31 / 2023-04-03 12:18:13
Physical design of RFQ injector system for proton synchrotron
Proton therapy, 4-vane RFQ, APTR, fast-bunching
Draft Pending
Jian Qiao / Fudan University Shanghai Cancer Center;Department of Oncology, Shanghai Medical College, Fudan University, Shanghai, China;Shanghai Clinical Research Center for Radiation Oncology, Shanghai, China;Shanghai Key Laboratory of Radiation Oncology, Shanghai, China;Department of Radiation Oncology, Fudan University Shanghai Cancer Center, Shanghai, China
Nan Yan / Shanghai Institute of Applied Physics, Chinese Academy of Sciences;University of the Chinese Academy of Sciences, Beijing 100049, China
Xiucui Xie / Shanghai Institute of Applied Physics, Chinese Academy of Sciences,;Shanghai APACTRON Particle Equipment Co Ltd, Shanghai, CN 201800
Yuehu Pu / Medical Equipment Innovation Research Center, West China School of Medicine, Med+X Center for Manufacturing;West China Hospital, Sichuan University, Chengdu, PR China;Medical Device Regulatory Research and Evaluation Centre, West China Hospital, Sichuan University, Chengdu, PR China
Weigang Hu / Department of Radiation Oncology, Fudan University Shanghai Cancer Center;Department of Oncology, Shanghai Medical College, Fudan University, Shanghai, China;Shanghai Clinical Research Center for Radiation Oncology, Shanghai, China;Shanghai Key Laboratory of Radiation Oncology, Shanghai, China
The APTR (Shanghai Advanced Proton Therapy Facility) project, proposed by the Shanghai Institute of Applied Physics (SINAP) of Chinese Academy of Sciences, has entered the commissioning stage. As the key techniques of APTR complex, the injector system has been upgraded to accelerate proton beam to 7.0 MeV in the context of comprehensive localization and miniaturization. In order to pre-accelerate, longitudinally bunch and transversely focus the low-energy continuous beam from ion source, a pre-injecting system Radio-Frequency Quadruple (RFQ) has been designed. Based on fast bunching strategy, this RFQ, operated at 325 MHz, accelerates proton particles to 3.0 MeV. The phase advance has been taken into consideration, and parametric resonance has been carefully avoided by adjusting the vane parameters. The whole transmission efficiency has been optimized to 98.0% to meet the machining requirements and the emittance growth in horizontal and vertical directions are about 1.1%, 3.3% along the whole cavity. This paper discusses the beam dynamics design schemes, main parameter selections, simulation results and tolerance analysis. It can provide important theoretical base for linear injection system of proton synchrotron-based therapy facility.
Important Date
  • Conference Date

    Jun 05

    2023

    to

    Jun 09

    2023

  • Apr 30 2023

    Early Bird Registration

  • May 01 2023

    Abstract Submission Deadline

  • May 01 2023

    Abstract Notification of Acceptance

  • May 01 2023

    Draft paper submission deadline

  • May 31 2023

    Registration deadline

Sponsored By
Science and Technology on Plasma Physics Laboratory
Department of Astronomy, Beijing Normal University
Organized By
Matter and Radiation at Extremes
Institute of Fluid Physics, China Academy of Engineering Physics, China
Institute of Applied Physics and Computational Mathematics, Beijing, China
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