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Modeling of peritectic coupled growth in Cu-Sn alloys

机译:Cu-Sn合金周晶耦合生长建模

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摘要

In directional solidification experiments on hypoperitectic Cu-Sn alloys at low velocity and high thermal gradient, both lamellar and fibrous coupled peritectic growth patterns have been observed. Two phenomena that had not been observed in previous experiments on other alloy systems are investigated here with the help of different modeling approaches. The mean volume fraction of primary phase α g_α, as determined by X-ray microtomography, decreases with solidification distance over the entire length of the coupled zone, but is always much larger than that expected from the equilibrium phase diagram. Moreover, oscillations in g_a with a spatial periodicity approximately equal to the lamellar spacing are also observed. The first observation is explained semi-quantitatively by a simple ID diffusion model, which reveals that the onset of coupled growth occurs during the initial transient of the primary phase planar front growth. A two-dimensional phase-field model is used to monitor the subsequent microstructure evolution, and shows that the lamellar structure exhibits collective 1-/ oscillations. In agreement with previous studies, it was found that these oscillations lead to stable coupled growth only for a limited range of the control parameters.
机译:在低速和高热梯度下对低周晶Cu-Sn合金的定向凝固实验中,观察到层状和纤维耦合的周晶生长模式。本文借助不同的建模方法研究了以前在其他合金体系上的实验中没有观察到的两种现象。通过X射线显微断层扫描确定的初级相α g_α的平均体积分数随着耦合区整个长度上的凝固距离而减小,但始终比平衡相图的预期值大得多。此外,还观察到空间周期性近似等于层状间距的g_a振荡。第一个观测结果通过一个简单的ID扩散模型半定量地解释,该模型揭示了耦合生长的开始发生在初级阶段平面锋面生长的初始瞬态期间。利用二维相场模型监测其微观结构演化,表明层状结构表现出集体1-/振荡。与先前的研究一致,发现这些振荡仅在有限的控制参数范围内导致稳定的耦合增长。

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