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Improvement of microstructure and properties of air-cooled 46MnVS5 forging steel rod for fracture splitting connecting by thermomechanical control process (TMCP) and by niobium micro alloying

机译:通过热机械控制过程(TMCP)和Niobium Micro合金化骨折分裂连接的微观46MnVS5锻钢钢杆微观结构和性能的改进

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摘要

Abstract Microstructure control and properties of air‐cooled high‐strength 46MnVS5 forging steel rod for fracture splitting connecting were systematically investigated by quantitative metallographic analysis, thermomechanical simulation and industrial trials etc. The results indicate that the critical cooling rate for bainite transformation in the steel is about 1.5 °C/s–2 °C/s during continuous cooling. Cooling parameters are optimized in two sections. That is, the specimen is firstly cooled to 750 °C at a rate of 4 °C/s, then continuously cooled to 570 °C at 1 °C/s, 1.5 °C/s. Addition of 0.024 wt.% niobium improves the fracture splitting performance by 10 %–20 % reduction of decarburization sensitivity. Finally, the optimized parameters for the niobium micro alloyed steel in the laboratory were successfully applied to produce the connecting rod with excellent fracture splitting performance on the traditional production line.
机译:摘要通过定量金相分析,热机械模拟和工业试验,系统地研究了用于断裂连接的空气冷却高强度46mnvs5锻钢的微观结构控制和性能。结果表明,钢材贝氏体转换的临界冷却速度连续冷却期间约1.5°C / S-2°C / s。冷却参数在两个部分中优化。也就是说,将样品以4℃/ s的速率首先将其冷却至750℃,然后在1℃/ s,1.5℃/ s中连续冷却至570℃。添加0.024重量%。%铌改善了脱碳敏感性降低10%-20%的断裂分裂性能。最后,成功地施加了实验室中铌微合金钢的优化参数,以产生具有优异的传统生产线的裂缝分裂性能的连杆。

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