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首页> 外文期刊>Metals and Materials International >Constitutive Modeling and Dynamic Softening Mechanism During Hot Deformation of an Ultra-Pure 17%Cr Ferritic Stainless Steel Stabilized with Nb
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Constitutive Modeling and Dynamic Softening Mechanism During Hot Deformation of an Ultra-Pure 17%Cr Ferritic Stainless Steel Stabilized with Nb

机译:Nb稳定的超纯17%Cr铁素体不锈钢热变形过程中的本构模型和动态软化机理

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摘要

The hot deformation behavior of an ultra-pure 17%Cr ferritic stainless steel was studied in the temperature range of 750-1000 °C and strain rates of 0.5 to 10 s~(-1)using isothermal hot compression tests in a thermo-mechanical simulator. The microstructural evolution was investigated using electron backscattcred diffraction and transmission electron microscopy. A modified constitutive equation considering the effect of strain on material constant was developed, which predicted the flow stress for the deformation conditions studied, except at 950 °C in 1 s~(1) and 900 °C in 10 s~(-1) . Decreasing deformation temperature and increasing strain was beneficial in refining the microstructure. Decreasing deformation temperature, the in-grain shear bands appeared in the microstructure. It is suggested that the dynamic softening mechanism is closely related to deformation temperature. At low deformation temperature, dynamic recovery was major softening mechanism and no dynamic recrystallization occurred. At high deformation temperature, dynamic softening was explained in terms of efficient dynamic recovery and limited continuous dynamic recrystallization. A drop in the flow stress was not found due to very small fraction of new grains nucleated during dynamic recrystallization.
机译:采用热机械等温热压缩试验,研究了在750-1000°C的温度范围和0.5至10 s〜(-1)的应变速率下,超纯17%Cr铁素体不锈钢的热变形行为。模拟器。使用电子背散射衍射和透射电子显微镜研究了微观结构的演变。建立了考虑应变对材料常数影响的修正本构方程,该方程预测了所研究变形条件下的流应力,除了在950°C于1 s〜(1)和900°C在10 s〜(-1)之外。降低变形温度和增加应变有利于细化组织。降低变形温度,组织中出现晶粒内剪切带。认为动态软化机理与变形温度密切相关。在低变形温度下,动态恢复是主要的软化机理,并且没有动态再结晶发生。在高变形温度下,通过有效的动态恢复和有限的连续动态再结晶来解释动态软化。由于在动态再结晶过程中成核的新晶粒非常小,因此未发现流动应力下降。

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