Performance of Plugged and Insensitive High-energy Azidonitramine Gun Propellant

被引:0
|
作者
Zhao Q. [1 ]
Liu B. [1 ]
Liu S.-W. [1 ]
Ma F.-S. [1 ]
Wang Q.-L. [1 ]
Li Z.-C. [1 ]
机构
[1] Xi'an Modern Chemistry Research Institute, Xi'an
来源
Hanneng Cailiao/Chinese Journal of Energetic Materials | 2020年 / 28卷 / 03期
关键词
Combustion characteristics; High-energy azidonitramine gun propellant; Insensitive; Low temperature sensitivity coefficient effect; Plugged;
D O I
10.11943/CJEM2019193
中图分类号
学科分类号
摘要
In order to improve the performance of burning progressivity and low temperature sensitive coefficient effect of high-energy azidonitramine gun propellant, three insensitive high-energy azidonitramine gun propellants was prepared by the two-stepprocess with polymer composite materials plugging and energetic composite materials desensitization" (called plugged and insensitive gun propellant in this study), whose inner hole was blocked by polymer composite materials and surface was desensitized. The energetic and static combustion performance of plugged and insensitive gun propellant was investigated by heat of explosion and closed-bomb tests. Results show that compared with the untreated gun propellant, with the increase of the content of plugged and insensitive materials, the heat of explosion of three types of plugged and insensitive gun propellants (WCBF-1/18, WCBF-2/18, WCBF-3/18) decrease by 2.6%, 3.6%, 4.3%, and Pr values increase from 0.471 to 0.552, 0.563, 0.576 respectively. The average absolute values of temperature coefficient of relative combustion activity at high temperature for three types of plugged and insensitive gun propellants WCBF-1/18, WCBF-2/18, WCBF-3/18 are 2.87%, 1.89%, 1.56%, respectively, which are all lower than that of untreated gun propellant, it shows that the low temperature sensitivity coefficient effect in the high and normal temperature ranges for plugged and insensitive gun propellant can be improved. © 2020, Editorial Board of Chinese Journal of Energetic Materials. All right reserved.
引用
收藏
页码:242 / 247
页数:5
相关论文
共 21 条
  • [11] Lee S.K., Jeong D.J., A study of surface coated propellant for large caliber ammunition with low dependence on charge temperature(LDCT) of its ballistic properties, 41st International Annual Conference of ICT, pp. 110/1-110/12, (2010)
  • [12] Vogelsanger B., Ossola B., Huber A., Et al., Use of a solid for the production of a propellant powder
  • [13] Shi X.-Y., The study of low temperature sensitivity nitroamine propellant and ballistic simulation, (2002)
  • [14] Shi X.-Y., Wang Z.-S., The study of coated propellant lowering gun ballistic temperature sensitivity coefficient, Journal of Ballistics, 14, 4, pp. 14-18, (2002)
  • [15] Du P., Research of coating-layer and interfacial characteristic of low temperature sensitivity coefficient(LTSC) propellant, (2005)
  • [16] Wang L., 125 mm armour-piercing projectile charge design optimizing and exploring study, (2007)
  • [17] Han B., Studies on process technology of high progressive and large web NQ-based gun propellant, (2009)
  • [18] Xu Q., The research on constant-volume combustion properties of mixed charge and coated propellant charge, (2016)
  • [19] Wang Z.-S., He W.-D., Xu F.-M., Principle and Technique for Gun Propellant Charge Design, (2014)
  • [20] Wang Q.-L., Zhao X.-F., Liu S.-W., Et al., A quantitative assessment method of gun propellant combustion progressivity based on closed bomb test, Chinese Journal of Explosives & Propellants(Huozhayao Xuebao), 32, 3, pp. 71-74, (2009)