CHINESE JOURNAL OF ENERGETIC MATERIALS
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空位对五唑阴离子盐Mn(N52冲击反应和损伤演化的影响
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1.重庆市超常配位键工程与先进材料技术重点实验室,长江师范学院, 重庆 40800;2.中物院高性能数值模拟软件中心, 北京 100088;3.南洋理工大学, 新加坡 69798;4.北京应用物理与计算数学研究所, 北京 100088

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国家自然科学基金(11604017, 21875024)


Effect of vacancy defect on shock reaction and damage evolution of pentazolate salt Mn(N52
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1.Key Laboratory of supernormal Coordination Bond Engineering and Advanced Materials Technology, Yangtze Normal University, Chongqing 40800;2.CAEP Software Center for High Performance Numerical Simulation, Beijing 100088, China;3.Nanyang Technological University, 69798 Singapore;4.Institute of Applied Physics and Computational Mathematics, Beijing 100088, China

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    摘要:

    为探究微缺陷对五唑阴离子盐冲击响应、化学分解及损伤演化的影响,采用从头算分子动力学模拟方法研究了完美型Mn(N52晶体及含有3%空位浓度的Mn(N52晶体在不同速度(8,9,10,11,12 km·s-1c轴冲击波作用下的动力学演化和初始分解反应机理。冲击雨贡纽线的计算结果表明,含空位的Mn(N52体系比完美型体系在高压条件下表现出更大的体积压缩比。分子动力学模拟结果显示,当冲击波速vshock<10 km·s-1时,完美型及含有空位的体系在5000 fs内均未出现分解反应,而仅出现了不足10%的体积压缩;当vshock=10 km·s-1时,完美型体系于512.8 fs时刻开始在晶体内均匀地出现N—N键断裂的现象,而含空位体系的初始反应时间则提前至281.6 fs,并且N—N键的断裂集中发生在空位附近;当vshock继续增加至11 km·s-1和12 km·s-1时,两种体系的初始反应时间不断提前,反应进程不断加快,但空位对体系冲击波感度的提升作用和对分解反应进程的加速作用随着冲击波速的提升而不断减弱。研究结果表明空位是热点的早期成核结构之一,空位的存在促进周围的五唑分子发生级联分解,使损伤不断演化成长和传播,进而引起含能材料的点火。

    Abstract:

    To investigate the effect of micro-defects on the shock response, chemical decomposition, and damage evolution of pentazolate salts, ab initio molecular dynamics method is employed to simulate the dynamics evolution and initial chemical reaction mechanisms for perfect Mn(N52 crystal and the crystal with 3% vacancy defects under different shock velocities (8, 9, 10, 11 km·s-1 and 12 km·s-1). The calculated Hugoniot curves indicate that the vacancy-containing system exhibits a slightly higher compression ratio under high-pressure conditions than the perfect system. The molecular dynamics results indicate that when shock velocity vshock<10 km·s-1, perfect and vacancy-containing system only show a slight (<10%) volume compression and neither of them exhibit chemical reactions within 5000 fs. When vshock=10 km·s-1, N─N starts to uniformly rupture within the space of perfect crystal at 512.8 fs, whereas the reaction of vacancy-containing system is advanced to 281.6 fs and the N─N is ruptured near the vacancy. When vshock continually increases to 11 and 12 km·s-1, the starting time of reaction for two systems is further advanced and the reaction process is further speeded up. The positive effects of the vacancy on shock sensitivity and chemical reaction process are weakened with the increase of vshock. The simulated results at the atomistic scale reveal that vacancy defect is one of the early nucleation structures of hot spots. The stress near the vacancy promotes the cascade decomposition of the surrounding pentazolate anion, thereby causing the growth and propagation of damage and ignition of energetic materials.

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引用本文

姚闯,杨叶子,余一,等.空位对五唑阴离子盐Mn(N52冲击反应和损伤演化的影响[J].含能材料, 2020, 28(10):1003-1009. DOI:10.11943/CJEM2020162.
YAO Chuang, YANG Ye-zi, YU Yi, et al. Effect of vacancy defect on shock reaction and damage evolution of pentazolate salt Mn(N52[J]. Chinese Journal of Energetic Materials, 2020, 28(10):1003-1009. DOI:10.11943/CJEM2020162.

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  • 收稿日期: 2020-06-30
  • 最后修改日期: 2020-09-05
  • 录用日期: 2020-08-19
  • 在线发布日期: 2020-08-26
  • 出版日期: 2020-10-25