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Hotspot formation in shock-induced void collapse

机译:震动诱导的空隙崩溃中的热点形成

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We present results from molecular dynamics simulations of shock-induced hydrodynamic void collapse in a model energetic crystal. During void collapse, hotspot formation is observed that leads to subsequent detonation. The hotspot formation mechanism is identified as shock energy focusing via jetting. There is another initiation mechanism that arises from the interaction of reflected shock waves with the rigid piston, which is considered to be an artifact. Such artifact can be eliminated by altering the location of the void. The detonation threshold as a function of the velocity of the driven piston is determined for various void geometries. It is found that a system containing a void has a lower detonation threshold than that of a perfect energetic crystal. The amount of reduction of the detonation threshold depends on the geometry of the void. For square voids, there exists a minimum size above which reduction of the detonation threshold occurs. Among voids that have an equal volume, the void that is elongated along the shock direction gives the lowest detonation threshold.
机译:我们提出了模型能量晶体中的冲击诱导的流体动力空隙塌陷的分子动力学模拟结果。在空隙崩溃期间,观察到热点形成,导致随后的爆炸。热点形成机制被识别为通过喷射的震动能量聚焦。还有另一种引发机构,从反射冲击波与刚性活塞的相互作用产生,这被认为是伪影。通过改变空隙的位置可以消除这种伪像。确定作为从动活塞的速度的函数的爆震阈值用于各种空隙几何形状。发现含有空隙的系统具有比完美的能量晶体的爆炸阈值更低。爆炸阈值的减少量取决于空隙的几何形状。对于方形空隙,存在最小尺寸,提高了爆炸阈值的减少。在具有相同体积的空隙中,沿着冲击方向伸长的空隙给出了最低的爆轰阈值。

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