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Effect of ultra-fast cooling on microstructure and mechanical properties in a plain low carbon steel

机译:超快冷却对普通低碳钢组织和力学性能的影响

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In order to explore the ways to obtain excellent mechanical properties in steels with simple compositions, a plain low carbon steel was subjected to ultra-fast cooling precisely combined with laminar cooling (UFC + LC model) and only laminar cooling (LC model) respectively after the same controlled rolling, and the microstructural characteristics as well as corresponding mechanical properties were investigated. The results show that under LC model, the microstructure is composed of coarse proeutectoid ferrite and pearlite, whereas UFC + LC model leads to the appearances of a certain amount of fine sheaf-like bainitic ferrite and acicu-lar ferrite besides plenty of fine proeutectoid ferrite and scarce degenerate pearlite. Bainitic ferrite and acicular ferrite contain plenty of grain boundaries with misorientations of 2-7°, which further refines the microstructure associated with strength under UPC + LC model. Compared with LC model, UFC + LC model increases yield strength from 271 to 365 MPa because of grain refinement and dislocation strengthening effects. In the meantime, the steel treated by UFC + LC model exhibits lower ductile-brittle transition temperature of-59.3°C compared with that of -44.5 °C of the steel subjected to only LC model as a consequence of microstructural refinement.
机译:为了探索在简单成分的钢中获得优异机械性能的方法,对普通低碳钢进行了分别与层流冷却(UFC + LC模型)和层流冷却(LC模型)精确组合的超快冷却。研究了相同的控制轧制,并研究了其显微组织特征以及相应的力学性能。结果表明,在LC模型下,显微组织由粗的共析铁素体和珠光体组成,而UFC + LC模型除了大量的精细的共析铁素体外,还导致了一定数量的细束状贝氏体铁素体和针状铁素体的出现。稀少的变性珠光体。贝氏体铁素体和针状铁素体含有大量的晶界,取向差为2-7°,这进一步细化了UPC + LC模型下与强度相关的显微组织。与LC模型相比,UFC + LC模型由于晶粒细化和位错强化效应而使屈服强度从271 MPa增加到365 MPa。同时,由于微观组织的细化,用UFC + LC模型处理的钢与仅进行LC模型的钢的-44.5°C相比,具有-59.3°C的较低的韧性-脆性转变温度。

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