Metastability, adiabatic shear bands initiation and plastic strain localization in the AMg6 alloy under dynamic loading

M. Sokovikov, S. Uvarov, Mikhail Simonov, V. Chudinov, Oleg Naimark
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Abstract

New conception of adiabatic shear bands (ASB) and adiabatic shear failure mechanisms are proposed as special type of critical phenomen, structural-scaling transition, in the ensembles of microshears, governed by the characteristic non-linearity (metastability) of stored (free) energy of solid with mesodefects.  Corresponding free energy release kinetics provides experimentally observed ASB induced staging of plastic strain localization and transition to adiabatic shear failure. ASB staging follows to collective properties of microshears ensemble given by the self-similar solutions of evolution equation providing spatial-temporal microshears localization, momentum transfer and damage localization. The criticality of ASB induced plastic strain localization and failure allows us to avoid the discrepancy in the interpretation of ASB effects as thermo-plastic instability in the balance of the stored energy and structural DRX transformation. The microshear ensemble is considered as the second phase and initiation of collective modes provide different staging according to the metastability decomposition and ASB scaling properties following to the self-similar solutions. Self-similar nature of microshears collective modes providing the ASB dynamics is analyzed as the mechanism of steady plastic wave front unversality in shocked materials. The dynamic split Hopkinson pressure bar tests were conducted with AlMg6 alloy combined with “in-situ” imaging of temperature kinetics by CEDIP Silver 450M high-speed infrared camera with conclusion of the secondary role of thermoplastic instability at the ASB staging. The microstructural study performed by an electron microscopy revealed the correlated behavior of the ensemble of defects, which can be classified as a structural transition and precursor of ASB induced strain localization and failure. The modeling reflecting the links of self-similar solutions in microshear ensembles with relaxation properies and damage localization was applied for the comparative analysis of ASB staging and temperature dynamics given be the infrared imaging. 
动态加载下 AMg6 合金的易蜕变性、绝热剪切带的形成和塑性应变定位
提出了绝热剪切带(ASB)和绝热剪切破坏机制的新概念,将其视为微剪切集合中特殊类型的临界现象、结构缩放转变,由具有介观缺陷的固体存储(自由)能量的非线性(可转移性)特征所支配。 相应的自由能释放动力学提供了实验观察到的 ASB 诱导的塑性应变局部化分期和向绝热剪切破坏的过渡。ASB 分期与微剪切集合的集体特性有关,微剪切集合由演化方程的自相似解给出,提供了空间-时间微剪切局部化、动量传递和损伤局部化。ASB 诱导的塑性应变局部化和破坏的临界性使我们能够避免将 ASB 效应解释为热塑不稳定性在存储能量和结构 DRX 转换平衡中的差异。微剪切集合被视为第二阶段,集合模式的启动根据自相似解的可转移性分解和 ASB 缩放特性提供了不同的分期。提供 ASB 动力学的微剪切集合模式的自相似性被分析为冲击材料中稳定塑性波前非逆向性的机制。结合 CEDIP Silver 450M 高速红外摄像机对温度动力学的 "原位 "成像,对 AlMg6 合金进行了动态分裂霍普金森压力棒试验,得出了在 ASB 阶段热塑性不稳定性的次要作用的结论。通过电子显微镜进行的微观结构研究揭示了缺陷集合的相关行为,可将其归类为结构转变以及 ASB 诱导应变局部化和失效的前兆。在对 ASB 阶段和红外成像给出的温度动态进行比较分析时,采用了反映微剪切集合中自相似解与松弛特性和损伤定位之间联系的模型。
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