[1] Xie Y H, Hu C D, Liu S, et al. RD progress of high power ion source on EAST-NBI[J]. Plasma Science and Technology,2018,20(1):162−165
[2] 张进新, 鲁祥友, 谢远来, 等. 迫流冷却式低温吸附泵抽气性能测试系统设计[J]. 低温与超导,2021,49(8):44−48 (in Chinese) Zhang J X, Lu X Y, Xie Y L, et al. Design of test system for pumping property of a forced-flow-cooling cryogenic adsorption pump[J]. Cryogenics and Superconductivity,2021,49(8):44−48
[3] Yanagihara Y, Murase T, Noto H , et al. New silica removal technique by vacuum heating toward high-performance cryosorption pumps based on biomass-based activated carbon: rapid communications[J]. Plasma and Fusion Research, 2024, 19, 1205012−1205012
[4] Valverde J R. Molecular modelling: principles and applications[J]. Briefings in Bioinformatics,2001,2(2):199−200 doi: 10.1093/bib/2.2.199
[5] Morris R J , Contescu I C , Chisholm F M, et al. Modern approaches to studying gas adsorption in nanoporous carbons[J]. Journal of Materials Chemistry, A. Materials for energy and sustainability,2013,1(33):9341−9350
[6] Huang Y, Cannon F S, Guo J S, et al. Atomistic modelling insight into the structure of lignite-based activated carbon and benzene sorption behavior[J]. RSC Advances,2016,6(61):56623−56637 doi: 10.1039/C6RA07533A
[7] Segarra E I, Glandt E D. Model microporous carbons: microstructure, surface polarity and gas adsorption[J]. Chemical Engineering Science,1994,49:2953−2965 doi: 10.1016/0009-2509(94)E0113-5
[8] 张耕, 刘文洁, 谭粤, 等. 低温容器内活性炭吸氢性能的模拟研究[J]. 低温与超导,2021,49(3):5−14 (in Chinese) doi: 10.16711/j.1001-7100.2021.03.002 Zhang G, Liu W J, Tan Y, et al. Simulation study on hydrogen absorption performance of activated carbon in low temperature containers[J]. Low Temperature and Superconductivity,2021,49(3):5−14 doi: 10.16711/j.1001-7100.2021.03.002
[9] Lu X Q, Jin D L, Wei S X, et al. Competitive adsorption of a binary CO2 -CH4 mixture in nanoporous carbons: effects of edge-functionalization[J]. Nanoscale,2015,7(3):1002−1012 doi: 10.1039/C4NR05128A
[10] Surendra K J, Keith E G, Roland J P, et al. Molecular modeling and adsorption properties of porous carbons[J]. Carbon,2006,44(12):2445−2451 doi: 10.1016/j.carbon.2006.04.034
[11] Castro-Marcano F, Winans E R, Chupas P, et al. Fine structure evaluation of the pair distribution function with molecular models of the argonne premium coals[J]. Energy Fuels,2012,26(7):4336−4345 doi: 10.1021/ef300364e
[12] Diao R, Zhang H, Zhao D, et al. Adsorption and Structure of Benzene, Toluene, and p -Xylene in Carbon Slit Pores: A Monte Carlo Simulation Study[J]. Chemical Engineering Science,2018, 120−134.
[13] 肖邦, 曹青, 马培勇, 等. 基于分子动力学模拟的羟基改性调控活性炭对甲苯吸附性能的作用机理研究[J]. 过程工程学报,2022,22(5):660−670 (in Chinese) Xiao B, Cao Q, Ma P Y, et al. Study on the mechanism of hydroxyl modified activated carbon for regulating the adsorption performance of toluene based on molecular dynamics simulation[J]. Journal of Process Engineering,2022,22(5):660−670
[14] Peng L J, Morris J R. Structure and hydrogen adsorption properties of low density nanoporous carbons from simulations[J]. Carbon,2012,50(3):1394−1406 doi: 10.1016/j.carbon.2011.11.012