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Effect of grain size in compression deformation on the microstructural evolution of an austenitic stainless steel

机译:压缩变形中晶粒度对奥氏体不锈钢显微组织演变的影响

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The influence of initial grain size on the dynamic recrystallization behavior has been investigated in a commercial austenitic stainless steel. Compression tests were performed at constant temperatures of 810, 980 and 1150℃ at an average strain rate e of 0.01 s~(-1) and 0.1 s~(-1). In order to capture the microstructural evolution after the deformation the electron back scatter diffraction technique (EBSD) was used. The results show that nucleation of new grains is strongly grain size dependent. Increasing the grain size of the material reduces the stored energy measured in terms of kernel average misorientation, well known as driving force for dynamic recrystallization. This leads to the problem of grain refinement in coarse structured materials. Applying large plastic strains or using static recrystallization in a double hit forming process seems promising for an efficient refinement strategy.
机译:在商业奥氏体不锈钢中,已经研究了初始晶粒尺寸对动态再结晶行为的影响。在810、980和1150℃的恒定温度下进行压缩试验,平均应变率e为0.01 s〜(-1)和0.1 s〜(-1)。为了捕获变形后的微观结构演变,使用了电子背散射衍射技术(EBSD)。结果表明,新晶粒的成核作用与晶粒尺寸密切相关。增加材料的晶粒尺寸会减少以籽粒平均取向错误衡量的储能,这是众所周知的动态重结晶驱动力。这导致在粗结构材料中晶粒细化的问题。在双击成形工艺中施加较大的塑性应变或使用静态重结晶似乎有望实现有效的细化策略。

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