Precipitation Behavior of TiN During the Solidification of High-Titanium Steel

Huazhi Yuan, Xiang Chen, Lijuan Li, Xiangru Chen, Honggang Zhong, Qijie Zhai
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Abstract

TiN is an inevitable inclusion in high-titanium steel, and controlling its size and distribution is the key to balancing the wear resistance and service life of high-titanium steel. In this paper, the precipitation and distribution behavior of TiN in high-titanium steel ([Ti] > 0.4 wt pct) during near-continuous casting solidification were investigated using a self-developed dendritic horizontal growth thermal simulation device. The precipitation density of TiN was greater in the chill zone than in the stable growth zone (columnar zone), and TiN was mainly distributed in the secondary dendritic arms in the chill zone and mushy zone, while in the columnar zone, the quantity proportion of TiN distributed in the dendritic gaps increased. Moreover, the size distribution of TiN changes from unimodal to bimodal as solidification progresses. The equivalent diameter of TiN tends to increase with solidification time and then stabilizes at approximately 5 μm. The effects of the cooling rate on the growth rate and size of TiN are also revealed by using a modified model, which indicates that as the cooling rate increases from 0.5 °C/s to 100 °C/s, the final size of TiN decreases from 10.93 μm to approximately 0.77 μm. Moreover, thermodynamic calculations also indicated a significant impact of TiN precipitation on the localized N content during the solidification process. All the results indicate that reducing the N content and increasing the cooling rate are effective ways to reduce the TiN size.

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高钛钢凝固过程中 TiN 的沉淀行为
TiN 是高钛钢中不可避免的成分,控制其尺寸和分布是平衡高钛钢耐磨性和使用寿命的关键。本文利用自主研发的树枝状水平生长热模拟装置,研究了高钛钢([Ti] > 0.4 wt pct)在近连铸凝固过程中 TiN 的析出和分布行为。在冷区,TiN 的析出密度大于稳定生长区(柱状区),在冷区和粘稠区,TiN 主要分布在次生树枝状臂中,而在柱状区,分布在树枝状间隙中的 TiN 数量比例增加。此外,随着凝固的进行,TiN 的尺寸分布也从单峰变为双峰。随着凝固时间的延长,TiN 的等效直径呈上升趋势,然后稳定在 5 μm 左右。冷却速率对 TiN 生长速率和尺寸的影响也通过使用修正模型得到了揭示,冷却速率从 0.5 °C/s 增加到 100 °C/s 时,TiN 的最终尺寸从 10.93 μm 减小到约 0.77 μm。此外,热力学计算还表明,在凝固过程中,TiN 的析出对局部 N 含量有显著影响。所有结果都表明,降低 N 含量和提高冷却速度是减小 TiN 尺寸的有效方法。
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