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Directional amorphization of boron carbide subjected to laser shock compression

机译:碳化硼在激光冲击压缩下的定向非晶化

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摘要

Solid-state shock-wave propagation is strongly nonequilibrium in nature and hence rate dependent. Using high-power pulsed-laser-driven shock compression, unprecedented high strain rates can be achieved; here we report the directional amorphization in boron carbide polycrystals. At a shock pressure of 45∼50 GPa, multiple planar faults, slightly deviated from maximum shear direction, occur a few hundred nanometers below the shock surface. High-resolution transmission electron microscopy reveals that these planar faults are precursors of directional amorphization. It is proposed that the shear stresses cause the amorphization and that pressure assists the process by ensuring the integrity of the specimen. Thermal energy conversion calculations including heat transfer suggest that amorphization is a solid-state process. Such a phenomenon has significant effect on the ballistic performance of B4C.
机译:固态冲击波的传播本质上非常不平衡,因此与速率有关。使用大功率脉冲激光驱动的冲击压缩,可以实现前所未有的高应变率。在这里,我们报告了碳化硼多晶体中的定向非晶化。在45〜50 GPa的冲击压力下,在最大冲击方向上略有偏离的多个平面断层发生在冲击面以下几百纳米处。高分辨率透射电子显微镜显示这些平面缺陷是定向非晶化的前兆。建议剪切应力导致非晶化,并且压力通过确保样品的完整性来辅助该过程。包括热传递在内的热能转换计算表明非晶化是一个固态过程。这种现象对B4C的弹道性能有重大影响。

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