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Dynamic indentation hardness of metals

机译:金属的动态压痕硬度

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摘要

An experimental technique for determining the dynamic indentation hardness of materiaals is described. Unlike the traditional static hardness measurements, the dynamic hardness measurements can capture the inherent rate dependent material response that is germane to high strain rate deformation processes such as high speed machining and impact. The dynamic hardness of several commonly used engineering materials is found to be greater than the static hardness. The percentage increase in hardness is found to be strongly dependent on the crystal structure of the materials used in this study. Microstructural analysis of static and dynamic indentations on metals with FCC, BCC, and HCP crystal structures revealed that the indentation volume size is a function of plastic properties under static and dynamic conditions. Finite element simulations of the dynamic indentation event indicated that an increase in yield stress and work hardening rate decrease the size of the developed plastic zone beneath the indenter.
机译:描述了确定材料的动态压痕硬度的实验技术。与传统的静态硬度测量不同,动态硬度测量可以捕获固有的速率相关材料响应,该响应与高应变速率变形过程(例如高速加工和冲击)密切相关。发现几种常用工程材料的动态硬度大于静态硬度。发现硬度增加的百分比在很大程度上取决于本研究中使用的材料的晶体结构。对具有FCC,BCC和HCP晶体结构的金属进行静态和动态压痕的微观结构分析表明,压痕体积大小是在静态和动态条件下塑性性能的函数。动态压痕事件的有限元模拟表明,屈服应力的增加和加工硬化速率的减小会减小压头下方已形成塑性区的大小。

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