首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Decomposition and Energy-Enhancement Mechanism of the Energetic Binder Glycidyl Azide Polymer at Explosive Detonation Temperatures
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Decomposition and Energy-Enhancement Mechanism of the Energetic Binder Glycidyl Azide Polymer at Explosive Detonation Temperatures

机译:爆炸性爆炸温度下的能量粘合剂糖苷叠氮化物聚合物的分解和能量增强机理

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摘要

Replacing existing inert binders with energetic ones in composite explosives is a novel way to improve the explosive performance, on the proviso that energetic binders are capable of releasing chemical energy rapidly in the detonation environment. Known to be a promising candidate, the reaction mechanism of glycidyl azide polymer (GAP) at typical detonation temperatures higher than 3000 K has been theoretically studied in this work at the atomistic level. By analyzing and tracking the cleavage of characteristic chemical bonds, it was found that at the detonation temperature, GAP was able to release a large amount of energy and small molecule products at a speed comparable to commonly used explosives in the early reaction stage, which was mainly attributed to the decomposition of azide groups into N-2 and the main chain breakage into small fragments. Moreover, N-2 generation was found to be accelerated by H atom transfer at an earlier reaction step. The dissociation energy of the main chain was lowered with structure deformation so as to facilitate the fragmentation of the GAP chain. Based on this analytical study of reaction kinetics, GAP was found to have higher reactivity at the detonation temperature than at lower temperatures. The small molecules' yield rate is of the same order of magnitude as an explosive detonation reaction, indicating that GAP has the potential to improve the performance of composite explosives. Our study reveals the chemical decomposition mechanism of a typical energetic binder, which would aid in the future design and synthesis of energetic binders so as to achieve both sensitivity-reducing and energy-enhancing performance goals simultaneously.
机译:在复合爆炸物中用能量粘合剂取代现有的惰性粘合剂是一种提高爆炸性性能的新方法,即精力充分粘合剂能够在爆炸环境中快速释放化学能量。已知是一个有前途的候选者,在这项工作中在原子学水平的理论上已经研究了典型的爆炸温度在高于3000k的典型爆炸温度下的缩水甘油聚合物(间隙)的反应机理。通过分析和跟踪特征化学键的切割,发现在爆轰温度下,间隙能够以与早期反应阶段的常用炸药相当的速度释放大量的能量和小分子产物,这是主要归因于将叠氮基团分解成N-2和主要链破裂成小片段。此外,发现N-2代在较早的反应步骤中通过H原子转移加速。主链的解离能以结构变形降低,以便于间隙链的碎裂。基于该反应动力学的分析研究,发现间隙在爆轰温度下具有较高的反应性,而不是在较低温度下的反应性。小分子的产量率与爆炸性爆轰反应相同,表明间隙具有改善复合爆炸物性能的潜力。我们的研究揭示了典型的能量粘合剂的化学分解机制,这将有助于未来的精力粘合剂的设计和合成,以便同时实现灵敏度降低和能量增强的性能目标。

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