Zhou Shuo, Tordesillas Antoinette, Pouragha Mehdi, Bailey James, Bondell Howard
School of Mathematics and Statistics, The University of Melbourne, Melbourne, Australia.
Department of Civil and Environmental Engineering, Carleton University, Ottawa, Canada.
Sci Rep. 2021 May 13;11(1):10216. doi: 10.1038/s41598-021-89328-8.
We propose a new metric called s-LID based on the concept of Local Intrinsic Dimensionality to identify and quantify hierarchies of kinematic patterns in heterogeneous media. s-LID measures how outlying a grain's motion is relative to its s nearest neighbors in displacement state space. To demonstrate the merits of s-LID over the conventional measure of strain, we apply it to data on individual grain motions in a set of deforming granular materials. Several new insights into the evolution of failure are uncovered. First, s-LID reveals a hierarchy of concurrent deformation bands that prevails throughout loading history. These structures vary not only in relative dominance but also spatial and kinematic scales. Second, in the nascent stages of the pre-failure regime, s-LID uncovers a set of system-spanning, criss-crossing bands: microbands for small s and embryonic-shearbands at large s, with the former being dominant. At the opposite extreme, in the failure regime, fully formed shearbands at large s dominate over the microbands. The novel patterns uncovered from s-LID contradict the common belief of a causal sequence where a subset of microbands coalesce and/or grow to form shearbands. Instead, s-LID suggests that the deformation of the sample in the lead-up to failure is governed by a complex symbiosis among these different coexisting structures, which amplifies and promotes the progressive dominance of the embryonic-shearbands over microbands. Third, we probed this transition from the microband-dominated regime to the shearband-dominated regime by systematically suppressing grain rotations. We found particle rotation to be an essential enabler of the transition to the shearband-dominated regime. When grain rotations are completely suppressed, this transition is prevented: microbands and shearbands coexist in relative parity.
我们基于局部本征维数的概念提出了一种名为s-LID的新度量,用于识别和量化非均匀介质中运动模式的层次结构。s-LID衡量一个颗粒的运动相对于其在位移状态空间中最近的s个邻居的偏离程度。为了证明s-LID相对于传统应变测量方法的优点,我们将其应用于一组变形颗粒材料中单个颗粒运动的数据。发现了一些关于破坏演化的新见解。首先,s-LID揭示了在整个加载历史中普遍存在的并发变形带层次结构。这些结构不仅在相对优势上有所不同,而且在空间和运动尺度上也有所不同。其次,在破坏前阶段的初期,s-LID发现了一组贯穿系统的交叉带:小s时为微带,大s时为雏形剪切带,前者占主导地位。在相反的极端情况下,在破坏阶段,大s时完全形成的剪切带比微带占主导地位。从s-LID中发现的新模式与一种因果序列的普遍观点相矛盾,即微带的一个子集合并和/或生长形成剪切带。相反,s-LID表明,在破坏前样品的变形是由这些不同共存结构之间的复杂共生关系控制的,这种共生关系放大并促进了雏形剪切带相对于微带的逐渐主导地位。第三,我们通过系统地抑制颗粒旋转来探究从微带主导状态到剪切带主导状态的转变。我们发现颗粒旋转是向剪切带主导状态转变的一个重要促成因素。当颗粒旋转被完全抑制时,这种转变就会被阻止:微带和剪切带相对均衡地共存。