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Dependence of tensile deformation behavior of TWIP steels on stacking fault energy, temperature and strain rate

机译:TWIP钢的拉伸变形行为对堆垛断层能量、温度和应变速率的依赖性

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Three experimental high manganese twinning induced plasticity (TWIP) steels were produced based on thermodynamic stacking faultenergy (SFE) calculations, following the thermodynamic modeling approach originally proposed by Olson and Cohen (Metall Trans 7A(1976) 1897). At room temperature, the SFE ysFE of the three materials varied from 20.5 to 42 mJ m~(-2). In order to study the correlationbetween the SFE and the mechanical behavior of the TWIP steels, as manifested by the propensity of the material to deformation-induced phase transformations or twinning, tensile tests were performed at temperatures -50℃ ≤T≤ 80℃ using strain rates varyingbetween 10~(-3)s~(-1)and 1250 s~(-1).The mechanical behavior of TWIP steels reveals clear temperature dependence, related to the prevailingdeformation/strain hardening mechanism, i.e., dislocation slip, deformation twinning or e-martensite transformation. At high strainrates an increase in temperature due to adiabatic deformation heating also contributes to the SFE, shifting ysFE either towards or awayfrom the optimum value for twinning.
机译:采用Olson和Cohen(Metall Trans 7A(1976) 1897)最初提出的热力学建模方法,基于热力学堆垛断层能(SFE)计算,生产了三种实验性高锰孪晶诱导塑性(TWIP)钢。在室温下,3种材料的SFE ysFE在20.5-42 mJ m~(-2)之间变化。为了研究SFE与TWIP钢的力学行为之间的相关性,表现为材料对变形引起的相变或孪晶的倾向,在-50°C≤T≤80°C的温度下进行拉伸试验,应变率在10~(-3)s~(-1)和1250 s~(-1)之间变化。TWIP钢的机械性能显示出明显的温度依赖性,与主要的变形/应变硬化机制有关,即位错滑移、变形孪晶或电马氏体相变。在高应变速率下,由于绝热变形加热导致的温度升高也会导致SFE,使ysFE接近或偏离孪晶的最佳值。

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