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The effect of adding boron in solidification microstructure of dilute iron-carbon alloy as assessed by phase-field modeling

机译:相场模拟评估了硼在稀铁碳合金凝固组织中的作用

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Alloying element like boron, even in small addition, is well known to improve hardenability of steels. Its application can improve mechanical properties of steels and reduce alloying costs. Despite these benefits is not easy to cast boron steels, mainly in dynamical solidification process like continuous casting, due to their crack susceptibility1,2. The strategy of using Phase-Field simulation of the solidification process is based on its proved capacity of predicting realistic microstructure that emerge during solidification under conditions even far from equilibrium3-5. Base on this, some comparative simulations were performed using a three component dilute alloy in a two dimensional domain under unconstrained (isothermal) and constrained (directional) solidification. Simulation results suggested two fragile mechanisms: one related to a deep dendritic primary arms space and other due to the remelting of this region at low temperature. Both resulted mainly from the high boron segregation in interdendritic regions.
机译:众所周知,即使添加少量的硼等合金元素也会提高钢的淬透性。它的应用可以改善钢的机械性能并降低合金成本。尽管具有这些优点,但由于裂纹敏感性1,2,主要在动态凝固过程(如连续铸造)中铸造硼钢并不容易1,2。使用凝固过程的相场模拟的策略是基于其证明的预测甚至在远未达到平衡3-5的条件下凝固过程中出现的真实微观结构的能力。基于此,在无约束(等温)和约束(定向)凝固条件下,使用二维域中的三组分稀合金进行了一些比较模拟。仿真结果表明了两种脆弱的机制:一种与较深的树突状主臂空间有关,另一种与低温下该区域的熔化有关。两者主要是由于树突间区域中高硼偏析引起的。

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