Desensitization and stabilization of HMX crystals by intercalation of crosslinked graphene oxide

被引:1
|
作者
Zhang, Xue-Xue [1 ]
Zhang, Xing [1 ]
Zhang, Chi [1 ]
Zhao, Xu [2 ]
Yang, Zhi-Jian [2 ]
Yan, Qi-Long [1 ]
机构
[1] Northwestern Polytech Univ, Natl Key Lab Solid Rocket Prop, Xian 710072, Peoples R China
[2] CAEP, Inst Chem Mat, Mianyang 621900, Peoples R China
关键词
Insensitive hybrid HMX; Higher energy density; Triaminoguanidine functionalized graphene; oxide; Crosslinking; Stabilization; Isothermal decomposition kinetics; DECOMPOSITION; MECHANISM; CL-20; TRANSITION; POLYMER;
D O I
10.1016/j.cej.2024.158192
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
It is challenging to balance the energy and sensitivity for the development of energetic materials (EMs). In this paper, the HMX crystals with improved energy density but lower sensitivity have been prepared by intercalation of triaminoguanidine-glyoxal crosslinked graphene oxide (GO-TAGP). The morphologies and structure of intercalated HMX crystals depend largely on the content of GO-TAGP. Notably, the presence of a higher percentage of GO-TAGP leads to a transition of HMX crystal structure to the gamma-form. It has been shown that with the constraint of GO-TAGP, HMX crystals show a significant enhancement in energy content. With intercalated 3.7 wt% of GO-TAGP, the density of modified HMX increased to 1.93 g center dot cm- 3 with higher heat of explosion (5421 J center dot g- 1) and higher heat of formation (140.6 kJ center dot mol-1) than that of neat HMX (1.89 g center dot cm- 3, 5242J center dot g- 1 and 75.8kJ center dot mol-1). Importantly, remarkably improved thermal stability of modified HMX have been achieved, disclosing an excluded polymorphic transition via DSC and the variable-temperature powder XRD technique. In specific, the modified HMX with intercalated 1.0 wt% GO-TAGP exhibits superior safety performance with the impact energy increased to 26.5 J, even 780 % higher than pristine HMX (3 J). The detonation performance of asmodified HMX was tested, achieving an enhanced detonation velocity of 9254 m center dot s-1, whereas that of raw HMX is only 9010 m center dot s- 1. This approach could offer an efficient strategy to enhance the energy content of HMX with significantly improved thermal stability and safety performance.
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页数:14
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