involving multiple reaction processes that interfere with each other. The oscillation inside the cathode was mainly affected by vibrational excitation and iodine molecular ionization, while the oscillation outside the cathode was affected primarily by processes such as neutral gas flow, excitation, ionization, dissociation, and ion transit-time instability. The overall oscillation of iodine cathode is a non-dominant unstable mode with uniform energy distribution. A single 27-h self-sustaining experiment found that low-frequency oscillation has a significant impact on the emitter and the orifice, thereby reducing the cathode lifetime. The main reaction process inside and outside the iodine cathode and the influence relationship between the reactions were understood by the oscillation characteristics. It provides a theoretical basis to improve the performance of the iodine hollow cathode in the future. © 2025 Elsevier B.V., All rights reserved.

AB - Iodine-fed electric propulsion systems have achieved significant technological progress in recent years, the operating range of these systems remains fundamentally limited by ampere level iodine compatible hollow cathode technology. Preliminary studies on discharge characteristics have found that LaB6 hollow cathode is a potential strategy. In this study, a conventional LaB6 hollow cathode made with iodine-resistant materials was designed and tested in an iodine-compatible vacuum facility. The waveform, bispectral characteristics, and dispersion relation of the iodine hollow cathode were obtained and compared with the estimated collision reaction frequency. We analyzed the potential reaction processes both inside and outside the cathode and assessed how oscillation affects the lifetime of the iodine hollow cathode. The results indicate that the chaotic low-frequency oscillations were the main oscillation mode affecting the performance of the iodine cathode, involving multiple reaction processes that interfere with each other. The oscillation inside the cathode was mainly affected by vibrational excitation and iodine molecular ionization, while the oscillation outside the cathode was affected primarily by processes such as neutral gas flow, excitation, ionization, dissociation, and ion transit-time instability. The overall oscillation of iodine cathode is a non-dominant unstable mode with uniform energy distribution. A single 27-h self-sustaining experiment found that low-frequency oscillation has a significant impact on the emitter and the orifice, thereby reducing the cathode lifetime. The main reaction process inside and outside the iodine cathode and the influence relationship between the reactions were understood by the oscillation characteristics. It provides a theoretical basis to improve the performance of the iodine hollow cathode in the future. © 2025 Elsevier B.V., All rights reserved.

KW - Electric propulsion

KW - Hollow cathode

KW - Iodine propellant

KW - Oscillation characteristic

KW - Boron compounds

KW - Electric discharges

KW - Iodine

KW - Iodine compounds

KW - Ionization of gases

KW - Oscillating flow

KW - Vacuum applications

KW - Electric propulsion systems

KW - Frequency oscillations

KW - Hollow cathodes

KW - LaB 6

KW - Lower frequencies

KW - Oscillation characteristics

KW - Performance

KW - Reaction process

KW - Technological progress

KW - Cathodes

KW - Flow of gases

UR - https://www.mendeley.com/catalogue/bc8551f9-3e91-3811-acc7-cdbae8608111/

U2 - 10.1016/j.vacuum.2025.114744

DO - 10.1016/j.vacuum.2025.114744

M3 - статья

VL - 242

JO - Vacuum

JF - Vacuum

SN - 0042-207X

ER -

ID: 143195998