论文标题

材料处理中的剪切带:了解从齐纳(Zener)到现在的流动机制

Shear bands in materials processing: Understanding the mechanics of flow localization from Zener's time to the present

论文作者

Viswanathan, Koushik, Yadav, Shwetabh, Sagapuram, Dinakar

论文摘要

剪切带是固体的大型应变塑性变形中的物质不稳定,否则均匀的流动置于狭窄的微米尺度带中。剪切带对从金属到岩石的各种材料系统中的材料加工和在动态载荷下的故障具有广泛的影响。今年是自齐纳(Zener)和霍洛蒙(Hollomon)在剪切乐队上的开创性作品发表以来的75年,而剪切乐队的开创性作品被广泛地吸引了机械社区的注意力,以剪切乐队和相关的本地化现象。此后,对剪切带的发作进行了重大的实验和理论研究。然而,鉴于与谱带发展相关的长度和时间尺度极小,几个挑战持续研究单个频段的演变。最近的全场位移测量以及数值建模,才开始改善此问题。本文总结了我们目前对单剪谱带周围塑料流动动力学的理解以及随后向断裂的过渡,并在材料处理中使用了特殊应用。我们从半历史开始探讨Zener在剪切带上的一些早期想法,并讨论了绘制带形成过程中局部流动的实验方法的最新进展,包括直接\ emph {intu}成像以及\ emph {emph {ex situ}/postutem tostulmatemage。根据最近发表的实验数据,对经典理论进行了重新审视。剪切带表现出丰富的复杂流动特性,与流体流中的边界层现象相似。希望这些将有助于我们进一步理解剪切带动力学,随后向断裂的过渡,并导致实用的“控制”策略,以抑制抑制剪切频带驱动的失败在处理应用程序中。

Shear banding is a material instability in large strain plastic deformation of solids, where otherwise homogeneous flow becomes localized in narrow micrometer-scale bands. Shear bands have broad implications for materials processing and failure under dynamic loading in a wide variety of material systems ranging from metals to rocks. This year marks 75 years since the publication of Zener and Hollomon's pioneering work on shear bands which is widely credited with drawing the attention of the mechanics community to shear bands and related localization phenomena. There has since been significant experimental and theoretical investigation into the onset of shear banding. Yet, given the extremely small length and time scales associated with band development, several challenges persist in studying the evolution of single bands. Recent full-field displacement measurements, coupled with numerical modeling, have only begun to ameliorate this problem. This article summarizes our present understanding of plastic flow dynamics around single shear bands and the subsequent transition to fracture, with special applications to materials processing. We begin with a semi-historical look at some of Zener's early ideas on shear bands and discuss recent advances in experimental methods for mapping localized flow during band formation, including direct \emph{in situ} imaging as well as \emph{ex situ}/post-mortem analyses. Classical theories are revisited in the light of recently published experimental data. Shear bands exhibit a wealth of complex flow characteristics that bear striking resemblance to boundary layer phenomena in fluid flows. It is hoped that these will help further our understanding of shear band dynamics, the subsequent transition to fracture, and lead to practical `control' strategies for suppressing shear band-driven failures in processing applications.

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