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Learning the initial mechanical response of composite material: structure evolution and energy profile of a plastic bonded explosive under rapid loading

机译:学习复合材料的初始机械响应:快速负荷下塑料粘合爆炸的结构演化和能量曲线

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摘要

Plastic bonded explosive (PBX) is a typical composite material used widely in the defense industry and in aerospace engineering. The mechanical behavior of PBX is an important factor to be considered in its formulation design, but the initial mechanical response is not well understood due to the complexities of atomic interactions in a multi-component system. We applied a hybrid force field to investigate the initial mechanical response of cyclotrimethylenetrinitramine(RDX)-based PBX, by molecular dynamics. The structure evolution shows that the initial damage occurs mainly in the binder region, and is caused by conformational stretching and void propagation. The relationship between loading rate and initial damage indicates that lower loading rate is more beneficial to conformation relaxation, and consequently to increasing strain limitation. The energy profile indicates that the variation of non-bonded interaction energy, especially coulomb energy, has a significant influence on the variation of total energy. Therefore, when designing PBX, good mechanical strength can be expected by selecting polymer and explosive formulations with strong electrostatic interaction
机译:塑料粘合炸药(PBX)是一种典型的复合材料,广泛用于国防工业和航空航天工程。 PBX的力学行为是在其配方设计中考虑的重要因素,但由于多组分系统中的原子相互作用的复杂性,初始机械反应尚未得到很好地理解。我们施加了一种混合力领域以研究通过分子动力学研究环烷四烯四氢硝胺(RDX)的初始机械响应。结构进化表明,初始损坏主要发生在粘合剂区域中,并且是由构象拉伸和空隙繁殖引起的。加载率和初始损伤之间的关系表明,较低的负载率与构象松弛更有益,从而提高应变限制。能量分布表明,非粘结相互作用能量,特别是库仑能量的变化对总能量的变化具有显着影响。因此,当设计PBX时,通过选择具有强静电相互作用的聚合物和爆炸性配方,可以预期良好的机械强度

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