论文标题
在超热热处理的低碳钢中,微结构和特性对峰温度的敏感性
The sensitivity of the microstructure and properties to the peak temperature in an ultrafast heat treated low carbon-steel
论文作者
论文摘要
在这项工作中,我们研究了超热处理低碳钢对峰温度的微观结构和机械性能的灵敏度。在所有研究的情况下,将钢加热在临界温度范围内(即在AC1和AC3温度之间)。峰值温度和浸泡时间都有变化,并且研究了它们对大小,单个微观结构成分的比例及其拉伸机械反应的影响。结果表明,峰值温度和浸泡时间的升高促进了铁岩基质中的奥氏体形成和重结晶过程。与重结晶的铁素体相比,纳米颗粒最高的纳米性粒度显示出纳米颗粒,而恢复的铁素体性显示出纳米的含量略高。施加的热处理参数对马氏岩的纳米质量具有很强的影响,而铁液微量质量的纳米德度则对峰值温度和浸泡时间的变化不敏感。由于前者的脱位密度较高,因此非重结的铁素体比其重结晶对应物要硬。峰值温度的升高以延展性为代价,主要是由于马氏体分数增加而促进材料的加强。钢表现出与峰温度无关的应变硬化能力增强。对实验结果的分析表明, +-10 OC的工业加工窗口可能导致超快热处理的片段中局部微观结构的某些异质性。但是,后者不应对宏观尺度上超快热处理的钢板的总体机械行为产生负面影响。
In this work, we investigate the sensitivity of the microstructure and mechanical properties of an ultrafast heat treated low carbon-steel to the peak temperature. In all studied cases, the steel was heated within the intercritical temperature range (i.e. between the AC1 and AC3 temperatures). Both the peak temperature and soaking time were varied, and their effect on the size, the fraction of individual microstructural constituents and their tensile mechanical response were investigated. It is shown that the increasing peak temperature and soaking time promote austenite formation and recrystallization processes in the ferritic matrix. The highest nanohardness is shown by martensitic grains, while recovered ferrite demonstrated slightly higher nanohardness compared to recrystallized ferrite. The applied heat treatment parameters have strong effect on the nanohardness of martensite, whereas nanohardness of ferrite microconstituents is not sensitive to variation of the peak temperature and soaking time. The non-recrystallized ferrite is harder than its recrystallized counterpart due to the higher dislocation density of the former. Increasing peak temperatures promote strengthening in the material at the expense of its ductility mainly due to increased martensite fraction. The steel demonstrates enhanced strain hardening ability independently of the peak temperature. Analysis of the experimental results showed that the industrial processing window of +- 10 oC may lead to some heterogeneity of the local microstructure in the ultrafast heat treated sheets. However, the latter should not have any negative effect on the overall mechanical behavior of the ultrafast heat treated steel sheets on the macro-scale.