真空 ›› 2026, Vol. 63 ›› Issue (5): 55-61.doi: 10.13385/j.cnki.vacuum.2026.05.08
李旭1, 孟献才1, 刘志鹏2, 杨龙2, 张德皓1, 闫振1, 梁立振1,3
LI Xu1, MENG Xiancai1, LIU Zhipeng2, YANG Long2, ZHANG Dehao1, YAN Zhen1, LIANG Lizhen1,3
摘要: 加速器中子源在工业检测、安全筛查及基础研究中具有重要应用价值,但现有小型氘氘(DD)中子源面临高压打火风险高和长期稳定性差的重大挑战。本研究旨在研制一款小型化且能稳定运行的高性能DD中子源,装置核心基于全永磁微波离子源、双电极引出和钛片水冷靶设计,系统尺寸为长50 cm×宽28 cm×高28 cm。通过采用三磁铁结构设计,在等离子体腔室内能够形成均匀的87.5 mT磁场,可实现40 W低功率点亮等离子体;通过优化引出电极结构,增加电极之间耐压性能,有效抑制高压打火;通过靶的水冷结构建模与优化,显著提升了其散热能力,在保证产额稳定的同时,大大延长靶的使用寿命。优化后,系统在95 kV加速电压和12 mA束流条件下,成功进行了长达66 h,产额1×109 n/s的连续运行测试。实现整机保持高效零打火,充分验证了系统的长期运行可靠性。
中图分类号: TL58
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