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Optimization of mechanical properties of low carbon bainitic steel using TMCP and accelerated cooling

机译:用TMCP和加速冷却优化低碳贝氏体钢力学性能

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摘要

The recent increased severity in service conditions, such as frequent earthquakes, have further promoted the development of steel production technologies for many types of microstructural control. In the present paper, two-stage thermomechanical control process (TMCP) combined with accelerated cooling was employed to control the microstructural evolution and to study the microstructure-property relationship of low carbon bainitic steel. The main microstructure of hot rolled steel plates changed from granular bainite to lath bainite (or bainitic ferrite) when the final accelerated cooling temperature decreased from about 530 to 430 °C, accompanied with a notable increase in yield strength at the expense of slightly decreasing toughness. The strengthening mechanism was mainly attributed to dislocation strengthening and precipitation strengthening for this low carbon microalloyed steel. In addition, if the strain hardening exponent of hot rolled steel plate with the thickness of 13 mm is expected to be higher than 0.1, the final cooling temperature range should be maintained above 500 °C.
机译:近期服务条件的严重程度,如频繁地震,进一步促进了钢铁生产技术的发展,适用于多种类型的微观结构控制。本文采用两级热机械控制过程(TMCP)与加速冷却相结合,以控制微观结构演化并研究低碳贝氏体钢的微观结构 - 性能关系。当最终加速冷却温度从约530至430℃下降时,热轧钢板的主要微观结构从粒状贝氏体到Lath Bainite(或贝氏体铁氧体),伴随着屈服强度的显着增加,韧性略微降低。强化机制主要归因于该低碳微合金钢的脱位强化和沉淀强化。另外,如果预期厚度为13mm的热轧钢板的应变硬化指数预期高于0.1,则最终冷却温度范围应保持在500℃以上。

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