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金属玻璃和散粒体中的通用滑动动力学——将摩擦弱化与惯性效应联系起来。

Universal slip dynamics in metallic glasses and granular matter - linking frictional weakening with inertial effects.

机构信息

Institute of Physics, University of Amsterdam, P.O. Box 94485, 1090 GL Amsterdam, The Netherlands.

Department of Mechanical Engineering, Bucknell University, One Dent Drive, Lewisburg, PA 17837.

出版信息

Sci Rep. 2017 Mar 6;7:43376. doi: 10.1038/srep43376.

Abstract

Slowly strained solids deform via intermittent slips that exhibit a material-independent critical size distribution. Here, by comparing two disparate systems - granular materials and bulk metallic glasses - we show evidence that not only the statistics of slips but also their dynamics are remarkably similar, i.e. independent of the microscopic details of the material. By resolving and comparing the full time evolution of avalanches in bulk metallic glasses and granular materials, we uncover a regime of universal deformation dynamics. We experimentally verify the predicted universal scaling functions for the dynamics of individual avalanches in both systems, and show that both the slip statistics and dynamics are independent of the scale and details of the material structure and interactions, thus settling a long-standing debate as to whether or not the claim of universality includes only the slip statistics or also the slip dynamics. The results imply that the frictional weakening in granular materials and the interplay of damping, weakening and inertial effects in bulk metallic glasses have strikingly similar effects on the slip dynamics. These results are important for transferring experimental results across scales and material structures in a single theory of deformation dynamics.

摘要

缓慢拉伸的固体通过间歇性滑动变形,滑动表现出与材料无关的临界尺寸分布。在这里,通过比较两种截然不同的系统 - 颗粒材料和块状金属玻璃 - 我们证明了不仅滑动的统计数据,而且它们的动力学非常相似,即不依赖于材料的微观细节。通过解析和比较块状金属玻璃和颗粒材料中雪崩的完整时间演化,我们揭示了一个通用变形动力学的范围。我们在两个系统中都实验验证了对单个雪崩动力学的预测通用标度函数,并表明滑动统计和动力学都与材料结构和相互作用的尺度和细节无关,从而解决了关于普遍性主张是否仅包括滑动统计数据或还包括滑动动力学的长期争论。结果表明,颗粒材料中的摩擦弱化以及块状金属玻璃中阻尼、弱化和惯性效应的相互作用对滑动动力学有惊人相似的影响。这些结果对于在单个变形动力学理论中跨尺度和材料结构转移实验结果非常重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d263/5338258/f10ee10642fe/srep43376-f1.jpg

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