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Microjet formation from the grooved surface of aluminum under shock waves with different pulse durations

机译:从带有不同脉冲持续时间的冲击波下的铝的带槽表面的微目型形成

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The shock-induced microjet phenomenon has attracted much attention due to its importance in shock compression science and technology. The existing researches have shown that shockwave profile has a significant effect on the microjet formation. This work investigates the influence of shock pulse duration on the microjet systematically based on smoothed particle hydrodynamics simulations and theoretical analysis. In fact, when the pulse duration of shock wave is more than 7.31 times the time of shock front passing through groove, the microjet mass and its time-space evolution will be consistent with the case under supported shock. It is shown that there is a critical value for the shock pulse duration (about 4.21 times the time of shock front passing through groove), below which the effect of shock pulse duration is distinct. With decreasing the shock pulse duration, the mass from spike to bubble experiences a rapid increase due to the increase of the velocity gradient behind the free surface, while the mass from spike to the theoretical free surface experiences a gradual reduction because the shock energy reduces. As a result, the spike becomes very thinner and the bubble amplitude is lengthened. The damage will be localized around the groove region. Besides, with the interaction between the release stage of incident waves and the release waves from the groove, the cavities and different low-density fragments are observed.
机译:由于其在休克压缩科学和技术的重要性,冲击诱导的微目词现象引起了很多关注。现有的研究表明,冲击波型材对微目亡突发形成有显着影响。基于平滑粒子流体动力学模拟和理论分析,研究了系统地研究了减震脉冲持续时间对微目亡潮流的影响。事实上,当冲击波的脉冲持续时间超过撞击槽的冲击前的时间超过7.31倍时,微进射质量及其时空进化将与受支持的震动的情况一致。结果表明,对冲击脉冲持续时间的临界值(约4.21倍通过凹槽的冲击前沿的时间),下面是冲击脉冲持续时间的效果是不同的。随着冲击脉冲持续时间的降低,由于自由表面背后的速度梯度的增加,尖峰的质量经历了快速增加,而从尖峰到理论自由表面的质量会经历逐渐减小,因为震动能量减少。结果,尖峰变得非常薄,延长气泡幅度。损坏将围绕凹槽区域定位。此外,由于入射波的释放阶段与来自凹槽的释放波之间的相互作用,观察到空腔和不同的低密度片段。

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