[1] Behrisch R, Blewer R S, Kukral H, et al. Spatial distribution of limiter material and impurities on the first wall of TFR 400 [J]. J. Nucl. Mater., 1978, 76−77: 437.
[2] Keller L, Oren L, Taylor RJ, et al. Structure of metallic coatings for impurity control in macrotor [J]. J. Nucl.Mater., 1982, 111−112: 493.
[3] De Angeli M, Tolias P, Ratynskaia S, et al.Remobilization of tungsten dust from castellated plasma-facing components [J]. Nuclear Materials and Energy, 2017, 12: 536.
[4] Endstrasser N, Rohde V, Balden M, et al. Comparative study of the dust particle population sampled during four consecutive campaigns in full-tungsten ASDEX Upgrade[J]. Physica Scripta, 2011, T145: 014021.
[5] Grisolia C, Hodille E, Chene J, et al. Tritium absorption and desorption in ITER relevant materials: comparative study of tungsten dust and massive samples [J]. J. Nucl.Mater., 2015, 463: 885.
[6] 程坤, 佟立丽, 曹学武. ITER 聚变装置中灰尘带来氢气风险的初步分析 [J]. 核聚变与等离子体物理, 2012,32(1): 70−75.
[7] 侯丽强, 佟立丽, 曹学武. 聚变装置失真空事故下灰尘迁移的数值研究 [J]. 原子能科学技术, 2014, 48:369−375.
[8] Shimomura Y. ITER and plasma surface interaction issues in a fusion reactor [J]. J. Nucl. Mater., 2007,363−365: 467.
[9] Fortuna-Zalesna E, Grzonka J, Rasinski M, et al.Characterization of dust collected after plasma operation of all-tungsten ASDEX Upgrade [J]. Physica Scripta,2014, T159: 014066.
[10] Chappuis P, Tsitrone E, Mayne M, et al. Dust characterization and analysis in Tore-Supra [J]. J. Nucl.Mater., 2001, 290−293: 245.
[11] Ashikawa N, Asakura N, Fukumoto M, et al.Characteristics of tungsten and carbon dusts in JT-60U and evaluation of hydrogen isotope retention [J]. J. Nucl.Mater., 2013, 438: S664.
[12] Fortuna-Zale?na E, Grzonka J, Rubel M, et al. Studies of dust from JET with the ITER-like wall: composition and internal structure [J]. Nuclear Materials and Energy, 2017,12: 582.
[13] Rudakov D L, Litnovsky A, West W P, et al. Dust studies in DIII-D and TEXTOR [J]. Nucl. Fusion, 2009, 49(8):085022.
[14] Hong R, Yang Z, Niu G, et al. A Molecular dynamics study on the dust-plasma/wall interactions in the EAST tokamak [J]. Plasma Science and Technology, 2013,15(4): 318.
[15] 黄治辉, 练友运, 洪文玉, 等. HL-2A 装置上灰尘研究的初步结果 [J]. 核聚变与等离子体物理, 2011, 31(1):33−37.
[16] Rondeau A, Peillon S, Roynette A, et al. Characterization of dust particles produced in an all-tungsten wall tokamak and potentially mobilized by airflow [J]. J. Nucl.Mater., 2015, 463: 873.
[17] Vyacheslavov L N, Arakcheev A S, Burdakov A V, et al.Observation of dust particles ejected from the tungsten surface by transient heat flux with small-angle scattering of CW laser light [J]. Nuclear Materials and Energy, 2017,12: 494.
[18] Autricque A, Hong SH, Fedorczak N, et al. Simulation of W dust transport in the KSTAR tokamak, comparison with fast camera data [J]. Nuclear Materials and Energy,2017, 12: 599.
[19] Brochard F, Shalpegin A, Bardin S, et al. Video analysis of dust events in full-tungsten ASDEX Upgrade [J]. Nucl.Fusion, 2017, 57(3): 036002.
[20] Bourgoin D, Ross G G, Savoie S, et al. Use of a quartz microbalance for plasma-wall interaction studies [J]. J.Nucl. Mater., 1997, 241: 765.
[21] Arnas C, Pardanaud C, Martin C, et al. Analyses of dust samples collected in the MAST tokamak [J]. J. Nucl.Mater., 2010, 401(1): 130.
[22] Begrambekov LB, Voityuk AN, Zakharov AM. The development and the tests of the electrostatic probe for dust particle collection in thermonuclear reactors [J]. J.Phys. Conf. Ser., 2016, 748: 012004.
[23] Sharpe J P, Rohde V, The A-UET, et al. Characterization of dust collected from ASDEX-Upgrade and LHD [J]. J.Nucl. Mater., 2003, 313−316: 455.
