[1]马光同, 杨文姣, 王志涛, 等. 超导磁浮交通研究进展[J]. 华南理工大学学报(自然科学版), 2019, 47(7): 68-74, 82. Ma Guangtong, Yang Wenjiao, Wang Zhitao, et al. Research progress of superconducting maglev traffic[J]. Journal of South China University of Technology (Natural Science Edition), 2019, 47(7): 68-74, 82. [2]刘莲花, 蒋 滨, 陈代谢, 等. 超导磁共振仪器设备国产化现状及挑战[J]. 波谱学杂志, 2022, 39(3): 345-355. Liu Lianhua, Jiang Bin, Chen Daixie, et al. Current situation and challenges of localization of superconducting magnetic resonance instruments and equipment[J]. Chinese Journal of Magnetic Resonance, 2022, 39(3): 345-355. [3]郑贝贝. 超导材料在核磁共振成像领域的应用与进展[J]. 山东工业技术, 2020, 296(6): 66-70. Zheng Beibei. The application and progress of superconductor classification in the field of magnetic resonanceimagin[J]. Journal of Shandong Industrial Technology, 2020, 296(6): 66-70. [4]艾立旺, 张国民, 靖立伟, 等. 超导体在低温液体泵中的应用研究与发展现状[J]. 低温与超导, 2022, 49(2): 32-43. Ai Liwang, Zhang Guomin, Jing Liwei, et al. Application research and development status of superconductor in cryogenic liquid pump[J]. Cryogenics and Superconductivity, 2022, 49(2): 32-43. [5]丘 明. 超导输电技术在电网中的应用[J]. 电工电能新技术, 2017, 36(10): 55-62. Qiu Ming. Applications of superconducting power transmission in power grid[J]. Advanced Technology of Electrical Engineering and Energy, 2017, 36(10): 55-62. [6]刘立强. 低温技术在大型超导磁体中的应用[J]. 低温工程, 2002, 129(5): 45-48. Liu Liqiang. Application of cryogenics in large scale superconducting magnets[J]. Cryogenics, 2002, 129(5): 45-48. [7]汤洪明. BEPCⅡ SCQ、SSM 超导磁体系统低温工作特性研究[D]. 哈尔滨: 哈尔滨工业大学, 2006. Tang Hongming. Research on cryogenic performance of SCQ and SSM superconducting magnets system for BEPCⅡ[D]. Harbin: Harbin Institute of Technology, 2006. [8]吴英哲, 赵钦宇, 甘智华, 等. 材料低温力学性能测试技术研究进展[J]. 低温工程, 2021, 243(5): 18-27. Wu Yingzhe, Zhao Qinyu, Gan Zhihua, et al. Research progress in low-temperature mechanical properties of materials[J]. Cryogenics, 2021, 243(5): 18-27. [9]范修谦. 铸造奥氏体不锈钢的铬镍当量比和相对磁导率[J]. 特种铸造及有色合金, 2011, 31(5): 439-442. Fan Xiuqian. Cr-Ni equivalent ratio and relative permeability of cast austenitic stainless steel[J]. Special Casting and Nonferrous Alloys, 2011, 31(5): 439-442. [10]金 丹, 孙可为, 姚燕燕, 等. 铁硅铝磁粉芯磁导率的研究[J]. 热加工工艺, 2011, 40(14): 87-92. Jin Dan, Sun Kewei, Yao Yanyan, et al. Study on permeability of Fe-Si-Al magnetic powder core[J]. Hot Working Technology, 2011, 40(14): 87-92. [11]姜亮良, 谭继文. 钢丝绳的微观状态与相对磁导率的关系研究[J]. 煤矿机械, 2014, 35(4): 41-43. Jiang Liangliang, Tan Jiwen. Study on relationship between microscopic state and relative permeability of wire rope[J]. Coal Mine Machinery, 2014, 35(4): 41-43. [12]李凯强, 屈华鹏, 冯翰秋, 等. 温变形0Cr14Mn21NiN奥氏体不锈钢的组织性能[J]. 金属热处理, 2019, 44(11): 8-13. Li Kaiqiang, Qu Huapeng, Feng Hanqiu, et al. Microstructure and mechanical properties of warm deformed 0Cr14Mn21NiN austenitic stainless steel[J]. Heat Treatment of Metals, 2019, 44(11): 8-13. [13]何亚元, 尹云洋, 严 翔, 等. 水韧处理对Fe-Mn-Al系奥氏体钢组织和性能的影响[J]. 金属热处理, 2017, 42(11): 160-162. He Yayuan, Yin Yunyang, Yan Xiang, et al. Effect of water toughening treatment on microstructure and properties of Fe-Mn-Al austenitic steel[J]. Heat Treatment of Metals, 2017, 42(11): 160-162. [14]吴子瑕, 钢板磁导率变化对船舶感应磁场的影响[J]. 中国舰船研究, 2014, 9(6): 100-103. Wu Zixia. Effects of steel magnetic properties on induced magnetic fields of a ship[J]. Chinese Journal of Ship Research, 2014, 9(6): 100-103. [15]徐国进, 韩思聪, 朱孜毅, 等. 热处理制度对高纯钴微观组织及磁性能的影响[J]. 金属热处理, 2024, 49(4): 61-65. Xu Guojin, Han Sicong, Zhu Ziyi, et al. Effect of heat treatment on microstructure and magnetic properties of high purity cobalt[J]. Heat Treatment of Metals, 2024, 49(4): 61-65. [16]徐 峰, 吴晓伟. DT4E电磁纯铁真空退火磁性能不合格的分析和改进[J]. 金属热处理, 2023, 48(1): 249-253. Xu Feng, Wu Xiaowei. Analysis and improvement of unqualified magnetic properties of DT4E electromagnetic pure iron after vacuum annealing[J]. Heat Treatment of Metals, 2023, 48(1): 249-253. [17]杨元政, 时俊磊, 肖贵华, 等. 热等静压对铁基非晶纳米晶合金软磁性能的影响[J]. 金属热处理, 2023, 48(1): 190-193. Yang Yuanzheng, Shi Junlei, Xiao Guihua, et al. Effect of hot isostatic pressing on soft magnetic properties of Fe-based amorphous nanocrystalline alloys[J]. Heat Treatment of Metals, 2023, 48(1): 190-193. [18]蒲 军, 周 强. 核电产品奥氏体不锈钢材料磁导率控制工艺[J]. 机械, 2012, 39(3): 58-62. Pu Jun, Zhou Qiang. Control technology of austenitic stainless steel magnetic conductivity of nuclear power generator[J]. Machinery, 2012, 39(3): 58-62. [19]严 密, 彭晓领. 磁学基础与磁性材料[M]. 2版. 杭州: 浙江大学出版社, 2019. Yan Mi, Peng Xiaoling. Fundamentals of Magnetics and Magnetic Materials[M]. 2nd edition. Hangzhou: Zhejiang University Press, 2019. |