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Interface Chemistry Dependent Mechanical Properties in Energetic Materials Using Nano-Scale Impact Experiment

机译:使用纳米尺度冲击实验在能量材料中接口化学依赖性机械性能

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Energetic materials are sensitive to mechanical shock and defects caused by a high velocity impact, which may result in unwanted detonation due to hot-spot formation. In order to understand the underlying mechanism, characterization of high strain rate mechanical properties needs to be studied. One of the key factors that can contribute to this type of defect is the failure initiated at the interfaces such as those between Hydroxyl-terminated polybutadiene (HTPB)-HMX (or HTPB-Ammonium Perchlorate (AP)). In this work, interface mechanical properties of HTPB-HMX (and HTPB-AP) interfaces are characterized using nano-scale impact experiments at strain rates up to 100 s~(-1). The experiments were conducted with impactor of radius 1 μm on the interfaces with varying amount of binding agent. For HTPB-AP samples, Tepanol is used as the binding agent. The impact response is determined in the bulk HTPB, HMX, and AP as well as at the HTPB-HMX and HTPB-AP interfaces. A power law viscoplastic constitutive model is fitted to experimental stress-strain-strain rate data which can be used in Finite Element Model simulation to predict the shock behavior of energetic materials. An in-situ mechanical Raman spectroscopy (MRS) setup was used to analyze the effect of interface chemistry on interface level stress variation. The stress distribution near the interface captures the effect of interface chemistry variation.
机译:高能材料对机械冲击和所引起的高速冲击的缺陷,这可能导致不需要的爆轰由于热点的形成敏感。为了理解的基本机制,高应变速率机械性能需求表征待研究。一的,可以促进这种类型的缺陷的主要因素是在界面处发起诸如那些端羟基聚丁二烯之间的故障(HTPB)-HMX(或HTPB - 过氯酸铵(AP))。在这项工作中,接口HTPB-HMX(和HTPB-AP)的机械性能接口使用纳米尺度的冲击实验,其特征在应变速率高达100秒〜(-1)。实验是用在具有不同的结合剂的量在接口的半径1μm的冲击进行。对于HTPB-AP样品,Tepanol被用作结合剂。的冲击响应在散装HTPB,HMX确定,并且AP以及在HTPB-HMX和HTPB-AP接口。幂定律粘塑性本构模型拟合到可在有限元模型仿真可用于预测高能材料的冲击性能试验的应力 - 应变 - 应变速率的数据。原位机械拉曼光谱(MRS)设置用于分析界面化学的上界面水平应力变化的影响。界面附近的应力分布捕获界面化学变化的影响。

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