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Modelling of Strain Rate and Temperature Dependent Flow Stresses of Supercooled Austenite for AISI 4140

机译:AISI 4140过冷奥氏体的应变率和温度依赖性胁迫的建模

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The numerical modelling of heat treatment has become an essential tool in understanding distortion potentials for case hardening. When looking at other surface hardening processes such as induction or laser hardening, high heating and cooling rates automatically lead to higher strain rates during the heat treatment cycle. So far, there have been almost no investigations on the strain rate as well as temperature dependency of the mechanical properties of supercooled austenite. In this paper, the typical induction and laser hardening steel AISI 4140 has been used in order to determine the influence of strain rate and temperature on the mechanical behaviour. The experiments are based on tensile tests, using a specifically designed thermo-mechanical simulator. The experimental results show that a positive strain rate sensitivity for strain rates up to 1 s~(-1) results. Especially in the temperature interval where austenite formation occurs during heating, the strain rate sensitive flow stress might lead to an alteration of the plastic strains in comparison to conventional heat treatments at low heating rates. The material model presented in this paper allows a good reproduction of the experimental data over a wide range of strain rates and temperatures.
机译:热处理的数值建模已成为理解案例硬化的失真电位的必要工具。当看其他表面硬化过程,例如感应或激光硬化,高加热和冷却速率在热处理循环期间自动导致较高的应变率。到目前为止,几乎没有对应变率的研究以及过冷奥氏体的力学性能的温度依赖性。本文使用了典型的感应和激光硬化钢AISI 4140,以确定应变率和温度对机械行为的影响。实验基于使用专门设计的热机械模拟器的拉伸试验。实验结果表明,应变率敏感率敏感性高达1 s〜(-1)结果。特别是在加热期间发生奥氏体形成的温度间隔中,应变率敏感的流量应力可能导致塑性菌株的改变与低加热速率下的常规热处理相比。本文提出的材料模型允许在广泛的应变速率和温度范围内良好地再现实验数据。

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