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Hot ductility and deformation behavior of C-Mn/Nb-microalloyed steel related to cracking during continuous casting

机译:C-mn / Nb-微合金钢的热延性和变形行为与连铸过程中的开裂有关

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摘要

Hot ductility studies have been performed on C-Mn and C-Mn-Nb steels with an approach to simulate the effect of cooling conditions experienced by steel in secondary cooling zone during continuous casting. Thermal oscillations prior to tensile straining deteriorate hot ductility of steel by deepening and widening the hot ductility trough. C-Mn steels are found to exhibit ductility troughs in three distinct zones whereas C-Mn-Nb steel shows drop in ductility only at low temperature in the vicinity of ferrite transformation temperatures. Start of ferrite transformation in steels causes yield ratio to increase while work hardening rates and strength coefficient decrease with decrease in test temperature in presence of thermal oscillation prior to tensile testing. Inhibition of recrystallization due to build-up of AlN particles along with the presence of MnS particles in structure and low work hardening rates causes embrittlement of steel in austenitic range. Alloying elements enhancing work hardening rates in austenitic range can be promoted toimprove hot ductility. The presence of low melting phase saturated with impurities along the austenitic grain boundaries causes intergranular fracture at high temperature in C-Mn steels.
机译:已经对C-Mn和C-Mn-Nb钢进行了热延展性研究,以模拟连续铸造过程中二次冷却区中钢所经历的冷却条件的影响。拉伸应变之前的热振荡会通过加深和拓宽热延展槽来降低钢的热延展性。发现C-Mn钢在三个不同的区域显示出延性谷,而C-Mn-Nb钢仅在低温下在铁素体转变温度附近显示出延性下降。在拉伸试验之前,由于存在热振荡,随着温度的降低,钢中铁素体相变的开始导致屈服比增加,而工作硬化率和强度系数降低。由于AlN颗粒的堆积以及组织中MnS颗粒的存在以及低的工作硬化率,导致的再结晶抑制均导致钢在奥氏体范围内脆化。可以促进在奥氏体范围内提高加工硬化率的合金元素以改善热延展性。沿奥氏体晶界充满杂质的低熔点相会导致C-Mn钢在高温下发生晶间断裂。

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