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首页> 外文期刊>Journal of molecular modeling >Theoretical investigations on structures, stability, energetic performance, sensitivity, and mechanical properties of CL-20/TNT/HMX cocrystal explosives by molecular dynamics simulation
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Theoretical investigations on structures, stability, energetic performance, sensitivity, and mechanical properties of CL-20/TNT/HMX cocrystal explosives by molecular dynamics simulation

机译:通过分子动力学模拟对CL-20 / TNT / HMX COCRYSTAL爆炸物的结构,稳定性,能量性能,灵敏度和力学性能的理论研究

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In this article, the CL-20, TNT, HMX, CL-20/TNT, CL-20/HMX and different CL-20/TNT/HMX cocrystal models were established. Molecular dynamics method was selected to optimize the structures, predict the stability, sensitivity, energetic performance, and mechanical properties of cocrystal models. The binding energy, trigger bond length, trigger bond energy, cohesive energy density, detonation parameters, and mechanical properties of each crystal model were obtained. The influences of co-crystallization and molar ratios on performances of cocrystal explosives were investigated and evaluated. The results show that the CL-20/TNT/HMX cocrystal explosive with a molar ratio of 3:1:2 or 3:1:3 had larger binding energy and better stability, i.e., CL-20/TNT/HMX cocrystal explosive was more likely to be formed with these molar ratios. The cocrystal explosive had shorter maximal trigger bond length, but larger trigger bond energy and cohesive energy density than CL-20, namely, the cocrystal explosive had lower mechanical sensitivity and better safety than CL-20 and the safety of cocrystal model was effectively improved. The cocrystal model with a molar ratio of 3:1:2 had the best safety. The energetic performance of the cocrystal explosive with a molar ratio of 3:1:1, 3:1:2, or 3:1:3 was the best. These CL-20/TNT/HMX cocrystal models exhibited better and more desirable mechanical properties. In a word, the cocrystal model with molar ratio of 3:1:2 exhibited the most superior properties and was a novel and potential high-energy-density compound. This paper could provide practical helpful guidance and theoretical support to better understand co-crystallization mechanisms and design novel energetic cocrystal explosives.
机译:在本文中,建立了Cl-20,TNT,HMX,Cl-20 / TNT,Cl-20 / HMX和不同的CL-20 / TNT / HMX COCrystal模型。选择分子动力学方法以优化结构,预测COCrystal模型的稳定性,灵敏度,能量性能和力学性能。获得了每个晶体模型的粘合能量,触发键长,触发粘接能,粘性能量密度,爆轰参数和机械性能。研究并评估了共结晶和摩尔比对Cocrystal爆炸物性能的影响。结果表明,具有3:1:2或3:1:3的摩尔比的Cl-20 / TNT / HMX共轭具有较大的结合能量和更好的稳定性,即Cl-20 / TNT / HMX Cocrystal炸药是更有可能形成这些摩尔比。 COCrystal爆炸性具有较短的最大触发键长,但触发粘合能量和粘性能量密度大于CL-20,即COCrystal爆炸性具有较低的机械敏感性,并且比COCrystal模型的安全性更好地提高了COCRYSTAL模型的安全性。摩尔比为3:1:2的COCrystal模型具有最佳安全性。摩尔比为3:1:1,3:1:2或3:1:3的聚晶爆炸的能量性能是最佳的。这些CL-20 / TNT / HMX共晶模型表现出更好更好更好的机械性能。总之,具有3:1:2的摩尔比的COCrystal模型表现出最优异的性质,并且是一种新颖的和潜在的高能密度化合物。本文可以提供实用有益的指导和理论支持,以更好地了解共结晶机制和设计新颖的精力充沛的炸药。

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