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非热非晶态材料的蠕变动力学:介观方法。

Creep dynamics of athermal amorphous materials: a mesoscopic approach.

机构信息

Université Grenoble Alpes, CNRS, LIPHY, F-38000 Grenoble, France and Labortoire Fluides, Automatique et Systèmes Thermiques, Université Paris-Sud, France.

Centro Atómico Bariloche, 8400 San Carlos de Bariloche, Río Negro, Argentina.

出版信息

Soft Matter. 2018 Nov 7;14(41):8306-8316. doi: 10.1039/c8sm01392f. Epub 2018 Oct 5.

Abstract

Yield stress fluids display complex dynamics, in particular when driven into the transient regime between the solid and the flowing state. Inspired by creep experiments on dense amorphous materials, we implement mesoscale elasto-plastic descriptions to analyze such transient dynamics in athermal systems. Both our mean-field and space-dependent approaches consistently reproduce the typical experimental strain rate responses to different applied steps in stress. Moreover, they allow us to understand basic processes involved in the strain rate slowing down (creep) and the strain rate acceleration (fluidization) phases. The fluidization time increases in a power-law fashion as the applied external stress approaches a static yield stress. This stress value is related to the stress over-shoot in shear start-up experiments, and it is known to depend on sample preparation and age. By calculating correlations of the accumulated plasticity in the spatially resolved model, we reveal different modes of cooperative motion during the creep dynamics.

摘要

屈服应力流体表现出复杂的动力学行为,尤其是在从固态到流动态的瞬态区被驱动时。受密集非晶态材料的蠕变实验的启发,我们实现了细观弹塑性描述,以分析无定形系统中的这种瞬态动力学。我们的平均场和空间相关方法都能一致地再现不同外加阶跃应力下典型的实验应变速率响应。此外,它们还使我们能够理解应变速率减慢(蠕变)和应变速率加速(流态化)阶段涉及的基本过程。随着外加外部应力接近静态屈服应力,流态化时间呈幂律增加。该应力值与剪切启动实验中的应力过冲有关,并且已知其取决于样品制备和老化。通过计算空间分辨模型中累积塑性的相关性,我们揭示了蠕变动力学过程中不同的协同运动模式。

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