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Plastic flows and phase transformations in materials under compression in diamond anvil cell: Effect of contact sliding

机译:金刚石砧室中受压缩的材料中的塑性流动和相变:接触滑动的影响

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摘要

Modeling of coupled plastic flows and strain-induced phase transformations (PTs) under high pressure in a diamond anvil cell is performed with the focus on the effect of the contact sliding between sample and anvils. Finite element software ABAQUS is utilized and a combination of Coulomb friction and plastic friction is considered. Results are obtained for PTs to weaker, equal-strength, and stronger high pressure phases, using different scaling parameters in a strain-controlled kinetic equation, and with various friction coefficients. Compared to the model with cohesion, artificial shear banding near the constant surface is eliminated. Sliding and the reduction in friction coefficient intensify radial plastic flow in the entire sample (excluding a narrow region near the contact surface) and a reduction in thickness. A reduction in the frictioncoefficient to 0.1 intensifies sliding and increases pressure in the central region. Increases in both plastic strain and pressure lead to intensification of strain-induced PT. The effect of self-locking of sliding is revealed. Multiple experimental phenomena are reproduced and interpreted. Thus, plastic flow and PT can be controlled by controlling friction.
机译:在金刚石砧座单元中,在高压下对耦合的塑性流动和应变诱发的相变(PTs)进行建模,重点是样品和砧座之间的接触滑动的影响。使用了有限元软件ABAQUS,并考虑了库仑摩擦和塑性摩擦的组合。在应变控制的动力学方程中使用不同的缩放参数,并在各种摩擦系数下,获得了PTs较弱,等强度和较强高压相的结果。与具有内聚力的模型相比,消除了恒定表面附近的人工剪切带。滑动和摩擦系数的减小增强了整个样品(不包括接触表面附近的狭窄区域)中的径向塑性流动,并减小了厚度。将摩擦系数减小到0.1会加剧滑动,并增加中心区域的压力。塑性应变和压力的增加导致应变诱导的PT增强。揭示了滑动自锁的效果。复制并解释了多种实验现象。因此,可以通过控制摩擦来控制塑性流动和PT。

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