[1] Eckhoff R. Dust explosions in the process industries: identification, assessment and control of dust hazards[M]. Houston: GulfProfessional Publishing, 2003. [2] Li Y C, Kauffman C W, Sichel M. An experimental study of deflagration to detonation transition supported by dust layers [ J].Combustion and flame, 1995, 100(3): 505 -515. [3] Laurent A. S佴curit佴des proc佴d佴s chimiques[M]. Paris: Tec & Doc, 2003. [4] Otsuka T, Itagaki H. The dust explosion of aluminium dust in water vapour [ R]. Japan: National Institute of Industrial Safety,2004. [5] International Electrotechnical Commission. IEC 1241-2-1 Electrical apparatus for use in the presence of combustible dust Part 2:Test method section 1: Methods for determining the minimum ignition temperature of dust [S]. London:BSI,1994. [6] International Electrotechnical Commission. IEC 1241-2-2 Method for determining the electrical resistivity of dust in layers [S]. London:BSI,1993:15. [7] Amyotte P R, Soundararajan R, Pegg M J. An investigation of iron sulphide dust minimum ignition temperatures[J]. Journal of Hazardous Materials, 2003, 97(1): 1 -9. [8] Anderson I E, Foley J C. Determining the role of surfaces and interfaces in the powder metallurgy processing of aluminum alloy powders[J]. Surface and Interface Analysis, 2001, 31(7): 599-608. [9] Calle S, Klaba L, Thomas D, et al. Influence of the size distribution and concentration on wood dust explosion: Experiments and reaction modelling[J]. Powder Technology, 2005, 157(1): 144-148. [10] Cashdollar K L, Zlochower I A. Explosion temperatures and pressures of metals and other elemental dust clouds[J]. Journal of Loss Prevention in the Process Industries, 2007, 20(4): 337 -348. [11] Eapen B Z, Hoffmann V K, Schoenitz M, et al. Combustion of aerosolized spherical aluminum powders and flakes in air[ J].Combustion Science and Technology, 2004, 176(7): 1055 -1069. [12] Eisenreich N, Fietzek H, Juez-Lorenzo M, et al. On the mechanism of low temperature oxidation for aluminum particles down to the nano-scale [ J ]. Propellants, Explosives, Pyrotechnics,2004, 29(3): 137 -145. [13] 浦以康,袁生学,丁大玉, 等. 微细球形铝粉爆炸特性的实验研究[J]. 爆炸与冲击, 1993,13(3): 193 -204. PU Yi-kang, YUAN Sheng-xue, DING Da-yu, et al. Investigation of explosion characteristics in the aluminium dust-air mixtures[J]. Explosion and Shock Waves, 1993, 13(3): 193 -204. (in Chinese) [14] 魏吴晋. 铝纳米粉尘爆炸及其抑制技术研究[D]. 徐州:中国矿业大学, 2010. WEI Wu-jin. Studying of explosion and countermeasure technologies for nano-meter Al dust[D]. Xuzhou: China University of Mining and Technology, 2010. (in Chinese) [15] 陈玲. 铝粉爆炸特性的实验研究和数值模拟[D]. 大连:大连理工大学, 2011. CHEN Ling. Experimental investigation and numerical simulation into characteristics of aluminum dust explosion [ D]. Dalian:Dalian University of Technology, 2011. (in Chinese) [16] 陈志华, 范宝春, 李鸿志. 燃烧管内悬浮铝粉燃烧爆炸过程的研究[J]. 高压物理学报, 2006, 2(2): 157 -162. CHEN Zhi-hua, FAN Bao-chun, LI Hong-zhi. Investigations on combustion and explosion process of suspended aluminum particles in a large combustion tube[ J]. Chinese Journal of High Pressure Physics, 2006, 2(2): 157 -162. (in Chinese) [17] Traor佴M, Dufaud O, Perrin L, et al. Dust explosions: How should the influence of humidity be taken into account? [J]. Process Safety and Environmental Protection, 2009, 87(1): 14-20. [18] Dufaud O, Traor佴M, Perrin L, et al. Experimental investigation and modelling of aluminum dusts explosions in the 20 L sphere[J]. Journal of Loss Prevention in the Process Industries, 2010,23(2): 226 -236. [19] Kwok Q S M, Fouchard R C, Turcotte A M, et al. Characterization of aluminum nanopowder compositions[J]. Propellants, Explosives, Pyrotechnics, 2002, 27(4): 229 -240. |