Research on Thermal Decomposition of Dihydroxylammonium 5,5'-Bistetrazole-1,1'-diolate (TKX-50) by Decoupling Method; [解耦合法研究1,1'-二羟基-5,5'-联四唑二羟胺盐(TKX-50)热分解]

被引:0
作者
Zhu Y.L. [1 ]
An J. [1 ]
Ding L. [1 ]
Bi F.Q. [1 ]
Zhou J. [1 ]
Liang Y. [1 ]
机构
[1] Xi'an Modern Chemistry Research Institute, Xi'an
来源
Hanneng Cailiao/Chinese Journal of Energetic Materials | 2019年 / 27卷 / 08期
基金
中国国家自然科学基金;
关键词
Decoupling; Dihydroxylammonium 5,5'-bistetrazole-1,1'-diolate (TKX-50); Málek method; Thermal decomposition;
D O I
10.11943/CJEM2018335
中图分类号
学科分类号
摘要
To study the thermal decomposition of dihydroxylammonium 5,5'-bistetrazole-1,1'-diolate (TKX-50), thermal decomposition experiments such as thermogravimetry and differential scanning calorimetry were carried out, respectively. Meanwhile, MATLAB software was employed to decouple the overlapping parts and the Málek method was used to study the kinetics of the thermal decomposition of TKX-50. The results show that the thermal decomposition process of TKX-50 is divided into two stages. The complete thermal decomposition curves of the two stages are obtained by MATLAB software, and the basic parameters such as Tonset, Tp, and ΔH are acquired at different heating rates. The thermal decomposition of TKX 50 follows the autocatalytic reaction model, and the kinetic parameters including activation energy, pre exponential factor and kinetic model are obtained, respectively. For the first stage,Ea=174.99 kJ∙mol-1,lnA=40.75,f(α)=α0.917(1-α)0.509, for the second stage,Ea=149.60 kJ∙mol-1,lnA=31.84,f(α)=α0.357(1-α)0.117. © 2019, Editorial Board of Chinese Journal of Energetic Materials. All right reserved.
引用
收藏
页码:685 / 691
页数:6
相关论文
共 27 条
  • [1] Chavez D.E., Hiskey M.A., Gilardi R.D., 3,3' Azobis(6 amino 1,2,4,5 tetrazine): a novel high nitrogen energetic material, Angewandte Chemie International Edition, 39, 10, pp. 1791-1793, (2000)
  • [2] Xue H., Gao H.X., Twamley B., Et al., Energetic nitrate, perchlorate, azide and azolate salts of hexamethylenetetramine, European Journal of Inorganic Chemistry, 15, pp. 2959-2965, (2006)
  • [3] Rossi R.A., Pierini A.B., Penenory A.B., Nucleophilic substitution reactions by electron transfer, Chemical Reviews, 103, 1, pp. 71-167, (2003)
  • [4] Strout D.L., Stability of carbon nitrogen cages in fourfold symmetry, Journal of Physical Chemistry A, 110, 11, pp. 4089-4092, (2006)
  • [5] Bi F.Q., Fan X.Z., Xu C., Et al., Review on insensitive non metallic energetic ionic compounds of tetrazolateanions, Chinese Journal of Energetic Materials (Hanneng Cailiao), 20, 6, pp. 805-811, (2012)
  • [6] Fischer N., Fischer D., Klapotke T.M., Et al., Pushing the limits of energetic materials the synthesis and characterization of dihydroxylammonium 5,5' bistetrazole 1,1' diolate, Journal of Materials Chemistry, 22, 38, pp. 20418-20422, (2012)
  • [7] Huang H.F., Shi Y.M., Yang J., Et al., Compatibility study of dihydroxylammonium 5,5' bistetrazole 1,1' diolate (TKX 50) with some energetic materials and inert materials, Journal of Energetic Materials, 33, 1, pp. 66-72, (2015)
  • [8] Li N., Zhao F.Q., Luo Y., Et al., Dissolution thermokinetics of dihydroxylammonium 5,5' bistetrazole 1,1' diolate in dimethyl sulfoxide, Journal of Thermal Analysis and Calorimetry, 122, 2, pp. 1023-1027, (2015)
  • [9] Dreger Z.A., Stash A.I., Yu Z.G., Et al., High pressure structural response of an insensitive energetic crystal: dihydroxylammonium 5,5' bistetrazole 1,1' diolate (TKX 50), Journal of Physical Chemistry C, 121, 10, pp. 5761-5767, (2017)
  • [10] Zhang J.Q., Gao H.X., Ji T.Z., Et al., Non isothermal decomposition kinetics, heat capacity and thermal safety of 37.2/44/16/2.2/0.2/0.4 GAP/CL 20/Al/N 100/PCA/auxiliaries mixture, Journal of Hazardous Materials, 193, 5, pp. 183-187, (2011)