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Impact toughness and tensile properties improvement through microstructure control in hot forged Nb-V microalloyed steel

机译:通过控制组织来改善热锻Nb-V微合金钢的冲击韧性和拉伸性能

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摘要

The influence of thermomechanical processing parameters such as reheating temperature, deformation temperature, deformation percent and cooling rate on achieving high impact toughness properties was studied in a Nb-V microalloyed steel to be used as forged parts in automotive applications. 15mm long and 65 mm diameter billets were forged using a 20 MN mechanical press. Tensile and Charpy impact tests specimens were machined out of the central part of the forged billets. The microstructure of the specimens was examined for each experimental condition using optical microscopy. Phase identification and distribution was studied using X-ray diffraction and orientation image microscopy techniques. The results indicate that, increasing the reheating temperature above the dissolution temperature of (Nb)(C, N) improved the impact energy values. By increasing the cooling rate from 0.3 to 3 deg C/s both tensile strength and impact toughness were improved. High elongation percent was also observed on samples reheated at higher temperature and/or cooled with the higher cooling rates. The obtained mechanical properties were related to the characteristics of microstructural components including acicular ferrite, retained austenite, pearlite and ferrite. The interrelationship between thermomechanical processing parameters, microstructure development, and final mechanical properties were identified and optimized forging conditions to obtain high impact energy (>30 J) microalloyed forge steels were determined.
机译:研究了Nb-V微合金钢(用作汽车应用中的锻件)中的热机械加工参数(如加热温度,变形温度,变形百分比和冷却速率)对获得高冲击韧性的影响。使用20 MN机械压力机锻造15毫米长和65毫米直径的钢坯。从锻造坯料的中心部分加工拉伸和夏比冲击试验样品。使用光学显微镜检查每种实验条件下样品的微观结构。使用X射线衍射和取向图像显微镜技术研究了相识别和分布。结果表明,将再加热温度提高到(Nb)(C,N)的溶解温度以上可改善冲击能值。通过将冷却速率从0.3℃/ s提高到3℃/ s,拉伸强度和冲击韧性都得到了改善。在较高温度下重新加热和/或以较高冷却速率冷却的样品上也观察到高伸长率。所获得的机械性能与包括针状铁素体,残余奥氏体,珠光体和铁素体在内的显微组织的特性有关。确定了热机械加工参数,微观组织发展和最终机械性能之间的相互关系,并确定了获得高冲击能(> 30 J)的微合金锻钢的最佳锻造条件。

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