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Modeling of CCT Diagrams and Ferrite Grain Size Prediction in Low Carbon Nb–Mo Microalloyed Steels

机译:低碳Nb-Mo微合金钢的CCT图建模和铁素体晶粒尺寸预测

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In this paper a multi-linear regression analysis is developed to predict continuous cooling (CCT) diagrams in low carbon Nb and Nb–Mo microalloyed steels. The inputs to the analysis include the weight percentage of alloying elements, the prior austenite grain size, the retained strain and the cooling rate. To develop the model, 11 steels with different combinations of Nb and Mo were considered. In some cases, the resulting equations have been validated with external data from the literature. Additionally, the model was also employed to predict hardness and ferrite grain size with the aim of providing a tool to link microstructural features with mechanical property predictions. Both Nb and Mo additions promote a reduction of ferrite and bainite start temperatures, where the effect is more pronounced for Nb in the bainitic region. Both microalloying elements contribute to an increase in hardness and a refinement of the microstructure.
机译:在本文中,开发了一种多线性回归分析来预测低碳Nb和Nb-Mo微合金钢的连续冷却(CCT)图。分析的输入包括合金元素的重量百分比,先前的奥氏体晶粒尺寸,保留的应变和冷却速率。为了开发该模型,考虑了11种Nb和Mo的组合不同的钢。在某些情况下,所产生的方程式已用文献中的外部数据进行了验证。此外,该模型还用于预测硬度和铁素体晶粒尺寸,目的是提供一种将微观结构特征与机械性能预测联系起来的工具。 Nb和Mo的添加都会促进铁素体和贝氏体起始温度的降低,其中贝氏体区域的Nb效应更为明显。两种微合金元素均有助于增加硬度并改善微结构。

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