Principles and Methods for Insensitive Munitions Hazard Mitigation Design

被引:0
作者
Huang H.-J. [1 ,2 ]
Chen K.-Q. [1 ,2 ]
Chen H.-X. [1 ,2 ]
Chen X. [1 ,2 ]
Song Y.-D. [1 ,2 ]
Lu Z.-H. [1 ,2 ]
Li X.-L. [1 ,2 ]
Kou J.-F. [1 ,2 ]
机构
[1] Institute of Chemical Materials of CAEP, Mianyang, 621999, Sichuan
[2] Safety Ammunition Center of CAEP, Mianyang, 621999, Sichuan
来源
Hanneng Cailiao/Chinese Journal of Energetic Materials | 2019年 / 27卷 / 11期
关键词
Energetic materials; Insensitive munition; Mitigation design; Mitigation technology;
D O I
10.11943/CJEM2019155
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The mitigation technology of controlling the reaction level of munitions under accidental stimulation is one of the key technologies of insensitive munitions, which plays an important role in improving the safety of munitions. In order to provide reference for improving the comprehensive performance of munitions, the principles and methods for structural mitigation and protection design aiming at reducing the intensity reaction level of munitions under thermal, mechanical and combined stimuli were summarized, based on the analysis of the research progress of mitigation technology abroad. The core ideas of mitigation designs were reducing stimuli energy and controlling the process of reaction evolution of charges. On this basis, three directions were recommended including research in the ignition and mechanism of reaction evolution of charges, the composite shell technology, and the combined design technology for charge-structure-mitigation. © 2019, Editorial Board of Chinese Journal of Energetic Materials. All right reserved.
引用
收藏
页码:974 / 980
页数:6
相关论文
共 45 条
[1]  
Al-Shehab N., Pfau D., Baker E.L., Et al., Anti-Armor Warhead Venting, IMEMTS Symposium, (2010)
[2]  
Park D., Lu P., Scales D., Et al., Venting technology for large caliber gun propulsion systems-metal cartridge case and packaging container venting, IMEMTS Symposium, (2010)
[3]  
Watson I.M., Bazley G., The Use of Hydrocode Modelling in Optimisation of Physical Mitigation Design Solutions for Multiple Weapon Types, IMEMTS Symposium, (2006)
[4]  
Schultz E., MTM: Mitigation Techniques for Munitions Easy access online, IMEMTS Symposium, (2016)
[5]  
Wey T., Pfau D., Moy L., Impact mitigation approach for 105 mm artillery propulsion system, IMEMTS Symposium, (2012)
[6]  
Al-Shehab N., Madsen T., Defisher S., Et al., Cook-Off Mitigation Scaling Effects, IMEMTS Symposium, (2007)
[7]  
Deng H., Shen F., Liang Z.-F., Et al., Slow cook-off response characteristics of Composition B under different constraints, Chinese J of Explosives & Propellants, 41, 5, pp. 465-470, (2018)
[8]  
Zhao L., Zhi X.-Q., Gao F., Et al., Study on the size effect of cook-off of DNAN based melting and casting mixed explosive, Chinese J of Explosives & Propellants, 41, 2, pp. 159-163, (2018)
[9]  
Li W.-F., Yu Y.-G., Ye R., Et al., Simulation of cook-off for AP/HTPB composition propellant in base bleed unit at heating rates, Explosion and Shoock Waves, 37, 1, pp. 46-52, (2017)
[10]  
Chen K.-Q., Huang H.-J., Lu Z.-H., Et al., Numerical calculation of cook-off test for PBX explosive based ABAQUS, Chinese J of Explosives & Propellants, 37, 2, pp. 31-36, (2014)