Preparation and Molecular Dynamic Simulation of Superfine CL-20/TNT Cocrystal Based on the Opposite Spray Method

被引:0
|
作者
Yuan, Junming [1 ]
Liu, Zhenyang [1 ]
Han, Tao [1 ]
Li, Junyi [1 ]
Han, Peijiang [1 ]
Wang, Jing [1 ]
机构
[1] North Univ China, Sch Environm & Safety Engn, Taiyuan 030051, Peoples R China
关键词
CL-20/TNT; cocrystal; opposite spray method; molecular dynamic simulation; pneumatic atomized droplets; CO-CRYSTAL; SENSITIVITY; DECOMPOSITION; DECREASE;
D O I
10.3390/ijms25179501
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
In view of the current problems of slow crystallization rate, varying grain sizes, complex process conditions, and low safety in the preparation of CL-20/TNT cocrystal explosives in the laboratory, an opposite spray crystallization method is provided to quickly prepare ultrafine explosive cocrystal particles. CL-20/TNT cocrystal explosive was prepared using this method, and the obtained cocrystal samples were characterized by electron microscopy morphology, differential thermal analysis, infrared spectroscopy, and X-ray diffraction analysis. The effects of spray temperature, feed ratio, and preparation method on the formation of explosive cocrystal were studied, and the process conditions of the pneumatic atomization spray crystallization method were optimized. The crystal plane binding energy and molecular interaction forces between CL-20 and TNT were obtained through molecular dynamic simulation, and the optimal binding crystal plane and cocrystal mechanism were analyzed. The theoretical calculation temperature of the binding energy was preliminarily explored in relation to the preparation process temperature of cocrystal explosives. The mechanical sensitivity of ultrafine CL-20/TNT cocrystal samples was tested. The results showed that choosing acetone as the cosolvent, a spraying temperature of 30 degrees C, and a feeding ratio of 1:1 was beneficial for the formation and growth of cocrystal. The prepared CL-20/TNT cocrystal has a particle size of approximately 10 mu m. The grain size is small, and the crystallization rate is fast. The impact and friction sensitivity of ultrafine CL-20/TNT cocrystal samples were significantly reduced. The experimental process conditions are simple and easy to control, and the safety of the preparation process is high, providing certain technical support for the preparation of high-quality cocrystal explosives.
引用
收藏
页数:21
相关论文
共 50 条
  • [1] Preparation and characterization of ultrafine CL-20/TNT cocrystal explosive by spray drying method
    School of Chemical and Enviroment Engineering, North University of China, Taiyuan
    030051, China
    Hanneng Cailiao, 11 (1103-1106):
  • [2] Molecular Dynamics Simulation on CL-20/TNT Cocrystal Explosive
    Liu Qiang
    Xiao Jijun
    Zhang Jiang
    Zhao Feng
    He Zhenghua
    Xiao Heming
    CHEMICAL JOURNAL OF CHINESE UNIVERSITIES-CHINESE, 2016, 37 (03): : 559 - 566
  • [3] Atomistic simulation on pyrolysis mechanism of CL-20/TNT cocrystal explosive
    Liu H.
    Yang Z.
    He Y.-H.
    He, Yuan-Hang (heyuanhang@bit.edu.cn), 1600, China Ordnance Industry Corporation (40): : 14 - 20
  • [4] Impact sensitivity and moisture adsorption on the surface of CL-20/TNT cocrystal by molecular dynamics simulation
    Sha, Yu
    Zhang, Xiaobing
    APPLIED SURFACE SCIENCE, 2019, 483 : 91 - 97
  • [5] Theoretical investigations on the structures and properties of CL-20/TNT cocrystal and its defective models by molecular dynamics simulation
    Gui-yun Hang
    Wen-li Yu
    Tao Wang
    Jin-tao Wang
    Journal of Molecular Modeling, 2018, 24
  • [6] Theoretical investigations on the structures and properties of CL-20/TNT cocrystal and its defective models by molecular dynamics simulation
    Hang, Gui-yun
    Yu, Wen-li
    Wang, Tao
    Wang, Jin-tao
    JOURNAL OF MOLECULAR MODELING, 2018, 24 (07)
  • [7] Preparation of CL-20/DNDAP cocrystals by a rapid and continuous spray drying method: an alternative to cocrystal formation
    Liu, Ning
    Duan, Binghui
    Lu, Xianming
    Mo, Hongchang
    Xu, Minghui
    Zhang, Qian
    Wang, Bozhou
    CRYSTENGCOMM, 2018, 20 (14): : 2060 - 2067
  • [8] Molecular Dynamics Simulation of CL-20/DNDAP Cocrystal Morphology at Different Temperatures
    Li X.
    Li W.
    Ju X.-H.
    Huozhayao Xuebao/Chinese Journal of Explosives and Propellants, 2023, 46 (06): : 537 - 544
  • [9] Preparation and Characterization of Superfine CL-20/EPDM Composite Microspheres
    Li, Yunqiu
    Li, Bin
    Xie, Lifeng
    CHEMISTRYSELECT, 2019, 4 (45): : 13259 - 13264
  • [10] Preparation and Performance Test of CL-20/RDX Cocrystal Explosive
    Hang G.-Y.
    Yu W.-L.
    Wang T.
    Wang J.-T.
    Shen H.-M.
    Huozhayao Xuebao/Chinese Journal of Explosives and Propellants, 2021, 44 (04): : 484 - 488