论文标题

在非晶固体中向剪切带过渡到剪切带的隐藏时空序列

Hidden spatiotemporal sequence in transition to shear band in amorphous solids

论文作者

Yang, Zeng-Yu, Wang, Yun-Jiang, Dai, Lan-Hong

论文摘要

剪切带是无定形固体中的基本非平衡现象。由于三个局部原子运动的内在纠缠:剪切,扩张和旋转,剪切带出现的精确物理过程仍然是一个谜。为了揭露这个谜团,我们首次制定了一种理论协议,涵盖了变形的仿射和非伴随组成部分,以解码这些高度纠缠的局部原子级事件。与剪切转化区的广泛概念相反,可以全面证明塑料行为是对更精确的剪切主导区(SDZ),扩张为主导的区域(DDZS)和旋转主导的区域(RDZ)的手术操纵。它们的时空进化表现出了从同步运动到剪切带的单独分布的新型过渡,这与从层流流到流动动力学中湍流的过渡非常相似。隐藏的机制在极端价值理论(EVT)和渗透分析的帮助下揭示了。 EVT的分析表明扩张是初始塑料单元胚胎的主要模式。渗滤分析指向关键的幂律缩放性质,这是从随机激活到塑性区域渗透的过渡。然后发现了剪切带出现的全面图片。首先,扩张会触发柔软区域的初始剪切和旋转,从而导致流量单位的胚胎,随后是不均匀的湍流样模式,表现为相邻硬材料中旋转的二次激活。这种旋转激活有助于进一步的扰动,并最终导致剪切带的形成。我们的发现还强化了无序材料中对塑性行为的讨论必须考虑到仿射和非伴侣成分变形。

Shear banding is a fundamental non-equilibrium phenomenon in amorphous solids. Due to the intrinsic entangling of three local atomic motions: shear, dilatation and rotation, the precise physical process of shear band emergence is still an enigma. To unveil this mystery, we formulate for the first time a theoretical protocol covering both affine and non-affine components of deformation, to decode these highly entangled local atomic-scale events. In contrast to the broad concept of shear transformation zone, plastic behavior can be demonstrated comprehensively as the operative manipulation of more exact shear-dominated zones (SDZs), dilatation-dominated zones (DDZs) and rotation-dominated zones (RDZs). Their spatiotemporal evolution exhibits a novel transition from synchronous motion to separate distribution at the onset of shear band, which is in striking resemblance with the transition from laminar flow to turbulent flow in flow dynamics. The hidden mechanism is revealed with the help of extreme value theory (EVT) and percolation analysis. Analysis of EVT indicates dilatation is the dominant mode at the embryo of initial plastic units. The percolation analysis points towards the critical power-law scaling nature at the transition from stochastic activation to percolation of plastic regions. Then the comprehensive pictures of shear banding emergence are uncovered. Firstly, dilatation triggers initial shear and rotation in soft regions, leading to embryo of flow units, which is followed by the inhomogeneous turbulent-like pattern manifesting as the secondary activation of rotation in neighboring hard material. Such rotation activation contributes to further perturbation, and ultimately, leads to shear band formation. Our findings also reinforce that the discussion of plastic behavior in disordered materials must take into account both affine and non-affine component deformation.

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