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Microstructure and mechanical properties of strip cast TRIP steel subjected to thermo-mechanical simulation

机译:带钢TRIP钢热力学模拟的组织和力学性能

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摘要

Instead of hot rolling and cold rolling followed by annealing, strip casting is a more economic and environmentally friendly way to produce transformation-induced plasticity (TRIP) steels. According to industrial practice of strip casting, rapid cooling in this work was achieved using a dip tester, and a Gleeble 3500 thermo-mechanical simulator was used to carry out the processing route. A typical microstructure of TRIP steels, which included ~0.55 fraction of polygonal ferrite with bainite, retained austenite and martensite, was obtained. The effects of deformation (0.41 reduction) above non-recrystallisation temperature, isothermal bainite transformation temperature and the size of second phase region on microstructure and mechanical properties were studied. The steel isothermally transformed at 400 °C had the best combination of ultimate tensile strength (UTS) and total elongation (TE), whether deformation was applied or not. The deformation resulted in the improvement of mechanical properties after holding at 400 °C: the UTS increased from 590 to 696 MPa and TE decreased from 0.27 only to 0.26. It was predominantly ascribed to grain size refinement and dislocation strengthening. The studied TRIP steel had comparable mechanical properties with TRIP 690 produced commercially.
机译:代替热轧和冷轧再退火,带钢铸造是生产相变诱发塑性(TRIP)钢的一种更加经济和环保的方式。根据带钢铸造的工业惯例,这项工作使用浸入测试仪进行了快速冷却,并使用了Gleeble 3500热力机械模拟器进行了加工。获得了TRIP钢的典型显微组织,包括约0.55分数的带贝氏体的多边形铁素体,残余奥氏体和马氏体。研究了非再结晶温度,等温贝氏体转变温度及第二相区尺寸以上的变形(降低0.41)对组织和力学性能的影响。无论是否施加变形,在400°C下进行等温转变的钢都具有极限拉伸强度(UTS)和总伸长率(TE)的最佳组合。保持在400°C后,变形导致机械性能有所改善:UTS从590升高到696 MPa,TE从0.27降低到0.26。它主要归因于晶粒细化和位错强化。所研究的TRIP钢具有与商业生产的TRIP 690相当的机械性能。

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