材料科学
连续冷却转变
差示扫描量热法
相(物质)
光学显微镜
珠光体
相图
马氏体
温度循环
微观结构
贝氏体
热分析
冶金
热力学
分析化学(期刊)
热的
复合材料
扫描电子显微镜
奥氏体
色谱法
物理
化学
有机化学
作者
Man Liu,Michael Bernhard,Monika KAWULOKOVÁ,Josef Walek,Maximilian Kern,Simona Zlá,Peter Presoly,Bedřich Smetana,Markéta Tkadlečková,Guang Xu,Youn‐Bae Kang,Christian Bernhard
标识
DOI:10.1016/j.jmrt.2023.04.009
摘要
Continuous cooling transformation (CCT) diagrams represent roadmaps for producing all heat-treatable steels. CCT curves provide valuable information on the solid-state phase transformation sequence, depending on the defined cooling strategies, the alloying concept of the steel and previous processing steps. The experimental characterization of CCT diagrams is usually done on a laboratory scale applying thermal analysis of dilatometry. In current research studies, however, also other in-situ methods such as high-temperature laser scanning confocal microscopy (HT-LSCM) or differential scanning calorimetry (DSC) are frequently used to investigate phase transformations during thermal cycling. In the present study, HT-LSCM observations and DSC analysis are critically compared with dilatometry results by investigating the CCT diagram of a 0.4%C-1.8%Si-2.8%Mn-0.5%Al (in mass pct.) advanced steel grade. Furthermore, classical examinations by optical microscopy and hardness measurements were performed to support the analysis. In general, very good consistencies between all experimental techniques were identified in determining the transformation start temperature for pearlite, bainite and martensite. The optical microscopy confirmed the observed phase transformations and the results correlated with the measured hardness response. Based on the results, coupling of HT-LSCM and DSC is considered as a valuable novel approach to plot CCT diagrams in future research.
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