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Effects of Ultra-Fast Cooling Technology on Microstrectere and Properties of Low Carbon Steel

机译:超快冷却技术对低碳钢微立构及性能的影响

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摘要

The cooling technology after hot-rolling influences the microstmcture and mechanical properties of steels. Combined with dynamic continuous cooling transformation (CCT) curve by the thermal simulation experiments of Q235B steel, the effects of ultra-fast cooling technology on microstmcture and properties of Q235B steel were investigated by optical microscope, scanning electron microscope, tensile and impact tests. Also, the fracture morphology analysis was conducted by scanning electron microscope. The results show that both yield and tensile strength are enhanced by ultra-fast cooling technology. Moreover, the yield and tensile strength increase with the increase of cooling rate of ultra-fast cooling process, while the ductility has no significant change. Furthermore, the yield and tensile strength increase with the decrease of final cooling temperature of ultra-fast cooling process with a little reduction in ductility. The impact tests show that all samples possess excellent impact toughness varying within a small range. The yield strength, tensile strength, and impact toughness of Q235B steel could increase to 395, 516 MPa, and 143 J, respectively, using ultra-fast cooling technology. The study provides theoretical guidance for industrial application of ultra-fast cooling technology.
机译:热轧后的冷却技术会影响钢的组织和力学性能。通过Q235B钢的热模拟实验,结合动态连续冷却转变(CCT)曲线,通过光学显微镜,扫描电子显微镜,拉伸和冲击试验研究了超快冷却技术对Q235B钢组织和性能的影响。另外,通过扫描电子显微镜进行断裂形态分析。结果表明,超快冷却技术可提高屈服强度和拉伸强度。而且,随着超快冷却过程冷却速率的增加,屈服强度和抗拉强度增加,而塑性没有明显变化。此外,随着超快速冷却工艺最终冷却温度的降低,屈服强度和抗拉强度增加,而延展性略有下降。冲击试验表明,所有样品都具有极好的冲击韧性,变化范围很小。使用超快速冷却技术,Q235B钢的屈服强度,抗拉强度和冲击韧性可以分别提高到395、516 MPa和143J。该研究为超快冷却技术的工业应用提供了理论指导。

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