[24] Sharpe J P, Petti D A, Bartels H W. A review of dust in fusion devices: Implications for safety and operational performance [J]. Fusion Eng. Des., 2002, 63−64: 153.
[25] Wang Z, Skinner C I, Delzanno G L, et al. Physics of dust in magnetic fusion devices [C]. 2007 ICTP Summer College on Plasma Physics, Trieste, Italy, 2007.
[26] Koga K, Nishiyama K, Morita Y, et al. Control of dust flux in LHD and in a divertor simulator [J]. Collection of NIFS Collaboration Research, 2013: 125.
[27] Bray B D, West W P, Rudakov D. Correlation of submicron dust production in DIII-D to impulsive wall heating from ELMs [J]. J. Nucl. Mater., 2009, 390−391:96.
[28] West W P, Bray B D. Correlation of submicron dust observed in DIII-D during plasma operation with plasma operating parameters [J]. J. Nucl. Mater., 2007, 363−365:107.
[29] Tuccillo A A, Alekseyev A, Angelini B, et al. Overview of the FTU results [J]. Nucl. Fusion, 2009, 49(10):104013.
[30] Asakura N, Hayashi T, Ashikawa N, et al. Measurements of carbon dust property in experiment and post-campaign sampling on JT-60U tokamak [J]. Fusion Science and Technology, 2011, 60(4): 1572.
[31] Tang M, Hu J S, Li J G, et al. Recent researches on dust in EAST and HT-7 tokamaks [J]. J. Nucl. Mater., 2011,415(1, Supplement): S1094.
[32] Rudakov D L, Yu J H, Boedo J A, et al. Dust measurements in tokamaks [J]. Rev. Sci. Instr., 2008,79(10): 10F303.
[33] Rohde V, Balden M, Lunt T, et al. Dust investigations at ASDEX Upgrade [J]. Physica Scripta, 2009, T138:014024.
[34] Endstrasser N, Brochard F, Rohde V, et al. Video tracking and post-mortem analysis of dust particles from all tungsten ASDEX Upgrade [J]. J. Nucl. Mater., 2011,415(1): S1085.
[35] De Temmerman G, Bacharis M, Dowling J, et al. Dust creation and transport in MAST [J]. Nucl. Fusion, 2010,50(10): 105012.
[36] Hirai T, Brezinsek S, Kuehnlein W, et al. Particle release from carbon based materials under intense transient heat loads [J]. Physica Scripta, 2004, T111: 163.
[37] Smirnov R D, Krasheninnikov S I, Yu J H, et al. On visibility of carbon dust particles in fusion plasmas with fast framing cameras [J]. Plasma Phys. Contr. Fusion,2009, 51(5): 055017.
[38] Kreter A, Brezinsek S, Coad J P, et al. Dynamics of erosion and deposition in tokamaks [J]. J. Nucl. Mater.,2009, 390−91: 38.
[39] Rohde V, Mayer M, Team A U. On the formation of a-C :D layers and parasitic plasmas underneath the roof baffle of the ASDEX Upgrade divertor [J]. J. Nucl. Mater., 2003,313: 337.
[40] 吴婷, 才来中, 曾晓晓. HL-2A 偏滤器沉积测量系统的研制 [J]. 核聚变与等离子体物理, 2017, 37(1): 14−18.
[41] Tateishi M, Koga K, Katayama R, et al. Real-time mass measurement of dust particles deposited on vessel wall in a divertor simulator using quartz crystal microbalances[J]. J. Nucl. Mater., 2015, 463: 865.
[42] Skinner C H, Kugel H, Roquemore A L, et al. Time resolved deposition measurements in NSTX [J]. J. Nucl.Mater., 2005, 337(1−3): 129.
[43] Ling B L, Zhang X D, Ti A, et al. An electrostatic detector for dust measurement on HT-7 tokamak [J]. J.Nucl. Mater., 2007, 363: 1446.
[44] Skinner C H, Rais B, Roquemore A L, et al. First real-time detection of surface dust in a tokamak [J]. Rev.Sci. Instr., 2010, 81(10): 10e102.
[45] Roche H, Barbuti A, Bucalossi J, et al. First results from dust detection during plasma discharges on Tore Supra [J].Physica Scripta, 2011, T145: 014022.
[46] Morfill G, Rath C, Li Y F, et al. Dust capture experiment in HT-7 [J]. New J. Phys., 2009, 11: 113041.
[47] Ratynskaia S, Bergsaker H, Emmoth B, et al. Capture by aerogel-characterization of mobile dust in tokamak scrape-off layer plasmas [J]. Nucl. Fusion, 2009, 49(12):122001. |