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Abstract:
One kind of instantaneous electron beam emittance measurement system based on the optical transition radiation principle and double imaging optical method has been set up. It is mainly adopted in the test for the intense electron-beam produced by a linear induction accelerator. The system features two characteristics. The first one concerns the system synchronization signal triggered by the following edge of the main output waveform from a Blumlein switch. The synchronous precision of about 1 ns between the electron beam and the image capture time can be reached in this way so that the electron beam emittance at the desired time point can be obtained. The other advantage of the system is the ability to obtain the beam spot and beam divergence in one measurement so that the calculated result is the true beam emittance at that time, which can explain the electron beam condition. It provides to be a powerful beam diagnostic method for a 2.5 kA, 18.5 MeV, 90 ns (FWHM) electron beam pulse produced by Dragon I. The ability of the instantaneous measurement is about 3 ns and it can measure the beam emittance at any time point during one beam pulse. A series of beam emittances have been obtained for Dragon I. The typical beam spot is 9.0 mm (FWHM) in diameter and the corresponding beam divergence is about 10.5 mrad.
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References
[1]
|
JIANG Xiao-Guo, YANG Guo-Jun, ZHANG Kai-Zhi et al. High Energy Physics and Nuclear Physics, 2005, 29(11): 1095-1099 (in Chinese)[2] JIANG Xiao-Guo, LI Cheng-Gang, WANG Yuan et al. High Energy Physics and Nuclear Physics, 2006, 30(8): 784-787 (in Chinese)[3] YANG Guo-Jun, LIU Cheng-Jun, LIN Yu-Zheng et al. High Power Laser and Particle Beams, 2004, 16(9): 1215-1218 (in Chinese)[4] Sage G P Le. Time-Resolved Emittance Characterization of an Induction Linac Beam Using Optical Transition Radiation. UCRL-ID-153254. LLNL, 2002. 11[5] GU An-Jia, DING Yuan-Tao, ZHAO Kui et al. High Energy Physics and Nuclear Physics, 2003, 27(2): 163-168[6] AN Lian-Sheng, LI Lin, LI Quan-Chen. Applied Optics. Beijing: The Press of Beijing Institute of Technology, 2002, 3: 36-37[7] HU Yu Xi, AN Lian-Sheng. Applied Optics. Hefei: The Press of China University of Science and Technology, 2002, 2: 52-53 |
-
[1] |
LIANG Jun
, LIU Yan-Chun
, ZHU Qiao
. Thermodynamics of noncommutative geometry inspired black holes based on Maxwell-Boltzmann smeared mass distribution. Chinese Physics C,
2014, 38(2): 025101.
doi: 10.1088/1674-1137/38/2/025101
|
[2] |
HUANG Jiang
, XIONG Yong-Qian
, CHEN De-Zhi
, LIU Kai-Feng
, YANG Jun
, LI Dong
, YU Tiao-Qin
, FAN Ming-Wu
, YANG Bo
. A permanent magnet electron beam spread system used fora low energy electron irradiation accelerator. Chinese Physics C,
2014, 38(10): 107008.
doi: 10.1088/1674-1137/38/10/107008
|
[3] |
YANG Hong-Xun (for the BESⅡ collaboration)
. Partial wave analysis of J/ψ→ppπ0 and measurement of J/ψ→ppη, ppη´. Chinese Physics C,
2009, 33(12): 1331-1335.
doi: 10.1088/1674-1137/33/12/048
|
[4] |
PENG Quan-Ling
, SUN Jian
, ZHAO Guang-Yuan
, SHI Cai-Tu
. Principle and Software Design of Helmhotz Coil Measurement System. Chinese Physics C,
2001, 25(9): 920-925. |
[5] |
SANG Jian-Ping
, LIU Chao-Shan
, LIU Yong
. Relation Between the Gap at Z=64 Subshell and the Abrupt Transition in the Region N=88~90. Chinese Physics C,
1991, 15(2): 150-157. |
[6] |
WANG Man
, LI Jin
, CUI Xiang-Zong
, XIA Xiao-Mi
, LAI Yuan-Fen
, YAO Xiao-Guang
. PROTOTYPE OF END CAP SHOWER COUNTERAND ITS BEAM TEST. Chinese Physics C,
1987, 11(3): 321-326. |
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