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Influence of molybdenum content on transformation behavior of high performance bridge steel during continuous cooling

机译:钼含量对高性能桥梁钢连续冷却相变行为的影响

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摘要

The continuous-cooling-transformation (CCT) diagrams of high performance bridge steel with different molybdenum content were plotted by means of a combined method of dilatometry and metallography. The results show that the molybdenum addition of 0.17 wt% does not noticeably alter the transformation behavior, whereas 0.38 wt% significantly. In addition, the molybdenum addition of 0.38 wt% completely eliminates the formation of polygonal ferrite (PF) and significantly lower the granular ferrite (GF) transformation starting temperatures throughout the range of cooling rates studied. At lower cooling rates, with the increase of the molybdenum content, the martensite/austenite (M/A) constituents are noticeably refined, whereas the effects are not obvious at higher cooling rates. Moreover, the molybdenum addition of 0.38 wt% can significantly increase the Vickers hardness, but the Vickers hardness increments (by comparison of Mo-0.17wt% steel and Mo-0.38wt% steel) are sharply reduced at the cooling rate of 30 ℃/s, indicating that at higher cooling rate, the molybdenum usage can be saved and the higher strengthen can be also gained. It could be found the GF transformation starting temperature is linear with the cooling rate. The empirical equation was established to calculate GF transformation starting temperatures, and the calculated values are in good agreement with measured ones.
机译:采用膨胀法和金相分析相结合的方法,绘制了不同钼含量的高性能桥梁钢的连续冷却转变图。结果表明,钼的添加量为0.17 wt%不会显着改变相变行为,而钼的添加量则为0.38 wt%。此外,在整个冷却速率范围内,钼的添加量为0.38 wt%完全消除了多边形铁素体(PF)的形成,并显着降低了粒状铁素体(GF)的转变起始温度。在较低的冷却速率下,随着钼含量的增加,马氏体/奥氏体(M / A)成分明显细化,而在较高的冷却速率下效果不明显。此外,钼的添加量为0.38 wt%可以显着提高维氏硬度,但在30℃/℃的冷却速率下,维氏硬度增量(通过比较Mo-0.17wt%钢和Mo-0.38wt%钢)会急剧降低。 s,表明在较高的冷却速率下,可以节省钼的使用量,也可以获得较高的强度。可以发现,GF转化起始温度与冷却速率成线性关系。建立了计算GF转化起始温度的经验方程,计算值与实测值吻合良好。

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  • 来源
    《Materials & design》 |2013年第8期|465-470|共6页
  • 作者单位

    The State Key Laboratory of Rolling and Automation, Northeastern University, P.O. Box 105, No. 11, Lane 3, Wenhua Road, HePing District, Shenyang 110819, People's Republic of China;

    The State Key Laboratory of Rolling and Automation, Northeastern University, P.O. Box 105, No. 11, Lane 3, Wenhua Road, HePing District, Shenyang 110819, People's Republic of China;

    The State Key Laboratory of Rolling and Automation, Northeastern University, P.O. Box 105, No. 11, Lane 3, Wenhua Road, HePing District, Shenyang 110819, People's Republic of China;

    The State Key Laboratory of Rolling and Automation, Northeastern University, P.O. Box 105, No. 11, Lane 3, Wenhua Road, HePing District, Shenyang 110819, People's Republic of China;

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