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Nonideal detonation regimes in low density explosives

机译:低密度炸药的非理想爆轰机制

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摘要

Measurements using Velocity Interferometer System for Any Reflector (VISAR) were performed for three high explosives at densities slightly above the natural loose-packed densities. The velocity histories at the explosive/window interface demonstrate that the grain size of the explosives plays an important role. Fine-grained materials produced rather smooth records with reduced von Neumann spike amplitudes. For commercial coarse-grained specimens, the chemical spike (if detectable) was more pronounced. This difference can be explained as a manifestation of partial burn up. In fine-grained explosives, which are more sensitive, the reaction can proceed partly within the compression front, which leads to a lower initial shock amplitude. The reaction zone was shorter in fine-grained materials because of higher density of hot spots. The noise level was generally higher for the coarse-grained explosives, which is a natural stochastic effect of the highly non-uniform flow of the heterogeneous medium. These results correlate with our previous data of electrical conductivity diagnostics. Instead of the classical Zel'dovich-von Neumann-Doring profiles, violent oscillations around the Chapman-Jouguet level were observed in about half of the shots using coarse-grained materials. We suggest that these unusual records may point to a different detonation wave propagation mechanism.0
机译:使用速度干涉仪系统的任何反射器(VISAR)进行的测量,是对三种高爆炸药进行的,其密度略高于自然疏散密度。炸药/窗口界面的速度历史表明,炸药的晶粒尺寸起着重要作用。细颗粒的材料产生了相当平滑的记录,并降低了冯·诺依曼尖峰幅度。对于市售的粗颗粒样品,化学峰值(如果可检测到)更为明显。这种差异可以解释为部分燃尽的表现。在较敏感的细粒炸药中,反应可部分在压缩前沿进行,这会导致较低的初始冲击幅度。由于热点密度较高,在细颗粒物料中反应区更短。粗粒炸药的噪声水平通常较高,这是异质介质高度不均匀流动的自然随机效应。这些结果与我们先前的电导率诊断数据相关。与经典的Zel'dovich-von Neumann-Doring轮廓不同,使用粗粒材料在大约一半的镜头中观察到了Chapman-Jouguet水平附近的剧烈振荡。我们建议这些异常记录可能指向不同的爆炸波传播机制。0

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  • 来源
    《Journal of Applied Physics》 |2016年第7期|075903.1-075903.6|共6页
  • 作者单位

    Lavrentyev Institute of Hydrodynamics, Siberian Branch of Russian Academy of Sciences, Novosibirsk 630090, Russia;

    Lavrentyev Institute of Hydrodynamics, Siberian Branch of Russian Academy of Sciences, Novosibirsk 630090, Russia;

    Lavrentyev Institute of Hydrodynamics, Siberian Branch of Russian Academy of Sciences, Novosibirsk 630090, Russia;

    Lavrentyev Institute of Hydrodynamics, Siberian Branch of Russian Academy of Sciences, Novosibirsk 630090, Russia;

    Lavrentyev Institute of Hydrodynamics, Siberian Branch of Russian Academy of Sciences, Novosibirsk 630090, Russia;

    Lavrentyev Institute of Hydrodynamics, Siberian Branch of Russian Academy of Sciences, Novosibirsk 630090, Russia;

    Lavrentyev Institute of Hydrodynamics, Siberian Branch of Russian Academy of Sciences, Novosibirsk 630090, Russia;

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