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首页> 外文期刊>Journal of Materials Science >Effects of nitrogen content and weld cooling time on the simulated heat-affected zone toughness in a Ti-containing steel
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Effects of nitrogen content and weld cooling time on the simulated heat-affected zone toughness in a Ti-containing steel

机译:含氮量和焊缝冷却时间对含Ti钢模拟热影响区韧性的影响

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An increase of nitrogen content in a 0.02 wt% Ti-containing carbon-manganese steel resulted in a low coarsening rate of TiN particles in the heat-affected zone (HAZ), which led to an accelerated ferrite transformation instead of ferrite side plates during weld cooling cycle. The mixed microstructure of ferrite side plate, acicular ferrite and grain boundary polygonal ferrite in the simulated HAZ produced higher toughness. However, the increase of nitrogen content gradually increased the free nitrogen content in the HAZ and deteriorated HAZ toughness. Impact energy of the simulated HAZ (with Delta t(8/5) similar to 60 s) at -20 degrees C deteriorated by about 97 J per 0.001 wt% free nitrogen, in the free nitrogen range from 0.0009 wt% to 0.0034 wt%, even though the HAZ has the tough mixed microstructure. Cooling time after welding influenced the HAZ microstructure and toughness as well, and maximum toughness was obtained when cooling produced the tough mixed microstructure. Therefore, for a high HAZ toughness, both nitrogen content and cooling time should be controlled to obtain the tough mixed microstructure and to keep the free nitrogen content low. The optimal nitrogen content and cooling time from 800 degrees C to 500 degrees C were 0.006 wt% and between 60 s and 100 s, respectively, in this experiment.
机译:0.02 wt%的含Ti的碳锰钢中氮含量的增加导致热影响区(HAZ)中TiN颗粒的粗化率降低,从而导致焊接过程中铁素体代替铁素体侧板的加速转变冷却循环。模拟HAZ中的铁素体侧板,针状铁素体和晶界多边形铁素体的混合组织产生较高的韧性。然而,氮含量的增加逐渐增加了热影响区中的游离氮含量,并降低了热影响区的韧性。每0.001 wt%的游离氮,模拟的HAZ(Δt(8/5)与60 s相似)的冲击能量每0.001 wt%下降约97 J,游离氮的范围为0.0009 wt%至0.0034 wt% ,即使热影响区具有坚韧的混合微观结构。焊接后的冷却时间也影响了热影响区的组织和韧性,当冷却产生坚韧的混合组织时,可获得最大的韧性。因此,为了获得高的HAZ韧性,应同时控制氮含量和冷却时间,以获得坚韧的混合微观结构并保持游离氮含量较低。在该实验中,最佳氮含量和从800摄氏度到500摄氏度的冷却时间分别为0.006 wt%和60 s至100 s。

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