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Back Diffusion of Manganese During Solidification of Carbon Steels

机译:碳钢凝固过程中锰的后面扩散

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In this study, back diffusion of manganese in solid between secondary arms in the ternary Fe - 1.6 wt % Mn - 0.1, 0.21, 0.4 and 0.75 wt % C alloys was investigated in unidirectionally solidified quenched specimens which solidified in the range of 0.2 5 K/s to 4.15 K/s cooling rates. Manganese back diffusion in the solid phase during the growth has a large influence on microsegregation when the first solid formed is delta-ferrite. A decrease in Cmin after 0.1 wt % C has been observed because the fraction of delta phase decreases with increasing carbon content. Only a small rise during the growth was found in both 0.4 and 0.8 wt % C steels but there was no difference between them indicating that both solidify as austenite. Secondary dendrite arms grown at the lowest cooling rate (around 0.3 K/s) always disappeared at the end of solidification for all steels. These high increases in Cmin were attributed to the high coarsening, back diffusion and TGZM processes. The Cmin calculations obtained from the secondary dendrite arm coarsening model are in a good agreement with the experimental measurements.
机译:在本研究中,在单向凝固的淬火标本中研究了三元Fe - 1.6wt%Mn-0.1,0.21,0.4和0.75wt%C合金中次级臂之间固体的锰在固体中的反扩散。在0.2 5k的范围内固化/ s至4.15 k / s冷却速率。当形成为Delta-铁素体的第一固体时,生长期间,在生长期间的固相中的锰回扩散对微量测定具有很大的影响。已经观察到0.1wt%C之后的CMin减少,因为δ相的馏分随着碳含量的增加而降低。在0.4和0.8wt%C钢中发现生长过程中只有一个小的升高,但它们之间没有区别,表明均为奥氏体固化。以最低冷却速率(约0.3k / s约为0.3k / s)生长的次级枝形臂在凝固到所有钢的凝固结束时始终消失。 CMIn的这些高增加归因于高粗化,背部扩散和TGZM工艺。从二级树枝状臂粗化模型获得的CMIN计算与实验测量很好。

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