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The study of mechanical and microstructural aspects of localized shear fracture in metals under dynamic loading

机译:动态载荷下局部剪切骨折机械和微观结构的研究

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The purpose of this work is to provide theoretical framework and experimental supporting evidence for a crucial role of structural transitions in the ensemble of defects at the meso-level (microshears and microcracks), as one of the mechanisms of plastic strain localization in metals under high-rate loading. The investigation of the sample response to dynamic loading was carried out on the split Hopkinson pressure bar and in a series of target penetration tests. To identify the characteristic stages of strain localization, the thermodynamics of the deformation process was investigated "in-situ" by recording the temperature fields using a high-speed infrared camera CEDIP Silver 450M. The temperature measured in the localization zone does not confirm the generally accepted concept of the strain localization mechanism as the mechanism governed by a thermoplastic instability. The samples stored after the experiment were subjected to microstructural analysis, using an optical interferometer-profilometer and a scanning electron microscope. The structural analysis revealed a correlated behavior of the ensemble of defects, which can be classified as a structural transition providing strain localization. The data of experimental studies, the examination of the structure of deformed samples, as well as the data of numerical modeling taking into account the kinetics of accumulation of microdefects in the material suggest that one of the mechanisms of plastic strain localization at high loading rates is associated with the jump-like processes in the defect structure of a material.
机译:这项工作的目的是提供理论框架和实验支持证据,以实现结构过渡在中间级(微焦炭和微裂纹)的缺陷集合中的关键作用,作为高度塑性应变局部化的塑性应变定位的机制之一-rate loading。对动态载荷对动态载荷的样品响应的研究是在分裂的霍普金森压力棒中和一系列靶渗透试验中进行。为了识别应变定位的特征阶段,通过使用高速红外相机Cedip Silver 450M记录温度场,通过记录温度场来研究变形过程的热力学。在定位区中测量的温度不确认普遍接受的应变定位机制的概念,因为通过热塑性不稳定性控制的机制。使用光学干涉仪 - 分布仪和扫描电子显微镜对实验后储存的样品进行微观结构分析。结构分析揭示了缺陷的集合的相关行为,其可以被归类为提供应变定位的结构转变。实验研究的数据,检查变形样品的结构,以及考虑到物质中微碎片积累的动力学的数值模拟数据表明,高负荷率下的塑性应变定位机制之一是与材料的缺陷结构中的跳转过程相关联。

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