Li Ming-Yao, Bai Liang-Fei, Shi Ye-Bai, Sun Guang-Ai, Wang Feng, Gong Jian, Ju Xin
School of Materials Science and Engineering, Chongqing Jiaotong University, Chongqing, 400074, China.
Key Laboratory of Neutron Physics and Institute of Nuclear Physics and Chemistry, CAEP, Mianyang, 621999, China.
J Mol Model. 2020 Mar 7;26(4):69. doi: 10.1007/s00894-020-4329-4.
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-NO bond length (L) 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, and greatest ductility. Graphical Abstract Models of LLM-105/HMX and one of the properties.
基于分子动力学(MD)模拟,计算了2,6 - 二氨基 - 3,5 - 二硝基吡嗪 - 1 - 氧化物(LLM - 105)晶体、八氢 - 1,3,5,7 - 四硝基 - 1,3,5,7 - 四氮杂环辛烷(HMX)晶体及其不同温度下的共晶体的结合能、内聚能密度(CED)、键长和力学参数。构建了三种LLM - 105/HMX模式,以研究组分比例对共晶体结构和性能的影响,其中LLM - 105与HMX的摩尔比分别为1:1、1:2和2:1。同时研究了温度和组分对稳定性和感度的影响。结果表明,当温度从248 K升高到398 K时,所有共晶体的结合能、CED和力学参数均降低,而其最大N - NO键长(L)随温度升高而增加,这表明温度升高时感度增加而稳定性降低。在所有温度下,共晶体比单一炸药表现出更大的CED和更短的键长,表明它们比单晶更稳定、感度更低,其中共晶体的稳定性顺序为2:1>1:1>1:2。此外,共晶体的体积模量(K)和剪切模量(G)低于HMX,相反,柯西压力和K/G高于HMX,这意味着共晶体具有更好的延展性。最后,LLM - 105/HMX共晶体的2:1比例被确定为最佳比例,因为它具有最高的结合能、最高的CED、最短的L和最大的延展性。图形摘要LLM - 105/HMX模型及其一种性能。