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Simulation of kappa-Carbide Precipitation Kinetics in Aged Low-Density Fe-Mn-Al-C Steels and Its Effects on Strengthening

机译:老年低密度Fe-Mn-Al-C钢中kappa碳化物沉淀动力学的模拟及其对强化的影响

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摘要

Fe-Al-Mn-C alloy systems are low-density austenite-based steels that show excellent mechanical properties. After aging such steels at adequate temperatures for adequate time, nano-scale precipitates such as kappa-carbide form, which have profound effects on the mechanical properties. Therefore, it is important to predict the amount and size of the generated kappa-carbide precipitates in order to control the mechanical properties of low-density steels. In this study, the microstructure and mechanical properties of aged low-density austenitic steel were characterized. Thermo-kinetic simulations of the aging process were used to predict the size and phase fraction of kappa-carbide after different aging periods, and these results were validated by comparison with experimental data derived from dark-field transmission electron microscopy images. Based on these results, models for precipitation strengthening based on different mechanisms were assessed. The measured increase in the strength of aged specimens was compared with that calculated from the models to determine the exact precipitation strengthening mechanism.
机译:Fe-Al-Mn-C合金系统是低密度奥氏体的钢,显示出优异的机械性能。在足够的时间以足够的时间进行足够的温度而老化,纳米级沉淀物如kappa-硬质合金,这对机械性能具有深远的影响。因此,重要的是预测所产生的kappa-碳化物沉淀物的量和尺寸以控制低密度钢的机械性能。在该研究中,表征了老化低密度奥氏体钢的微观结构和力学性能。用于预测不同老化时期之后的老化过程的热动力学模拟用于预测kappa-碳化物的尺寸和相位,并且通过与源自暗场透射电子显微镜图像的实验数据进行验证,验证了这些结果。基于这些结果,评估了基于不同机制的沉淀强化模型。将老化标本强度的测量增加与模型计算的,以确定精确的沉淀强化机制。

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