Magnetic field design of solenoid for cold cathode Penning ion source of miniature neutron tube

IF 1.6 3区 物理与天体物理 Q3 PHYSICS, FLUIDS & PLASMAS Plasma Science & Technology Pub Date : 2023-06-06 DOI:10.1088/2058-6272/accbab
Shaolei Jia, Zhaohu Lu, Guanhao Li, Siyuan Chen, Yingying Cao, Pingwei Sun, Shangrui Jiang, Hailong Xu, Shiwei Jing
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Abstract

Abstract A high-yield and beam-stable neutron tube can be applied in many fields. It is of great significance to the optimal external magnetic field intensity of the cold-cathode Penning ion source (PIS) and precisely controls the movement of deuterium (D), tritium (T) ions and electrons in the source of the neutron tubes. A cold-cathode PIS is designed based on the solenoidal magnetic field to obtain better uniformity of the magnetic field and higher yield of the neutron tube. The degree of magnetic field uniformity among the magnetic block, double magnetic rings and solenoidal ion sources is compared using finite element simulation methods. Using drift diffusion approximation and a magnetic field coupling method, the plasma distribution of hydrogen and the relationship between plasma density and magnetic field intensity at 0.06 Pa pressure and a solenoid magnetic field are obtained. The results show that the solenoidal ion source has the most uniform magnetic field distribution. The optimum magnetic field strength of about 0.1 T is obtained in the ion source at an excitation voltage of 1 V. The maximum average number density of monatomic hydrogen ions (H + ) is 1 × 10 8 m −3 , and an ion-beam current of about 14.51 μ A is formed under the −5000 V extraction field. The study of the solenoidal magnetic field contributes to the understanding of the particle dynamics within the PIS and provides a reference for the further improvement of the source performance of the neutron tube in the future.
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微型中子管冷阴极彭宁离子源螺线管磁场设计
摘要高产率、束稳定的中子管具有广泛的应用前景。它对冷阴极彭宁离子源(PIS)的最佳外磁场强度和精确控制中子管源中氘(D)、氚(T)离子和电子的运动具有重要意义。为了获得更好的磁场均匀性和更高的中子管产率,设计了一种基于螺线管磁场的冷阴极PIS。采用有限元仿真方法对磁块、双磁环和螺线管离子源之间的磁场均匀度进行了比较。采用漂移扩散近似法和磁场耦合法,得到了在0.06 Pa压力和螺线管磁场作用下氢的等离子体分布以及等离子体密度与磁场强度的关系。结果表明,电磁离子源具有最均匀的磁场分布。在激励电压为1v时,离子源的最佳磁场强度约为0.1 T。单原子氢离子(H +)的最大平均数目密度为1 × 10 8 m−3,在−5000 V的萃取场下形成的离子束电流约为14.51 μ A。对螺线管磁场的研究有助于理解粒子动力学,为今后进一步提高中子管的源性能提供参考。
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来源期刊
Plasma Science & Technology
Plasma Science & Technology 物理-物理:流体与等离子体
CiteScore
3.10
自引率
11.80%
发文量
3773
审稿时长
3.8 months
期刊介绍: PST assists in advancing plasma science and technology by reporting important, novel, helpful and thought-provoking progress in this strongly multidisciplinary and interdisciplinary field, in a timely manner. A Publication of the Institute of Plasma Physics, Chinese Academy of Sciences and the Chinese Society of Theoretical and Applied Mechanics.
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