Zhu Renli, Chen Weidong, Li Hui, Ouyang Huafu, Liu Shengjin, Xiao Yongchuan, Lü Yongjia, Cao Xiuxia, Li Fang, Sun Jilei, Liu Shunming, Xue Kangjia
Institute of High Energy Physics (IHEP), Chinese Academy of Sciences (CAS), Beijing 100049, China.
Rev Sci Instrum. 2022 May 1;93(5):053302. doi: 10.1063/5.0086220.
The China Spallation Neutron Source project Phase-II aims to deliver 500 kW beam power to the spallation target. To meet the beam power requirement, an RF-driven negative hydrogen ion source with an external-antenna has been developed. In order to optimize the beam transmission through the radio frequency quadrupole and the downstream linac, the low energy beam transport line needs to be carefully studied and the transverse emittance is focused in this paper. With computational simulation and experimental verification, the emittance growth caused by nonlinear magnetic fields of the solenoid and the residual magnetic fields at the measuring position has been carefully analyzed. The measurement uncertainty of the double-slit scanner has also been quantitatively estimated. Using the same plasma-beam boundary setting, the beam extraction system is also optimized with particle tracking simulation in CST PARTICLE STUDIO.
中国散裂中子源项目二期旨在向散裂靶提供500千瓦的束流功率。为满足束流功率要求,已开发出一种带有外部天线的射频驱动负氢离子源。为优化束流通过射频四极杆和下游直线加速器的传输,需要仔细研究低能束流传输线,并在本文中聚焦横向发射度。通过计算模拟和实验验证,仔细分析了螺线管的非线性磁场和测量位置处的残余磁场引起的发射度增长。还对双缝扫描仪的测量不确定度进行了定量估计。在CST PARTICLE STUDIO中使用相同的等离子体-束流边界设置,通过粒子跟踪模拟对束流引出系统进行了优化。