论文标题
在MBAR压力下的钻石中的冲击波分裂的直接成像
Direct imaging of shock wave splitting in diamond at Mbar pressures
论文作者
论文摘要
固体中冲击波的传播会使它们压力为数百万个大气的超高压力。在这些极端压力下了解物质的行为对于描述广泛的物理现象至关重要,包括行星,年轻的恒星和超级岩石的形成,以及受到这种压力的先进陶瓷材料的行为。在Megabar(MBAR)的压力下,即使是具有高强度的固体也表现出塑料特性,从而导致冲击波分为两分。这种现象是通过理论模型描述的,但没有直接的实验测量来确认它们,其有效性仍然存在。在这里,我们介绍了一个实验的结果,其中直接观察了钻石中耦合弹性波结构的演变,并使用X射线自由电子激光器的独特功能通过亚微米空间分辨率进行了研究。通过在2D几何形状中执行连续力学模拟,在几个MBAR范围内首次允许直接测量钻石强度模型的拟合和验证。提出的实验方法研究固体中的冲击波为直接验证和构建物质方程式在超高压力范围内的直接验证和构建提供了新的可能性,这与解决高能密度物理学中各种问题的解决方案有关。
The propagation of a shock wave in solids can stress them to ultra-high pressures of millions of atmospheres. Understanding the behavior of matter at these extreme pressures is essential to describe a wide range of physical phenomena, including the formation of planets, young stars and cores of super-Earths, as well as the behavior of advanced ceramic materials subjected to such stresses. Under megabar (Mbar) pressure, even a solid with high strength exhibits plastic properties, causing the shock wave to split in two. This phenomenon is described by theoretical models, but without direct experimental measurements to confirm them, their validity is still in doubt. Here, we present the results of an experiment in which the evolution of the coupled elastic-plastic wave structure in diamond was directly observed and studied with submicron spatial resolution, using the unique capabilities of the X-ray free-electron laser. The direct measurements allowed, for the first time, the fitting and validation of a strength model for diamond in the range of several Mbar by performing continuum mechanics simulations in 2D geometry. The presented experimental approach to the study of shock waves in solids opens up new possibilities for the direct verification and construction of the equations of state of matter in the ultra-high pressure range, which are relevant for the solution of a variety of problems in high energy density physics.