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Coupled phase transformations and plastic flows under torsion at high pressure in rotational diamond anvil cell: Effect of contact sliding

机译:旋转金刚石砧盒中高压下在扭转下的相变和塑性流耦合:接触滑动的影响

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摘要

A three-dimensional large-sliding contact model coupled with strain-induced phase transformations (PTs) and plastic flow in a disk-like sample under torsion at high pressure in rotational diamond anvil cell (RDAC) is formulated and studied. Coulomb and plastic friction are combined and take into account variable parameters due to PT. Results are obtained for weaker, equal-strength, and stronger high pressure phases, and for three values of the kinetic coefficient in a strain-controlled kinetic equation and friction coefficient. All drawbacks typical of problem with cohesion are overcome, including eliminating mesh-dependent shear band and artificial plastic zones. Contact sliding intensifies radial plastic flow, which leads to larger reduction in sample thickness. Larger plastic strain and increased pressure in the central region lead to intensification of PT. However, the effect of the reduction in the friction coefficient on PT kinetics is nonmonotonous. Sliding increases away from the center and with growing rotation and is weakly dependent on the kinetic coefficient. Also, cyclic back and forth torsion is studied and compared to unidirectional torsion. Multiple experimental phenomena, e.g., pressure self-multiplication effect, steps (plateaus) at pressure distribution, flow to the center of a sample, and oscillatory pressure distribution for weaker high-pressure phase, are reproduced and interpreted. Reverse PT in high pressure phase that flowed to the low pressure region is revealed. Possible misinterpretation of experimental PT pressure is found. Obtained results represent essential progress toward understanding of strain-induced PTs under compression and shear in RDAC and may be used for designing experiments for synthesis of new high pressure phases and reduction in PT pressure for known phases, as well as for determination of PT kinetics from experiments.
机译:建立并研究了在高压旋转金刚石砧座(RDAC)中的盘状样品中的应变诱导相变(PTs)和塑性流动的三维大滑动接触模型。库仑和塑性摩擦相结合,并考虑了由于PT引起的可变参数。对于较弱,相等强度和较强的高压相,以及在应变控制的动力学方程和摩擦系数中得到的三个动力学系数值,都获得了结果。克服了内聚力问题的所有典型缺陷,包括消除了取决于网格的剪切带和人造塑料区域。接触滑动加剧了径向塑性流动,从而导致更大的样品厚度减小。较大的塑性应变和中心区域的压力增加导致PT增强。但是,降低摩擦系数对PT动力学的影响是非单调的。滑动远离中心并随着旋转的增加而增加,并且几乎不依赖于动力学系数。而且,研究了周期性来回扭转并将其与单向扭转进行比较。再现并解释了多种实验现象,例如压力自倍增效应,压力分布处的阶跃(平稳),流向样品中心以及高压弱相的振荡压力分布。显示了流向低压区域的高压阶段的反向PT。发现实验PT压力可能存在误解。获得的结果代表了在理解RDAC的压缩和剪切作用下应变诱导的PT方面的重要进展,可用于设计新高压相的合成和已知相PT压力降低的实验,以及用于确定PT动力学的实验。实验。

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