[1] Fusion Industry Association. The global fusion industry in 2021 [R/OL]. (2021) [2024-11-11]. https://www.fusionindustryassociation.org/wp-content/uploads/2024/08/FIA-report-2021-FINAL.pdf.
[2] Fusion Industry Association. The global fusion industry in 2022 [R/OL]. (2022) [2024-11-11]. https://www.fusionindustryassociation.org/wp-content/uploads/2024/08/FIA-2022-FINAL.pdf.
[3] Fusion Industry Association. The global fusion industry in 2023 [R/OL]. (2023) [2024-11-11]. https://www.fusionindustryassociation.org/wp-content/uploads/2023/07/FIA%E2%80%932023-FINAL-1.pdf.
[4] Fusion Industry Association. The global fusion industry in 2024 [R/OL]. (2024) [2024-11-11]. https://www.fusionindustryassociation.org/fusion-industry-reports/.
[5] ANDERTON M D, BAUS C, DAVIS T P, et al. Novel high temperature tritium blanket designs for confined spaces in spherical Tokamak fusion reactors [J]. Fusion engineering and design, 2025, 210: 114732. DOI:  10.1016/J.FUSENGDES.2024.114732.
[6] 周子豪, 魏一雄, 高超霖, 等. 面向核聚变数据标准化的数据仓库系统及数据处理系统: 117743476B [P]. 2024-11-26.

ZHOU Z H, WEI Y X, GAO C L, et al. Data warehouse architecture and data processing system for nuclear fusion data standardization: 117743476B [P]. 2024-11-26.
[7] 肖婷, 郑远, 仇志勇, 等. 托卡马克等离子体物理虚拟仿真实验设计 [J]. 实验技术与管理, 2025, 42(1): 152-160. DOI:  10.16791/j.cnki.sjg.2025.01.019.

XIAO T, ZHENG Y, QIU Z Y, et al. Design of a virtual simulation experiment for Tokamak plasma physics [J]. Experimental technology and management, 2025, 42(1): 152-160. DOI:  10.16791/j.cnki.sjg.2025.01.019.
[8] BONANOMI N, LUDA T, MANTICA P, et al. Time-dependent full-radius integrated modeling of the DTT Tokamak main plasma scenarios [J]. Nuclear fusion, 2025, 65(1): 016005. DOI:  10.1088/1741-4326/AD8EDB.
[9] SEO J, KIM I H, NAM H. Leveraging physics-informed neural computing for transport simulations of nuclear fusion plasmas [J]. Nuclear engineering and technology, 2024, 56(12): 5396-5404. DOI:  10.1016/J.NET.2024.07.048.
[10] HORACEK J, LUKES S, JAULMES F, et al. Scaling of HeatLMD-simulated impurity outflux from COMPASS-U liquid metal divertor [J]. Nuclear fusion, 2025, 65(1): 016014. DOI:  10.1088/1741-4326/AD8D67.
[11] JIN H G, KIM S K, MOON S, et al. Loss of power accident analysis for the HCCR blanket [J]. Nuclear engineering and technology, 2024, 56(12): 4947-4950. DOI:  10.1016/J.NET.2024.07.002.
[12] 桑耀东, 张清民, 郭昊轩, 等. 光学法测量核聚变质子束能谱反演算法模拟研究 [J]. 核电子学与探测技术, 2025, 45(1): 16-24. DOI:  10.20173/j.cnki.ned.20241112.005.

SANG Y D, ZHANG Q M, GUO H X, et al. Simulation study on unfolding algorithm for measuring proton beam energy spectrum of nuclear fusion using optical imaging method [J]. Nuclear electronics & detection technology, 2025, 45(1): 16-24. DOI:  10.20173/j.cnki.ned.20241112.005.
[13] 王健声, 茆华风, 茆智伟, 等. 整流变压器偏磁对托卡马克电源系统谐波不稳定的分析 [J]. 南方能源建设, 2022, 9(2): 70-76. DOI:  10.16516/j.gedi.issn2095-8676.2022.02.009.

WANG J S, MAO H F, MAO Z W, et al. Analysis of harmonic instability of Tokamak power system caused by rectifier transformer bias [J]. Southern energy construction, 2022, 9(2): 70-76. DOI:  10.16516/j.gedi.issn2095-8676.2022.02.009.
[14] 李佳怡, 古顺平, 古梦君, 等. 基于DNN的托卡马克等离子体边界重建研究 [J]. 南方能源建设, 2022, 9(2): 77-81. DOI:  10.16516/j.gedi.issn2095-8676.2022.02.010.

