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Observation of co-segregation of titanium and boron at the interface between recrystallized and unrecrystallized grains in cold-rolled interstitial-free steel sheets

机译:冷轧无间隙钢板中再结晶和未结晶晶粒之间界面处钛和硼的共偏析观察

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It has been reported that the addition of ppm levels of B strongly retarded the growth of recrystallized grain into unrecrystallized grains in the process of cold-rolling and annealing of Ti-added interstitial-free (IF) ferritic steels. This phenomenon was explained by solute drag effect based on the assumption that, during annealing, B atoms segregate at the interface between recrystallized and unrecrystallized grains where they interact with Ti atoms. To verify this, atom probe tomography analysis of the interface was performed in Ti-added IF steels with and without B addition. Needle tips containing the interface identified from electron backscattering diffraction analysis, were produced by focused ion beam milling with the lift-out method. To increase the experiment reliability, the misorientation angle of the aimed interface was compared with that estimated by field ion microscopy analysis. Considerable amount of Ti segregation was observed at the interface in the steel without B addition, which increased with increasing amount of B segregation in the steel with B addition. The results suggest that the retardation of the interface migration was caused by solute drag effect based on the simultaneous co-segregation of Ti and B due to their attractive interaction. (C) 2015 Elsevier B.V. All rights reserved.
机译:据报道,在添加有Ti的无间隙(IF)铁素体钢的冷轧和退火过程中,ppm含量的B的添加强烈地阻碍了再结晶晶粒向未再结晶晶粒的生长。这种现象由溶质拖曳效应解释,该假设基于以下假设:在退火过程中,B原子偏析在重结晶和未重结晶晶粒之间的界面上,在该界面处B原子与Ti原子相互作用。为了验证这一点,在添加和不添加B的添加Ti的IF钢中对界面进行了原子探针层析成像分析。包含通过电子反向散射衍射分析确定的界面的针尖是通过提离法聚焦离子束铣削而生产的。为了提高实验的可靠性,将目标界面的取向错误角度与通过现场离子显微镜分析估计的取向角度进行了比较。在未添加B的钢中,在界面处观察到相当多的Ti偏析,随着添加B的钢中B偏析量的增加而增加。结果表明,界面迁移的延迟是由于基于Ti和B的吸引作用的同时共偏析的溶质拖曳效应引起的。 (C)2015 Elsevier B.V.保留所有权利。

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