Effect of AP on the Thermal Stability of RDX and Detonation Performance of AP/RDX

被引:0
|
作者
Zhao J.-C. [1 ]
Jiao Q.-J. [1 ]
Guo X.-Y. [1 ]
Guo Y. [1 ]
Zhang J.-Y. [2 ]
Wang Z.-H. [3 ]
机构
[1] State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing
[2] Academy of Opto-electronic, China Electronic Technology Group Corporation(AOE CETC), Tianjin
[3] Liaoning Qingyang Special Chemical Co., Ltd., Liaoyang, 111002, Liaoning
关键词
AP; Composite explosives; Detonation velocity; Explosion mechanics; Heat of explosion; RDX; Thermal decomposition;
D O I
10.14077/j.issn.1007-7812.2019.04.011
中图分类号
学科分类号
摘要
In order to investigate the effect of different particle sizes of ammonium perchlorate (AP) on the thermal stability of RDX and the effect of AP on the energy release rule of RDX-based composite explosives, AP/RDX composite explosives with different AP content and particle sizes were designed, and their heat of explosion and detonation velocity were tested. The results show that the AP with particle sizes of 100-150μm, 10-13μm and 2μm all have acceleration on the decompostion of RDX, and the decomposition peak temperature of RDX decreases from 433℃ to 368℃, 417℃ to 365℃ and 375℃ to 321℃, respectively with the decrease of particle size of AP. As the addition of AP particle and its size decreases, the apparent activation energy of RDX in the mixtures decreases from 206 kJ/mol to 188, 170 and 157 kJ/mol, respectively. With the mass fraction of AP increases from 0 to 60%, the detonation velocity and heat of explosion increase from 5390 m/s to 8315 m/s and from 1610 kJ/kg to 5396 kJ/kg, respectively. As the particle size of AP decreases, the detonation velocity increases to 5863, 5902 and 5931 m/s, respectively, while there is no significant impact on the heat of explosion. © 2019, Editorial Board of Journal of Explosives & Propellants. All right reserved.
引用
收藏
页码:380 / 384and390
相关论文
共 12 条
  • [1] Su C.-Y., Zhang A.-K., Study on the correlation between ammonium perchlorate particle AP d<sub>43</sub> and propellant combustion rate, Journal of Solid Rocket Technology, 19, 4, pp. 41-45, (1996)
  • [2] Ouyang D., Pan G., Guan H., Et al., Effect of different additives on the thermal properties and combustion characteristics of pyrotechnic mixtures containing the KClO<sub>4</sub>/Mg-Al alloy, Thermochimica Acta, 513, 1-2, pp. 119-123, (2011)
  • [3] Liu Z.-R., Yin C.-M., Kong Y.-H., Et al., Thermal decomposition of ammonium perchlorate, Chinese Journal of Energetic Materials, 8, 2, pp. 76-79, (2000)
  • [4] Fna X.-Z., Li J.-Z., Fu X.-L., Study on thermal decomposition of ammonium perchlorate with different particle sizes, Acta Chimica Sinica, 67, 1, pp. 39-44, (2009)
  • [5] Boldyrev V.V., Thermal decomposition of ammonium perchlorate, Thermochimica Acta, 443, pp. 1-36, (2006)
  • [6] Bircomshaw L., Newman B., Thermal decomposition of ammonium perchlorate, Proceedings of the Royal Society, A227, pp. 228-237, (1955)
  • [7] Ghulam H., Gwilym J.R., Thermal decomposition of RDX and mixtures, Fuel, 14, 2, pp. 211-213, (1995)
  • [8] Liu Z.-R., Yin C.-M., Kong Y.-H., Et al., Interaction of ammonium perchlorate with HMX and RDX, Journal of Propulsion Technology, 21, 6, pp. 70-73, (2000)
  • [9] Liu Z.-R., Shi Z.-H., Yin C.-M., Et al., Study on the thermal decomposition of AP, RDX and HMX mixed system by TG-FTIR, Chinese Journal of Explosives & Propellants(Huozhayao Xuebao), 30, 5, pp. 57-61, (2007)
  • [10] Leu A.L., Yeh T.F., Chang F.M., Et al., Burning behavior of composite solid propellant containing porous ammonium perchlorate, Propellants, Explosives, Pyrotechnics, 14, 3, pp. 108-112, (1989)