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Strain-induced phase transformation under compression in a diamond anvil cell: Simulations of a sample and gasket

机译:金刚石砧座中受压时应变诱导的相变:样品和垫圈的模拟

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摘要

Combined high pressure phase transformations (PTs) and plastic flow in a sample within a gasket compressed in diamond anvil cell (DAC) are studied for the first time using finite element method. The key point is that phase transformations are modelled as strain-induced, which involves a completely different kinetic description than for traditional pressure-induced PTs. The model takes into account, contact sliding with Coulomb and plastic friction at the boundaries between the sample, gasket, and anvil. A comprehensive computational study of the effects of the kinetic parameter, ratio of the yield strengths of high and low-pressure phases and the gasket, sample radius, and initial thickness on the PTs and plastic flow is performed. A new sliding mechanism at the contact line between the sample, gasket, and anvil called extrusion-based pseudoslip is revealed, which plays an important part in producing high pressure. Strain-controlled kinetics explains why experimentally determined phase transformation pressure and kinetics (concentration of high pressure phase vs. pressure) differ for different geometries and properties of the gasket and the sample: they provide different plastic strain, which was not measured. Utilization of the gasket changes radial plastic flow toward the center of a sample, which leads to high quasi-homogeneous pressure for some geometries. For transformation to a stronger high pressure phase, plastic strain and concentration of a high-pressure phase are also quasi-homogeneous. This allowed us to suggest a method of determining strain-controlled kinetics from experimentation, which is not possible for weaker and equal-strength high-pressure phases and cases without a gasket. Some experimental phenomena are reproduced and interpreted. Developed methods and obtained results represent essential progress toward the understanding of PTs under compression in the DAC. This will allow one optimal design of experiments and conditions for synthesis of new high pressure phases.
机译:首次使用有限元方法研究了高压相变(PTs)和金刚石内压模垫(DAC)中密封垫内样品中的塑性流动的组合。关键在于,将相变建模为应变诱导的模型,与传统的压力诱导的PT所涉及的动力学描述完全不同。该模型考虑了与库仑接触的滑动以及样品,垫片和砧座之间边界处的塑性摩擦。对动力学参数,高压相和低压相的屈服强度与垫片的比值,样品半径以及初始厚度对PT和塑性流动的影响进行了全面的计算研究。揭示了在样品,垫圈和砧座之间的接触线处的一种新的滑动机制,称为基于挤压的假滑动,该机制在产生高压中起着重要的作用。应变控制的动力学解释了为什么实验确定的相变压力和动力学(高压相的浓度相对于压力)因垫圈和样品的不同几何形状和性能而不同:它们提供了不同的塑性应变,这是无法测量的。垫圈的使用改变了径向塑料流向样品中心的方向,从而导致某些几何形状的准均一压力较高。为了转变成更强的高压相,塑性应变和高压相的浓度也是准均质的。这使我们能够提出一种通过实验确定应变控制动力学的方法,这对于较弱和等强度的高压相以及没有垫圈的情况是不可能的。复制和解释了一些实验现象。发达的方法和获得的结果代表了对理解DAC中压缩下的PT的重要进展。这将为合成新的高压相提供一种最佳的实验设计和条件。

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