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Controlling the MC and M2C carbide precipitation in Ferrium (R) M54 (R) steel to achieve optimum ultimate tensile strength/fracture toughness balance

机译:控制配合物(R)M54(R)钢中的MC和M2C碳化物沉淀,实现最佳的极限拉伸强度/断裂韧性平衡

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摘要

Ferrium (R) M54 (R) exhibits an excellent UTS/K-1c balance allowing its application in aeronautical structures. This steel belongs to the Co-Ni UHS steels family with M2C nanometer-size carbide precipitation during tempering. These steels provide very high strength with a very good fracture toughness thanks to the M2C fine precipitation during tempering, but also because coarse particles are dissolved during austenitizing without grain coarsening. The goal of this article is to identify the different carbide populations in M54 (R). A small addition of Ti in M54 (R) forms a Ti-rich MC carbide precipitation that is stable at high temperature. Consequently, during austenitization at 1060 degrees C, all other types of coarse carbides are dissolved in the matrix without grain coarsening. As a very small part of the initial carbon content is needed to form MC carbides, efficient and intensive nanometric M2C carbide precipitation takes place during tempering, leading to very high final strength. Due to this double precipitation of carbides in M54 (R), the steel achieves an outstanding UTS/K-1c balance.
机译:Ferrium(R)M54(R)表现出优异的UTS / K-1C平衡,允许其在航空结构中的应用。这种钢属于CO-NI UHS钢系列,在回火过程中具有M2C纳米宽碳化物沉淀。由于在回火过程中,由于M2C细沉淀,这些钢提供了非常高的强度,并且由于在呼吸过程中的M2C细沉淀,而且因为在奥氏体中溶解粗颗粒而没有晶粒粗化。本文的目标是识别M54(R)中的不同碳化物人群。 M54(R)中的Ti少量添加Ti形成富含Ti的MC碳化物沉淀,在高温下稳定。因此,在1060℃的奥氏体化期间,所有其他类型的粗碳化物溶解在基质中而没有晶粒粗化。作为初始碳含量的非常小部分以形成MC碳化物,在回火期间发生有效和强化的纳米M2C碳化物沉淀,导致最终强度非常高。由于在M54(R)中的碳化物的双重降水,钢材达到了优异的UTS / K-1C平衡。

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