Review on theoretical investigations of the thermal decomposition of ammonium dinitramide

被引:0
作者
Wang, Zhi-Yin [1 ]
Xu, Qiong [1 ]
Zhang, Tian-Lei [1 ]
Wang, Rui [1 ]
机构
[1] Institute of Theoretical and Computational Chemistry, School of Chemical and Environmental Sciences, Shaanxi University of Technology, Hanzhong
来源
Hanneng Cailiao/Chinese Journal of Energetic Materials | 2015年 / 23卷 / 09期
关键词
Ammonium dinitramide (ADN); Dinitramic acid (HDN); Energetic materials; First principle; Green propellant; Thermal decomposition;
D O I
10.11943/j.issn.1006-9941.2015.09.002
中图分类号
学科分类号
摘要
Basic properties of the thermal decomposition reaction of ammonium dinitramide (ADN) were introduced. Theoretical investigation results of ADN decomposition reactions were summarized. The effect of solvent on the decomposition behavior of AND in the DN- model was analyzed. The advantage of path for decomposition of different proton transfer isomers in dinitramide acid (HDN), HDN2 and ADN2 cluster model and the effects of the double proton transfer process of the intramolecular and intermolecular on the formation and decomposition reaction of different isomers were compared. The reason of trace water in (H2O)n…NH4+[ON(O)NNO2]-(n=1,2,3)and ADN2 cluster model on the abnormal decomposition behavior of ADN was discussed. Different theoretical model reveals the essence of the decomposition reaction of ADN to a certain extent, the kinetic parameters obtained in the larger ADNn clusters agree with the experimental results well. Study shows that the introduction of the QM-MM method, which is suitable for the larger ADNn clusters and solvation model in the liquid phase and gas phase, will play an important role to obtain the relevant thermodynamic and kinetic parameters of ADN involved in the application process. ©, 2015, Institute of Chemical Materials, China Academy of Engineering Physics. All right reserved.
引用
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页码:831 / 841
页数:10
相关论文
共 75 条
[21]  
Highsmith T.K., Hinshaw C.J., Wardle R.B., Propellant formulations based on dinitramide salts and energetic binders, (1998)
[22]  
Pak Z., Some ways to higher environmental safety of solid rocket propellant application, 29th Joint Propulsion Conference, (1993)
[23]  
Rahm M., Green Propellants, (2010)
[24]  
Zhu R.S., Chen H.L., Lin M.C., Mechanism and Kinetics for Ammonium Dinitramide (ADN) Sublimation: A First-Principles Study, Journal of Physical Chemistry A, 116, 44, pp. 10836-10841, (2012)
[25]  
Rahm M., Brinck T., The anomalous solid state decomposition of ammonium dinitramide: a matter of surface polarization, Chemical Communications, 20, pp. 2896-2898, (2009)
[26]  
Rahm M., Brinck T., Novel 1, 3-dipolar cycloadditions of dinitraminic acid: implications for the chemical stability of ammonium dinitramide, Journal of Physical Chemistry A, 112, 11, pp. 2456-2463, (2008)
[27]  
Rahm M., Brinck T., On the anomalous decomposition and reactivity of ammonium and potassium dinitramide, Journal of Physical Chemistry A, 114, 8, pp. 2845-2854, (2010)
[28]  
Rahm M., Brinck T., Kinetic stability and propellant performance of green energetic materials, Chemistry A European Journal, 16, 22, pp. 6590-6600, (2010)
[29]  
Rahm M., Trinchero A., Brinck T., Envisioning new high energy density materials: stability, detection and performance, in: energetic materials for high performance, insensitive munitions and zero pollution, 41st Int. Annu. Conf. ICT, 9, pp. 1-11, (2010)
[30]  
Rahm M., Westlund R., Eldsater C., Et al., Tri-block copolymers of polyethylene glycol and hyperbranched poly-3-ethyl-(hydroxymethyl)oxetane through cationic ring opening polymerization, Journal of Polymer Science Part A: Polymer chemistry, 47, 22, pp. 6191-6200, (2009)