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Effect of the Simulated and Pilot-scaled Thermomechanical Processes on the Microstructure, Precipitates and Mechanical Properties of V–N Alloyed Steel

机译:模拟和小规模热机械过程对钒氮合金钢的组织,析出和力学性能的影响

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The effect of the two-stage continuous cooling process with different finish cooling temperatures (FCTs) after 950°C high temperature finish deformation on microstructural evolution, precipitation and mechanical properties of V–N alloyed steel has been investigated under the simulated and pilot-scaled thermomechanical condition. Microstructural observation of dilatometry specimens indicates that FCT should be above 600°C to obtain microstructure composed of polygonal ferrite (PF), pearlite (P), and less than 5 vol. pct bainite (B) in steel. Based on the simulation result, three pilot-scaled cooling paths with FCTs of 950, 750 and 600°C are designed and all microstructure consists of PF + P. The decreased FCT contributes to a refinement in the effective ferrite grain size and interlaminar spacing of pearlite, coupled with a decrease in PF content. Conversely, the amount of high misorientation angle boundary (above 15°) is increased. Moreover, the lower FCT promotes the precipitation of refined nano-scaled V(C,N) particles including interphase and random precipitates. Furthermore, an optimal combination of strength, ductility and toughness has been acquired at 600°C, of which the yield strength, tensile strength, total elongation, uniform elongation, and impact energy at room temperature are 769 MPa, 935 MPa, 23 pct, 11 pct and 30 J, respectively. The negligible variation of mechanical properties after artificial ageing exhibits that the addition of 0.024 mass% N in vanadium alloyed steel is available.
机译:在模拟和中试规模下,研究了950℃高温精加工变形后不同终冷却温度(FCT)的两阶段连续冷却工艺对VN合金钢的组织演变,析出和力学性能的影响。热机械条件。膨胀计试样的微观结构观察表明,FCT应该高于600°C,以获得由多边形铁素体(PF),珠光体(P)和小于5 vol组成的微观结构。钢中的pct贝氏体(B)。根据仿真结果,设计了三个中试规模的冷却路径,FCT分别为950、750和600°C,并且所有组织均由PF + P组成。减小的FCT有助于细化铁素体的有效铁素体晶粒尺寸和层间距珠光体,再加上PF含量的降低。相反,高取向角边界(15°以上)的数量增加。此外,较低的FCT促进了包括相间和随机沉淀物在内的精制纳米级V(C,N)颗粒的沉淀。此外,在600°C时已获得强度,延展性和韧性的最佳组合,其中屈服强度,拉伸强度,总伸长率,均匀伸长率和室温下的冲击能分别为769 MPa,935 MPa,23 pct,分别为11 pct和30J。人工时效后机械性能的变化可忽略不计,这表明可在钒合金钢中添加0.024质量%N。

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