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The effect of austenite grain size on the growth of different ferrite morphologies in a Nb- microalloyed steel

机译:奥氏体晶粒尺寸对Nb-微合金钢中不同铁素体形貌生长的影响

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The effect of austenite grain size on the austenite to ferrite transformation temperature and different ferrite morphologies and growth behaviour in one Nb-microalloyed (HSLA) steel has been investigated. Three different austenite grain sizes were selected and cooled for obtaining austenite to ferrite and growth behaviour of ferrite. Moreover, samples with specific austenite grain size have been quenched, partially, for investigation of the microstructural evolution. The optical microscopy observation suggested that the nucleation site of ferrite is on edge and inside of austenite grains in Nb- microalloyed steels. Micrographs of different ferrite morphologies show that at high temperatures, where diffusion rates are higher, grain boundary ferrite nucleates both at the edge and corner of austenite grains and grows into both austenite grains. As the temperature is lowered and the driving force for ferrite formation increases, intragranular sites inside the austenite grains become operative as nucleation sites and suppress the grain boundary ferrite growth. With more undercooling,intragranular ferrites are seen to nucleate and grow more extensively , indicating the beginning of displacive transformation. Furthermore, growth rate of intragranular ferrite shows that by increasing of austenite grain size, the growth rate of intragranular ferrite increases extensively and growth rate of grain boundary ferrite decreases. The growth kinetics of grain boundary ferrite shows that this transformation is controlled by the diffusion of carbon in the austenite ahead of the interface.
机译:研究了奥氏体晶粒尺寸对一种Nb微合金(HSLA)钢中奥氏体到铁素体转变温度以及不同铁素体形态和生长行为的影响。选择三种不同的奥氏体晶粒尺寸并冷却,以获得奥氏体-铁素体和铁素体的生长行为。此外,具有特定奥氏体晶粒尺寸的样品已部分淬火,以研究显微组织演变。光学显微镜观察表明,在铌微合金钢中,铁素体的形核位置在奥氏体晶粒的边缘和内部。不同铁素体形态的显微照片显示,在较高的扩散速率较高的高温下,晶界铁素体在奥氏体晶粒的边缘和角均成核,并长成奥氏体晶粒。随着温度降低和铁素体形成的驱动力增加,奥氏体晶粒内的晶内位点可作为成核位点起作用并抑制晶界铁素体的生长。随着过冷度的增加,可以看到晶间铁素体成核并生长得更广泛,这表明开始发生相变。此外,晶内铁素体的生长速率表明,随着奥氏体晶粒尺寸的增加,晶内铁素体的生长速率大大增加,而晶界铁素体的生长速率降低。晶界铁素体的生长动力学表明,这种转变受界面前奥氏体中碳的扩散控制。

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