TY - JOUR
T1 - Simulation, experiment, and performance of a 4 MV induction voltage adder machine for flash x-ray radiography SIMULATION, EXPERIMENT, and PERFORMANCE ... WEI HAO et al.
AU - Wei, Hao
AU - Yin, Jiahui
AU - Zhang, Pengfei
AU - Sun, Fengju
AU - Qiu, Aici
AU - Liang, Tianxue
AU - Jiang, Xiaofeng
AU - Wang, Zhiguo
AU - Sun, Jiang
AU - Luo, Qiangfeng
AU - Yang, Hailiang
AU - Yao, Weibo
AU - Jiang, Hongyu
AU - Wu, Hanyu
N1 - Publisher Copyright:
© 2021 authors. Published by the American Physical Society. Published by the American Physical Society under the terms of the "https://creativecommons.org/licenses/by/4.0/"Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI.
PY - 2021/2/23
Y1 - 2021/2/23
N2 - A 4 MV flash x-ray radiographic machine based on induction voltage adders has been developed. The configuration and design of this machine are reviewed. A three-dimensional, fully electromagnetic model and a circuit simulation model are established to compare with the experiments. The simulation results are in overall agreement with the electrical measurements. The pulsed power performances and output fluctuations of this machine over successive shot sequences are demonstrated. Among the 54 shots, the average peak output voltage is 4.4±0.3 MV (1-σ) and the average diode current is 81.6±4.5 kA (1-σ). Four typical malfunction modes are identified shot by shot including the diode-impedance collapse, insulator flashover, core saturation, and drive mistiming. Some remarkable features from each fault mode are recognized. The first-to-last time spreads of the four drive pluses, tspread, are chosen to quantify the drive synchronization and the influences of the tspread on the peak voltages and diode currents are summarized from the almost 100 shots since the machine was commissioned. It is found that, in order to achieve a voltage of up to 4 MV, tspread should not exceed 25 ns, which is approximately twice the time for electromagnetic wave propagation from the first cavity to the last cavity in vacuum. In addition, the rise time and FWHM duration of output voltages varying with tspread are given. The results indicate that the rise time changes little at the beginning but increases exponentially once the tspread exceeds 30 ns. The FWHM duration nearly increases linearly with tspread.
AB - A 4 MV flash x-ray radiographic machine based on induction voltage adders has been developed. The configuration and design of this machine are reviewed. A three-dimensional, fully electromagnetic model and a circuit simulation model are established to compare with the experiments. The simulation results are in overall agreement with the electrical measurements. The pulsed power performances and output fluctuations of this machine over successive shot sequences are demonstrated. Among the 54 shots, the average peak output voltage is 4.4±0.3 MV (1-σ) and the average diode current is 81.6±4.5 kA (1-σ). Four typical malfunction modes are identified shot by shot including the diode-impedance collapse, insulator flashover, core saturation, and drive mistiming. Some remarkable features from each fault mode are recognized. The first-to-last time spreads of the four drive pluses, tspread, are chosen to quantify the drive synchronization and the influences of the tspread on the peak voltages and diode currents are summarized from the almost 100 shots since the machine was commissioned. It is found that, in order to achieve a voltage of up to 4 MV, tspread should not exceed 25 ns, which is approximately twice the time for electromagnetic wave propagation from the first cavity to the last cavity in vacuum. In addition, the rise time and FWHM duration of output voltages varying with tspread are given. The results indicate that the rise time changes little at the beginning but increases exponentially once the tspread exceeds 30 ns. The FWHM duration nearly increases linearly with tspread.
UR - https://www.scopus.com/pages/publications/85101987381
U2 - 10.1103/PhysRevAccelBeams.24.020402
DO - 10.1103/PhysRevAccelBeams.24.020402
M3 - 文章
AN - SCOPUS:85101987381
SN - 2469-9888
VL - 24
JO - Physical Review Accelerators and Beams
JF - Physical Review Accelerators and Beams
IS - 2
M1 - 020402
ER -