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Strain-induced phase transformations under high pressure and large shear in a rotational diamond anvil cell: Simulation of loading, unloading, and reloading

机译:旋转金刚石砧盒中在高压和大剪切下的应变诱导相变:加载,卸载和重新加载的模拟

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摘要

Coupled plastic flow and strain-induced phase transformations (PTs) under high pressure and large plastic shear in a micron scale sample under loading, unloading, and reloading in a rotational diamond anvil cell (RDAC) are studied in detail, utilizing finite element approach. A plastic strain-controlled, pressuredependent kinetic equation, which describes strain-induced PTs, is used. The effects of four main material parameters in this equation on PTs and plastic flow in RDAC in three-dimensional formulation are systematically analyzed. Multiple experimental phenomena are reproduced and interpreted, including pressure self-multiplication/demultiplication effects, small 'steps' on pressure distribution in the two-phase region, simultaneous occurrences of direct and reverse PTs, oscillatory distribution of pressure for weaker high-pressure phase, and a thin layer of high-pressure phase on a contact surface. During unloading, unexpected intensive plastic flow and reverse PT are revealed, which change the interpretation of experimental results. The effect of unloading and reloading paths on PTs is examined. Two types of pressure variations are revealed, which are qualitatively consistent within experimental observations for ZnSe and KCl. Obtained results lead to ways of controlling PTs by varying compression-torsion paths and can be utilized for the search of new high pressure phases, ways to reduce pressure for the synthesis of high pressure phases, and to retain them at ambient pressure.
机译:利用有限元方法,详细研究了在高压,大塑性剪切下的微米级样品在旋转金刚石砧盒(RDAC)中加载,卸载和再加载时的塑性流动和应变诱导的相变(PTs)耦合。使用了塑性应变控制的压力相关动力学方程,该方程描述了应变诱导的PT。系统地分析了该方程中的四个主要材料参数对三维配方中RDAC中PTs和塑性流动的影响。再现并解释了多种实验现象,包括压力自增/减乘效应,两相区域中压力分布的小“阶跃”,正向和反向PT的同时出现,弱高压相的压力振荡分布,在接触表面上有一薄层高压相。在卸载过程中,发现了意外的大量塑性流动和反向PT,从而改变了实验结果的解释。检查了卸载路径和重新加载路径对PT的影响。揭示了两种类型的压力变化,它们在ZnSe和KCl的实验观察中在质量上是一致的。所获得的结果导致通过改变压缩-扭转路径来控制PT的方法,并且可以用于寻找新的高压相,降低用于合成高压相的压力并将其保持在环境压力下的方法。

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