[1] |
赵君煜. 国际热核聚变实验堆(ITER)计划[J]. 物理,2004(04):257−260(in Chinese)
Zhao J Y. The international thermonuclear experimental reactor program[J]. Physics,2004(04):257−260
|
[2] |
Varandas C. Vacuum technology on fusion devices[J]. Vacuum,1994,45(10-11):1063−1066 doi: 10.1016/0042-207X(94)90023-X
|
[3] |
Zhai Y, Guirao J, Udintsev V, et al. Development of load specifications for the design of ITER diagnostic system and port integration[J]. Fusion Engineering & Design,2017,123(11):743−748
|
[4] |
张涤新, 曾祥坡, 冯焱, 等. 材料放气率测量方法评述[J]. 真空,2010,47(06):1−5(in Chinese)
Zhang D X, Zeng X P, Feng Y, et al. Review of measuring methods of outgassing rate[J]. Vacuum,2010,47(06):1−5
|
[5] |
Gangradey R, Mukherjee S, Panchal P, et al. OGMS: A facility to measure out-gassing rate of materials[M]. Procedia Materials Science, 2014, 6, 272–277
|
[6] |
余荣, 魏萌萌, 闫睿, 等. 一种基于对称结构的固体材料放气率测试装置设计[J]. 真空科学与技术学报,2023,43(07):577−582(in Chinese)
Yu R, Wei M M, Yan R, et al. Design of a testing device for outgassing rate of soild materials based on symmetrical structure[J]. Chinese Journal of Vacuum Science and Technology,2023,43(07):577−582
|
[7] |
Saito K, Sato Y, Inayoshi S, et al. Measurement system for low outgassing materials by switching between two pumping paths[J]. Vacuum,1996,47(6−8):749−752 doi: 10.1016/0042-207X(96)00149-2
|
[8] |
达道安. 真空设计手册[M]. 北京: 国防工业出版社, 2004(in Chinese)
Da D A. Design of vacuum engineering[M]. Beijing: National Defense Industry Press, 2004
|
[9] |
辜学茂, 程珊华, 李成富. 各种实用真空工程材料的出气率测试[J]. 真空科学与技术,1985(02):32−38+66(in Chinese)
Gu X M, Cheng S H, Li C F. The outgassing rate testing of various practical vacuum engineering materials[J]. Chinese Journal of Vacuum Science and Technology,1985(02):32−38+66
|
[10] |
董猛, 冯焱, 成永军, 等. 材料在真空环境下放气的测试技术研究[J]. 真空与低温,2014,20(01):46−51(in Chinese)
Dong M, Feng Y, Cheng Y J, et al. Measurement study for vacuum materials outgassing[J]. Vacuum and Cryogenics,2014,20(01):46−51
|
[11] |
Holtrop K L, Hansink M J. High temperature outgassing tests on materials used in the DIII-D tokamak[J]. Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, 24 (4), 1572–1577
|
[12] |
陈长琦, 窦仁超, 胡建生, 等. 全超导托卡马克第一壁石墨材料的放气特性研究[J]. 真空科学与技术学报,2009,29(02):198−203(in Chinese)
Chen C Q, Dou R C, Hu J S, et al. Out-gassing characteristics of graphite used in experimental advanced superconducting Tokamak[J]. Chinese Journal of Vacuum Science and Technology,2009,29(02):198−203
|
[13] |
陈明, 刘俊男, 薛松. 上海光源光束线石墨薄片材料的真空性能实验研究[J]. 真空科学与技术学报,2013,33(07):661−664(in Chinese)
Chen M, Liu J N, Xue S, et al. Out-gassing characteristics of graphite sheet in Shanghai synchrotron radiation facility[J]. Chinese Journal of Vacuum Science and Technology,2013,33(07):661−664
|
[14] |
陈明, 薛松, 周泽宇, 等. 铬锆铜材料的热出气性能研究[J]. 真空科学与技术学报,2021,41(08):766−769(in Chinese)
Chen M, Xue S, Zhou Z Y, et al. Outgassing performance reasearch on CuCrZr[J]. Chinese Journal of Vacuum Science and Technology,2021,41(08):766−769
|
[15] |
GB/T 16400-2015绝热用硅酸铝棉及其制品[S]. 北京: 中国标准出版社, 2016(in Chinese)
GB/T 16400-2015. Aluminium silicate wool and it’s products for thermal insulation[S]. Beijing: Standards Press of China, 2016
|