[1] |
Fantz U, Bonomo F, Fröschle M, et al. Advanced NBI beam characterization capabilities at the recently improved test facility BATMAN Upgrade[J]. Fusion Engineering and Design,2019,146:212−215 doi: 10.1016/j.fusengdes.2018.12.020
|
[2] |
Ermolenko B V, Ermolenko G V, Fetisova Y A, et al. Wind and solar PV technical potentials: measurement methodology and assessments for Russia[J]. Energy,2017,137:1001−1012 doi: 10.1016/j.energy.2017.02.050
|
[3] |
Perrault D. Status of ITER safety issues[J]. Fusion Science and Technology,2019,75(5):339−344 doi: 10.1080/15361055.2019.1594538
|
[4] |
李建刚. 托卡马克研究的现状及发展[J]. 物理,2016,45(2):88−97 (in Chinese) doi: 10.7693/wl20160203
Li J G. The status and progress of Tokamak research[J]. Physics,2016,45(2):88−97 doi: 10.7693/wl20160203
|
[5] |
Aymar R. Status of ITER[J]. Fusion Engineering and Design,2002,61-62:5−12 doi: 10.1016/S0920-3796(02)00218-1
|
[6] |
Hussain M T, Wu Y, Qin J G, et al. Evaluating conductor design and stability performance for the conductor of high-field winding package in CFETR TF coil[J]. IEEE Transactions on Applied Superconductivity,2024,34(4):4904407
|
[7] |
Jong C T J, Mitchell N, Sborchia C. The ITER-FEAT toroidal field structures[J]. Fusion Engineering and Design,2001,58-59:165−170 doi: 10.1016/S0920-3796(01)00569-5
|
[8] |
Holtkamp N. The status of the ITER design[J]. Fusion Engineering and Design,2009,84(2−6):98−105 doi: 10.1016/j.fusengdes.2008.12.119
|
[9] |
Song X H, Guo L, Liu H J, et al. Construction and application of large superconducting magnet performance research platform[J]. IEEE Transactions on Applied Superconductivity,2024,34(5):9502204
|
[10] |
Singh D, Pandey A, Singh M K, et al. Heat radiation reduction in cryostats with multilayer insulation technique[J]. Journal of Instrumentation,2020,15(7):P07032 doi: 10.1088/1748-0221/15/07/P07032
|
[11] |
Sutheesh P M, Chollackal A. Thermal performance of multilayer insulation: a review[J]. IOP Conference Series: Materials Science and Engineering,2018,396:012061 doi: 10.1088/1757-899X/396/1/012061
|
[12] |
刘素梅, 宋云涛, 武松涛, 等. ITER装置CTB盒冷屏绝热结构初步设计与分析[J]. 低温与超导,2008,36(3):8−10 (in Chinese) doi: 10.3969/j.issn.1001-7100.2008.03.003
Liu S M, Song Y T, Wu S T, et al. Primary design and heat transfer analysis on CTB of ITER with vacuum multilayer insulation[J]. Cryogenics and Superconductivity,2008,36(3):8−10 doi: 10.3969/j.issn.1001-7100.2008.03.003
|
[13] |
Nast T C, Frank D J, Feller J. Multilayer insulation considerations for large propellant tanks[J]. Cryogenics,2014,64:105−111 doi: 10.1016/j.cryogenics.2014.02.014
|
[14] |
Glaser P E. Thermal protection systems for liquid hydrogen tanks[R]. NASA, 1962
|
[15] |
赵一搏, 杨汝平, 邱日尧, 等. 多层隔热结构研究进展[J]. 宇航材料工艺,2013,43(4):29−34 (in Chinese) doi: 10.3969/j.issn.1007-2330.2013.04.007
Zhao Y B, Yang R P, Qiu R Y, et al. Recent progress on multi-layer insulation structures[J]. Aerospace Materials & Technology,2013,43(4):29−34 doi: 10.3969/j.issn.1007-2330.2013.04.007
|
[16] |
邬田华, 王晓墨, 许国良. 工程传热学(第二版)[M]. 武汉: 华中科技大学出版社, 2020: 176−179 (in Chinese))
Wu T H, Wang X M, Xu G L. Engineering heat transfer (2nd edition)[M]. Wuhan: Huazhong University of Science & Technology Press, 2020: 176−179
|
[17] |
Ekin J W. Experimental techniques for low-temperature measurements: cryostat design, material properties, and superconductor critical-current testing[M]. Oxford: Oxford University Press, 2006: 50−68
|
[18] |
Ventura G, Perfetti M. Thermal properties of solids at room and cryogenic temperatures[M]. Dordrecht: Springer, 2014: 203−209
|
[19] |
Johnson W L. Thermal performance of cryogenic multilayer insulation at various layer spacings[D]. Orlando: University of Central Florida Orlando, 2010
|
[20] |
Johnson W. Thermal analysis of low layer density multilayer insulation test results[J]. AIP Conference Proceedings,2012,1434(1):1519−1526
|
[21] |
ITER. Technical specifications for the magnet cold test cryostat[R]. France: ITER, 2024
|
[22] |
McIntosh G E. Layer by layer MLI calculation using a separated mode equation[M]//Kittel P. Advances in cryogenic engineering. Boston: Springer, 1994: 1683−1690
|
[23] |
陈国邦, 张鹏. 低温绝热与传热技术[M]. 北京: 科学出版社, 2004: 29−31 (in Chinese)
Chen G B, Zhang P. Low temperature insulation and heat transfer technology[M]. Beijing: Science Press, 2004: 29−31
|
[24] |
周志雄. 高真空多层绝热中接触导热数值计算和实验研究[D]. 上海: 上海交通大学, 2007: 24−25 (in Chinese)
Zhou Z X. Numerical calculation and experimental study on thermal contact conductance in multi-layer insulation[D]. Shanghai: Shanghai Jiaotong University, 2007: 24−25
|
[25] |
肖志宏, 汪荣顺, 石玉美, 等. 应用逐层传热模型分析高真空多层绝热中的传热过程[J]. 真空科学与技术学报,2004,24(2):113−117 (in Chinese) doi: 10.3969/j.issn.1672-7126.2004.02.008
Xiao Z H, Wang R S, Shi Y M, et al. Theoretical analysis of heat transfer of high vacuum multi-layers[J]. Chinese Journal of Vacuum Science and Technology,2004,24(2):113−117 doi: 10.3969/j.issn.1672-7126.2004.02.008
|
[26] |
Hastings L J, Hedayat A, Brown T M. Analytical modeling and test correlation of variable density multilayer insulation for cryogenic storage[R]. Hanover: NASA, 2004
|
[27] |
Hedayat A, Hastings L J, Brown T. Analytical modeling of variable density multilayer insulation for cryogenic storage[J]. AIP Conference Proceedings,2002,613(1):1557−1564
|
[28] |
Fredrickson G O. Investigation of high-performance insulation application problems[R]. NASA, 1973
|
[29] |
王田刚, 李延娜, 姚淑婷, 等. 变密度多层绝热最优层密度研究[J]. 低温与超导,2014,42(7):6−9,48 (in Chinese)
Wang T G, Li Y N, Yao S T, et al. Study on optimal layer density of variable density multilayer insulation[J]. Cryogenics & Superconductivity,2014,42(7):6−9,48
|