Author: Quan, S.W.
Paper Title Page
MOPEA038 Coherent Wiggler Radiation of Picosecond CW Electron Beam Produced by DC-SRF Photoinjector 160
 
  • S. Huang, J.E. Chen, S. Chen, K.X. Liu, S.W. Quan, Zh.W. Wang, X.D. Wen, F. Zhu
    PKU, Beijing, People's Republic of China
 
  The DC-SRF pho­toin­jec­tor at Peking Uni­ver­sity is ca­pa­ble of pro­vid­ing CW elec­tron beam with the en­ergy of 3-5 MeV. The beam has high rep­e­ti­tion rate, pi­cosec­ond bunch length and high qual­ity, which can be used to pro­duce high rep­e­ti­tion rate THz wave by wig­gler ra­di­a­tion. Through off-crest ac­cel­er­a­tion, elec­tron beam from the in­jec­tor may be bunched, which will lead to co­her­ent en­hance­ment of the ra­di­a­tion power. With cur­rent setup of the DC-SRF in­jec­tor and a 10-pe­riod wig­gler, THz ra­di­a­tion power of 10s mW to a few watts can be achieved within the wave­length range of 200 μm to 500 μm. In this work, we will pre­sent the cal­cu­la­tion re­sults about THz ra­di­a­tion pro­duced by the elec­tron beam from DC-SRF pho­toin­jec­tor. The prepa­ra­tion for the ex­per­i­ments will be also de­scribed.  
 
MOPEA040 Study of Geometry Dependent Multipacting of a Superconducting QWR 166
 
  • K. Zhou, X.Y. Lu, X. Luo, S.W. Quan, L. Yang, Z.Y. Yao
    PKU, Beijing, People's Republic of China
 
  Funding: The Major Research Plan of National Natural Science Foundation of China
A su­per­con­duct­ing quar­ter wave res­onator (QWR) of fre­quency=162.5 MHz and β=0.085 has been de­signed at Peking Uni­ver­sity. This paper focus on the mul­ti­pact­ing (MP) study for the QWR with CST Par­ti­cle Stu­dio. The sim­u­la­tion re­sults for the ini­tial de­signed model re­veal that there is no sign of MP with its nor­mal op­er­at­ing ac­cel­er­at­ing gra­di­ents in the range of 6-8 MV/m. The ac­cel­er­at­ing gra­di­ent range that may incur MP is from about 1.4 MV/m to 3.2 MV/m, and the places where MP may be en­coun­tered are mainly lo­cated at the top part of the QWR. So the ef­fect of dif­fer­ent top geome­tries on MP has also been stud­ied in depth. Our re­sults show that in­ward con­vex round roof is bet­ter than other round roofs, and plane roofs have an ob­vi­ous ad­van­tage over round roofs on the sup­pres­sion of MP in gen­eral. While con­sid­er­ing the op­ti­miza­tion of its elec­tro­mag­netic (EM) de­sign, our ini­tial de­signed model is also ac­cept­able.
 
 
TUPWA021 Multi-Pass, Multi-Bunch Beam Breakup of ERLs with 9-cell Tesla Cavities 1769
 
  • S. Chen, J.E. Chen, L.W. Feng, S. Huang, Y.M. Li, K.X. Liu, S.W. Quan, F. Zhu
    PKU, Beijing, People's Republic of China
 
  Funding: Supported by the Major State Basic Research Development Program of China under Grant No. 2011CB808303 and No. 2011CB808304
In this paper, multi-pass, multi-bunch beam break-up of some small-scale En­ergy Re­cov­ery Linac(ERL) con­fig­u­ra­tion using 9-cell Tesla cav­ity is dis­cussed. The thresh­old cur­rents of dif­fer­ent cases are in­ves­ti­gated and some fac­tors that in­flu­ence the thresh­old cur­rents are dis­cussed.
 
 
WEPWO029 Design of a SRF Quarter Wave Electron Gun at Peking University 2378
 
  • P.L. Fan, K.X. Liu, S.W. Quan, F. Zhu
    PKU, Beijing, People's Republic of China
 
  Funding: Work supported by National Basic Research Project (No. 2011CB808302) and National Natural Science Funds (No. 11075007)
Su­per­con­duct­ing RF elec­tron guns hold out the promise of very bright beams for use in elec­tron in­jec­tors, par­tic­u­larly in fu­ture high av­er­age power free-elec­tron lasers (FELs) and en­ergy re­cov­ery linacs (ERLs). Peking Uni­ver­sity is de­sign­ing a new SRF gun which is com­posed of a quar­ter wave res­onator (QWR) and an el­lip­ti­cal cav­ity. Com­par­ing to the el­lip­ti­cal cav­ity, the QWR is suf­fi­ciently com­pact at the same fre­quency and its elec­tric field is quasi-DC. We have fin­ished the pre­lim­i­nary de­sign of the QWR cav­ity. The sim­u­la­tion shows that mul­ti­pact­ing is not a crit­i­cal issue for our cav­ity struc­ture. Beam dy­namic sim­u­la­tion of the QWR cav­ity is also pre­sented.
contact author : zhufeng7726@pku.edu.cn