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Enhancing mechanical properties of a low-carbon microalloyed cast steel by controlled heat treatment

机译:通过控制热处理提高低碳微合金铸钢的机械性能

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摘要

In the present work, detailed studies were made on the optimization of microstructure and mechanical properties of a low-carbon microalloyed cast steel through control of heat treatment conditions. Specimens were austenitized at temperatures ranging from 950 to 1200 °C for 2 h followed by different cooling methods (furnace, air and water). For analyzing the effect of holding time on mechanical properties, some cast specimens were austenitized at 1100 °C for different times followed by furnace cooling. After heat treatment, mechanical tests were employed to evaluate the room temperature Charpy impact and tensile properties. The characterization of complex precipitates formed during heat treatment process was investigated by using analytical electron microscopy. The results show that dissolution of vanadium-containing precipitates plays an important role in the abnormal growth of austenite grains at 1150 °C. Further growth in austenite grains at 1200 °C is caused by the dissolution of Ti-containing particles and the reduction of the amount of precipitates. Correct selection of the austenitizing temperature, holding time and cooling method is very important to improve the mechanical properties of the steel. Heat treatment at 1100 °C for 2 h followed by furnace cooling leads to the best combination of excellent Charpy impact and tensile properties.
机译:在当前的工作中,通过控制热处理条件,对优化低碳微合金铸钢的组织和力学性能进行了详细的研究。在950至1200°C的温度下对样品进行奥氏体化2小时,然后采用不同的冷却方法(炉,空气和水)。为了分析保温时间对机械性能的影响,将一些铸件在1100°C下奥氏体化了不同的时间,然后进行了炉冷。热处理后,采用机械测试来评估室温夏比冲击和拉伸性能。利用分析型电子显微镜研究了在热处理过程中形成的复杂沉淀物的特征。结果表明,含钒沉淀物的溶解在1150°C下对奥氏体晶粒的异常生长起着重要作用。奥氏体晶粒在1200°C处的进一步生长是由于含Ti颗粒的溶解和沉淀量的减少而引起的。正确选择奥氏体化温度,保温时间和冷却方法对于提高钢的机械性能非常重要。在1100°C下进行2小时的热处理,然后进行炉内冷却,可得到出色的夏比冲击性能和拉伸性能的最佳组合。

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