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首页> 外文期刊>Materials transactions >Phase-Field Simulation of Austenite to Ferrite Transformation and Widmanstatten Ferrite Formation in Fe-C Alloy
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Phase-Field Simulation of Austenite to Ferrite Transformation and Widmanstatten Ferrite Formation in Fe-C Alloy

机译:Fe-C合金中奥氏体至铁素体相变和维氏铁素体形成的相场模拟

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摘要

The formation process of Widmanstatten ferrite plates during the isothermal austenite to ferrite transformation in Fe-C alloy is simulated by the phase-field method. The effects of the anisotropy of interfacial properties on the growth kinetics of Widmanstatten ferrite plates are investigated by the regularized gradient energy coefficient method, which enables us to introduce a wide range of interface anisotropy. It is found that by employing this method, a very sharp tip of the plate can be simulated and the morphology of Widmanstatten ferrite plate is in good agreement with the experimentally observed one. The simulation results of the growth of a single Widmanstatten ferrite plate suggest that the lengthening rate of the Widmanstatten ferrite plate increases with increasing strength of anisotropy, which causes the increase of interfacial energy at the tip. Furthermore, the simulations of the morphological changes of Widmanstatten ferrite from a grain boundary allotriomorph ferrite are performed. The results clarify that the growth of Widmanstatten ferrite plates from allotriomorph ferrite requires high anisotropy of interfacial energy. It is also proved that, in the early stage of the growth, the plate tips directly formed at the convex part of allotriomorph ferrite can preferentially develop into Widmanstatten ferrite plates due to the morphological instability. The distribution of Widmanstatten ferrite plates depends on the initial interface shape of the grain boundary allotriomorph ferrite.
机译:采用相场法模拟了Fe-C合金在等温奥氏体向铁素体转变过程中,Widmanstatten铁素体板的形成过程。通过正则化梯度能量系数方法研究了界面性质的各向异性对Widmanstatten铁素体板生长动力学的影响,这使我们能够引入各种各样的界面各向异性。发现通过采用这种方法,可以模拟极尖的板端,并且威德斯达滕铁素体板的形态与实验观察到的一致。单个Widmanstatten铁氧体板生长的模拟结果表明,Widmanstatten铁氧体板的伸长率随各向异性强度的增加而增加,这导致尖端处的界面能增加。此外,从晶界同素异形铁素体中模拟了Widmanstatten铁素体的形态变化。结果表明,由异形铁素体形成的Widmanstatten铁素体板的生长需要很高的界面能各向异性。还证明了,在生长的早期,由于形态的不稳定性,直接在同素异形铁素体的凸部上形成的板尖端可以优先发展为威德斯坦铁素体板。 Widmanstatten铁素体板的分布取决于晶界同素异形铁素体的初始界面形状。

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