首页> 外文期刊>RSC Advances >Intermolecular interaction and mechanical properties of energetic plasticizer MN reinforced 2,4,6-trinitrotoluene/1,3,5-trinitrohexahydro-1,3,5-triazine molten-energetic-composite (MEC)
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Intermolecular interaction and mechanical properties of energetic plasticizer MN reinforced 2,4,6-trinitrotoluene/1,3,5-trinitrohexahydro-1,3,5-triazine molten-energetic-composite (MEC)

机译:高能增塑剂MN增强的2,4,6-三硝基甲苯/ 1,3,5-三硝基六氢-1,3,5-三嗪熔融高能复合材料(MEC)的分子间相互作用和力学性能

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Enhancing the mechanical properties is always an attractive challenge in the research area of energetic materials (EMs). In the present work, 1.5 wt% MN-plasticizers (mononitrotoluene compounds, a mixture of 2-nitrotoluene and 4-nitrotoluene) were applied for reinforcing a molten-energetic-composite (MEC) 2,4,6-trinitrotoluene (TNT)/1,3,5-trinitrohexahydro-1,3,5-triazine (RDX). Brazilian disk testing results show that the tensile modulus of reinforced MEC increases by 26%. In order to explore the reinforcement mechanism, quantum chemistry (QC) and molecular dynamics (MD) simulations were performed to study the structural and physical properties of the reinforced MEC. The basis set superposition error (BSSE) and the interaction energies of TNT, RDX and plasticizers were computed at the MP2/6-311++G** level. Compared with the weak interaction energy between RDX and TNT (-1.586 kJ mol(-1)), the interaction energies of reinforced MEC increase massively after incorporating MN-plasticizer. The SEM images of fractured surfaces from MECs also reveal that MNs can form layered deposits in TNT and closely surround crystalline RDX due to the presence of strong intermolecular interaction. Besides, MD simulation results further explain that the tensile modulus of (100) TNT and (100) RDX increases when introducing MN plasticizer separately, which agree with the change trends of mechanical properties from the Brazilian disk test. This work provides a new path for studying reinforced energetic composites by combining microscopy, mechanical testing and theoretical simulations.
机译:在高能材料(EM)的研究领域,提高机械性能始终是一个有吸引力的挑战。在本工作中,应用了1.5 wt%的MN增塑剂(单硝基甲苯化合物,2-硝基甲苯和4-硝基甲苯的混合物)来增强熔融高能复合材料(MEC)2,4,6-三硝基甲苯(TNT)/ 1,3,5-三硝基六氢-1,3,5-三嗪(RDX)。巴西圆盘测试结果表明,增强型MEC的拉伸模量提高了26%。为了探索增强机理,进行了量子化学(QC)和分子动力学(MD)模拟,以研究增强型MEC的结构和物理性质。在MP2 / 6-311 ++ G **的水平上计算基集叠加误差(BSSE)以及TNT,RDX和增塑剂的相互作用能。与RDX和TNT之间的弱相互作用能(-1.586 kJ mol(-1))相比,掺入MN-增塑剂后增强型MEC的相互作用能大量增加。来自MEC的断裂表面的SEM图像还表明,由于存在强烈的分子间相互作用,MN可在TNT中形成分层沉积并紧密围绕结晶RDX。此外,MD模拟结果进一步说明,当分别引入MN增塑剂时,(100)TNT和(100)RDX的拉伸模量增加,这与巴西圆盘试验的力学性能变化趋势一致。这项工作通过结合显微镜,力学测试和理论模拟,为研究增强型含能复合材料提供了一条新途径。

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