LI J Y, GU S P, GU M J, et al. Boundary reconstruction of Tokamak plasma based on deep neural networks [J]. Southern energy construction, 2022, 9(2): 77-81. DOI:  10.16516/j.gedi.issn2095-8676.2022.02.010.
[15] 梁展鹏, 向魁, 李华, 等. CFETR聚变发电厂的储能技术适用性分析 [J]. 南方能源建设, 2022, 9(2): 53-62. DOI:  10.16516/j.gedi.issn2095-8676.2022.02.007.

LIANG Z P, XIANG K, LI H, et al. Applicability analysis of energy storage techniques for CFETR fusion power plant [J]. Southern energy construction, 2022, 9(2): 53-62. DOI:  10.16516/j.gedi.issn2095-8676.2022.02.007.
[16] U. S. Department of Energy. Department of energy announces $4.6 million to fund public-private partnerships for fusion research [EB/OL]. (2024-08-08) [2024-11-11]. https://www.energy.gov/science/articles/department-energy-announces-46-million-fund-public-private-partnerships-fusion.
[17] Dick Durbin United States Senator Illinois. The department of energy quantum leadership act would authorize more than $2.5 billion for quantum research conducted at DOE [EB/OL]. (2024-08-01) [2024-11-11]. https://www.durbin.senate.gov/newsroom/press-releases/durbin-daines-introduce-bipartisan-legislation-to-fund-the-future-of-quantum-research-at-doe.
[18] U. S. Department of Energy. DOE announces new decadal fusion energy strategy [EB/OL]. (2024-07-06) [2024-11-11]. https://www.energy.gov/articles/doe-announces-new-decadal-fusion-energy-strategy.
[19] 中国科学院科技战略咨询研究院. 美国能源部投入4亿美元支持清洁能源、节能及碳管理 [EB/OL]. (2023-10-13) [2024-11-11]. http://www.casisd.cas.cn/zkcg/ydkb/kjqykb/2023/kjqykb2307/202310/t20231013_6902045.html.

Institutes of Science and Development, Chinese Academy of Sciences. The US Department of Energy invests $400 million to support clean energy, energy conservation, and carbon management [EB/OL]. (2023-10-13) [2024-11-11]. http://www.casisd.cas.cn/zkcg/ydkb/kjqykb/2023/kjqykb2307/202310/t20231013_6902045.html.
[20] Nuclear Engineering International. Joining forces for fusion [R/OL]. (2024-06-11) [2024-11-11]. https://www.neimagazine.com/analysis/joining-forces-for-fusion/?cf-view.
[21] Japan Cabinet Office. Fusion energy innovation strategy [R/OL]. (2023-04-14) [2024-11-11]. https://www8.cao.go.jp/cstp/fusion/230426_strategy.pdf.
[22] Nuclear Engineering International. Japan adopts national strategy on nuclear fusion [R/OL]. (2023-04-21) [2024-11-11]. https://www.neimagazine.com/news/japan-adopts-national-strategy-on-nuclear-fusion-10779676/.
[23] Fusion Industry Association. Japan announcements accelerate fusion commercialization efforts [EB/OL]. (2024) [2024-11-11]. https://www.fusionindustryassociation.org/japan-announcements-accelerate-fusion-commercialization-efforts/.
[24] 中共中央, 中华人民共和国国务院. 中共中央 国务院关于完整准确全面贯彻新发展理念做好碳达峰碳中和工作的意见 [EB/OL]. (2021-10-24) [2024-11-11]. http://www.qstheory.cn/yaowen/2021-10/24/c_1127990704.htm.

CPC Central Committee, State Council of the People's Republic of China. Opinions on fully, accurately, and comprehensively implementing the new development concept and doing a good job in carbon peak and carbon neutrality [EB/OL]. (2021-10-24) [2024-11-11]. http://www.qstheory.cn/yaowen/2021-10/24/c_1127990704.htm.
[25] 中华人民共和国国务院. 国务院关于印发2030年前碳达峰行动方案的通知 [EB/OL]. (2021-10-24) [2024-11-11]. http://www.gov.cn/zhengce/content/2021-10/26/content_5644984.htm.

State Council of the People's Republic of China. Action plan for peaking carbon emissions before 2030 [EB/OL]. (2021-10-24) [2024-11-11]. http://www.gov.cn/zhengce/content/2021-10/26/content_5644984.htm.
[26] 国家发展和改革委员会, 国家能源局. 国家发展改革委 国家能源局关于印发《“十四五”现代能源体系规划》的通知 [EB/OL]. (2022-01-29) [2024-11-11]. https://www.gov.cn/zhengce/zhengceku/2022-03/23/content_5680759.htm.

