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Theoretical evaluation of sensitivity and thermal stability for high explosives based on quantum chemistry methods: A brief review

机译:基于量子化学方法的高炸药敏感性和热稳定性的理论评价:简述

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Over the past 20 years, a number of scientists have conducted numerous fundamental investigations based on quantum chemistry theory into various mechanistic processes that seems to contribute to the sensitivity of energetic materials. A large number of theoretical methods that have been used to predict their mechanical and spark sensitivity are summarized in this article, in which the advantages and disadvantages of these methods, together with their scope of use are clarified. In addition, the theoretical models for thermal stability of explosives are briefly introduced as a supplement. It has been concluded that the current ability to predict sensitivity is merely based on a series of empirical rules, such as simple oxygen balance, molecular properties, and the ratios of C and H to oxygen for different classes of explosive compounds. These are valid only for organic classes of explosives, though some special models have been proposed for inorganic explosives, such as azides. An exact standard for sensitivity should be established experimentally by some new techniques for both energetic compounds and their mixtures.
机译:在过去的20年中,许多科学家基于量子化学理论对各种机械过程进行了许多基础研究,这些过程似乎有助于高能材料的敏感性。本文总结了用于预测其机械灵敏度和火花灵敏度的大量理论方法,其中阐明了这些方法的优缺点以及使用范围。此外,作为补充,简要介绍了炸药热稳定性的理论模型。已经得出结论,当前的预测灵敏度的能力仅基于一系列经验规则,例如简单的氧平衡,分子性质以及不同类别爆炸物的C和H与氧的比率。尽管已针对无机炸药(如叠氮化物)提出了一些特殊模型,但这些仅对有机类炸药有效。对于高能化合物及其混合物,应通过一些新技术通过实验建立准确的灵敏度标准。

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