[1] Knaster J, Moeslang A, Muroga T. Materials research for fusion[J]. Nat Phys, 2016, 12(5): 424-434. DOI: 10.1038/nphys3735 [2] Fischer U, Möslang A, Ivanov AA. Assessment of the gas dynamic trap mirror facility as intense neutron source for fusion material test irradiations[J]. Fusion Eng Des, 2000, 48(3/4): 307-325. DOI: 10.1016/S0920-3796(00)00164-2 [3] Molvik A, Ivanov A, Kulcinski GL, et al. A gas dynamic trap neutron source for fusion material and subcomponent testing[J]. Fusion Sci Technol, 2010, 57(4): 369-394. DOI: 10.13182/FST10-A9499 [4] Knaster J. An assessment of the available alternatives for fusion relevant neutron sources[J]. Nucl Fusion, 2018, 58(9): 095001. DOI: 10.1088/1741-4326/aacf4f [5] Bagryansky PA, Chen Z, Kotelnikov IA, et al. Development strategy for steady-state fusion volumetric neutron source based on the gas-dynamic trap[J]. Nucl Fusion, 2020, 60(3): 036005. DOI: 10.1088/1741-4326/ab668d [6] Mirnov VV, Ryutov DD. Linear gasdynamic system for plasma confinement[EB/OL]. 1979. https://www.osti.gov/biblio/5565404-linear-gasdynamic-system-plasma-confinement, [2020-07-20]. [7] 曾秋孙. 高能量增益GDT聚变中子源物理设计研究[D]. 合肥: 中国科学技术大学, 2018. Zeng QS. Physics design of high energy gain fusion neutron source based on gas dynamic trap[D]. Hefei: University of Science and Technology of China, 2018. [8] 曾秋孙, 邹小亮, 廉超, 等. GDT聚变中子源驱动的嬗变系统的初步物理设计与包层中子学分析[J]. 核科学与工程,2018,38(2):217-224. DOI: 10.3969/j.issn.0258-0918.2018.02.006 Zeng QS, Zou XL, Lian C, et al. Preliminary physical design and blanket neutronics analysis of a transmutation system driven by the gas dynamic trap based fusion neutron source[J]. Nucl Sci Eng, 2018, 38(2): 217-224. DOI: 10.3969/j.issn.0258-0918.2018.02.006 [9] 陈德鸿, 杜红飞, 蒋洁琼, 等. 基于GDT的聚变裂变混合堆堆芯参数初步设计研究[J]. 核科学与工程,2012,32(1):63-67. DOI: 10.3969/j.issn.0258-0918.2012.01.011 Chen DH, Du HF, Jiang JQ, et al. Preliminary design of core plasma parameters for the fusion-fission hybrid reactor based on GDT[J]. Nucl Sci Eng, 2012, 32(1): 63-67. DOI: 10.3969/j.issn.0258-0918.2012.01.011 [10] 杜红飞, 陈德鸿, 蒋洁琼, 等. 基于GDT的14 MeV中子源初步设计研究[J]. 核科学与工程,2012,32(1):68-73. DOI: 10.3969/j.issn.0258-0918.2012.01.012 Du HF, Chen DH, Jiang JQ, et al. Preliminary design of GDT-based 14 MeV neutron source[J]. Nucl Sci Eng, 2012, 32(1): 68-73. DOI: 10.3969/j.issn.0258-0918.2012.01.012 [11] 王孔钊, 王悦, 肖薇, 等. 秦山三核重水堆核电站职业氚内照射监测报告[J]. 中国辐射卫生,2018,27(4):294-298. DOI: 10.13491/j.issn.1004-714x.2018.04.002 Wang KZ, Wang Y, Xiao W, et al. Personnel dosimetry report on occupational tritium internal exposure of third Qinshan heavy water reactor nuclear power plant[J]. Chin J Radiol Heal, 2018, 27(4): 294-298. DOI: 10.13491/j.issn.1004-714x.2018.04.002 [12] 侯炳君, 赵鸿翮, 温晋爱, 等. VVER机组商运后的氚剂量监测与评价[J]. 中国辐射卫生,2019,28(6):671-676. DOI: 10.13491/j.issn.1004-714x.2019.06.020 Hou BJ, Zhao HR, Wen JA, et al. Monitoring and evaluation on Tritium dose in VVER unit after commercial operation[J]. Chin J Radiol Heal, 2019, 28(6): 671-676. DOI: 10.13491/j.issn.1004-714x.2019.06.020