National Development and Reform Commission, National Energy Administration. 14th five year plan for modern energy system [EB/OL]. (2022-01-29) [2024-11-11]. https://www.gov.cn/zhengce/zhengceku/2022-03/23/content_5680759.htm.
[27] UK Atomic Energy Authority. STEP: spherical Tokamak for energy production [EB/OL]. (2020) [2024-11-11]. https://race.ukaea.uk/programmes/step/.
[28] 温一村. 全球可控核聚变发展态势研究 [J]. 竞争情报, 2024, 20(4): 60-65. DOI:  10.19442/j.cnki.ci.2024.04.009.

WEN Y C. Research on the development trends of global controlled nuclear fusion [J]. Competitive intelligence, 2024, 20(4): 60-65. DOI:  10.19442/j.cnki.ci.2024.04.009.
[29] 王海霞, 陈志斌, 李亚洲, 等. 国内外聚变核安全监管与许可初步分析研究 [J]. 核科学与工程, 2016, 36(4): 497-503. DOI:  10.3969/j.issn.0258-0918.2016.04.010.

WANG H X, CHEN Z B, LI Y Z, et al. Preliminary study of the status of fusion safety regulation and licensing [J]. Nuclear science and engineering, 2016, 36(4): 497-503. DOI:  10.3969/j.issn.0258-0918.2016.04.010.
[30] 中华人民共和国中央人民政府. 中国的核安全 [EB/OL]. (2019-09-03) [2025-01-08]. https://www.gov.cn/zhengce/2019-09/03/content_5426832.htm.

The Central People's Government of the People's Republic of China. China's nuclear safety [EB/OL]. (2019-09-03) [2025-01-08]. https://www.gov.cn/zhengce/2019-09/03/content_5426832.htm.
[31] 中华人民共和国生态环境部. 关于公开征求《聚变装置分级分类监管要求(征求意见稿)》意见的函 [EB/OL]. (2024-09-13) [2025-01-08]. https://www.mee.gov.cn/xxgk2018/xxgk/xxgk06/202409/t20240913_1085862.html.

Ministry of Ecology and Environment of the People's Republic of China. Letter on soliciting opinions on the "classification and supervision requirements for fusion devices (draft for comments)" [EB/OL]. (2024-09-13) [2025-01-08]. https://www.mee.gov.cn/xxgk2018/xxgk/xxgk06/202409/t20240913_1085862.html.
[32] 田林琳. 美国商业核聚变发展现状和特点分析 [J]. 全球科技经济瞭望, 2024, 39(9): 47-52.

TIAN L L. Current status and characteristics of commercial nuclear fusion development in the United States [J]. Global science, technology and economy outlook, 2024, 39(9): 47-52.
[33] ALZBUTAS R, VORONOV R. Reliability and safety analysis for systems of fusion device [J]. Fusion engineering and design, 2015, 94: 31-41. DOI:  10.1016/j.fusengdes.2015.03.001.
[34] 中国核网. 日本核聚变发电技术现状 [EB/OL]. (2015-01-30) [2025-01-08]. http://www.nuclear.net.cn/portal.php?mod=view&aid=5688.

China Nuclear Net. Current status of nuclear fusion power generation technology in Japan [EB/OL]. (2015-01-30) [2025-01-08]. http://www.nuclear.net.cn/portal.php?mod=view&aid=5688.
[35] SUN M, YU J, LI T S, et al. An integrated safety assessment method based on PSA and RAMI for fusion reactors [J]. Nuclear materials and energy, 2023, 34: 101391. DOI:  10.1016/J.NME.2023.101391.
[36] 吴宜灿, 王永峰, 刘超, 等. 强流氘氚聚变中子源HINEG设计 [C]//中国化学会, 中国工程物理研究院表面物理与化学重点实验室. 第二届中国氚科学与技术学术交流会论文集. 成都: 中国化学会, 中国工程物理研究院表面物理与化学重点实验室, 2017: 181.

WU Y C, WANG Y F, LIU C, et al. Design of high current deuterium tritium fusion neutron source HINEG [C]//Chinese Chemical Society, China Academy of Engineering Physics Key Laboratory of Surface Physics and Chemistry. Proceedings of the 2nd China Tritium Science and Technology Academic Exchange Conference. Chengdu: Chinese Chemical Society, China Academy of Engineering Physics Key Laboratory of Surface Physics and Chemistry, 2017: 181.