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Application of Quenching and Partitioning to Improve Ductility of Ultrahigh Strength Low Alloy Steel

机译:淬火和分区提高超高强度低合金钢延性的应用

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In this study Quenching and Partitioning (Q&P) as proposed by Speer was applied to improve the ductility of C-Mn high strength Low Alloy steel (HSLAs). Microstructural observations revealed a multiphase microstructure including first martensite, fresh martensite and retained austenite in the Q&P processed steel. During tensile process, the austenite volume fraction gradually decreased with strain increasing, suggesting the phase transformation induced plasticity for the Q&P processed steel. Ultrahigh strength about 1300-1800MPa and tensile elongation about 20% were obtained after Q&P processing at specific conditions, which is significant higher than that of ~10% of conventional martensitic steel. The the product of tensile strength to total elongation increased from 25 to 35GPa% with increasing carbon content in studied steel. This improved mechanical properties were related to the ductility contribution from TRIP effects of the retained austenite and strength contribution from the hard martensitic matrix. At last it was turned out that the Q&P process is a promising way to produce ultrahigh strength steel with relative high ductility under tailored heat treatment conditions for different micro-alloyed carbon steel.
机译:在这项研究中,由Speer提出的淬火和分区(Q&P)用于提高C-Mn高强度低合金钢(HSLAs)的延展性。显微组织观察表明,在Q&P加工钢中存在包括第一马氏体,新鲜马氏体和残留奥氏体的多相组织。在拉伸过程中,奥氏体体积分数随着应变的增加而逐渐减小,这表明相变诱发了Q&P加工钢的塑性。在特定条件下进行Q&P处理后,获得了约1300-1800MPa的超高强度和约20%的拉伸伸长率,明显高于常规马氏体钢的约10%。随着研究钢中碳含量的增加,抗拉强度与总伸长率的乘积从25GPa增加到35GPa%。这种改善的机械性能与残余奥氏体的TRIP效应带来的延展性贡献以及硬马氏体基体带来的强度贡献有关。最后,事实证明,对于不同的微合金碳钢,在定制的热处理条件下,Q&P工艺是生产具有较高延展性的超高强度钢的有前途的方法。

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