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Microstructural Evolution and Mechanical Behavior of Thermally Aged Cast Duplex Stainless Steel

机译:热老化铸造双相不锈钢的微观结构演化与力学行为

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摘要

The microstructural evolution and mechanical behavior of cast duplex stainless steels (CDSSs) at 400 °C for different thermal aging times were investigated by transmission electron microscope (TEM) and small punch test (SPT). The results showed that the spinodal decomposition in ferrite was the main reason for the decrease in toughness, and G-phase did not play an important role in the embrittlement process. The change of membrane stretching zone (Wm) played an important role in the SPT load-displacement curve before and after thermal aging. During the deformation process of Wm in the SPT, for thermal aging for 10,000 h, some completely curved slip bands were generated inside the ferrite phase, which had no contact with the δ/γ phase interface and belonged to the slip bands produced by the independent deformation of ferrite. The combined effect of the curved slip bands and stress concentration led to the initiation of obvious micro-cracks at the δ/γ phase interface. The micro-cracks propagated along the ferrite phase curved slip bands, and eventually penetrated the entire hardened ferrite phase.
机译:通过透射电子显微镜(TEM)和小冲击试验(SPT)研究了400℃下400℃的浇铸双相不锈钢(CDSSS)的微观结构演化和力学行为。结果表明,铁素体中的纺丝镜分解是韧性降低的主要原因,G阶段在脆化过程中没有发挥重要作用。膜拉伸区(WM)的变化在热老化之前和之后在SPT负载 - 位移曲线中起重要作用。在SPT中WM的变形过程中,对于10,000小时的热老化,在铁氧体相的内部产生一些完全弯曲的滑动带,其与δ/γ相界面没有接触,属于独立产生的滑动带。铁氧体变形。曲线滑移带和应力浓度的组合效果导致在δ/γ相界面处的明显微裂纹的启动。沿铁氧体相弯曲滑槽传播的微裂纹,最终穿透整个硬化的铁氧体相。

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