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首页> 外文期刊>Journal of molecular modeling >Comparative investigation on the thermostability, sensitivity, and mechanical performance of RDX/HMX energetic cocrystal and its mixture
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Comparative investigation on the thermostability, sensitivity, and mechanical performance of RDX/HMX energetic cocrystal and its mixture

机译:RDX / HMX能量COCrystal及其混合物的热稳定性,灵敏度和力学性能的比较研究

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摘要

Molecular mechanics (MM) and molecular dynamics (MD) simulation method were applied to explore the impact of temperature (220-380 K) on the thermostability, sensitivity, and mechanical performance of RDX (1,3,5-trinitro-1,3,5-triazacyco-hexane)/HMX (1,3,5,7-tetranitro-1,3,5,7-tetrazocane) energetic cocrystal and mixture models. The mechanical property, the maximum trigger bond length (LN-NO2), binding energy, and cohesive energy density (CED) of the pure RDX, beta-HMX crystal, the cocrystal, and mixture models were acquired and compared. The results manifest that temperature has an important impact on the binding capacity between the components of the cocrystal and mixture. The binding energies decrease as the temperature rises, and the cocrystal has larger values than those of mixture. For all the models, theLN-NO2 increases and the CEDs decrease with the rising temperature, implying that the sensitivity of the explosives increases, while the LN-NO2 values of the cocrystal are smaller than those of HMX and the CED values are between those of RDX and beta-HMX, indicating that the sensitivity has been enhanced through co-crystallization. As the temperature increases, the shear modulus (G), bulk modulus (K), and tensile modulus (E) values of all models have an evident downtrend. Simultaneously, G, K, and E values of the cocrystal model are less than those of RDX and beta-HMX, while the K/G ratio and Cauchy pressure (C-12-C-44) are larger, signifying that co-crystallization can weaken the brittleness and enhance the ductility of the pure crystals. Compared with the mixture, the cocrystal has better ductility and stability.
机译:应用分子力学(MM)和分子动力学(MD)模拟方法探讨温度(220-380 k)对RDX的热稳定性,灵敏度和机械性能的影响(1,3,5-三硝基-1,3 ,5-三氮杂辛基 - 己烷)/ HMX(1,3,5,7-四硝基-1,3,5,7-四氮烷烃)能量间晶和混合模型。获得纯RDX,β-HMX晶体,COCrystal和混合模型的机械性能,最大触发键长(LN-NO2),结合能和粘合能量密度(CED)。结果表明,该温度对COCRYSTAL和混合物的组分之间的结合能力产生了重要影响。随着温度升高,结合能量会降低,并且通过比混合物的值具有较大的值。对于所有模型,Theln-No2增加,并且CED在上升温度下降,暗示爆炸物的敏感性增加,而COCrystal的LN-No2值小于HMX,并且CED值在其中RDX和Beta-HMX,表明通过共结晶得到了增强的灵敏度。随着温度升高,所有型号的剪切模量(G),体积模量(k)和拉伸模量(e)值具有明显的下行趋势。同时,COCrystal模型的G,K和e值小于RDX和β-HMX,而K / G比和C-12-C-44)较大,表示共结晶可以削弱脆性并增强纯晶体的延展性。与混合物相比,Cocrystal具有更好的延展性和稳定性。

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