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Delamination Toughening of Ultrafine Grain Structure Steels Processed through Tempforming at Elevated Temperatures

机译:高温下高温成形超细晶组织钢的分层增韧

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The deformation of tempered martensitic structures, namely tempforming treatments, were applied to a 0.6C–2Si–1Cr steel at 500, 600 and 700°C using multi-pass caliber-rolling with an accumulated area reduction of 80%. The tensile and Charpy impact properties were investigated to make clear the relation between the microstructure and the delamination behavior of the tempformed (TF) samples. The tempforming treatments resulted in the evolution of ultrafine grain structures with strong ?110?//rolling direction (RD) fiber deformation textures and fine spheroidized cementite particles distributions. In contrast to the ductile-to-brittle transition of the conventional quenched and tempered (QT) samples, the TF samples exhibited inverse temperature dependences of the impact toughness due to the delaminations, where the cracks branched in the longitudinal direction (//RD) of the impact test bars. As a result, high strength with excellent toughness was achieved in the TF samples. A yield strength of 1364 MPa and a V-notch Charpy absorbed energy of 125 J were obtained at room temperature in the sample that was tempformed at 500°C. The delamination was shown to occur due to the microstructural anisotropy of the TF samples, and the dominating factors controlling the delamination toughening were the transverse grain size, the grain shape and the ?110?//RD fiber deformation texture. The discussion also indicated that the ultra refinement of the transverse grain structure was the key to enhancing both the yield strength and the toughness of the TF steel while lowering the ductile-to-brittle transition temperature.
机译:回火马氏体组织的变形,即压制成形处理,通过多次通过口径轧制,分别在500、600和700°C的温度下应用于0.6C-2Si-1Cr钢,累积面积减少了80%。对拉伸和夏比冲击性能进行了研究,以弄清微观结构与模板(TF)样品的分层行为之间的关系。模压处理导致具有超强的<110> //轧制方向(RD)纤维变形织构和细球形球化渗碳体颗粒分布的超细晶粒组织的演变。与常规淬火和回火(QT)样品的韧性到脆性转变相反,TF样品由于分层而显示出冲击韧性的反温度依赖性,其中裂纹沿纵向(// RD)分支。冲击测试棒。结果,在TF样品中获得了高强度和优异的韧性。在室温下在500°C下成型的样品中获得了1364 MPa的屈服强度和125 J的V型缺口夏比吸收能。表现出分层是由于TF样品的微观结构各向异性引起的,而控制分层韧化的主要因素是横向晶粒尺寸,晶粒形状和?110?// RD纤维变形织构。讨论还表明,横向晶粒组织的超细化是提高TF钢的屈服强度和韧性,同时降低韧性到脆性转变温度的关键。

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