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首页> 外文期刊>Journal of molecular modeling >The influence of temperature and component proportion on stability, sensitivity, and mechanical properties of LLM-105/HMX co-crystals via molecular dynamics simulation
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The influence of temperature and component proportion on stability, sensitivity, and mechanical properties of LLM-105/HMX co-crystals via molecular dynamics simulation

机译:通过分子动力学模拟对LLM-105 / HMX共晶体稳定性,灵敏度和机械性能的影响

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摘要

Based on molecular dynamics (MD) simulation, the binding energy, cohesive energy density (CED), bond length, and mechanical parameters were calculated for 2,6-diamino-3,5-dinitropyrazine-l-oxide (LLM-105) crystal, octahydro-1,3,5,7-tetranitro-1,3,5,7-tetrazocine (HMX) crystal, and their co-crystals under different temperatures. Three LLM-105/HMX patterns were constructed to investigate the influence of component proportion on structures and properties of co-crystals, in which the mole ratios of LLM-105 and HMX are 1:1, 1:2, and 2:1. The effect of temperature and components on the stability and sensitivity were investigated as well. The results show that the binding energies, CED and mechanical parameters of all the co-crystals, decrease when the temperature increases from 248 to 398 K, while their maximum N-NO2 bond length (L-max) increases with rising temperature, indicating that the sensitivities increase and stabilities decrease when temperature rises. At all temperatures, co-crystals exhibit larger CED and shorter bond length than that of single explosive, demonstrating that they are more stable and less sensitive than single crystal, where the stability of co-crystals was ordered as 2:1>1:1>1:2. Moreover, the bulk modulus (K) and shear modulus (G) of co-crystals are lower than that of HMX, conversely, the Cauchy pressure and K/G are higher than that of HMX, implying co-crystals have better ductility. Finally, the 2:1 ratio of LLM-105/HMX co-crystal was identified as the excellent one, owning to the highest binding energy, highest CED, shortest L-max, and greatest ductility.
机译:基于分子动力学(MD)模拟,计算2,6-二氨基-3,5-二硝基吡吡吡嗪-L-氧化物(LLM-105)晶体计算结合能量,粘性能量密度(CED),键合长度和机械参数,八烷基鎓-1,3,5,7-四硝基-1,3,5,7-四碱(HMX)晶体,以及它们在不同温度下的共晶体。构建三种LLM-105 / HMX图案以研究组分比例对结构和性质的影响,其中LLM-105和HMX的摩尔比为1:1,1:2和2:1。还研究了温度和组分对稳定性和敏感性的影响。结果表明,当温度从248增加到398 k时,所有共晶的结合能,CED和机械参数减小,而其最大N-NO2键长(L-MAX)随着温度上升而增加,表明为此当温度升高时,敏感性增加和稳定性降低。在所有温度下,共晶体表现出比单一爆炸性更大的CED和较短的粘合长度,表明它们比单晶更稳定,敏感较小,其中共晶的稳定性被命令为2:1> 1:1 > 1:2。此外,相反地,Cauchy压力和K / g的综合模量(k)和剪切模量(k)和剪切模量(G)低于HMX的含量高于HMX的剪切模量,暗示副晶体具有更好的延展性。最后,将LLM-105 / HMX共晶的2:1的比例鉴定为优异的晶体,其具有最高的结合能量,最高的CED,最短的L-MAX和最大的延展性。

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