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Micro-scale energy dissipation mechanisms during dynamic fracture in natural polyphase ceramic blocks

机译:天然多相陶瓷砖动态断裂过程中的微尺度耗能机理

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The dynamic fracture of natural polyphase ceramic (granite) blocks by high-speed impact at 207 m/s, 420 m/s and 537 m/s has been investigated. An electromagnetic railgun was used as the launch system. Results reveal that the number of fragments increases substantially, and the dominant length scale in their probability distributions decreases, as the impact energy is increased. Micro-scale studies of the fracture surfaces reveals evidence of localized temperatures in excess of 2000 K brought on by frictional melting via fracturing and slip along grain boundaries in orthoclase and plagiodase, and via trans-granular fracture (micro-cracking) in quartz. The formation of SiO_2- and TiO_2-rich spheroids on fracture surfaces indicates that temperatures in excess of 3500 K are reached during fracture.
机译:研究了天然多相陶瓷(花岗岩)块在207 m / s,420 m / s和537 m / s的高速冲击下的动态断裂。电磁轨道炮被用作发射系统。结果表明,随着冲击能量的增加,碎片的数量显着增加,其概率分布中的支配长度尺度减小。断裂表面的微观研究显示,通过正熔酶和斜晶石酶沿晶界的破裂和滑动,以及石英中的跨颗粒断裂(微裂纹),通过摩擦熔融而产生的局部温度超过2000K。在断裂表面上形成富含SiO_2和TiO_2的球状体,表明在断裂过程中达到的温度超过3500K。

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