Ray-tracing analysis of the Wien velocity filter for protons

被引:0
|
作者
Jae Hong Kim
Yu-Soek Kim
机构
[1] Institute for Basic Sciences (IBS),Rare Isotope Science Project (RISP)
[2] Dongguk University,Department of Nuclear & Energy System Engineering
来源
关键词
Velocity filter; Proton; Ray tracing; Simulation;
D O I
暂无
中图分类号
学科分类号
摘要
A Wien velocity filter employs a combination of crossed magnetic and electrostatic fields in order to select the desired velocity of ions. Several microscopes and spectrometers are used as filters to ensure the introduction of a pure ion fraction into the lens, deflecting unnecessary particles which have slightly different energies. The Wien filter is also considered to be a useful device to transport mono-energy protons from a source to an injection system. In its simplest form, the Wien filter has two flat parallel electrodes that are arranged between two flat magnet poles, creating homogeneous electric and magnetic fields which cross each other. However, this type of filter has no focusing effect in the direction of the magnetic field and has an unmatched field distribution, which causes deflections of protons at the entrance and the exit of the filter. At higher magnetic field strengs, for fast protons, the deflection of the trajectories becomes larger; thus, the transport efficiency is reduced. A low-aberration velocity filter is needed for high transport efficiency. Recently, a stigmatic focusing of the filter by using hyperbolic cylindrical magnet pole pieces, which produce an inhomogeneous magnetic field inside the ExB filter, has been suggested. In this research, three types of Wien filters were designed in order to investigate the geometry of the electrodes and the magnet poles, thus minimizing aberrations. Ray-tracing analyses were carried out to estimate the performance of the proposed Wien filters within a useful velocity selector.
引用
收藏
页码:389 / 393
页数:4
相关论文
共 50 条
  • [1] Ray-tracing analysis of the Wien velocity filter for protons
    Kim, Jae Hong
    Kim, Yu-Soek
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2015, 66 (03) : 389 - 393
  • [2] A Ray-Tracing Analysis of ICRH in Tokamaks
    张新军
    赵燕平
    秦成明
    T.WlATARI
    R.KUMAZAWA
    T.SEKI
    Plasma Science and Technology, 2006, (04) : 394 - 396
  • [3] A Ray-Tracing Analysis of ICRH in Tokamaks
    张新军
    赵燕平
    秦成明
    TWlATARI
    RKUMAZAWA
    TSEKI
    Plasma Science and Technology, 2006, 8 (04) : 394 - 396
  • [4] A ray-tracing analysis of ICRH in tokamaks
    Zhang Xinjun
    Zhao Yanping
    Qin Chengming
    Watari, T.
    Kumazawa, R.
    Seki, T.
    PLASMA SCIENCE & TECHNOLOGY, 2006, 8 (04) : 394 - 396
  • [5] Hollow waveguides ray-tracing analysis
    Izquierdo, David
    Salinas, Inigo
    Cadarso, Victor
    Llobera, Andreu
    Ignacio Garces, Juan
    MICRO-OPTICS 2008, 2008, 6992
  • [6] Ray-Tracing Correction for GNSS Velocity Estimation Using Doppler Frequency: A Feasibility Analysis
    Zhang, Liyuan
    Ng, Hoi-Fung
    Zhang, Guohao
    Hsu, Li-Ta
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2024, 73 : 1 - 10
  • [7] Ray-tracing software
    不详
    OPTICS AND LASER TECHNOLOGY, 1997, 29 (06): : III - III
  • [8] A Ray-Tracing Algorithm Based on the Computation of (Exact) Ray Paths With Bidirectional Ray-Tracing
    Taygur, Mehmet Mert
    Eibert, Thomas F.
    IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2020, 68 (08) : 6277 - 6286
  • [9] ITERATIVE RAY-TRACING
    WEINSTEIN, W
    PROCEEDINGS OF THE PHYSICAL SOCIETY OF LONDON SECTION B, 1952, 65 (393): : 731 - 735
  • [10] Ray-tracing analysis of planar optical systems
    Bathel, R
    Sinzinger, S
    Jahns, J
    OPTICS IN COMPUTING 2000, 2000, 4089 : 645 - 646