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Microstructural Analysis of the Recrystallization Behavior of Low Alloyed Steels

机译:低合金钢重结晶行为的微观结构分析

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>The recrystallization behavior of five low alloyed steels is investigated using double hit deformation tests. It is shown, that Niobium has the biggest influence in retarding the recrystallization kinetics. Further, the microstructural evolution dependent on strain and temperature during deformation is studied with a picric acid etchant and light‐optical analysis. It is shown how the microstructure of two differently alloyed ultra‐high strength steels changes along with the peculiarities of the corresponding stress–strain curves including the evolution of grain size and aspect ratio of the prior austenite grain. The findings on the different recrystallization kinetics with the role of recrystallization retarding elements are further reinforced by investigations on the Zener‐Hollomon parameter and the activation energy needed for dynamic recrystallization. A rolling scenario on a deformation dilatometer is simulated on a hardenable and a micro‐alloyed steel to illustrate the microstructural evolution between the rolling steps. It is shown, how the two ultra‐high strength steels perform different in their microstructural evolution, as the waiving of micro‐alloying elements (MAE) provides finer austenite grains.
机译: <第XML:ID =“SRIN201800500-SEC-0001”> 使用双击变形试验研究了五种低合金钢的再结晶行为。结果表明,铌对延迟重结晶动力学具有最大的影响。此外,用雾酸蚀刻剂和光光学分析研究了依赖于变形期间的应变和温度的微观结构演化。示出了两个不同合金的超高强度钢的微观结构如何随着相应的应力 - 应变曲线的特性而变化,包括晶粒颗粒的晶粒尺寸和纵横比的演变。通过对ZENER-HOLLOMON参数的研究和动态再结晶所需的激活能量进一步加强了不同重结晶动力学的结果。变形膨胀仪上的滚动场景在淬透的和微合金钢上模拟,以说明滚动步骤之间的微观结构演化。如图所示,两种超高强度钢在微观结构进化中如何不同,因为放弃微合金元素(MAE)提供更细的奥氏体晶粒。

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