共 11 条
- [1] Wu Q., Li H., Magneto-Fluid Mechanics, pp. 50-51, (2007)
- [2] Le X., Experimental and finite element study of armature dynamics in helical magnetic flux compression generators, pp. 16-17, (2002)
- [3] Kiuttu G.F., Chase J.B., An armature-stator contact resistance model for explosively driven helical magnetic flux compression generators, Proc of the 15th IEEE International Pulsed Power Conference, pp. 435-440, (2005)
- [4] Gilev S.D., Trubachev A.M., Detonation properties and electrical conductivity of explosive-metal additive mixtures, Combustion, Explosion, and Shock Waves, 38, 2, pp. 219-234, (2002)
- [5] Zhou L., Liao Y., Xu G., Experimental measurement of conductivity for the detonation product, Chinese Journal of Energetic Materials, 13, 3, pp. 148-149, (2005)
- [6] Gilev S.D., Trubachev A.M., Study of physical-chemical transformations in detonation wave by the electric conductivity method, Proc of the 12th Symposium on Detonation, pp. 240-248, (2002)
- [7] Jin Z., Detonation mechanism of aluminized TNT/RDX composites and the primary application in FCG, pp. 57-63, (2009)
- [8] Zhou Z., Fan X., Zou J., Et al., Turn-skipping phenomenon of helical magnetic flux compression generators, High Power Laser and Particle Beams, 19, 2, pp. 343-347, (2007)
- [9] Jin Z., Jiao Q., Chen X., Et al., Electrical conductivity for the detonation products of some explosives with cast TNT, Chinese Journal of Energetic Materials, 16, 4, pp. 420-423, (2008)
- [10] Lin Q., Xie W., High inductance explosive magnetic flux compression generator with high energy gain, High Power Laser and Particle Beams, 12, 4, pp. 487-490, (2000)