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Ignition criterion for heterogeneous energetic materials based on hotspot size-temperature threshold

机译:基于热点大小-温度阈值的非均质含能材料着火标准

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摘要

A criterion for the ignition of granular explosives (GXs) and polymer-bonded explosives (PBXs) under shock and non-shock loading is developed. The formulation is based on integration of a quantification of the distributions of the sizes and locations of hotspots in loading events using a cohesive finite element method (CFEM) developed recently and the characterization by Tarver et al. [C. M. Tarver et al., "Critical conditions for impact- and shock-induced hot spots in solid explosives," J. Phys. Chem. 100, 5794-5799 (1996)] of the critical size-temperature threshold of hotspots required for chemical ignition of solid explosives. The criterion, along with the CFEM capability to quantify the thermal-mechanical behavior of GXs and PBXs, allows the critical impact velocity for ignition, time to ignition, and critical input energy at ignition to be determined as functions of material composition, microstructure, and loading conditions. The applicability of the relation between the critical input energy (E) and impact velocity of James [H. R. James, "An extension to the critical energy criterion used to predict shock initiation thresholds," Propellants, Explos., Pyrotech. 21, 8-13 (1996)] for shock loading is examined, leading to a modified interpretation, which is sensitive to microstructure and loading condition. As an application, numerical studies are undertaken to evaluate the ignition threshold of granular high melting point eXplosive, octahydro-l,3,5,7-tetranitro-l,2,3,5-tetrazocine (HMX) and HMX/Estane PBX under loading with impact velocities up to 350 ms~(-1) and strain rates up to 10~5 s~(-1). Results show that, for the GX, the time to criticality (t_c) is strongly influenced by initial porosity, but is insensitive to grain size. Analyses also lead to a quantification of the differences between the responses of the GXs and PBXs in terms of critical impact velocity for ignition, time to ignition, and critical input energy at ignition. Since the framework permits explicit tracking of the influences of microstructure, loading, and mechanical constraints, the calculations also show the effects of stress wave reflection and confinement condition on the ignition behaviors of GXs and PBXs.
机译:制定了在冲击和非冲击载荷下点燃粒状炸药(GXs)和聚合物粘结炸药(PBXs)的标准。该公式是基于使用最近开发的内聚有限元方法(CFEM)以及Tarver等人的表征,对加载事件中热点的大小和位置的分布的量化积分。 [C。 M. Tarver等人,“固体炸药中撞击和冲击引起的热点的临界条件”,《物理学报》。化学100,5794-5799(1996)]来确定固体炸药化学点火所需的热点的临界尺寸-温度阈值。该标准以及CFEM量化GX和PBX的热机械行为的能力,可以确定点火的临界冲击速度,点火时间和点火时的临界输入能量,取决于材料的成分,微观结构和加载条件。临界输入能量(E)与James的撞击速度之间关系的适用性[H. R. James,“对用于预测冲击起始阈值的临界能量标准的扩展”,Pyrotech的Propellants,Explos。 21,8-13(1996)]检查了冲击载荷,得出了对微观结构和载荷条件敏感的修改解释。作为一种应用,进行了数值研究,以评估颗粒状高熔点爆炸物,八氢-1,3,5,7-四硝基-1,2,3,5-四唑辛(HMX)和HMX / Estane PBX的点火阈值。冲击速度高达350 ms〜(-1),应变速率高达10〜5 s〜(-1)。结果表明,对于GX,临界时间(t_c)受到初始孔隙率的强烈影响,但对晶粒尺寸不敏感。分析还可以量化GX和PBX的响应之间的差异,这些差异包括点火的临界撞击速度,点火时间和点火时的临界输入能量。由于该框架允许显式跟踪微观结构,载荷和机械约束的影响,因此计算还显示了应力波反射和约束条件对GX和PBX点火行为的影响。

著录项

  • 来源
    《Journal of Applied Physics》 |2013年第6期|064906.1-064906.22|共22页
  • 作者

    A. Barua; S. Kim; Y. Horie; M. Zhou;

  • 作者单位

    The George W. Woodruff School of Mechanical Engineering, School of Materials Science and Engineering,Georgia Institute of Technology, Atlanta, Georgia 30332-0405, USA;

    The George W. Woodruff School of Mechanical Engineering, School of Materials Science and Engineering,Georgia Institute of Technology, Atlanta, Georgia 30332-0405, USA;

    Air Force Research Lab, Munitions Directorate, 2306-Perimeter Road, Eglin AFB, Florida 32542, USA;

    The George W. Woodruff School of Mechanical Engineering, School of Materials Science and Engineering,Georgia Institute of Technology, Atlanta, Georgia 30332-0405, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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