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A Computer-Based Test Bench for Modulating Terahertz FEL Radiation Power. / Shevchenko, O. A.; Salikova, T. V.; Tararyshkin, S. V. и др.

в: Bulletin of the Russian Academy of Sciences: Physics, Том 83, № 2, 01.02.2019, стр. 159-162.

Результаты исследований: Научные публикации в периодических изданияхстатьяРецензирование

Harvard

Shevchenko, OA, Salikova, TV, Tararyshkin, SV, Getmanov, YV & Veber, SL 2019, 'A Computer-Based Test Bench for Modulating Terahertz FEL Radiation Power', Bulletin of the Russian Academy of Sciences: Physics, Том. 83, № 2, стр. 159-162. https://doi.org/10.3103/S1062873819020266

APA

Shevchenko, O. A., Salikova, T. V., Tararyshkin, S. V., Getmanov, Y. V., & Veber, S. L. (2019). A Computer-Based Test Bench for Modulating Terahertz FEL Radiation Power. Bulletin of the Russian Academy of Sciences: Physics, 83(2), 159-162. https://doi.org/10.3103/S1062873819020266

Vancouver

Shevchenko OA, Salikova TV, Tararyshkin SV, Getmanov YV, Veber SL. A Computer-Based Test Bench for Modulating Terahertz FEL Radiation Power. Bulletin of the Russian Academy of Sciences: Physics. 2019 февр. 1;83(2):159-162. doi: 10.3103/S1062873819020266

Author

Shevchenko, O. A. ; Salikova, T. V. ; Tararyshkin, S. V. и др. / A Computer-Based Test Bench for Modulating Terahertz FEL Radiation Power. в: Bulletin of the Russian Academy of Sciences: Physics. 2019 ; Том 83, № 2. стр. 159-162.

BibTeX

@article{668892ee34a44ddaa994e42b86b92c0b,
title = "A Computer-Based Test Bench for Modulating Terahertz FEL Radiation Power",
abstract = "Abstract: A simple technique is proposed to modulate the output radiation power in a free-electron laser (FEL) oscillator that allows the average radiation power to be adjusted smoothly, and short (as brief as 35 μs) radiation macrobunches to be obtained. It is based on the periodic shift of the electron bunch phase with respect to that of an FEL radiation bunch stored in the optical cavity, resulting in lasing suppression. The phase shift frequency required to suppress lasing is relatively low and does not change the electron bunch repetition rate appreciably. A computer-based test bench is created to demonstrate the feasibility of the proposed technique. The test bench contains standard CAMAC blocks: a G0609 modulator timer and a G0601 clock generator. The electron bunch phase is shifted via programmable skipping of the reference frequency periods used to start the current modulator in the electron gun. The skipping is controlled by a computer program operating in the real-time mode. The clock generator is used to send synchronization signals to the radiation user{\textquoteright}s equipment. The test bench is tested via EPR spectroscopy with a temporal resolution that allows the duration of the generated macrobunches to be estimated.",
author = "Shevchenko, {O. A.} and Salikova, {T. V.} and Tararyshkin, {S. V.} and Getmanov, {Ya V.} and Veber, {S. L.}",
year = "2019",
month = feb,
day = "1",
doi = "10.3103/S1062873819020266",
language = "English",
volume = "83",
pages = "159--162",
journal = "Bulletin of the Russian Academy of Sciences: Physics",
issn = "1062-8738",
publisher = "PLEIADES PUBLISHING INC",
number = "2",

}

RIS

TY - JOUR

T1 - A Computer-Based Test Bench for Modulating Terahertz FEL Radiation Power

AU - Shevchenko, O. A.

AU - Salikova, T. V.

AU - Tararyshkin, S. V.

AU - Getmanov, Ya V.

AU - Veber, S. L.

PY - 2019/2/1

Y1 - 2019/2/1

N2 - Abstract: A simple technique is proposed to modulate the output radiation power in a free-electron laser (FEL) oscillator that allows the average radiation power to be adjusted smoothly, and short (as brief as 35 μs) radiation macrobunches to be obtained. It is based on the periodic shift of the electron bunch phase with respect to that of an FEL radiation bunch stored in the optical cavity, resulting in lasing suppression. The phase shift frequency required to suppress lasing is relatively low and does not change the electron bunch repetition rate appreciably. A computer-based test bench is created to demonstrate the feasibility of the proposed technique. The test bench contains standard CAMAC blocks: a G0609 modulator timer and a G0601 clock generator. The electron bunch phase is shifted via programmable skipping of the reference frequency periods used to start the current modulator in the electron gun. The skipping is controlled by a computer program operating in the real-time mode. The clock generator is used to send synchronization signals to the radiation user’s equipment. The test bench is tested via EPR spectroscopy with a temporal resolution that allows the duration of the generated macrobunches to be estimated.

AB - Abstract: A simple technique is proposed to modulate the output radiation power in a free-electron laser (FEL) oscillator that allows the average radiation power to be adjusted smoothly, and short (as brief as 35 μs) radiation macrobunches to be obtained. It is based on the periodic shift of the electron bunch phase with respect to that of an FEL radiation bunch stored in the optical cavity, resulting in lasing suppression. The phase shift frequency required to suppress lasing is relatively low and does not change the electron bunch repetition rate appreciably. A computer-based test bench is created to demonstrate the feasibility of the proposed technique. The test bench contains standard CAMAC blocks: a G0609 modulator timer and a G0601 clock generator. The electron bunch phase is shifted via programmable skipping of the reference frequency periods used to start the current modulator in the electron gun. The skipping is controlled by a computer program operating in the real-time mode. The clock generator is used to send synchronization signals to the radiation user’s equipment. The test bench is tested via EPR spectroscopy with a temporal resolution that allows the duration of the generated macrobunches to be estimated.

UR - http://www.scopus.com/inward/record.url?scp=85065467300&partnerID=8YFLogxK

U2 - 10.3103/S1062873819020266

DO - 10.3103/S1062873819020266

M3 - Article

AN - SCOPUS:85065467300

VL - 83

SP - 159

EP - 162

JO - Bulletin of the Russian Academy of Sciences: Physics

JF - Bulletin of the Russian Academy of Sciences: Physics

SN - 1062-8738

IS - 2

ER -

ID: 20161732