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Theoretical Study on Improvement Strategy of Crystal Stability and Detonation Energy of Cocrystal Explosive
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1.School of Materials Science and Engineering, Xiangtan University, Xiangtan 411105, China;2.CAEP Software Center for High Performance Numerical Simulation, Beijing 100088, China;3.Key Laboratory of supernormal Coordination Bond Engineering and Advanced Materials Technology, Yangtze Normal University, Chongqing 4081410;4.Nanyang Technological University, 639798 Singapore;5.Institute of Applied Physics and Computational Mathematics, Beijing 100088, China

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    Abstract:

    The calculations of the crystal structures, in-crystal intermolecular interactions, physicochemical properties, crystal stability and detonation performance for 16 reported cocrystal explosives were carried out to explore their effect on crystal stability and detonation performance of cocrystal explosives. We show that the crystal stability of the cocrystal explosives is mainly determined by the hydrogen bonding (HB) amount when the HB strength is less than 21 kJ·mol-1. When the HB strength is more than 21 kJ·mol-1, the crystal stability of the cocrystal explosives is mainly determined by the HB strength. Compared to traditional single-component explosives, the reported 16 cocrystals exhibit better nitrogen content and oxygen balance, but their material densities and detonation performance are less competitive. Through the analysis of CL-20 cocrystal explosives, it is theoretically suggested that enhancing HB strength, instead of introducing more hydrogen atoms to increase HB amount, could be useful to improve crystal stability of cocrystal explosives. This strategy can simultaneously meet the requirement of oxygen balance and nitrogen content in resulting satisfactory detonation performance of cocrystal explosives.

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李重阳,黄勇力,孙长庆,等.共晶炸药晶体稳定性和爆轰能量提升策略的理论研究[J].含能材料,2020,28(9):854-860.
LI Chong-yang, HUANG Yong-li, SUN Chang-qing, et al. Theoretical Study on Improvement Strategy of Crystal Stability and Detonation Energy of Cocrystal Explosive[J]. Chinese Journal of Energetic Materials,2020,28(9):854-860.

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History
  • Received:January 20,2020
  • Revised:June 22,2020
  • Adopted:April 27,2020
  • Online: June 17,2020
  • Published: September 25,2020