CHINESE JOURNAL OF ENERGETIC MATERIALS
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湿热耦合作用下ε-HNIW的多路径相变行为与诱导机制
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中国工程物理研究院化工材料研究所, 四川 绵阳 621999

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国家自然科学基金(22275177,21805259)


Multipath phase transition behavior and inducement mechanisms of ε-HNIW under hygrothermal coupling
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Institute of Chemical Materials, CAEP, Mianyang 621999, China

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    摘要:

    为研究湿热耦合环境对HNIW晶体结构稳定性影响及作用机制,采用加速老化、原位X射线衍射及分子动力学模拟等方法,研究了80~100 ℃、70% RH~100% RH湿热条件下HNIW的相变行为及其内在诱因。结果发现湿热环境下HNIW晶变温度与热刺激相比大幅降低,从135 ℃降低到80 ℃,HNIW的颗粒尺寸效应导致其出现ε→γεα的多路径相变行为,表明晶体特性的差异是导致HNIW出现多路径相变的关键因素,其中超细炸药的εγ相变速率最快在低于70%RH湿热条件下HNIW的相变并不明显,但其微结构损伤将导致晶相结构稳定性变差且热晶变温度降低。结合理论计算得出,通常湿热环境会诱导HNIW发生液-固界面反应,水分子通过表面微溶诱导成核生长机理促使炸药发生晶型转变,从而嵌入到HNIW晶体内部形成α晶型,但这种嵌入方式具有选择性,对超细颗粒将直接转变为高温稳定的γ晶型。

    Abstract:

    To investigate the impact of humid-thermal coupled environments on the structural stability of HNIW crystals and its underlying mechanism, accelerated aging tests, in-situ X-ray diffraction, and molecular dynamics simulations were employed to study the phase transition behavior of HNIW under various humid-thermal conditions and its intrinsic causes. It was found that the crystal transition temperature of HNIW in humid-thermal environments significantly decreased compared to that under thermal stimulation alone, dropping from 135 ℃ to 80 ℃. The particle size effect of HNIW led to multipath phase transition behaviors, namely εγ and εα, indicating that differences in crystal characteristics are key factors contributing to the multipath phase transitions in HNIW. Among these, the εγ transition rate was the fastest in ultrafine HNIW. Under humid-thermal conditions below 70% RH, the phase transition of HNIW was not significant, but microstructural damage resulted in reduced stability of the crystal phase structure and a decrease in the thermal crystal transition temperature. Combined with theoretical calculations, it is generally concluded that a hot and humid environment can induce liquid-solid interfacial reactions in HNIW. Water molecules, through a mechanism of surface micro-dissolution-induced nucleation and growth, promote the crystal form transformation of the explosive. This process leads to the embedding of water molecules into the internal structure of the HNIW crystal, resulting in the formation of the α crystal form. However, this embedding mechanism is selective; for ultra-fine particles, it directly induces transformation into the γ crystal form, which is stable at high temperatures.

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引用本文

徐金江,池钰,李诗纯,等.湿热耦合作用下ε-HNIW的多路径相变行为与诱导机制[J].含能材料, 2025, 33(9):1103-1112. DOI:10.11943/CJEM2025151.
XU Jin-jiang, CHI Yu, ZHANG Hao-bin, et al. Multipath phase transition behavior and inducement mechanisms of ε-HNIW under hygrothermal coupling[J]. Chinese Journal of Energetic Materials, 2025, 33(9):1103-1112. DOI:10.11943/CJEM2025151.

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历史
  • 收稿日期: 2025-06-30
  • 最后修改日期: 2025-09-26
  • 录用日期: 2025-09-26
  • 在线发布日期: 2025-09-26
  • 出版日期: 2025-09-25