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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >A study on effective thermal conductivity of crystalline layers in layer melt crystallization
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A study on effective thermal conductivity of crystalline layers in layer melt crystallization

机译:层熔结晶中结晶层有效导热系数的研究

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摘要

An effective thermal conductivity in layer melt crystallization was explored based on a model considering inclusions inside a crystalline layer during crystal growth, molecular diffusion of inclusions migration due to temperature gradient and heat generation due to recrystallization of inclusions in the crystalline layer. The effective thermal conductivity increases with time, in general, as a result of compactness of the layer. Lower cooling temperature, i.e. greater supercooling, results in a more porous layer with lower effective thermal conductivity. A similar result is seen for the parameter of melt temperature, but less pronounced. A high concentration of the melt results in a high effective thermal conductivity while low concentration yields low effective thermal conductivity. At higher impurity levels in the melt phase, constitutional supercooling becomes more pronounced and unstable growth morphologies occur more easily. Cooling rate and Reynolds number also affect the effective thermal conductivity. The predictions of an effective thermal conductivity agree with the experimental data. The model was applied to estimate the thermal conductivities of the crystalline layer during layer melt crystallization. [References: 29]
机译:基于模型的研究,探索了在层熔融结晶中的有效导热率,该模型考虑了晶体生长过程中结晶层内部的夹杂物,由于温度梯度导致的夹杂物迁移的分子扩散以及由于结晶层中夹杂物的再结晶而产生的热量。通常,由于层的致密性,有效导热率随时间增加。较低的冷却温度,即较高的过冷度,导致多孔层的有效热导率较低。对于熔体温度的参数可以看到类似的结果,但是不太明显。高浓度的熔体产生高的有效导热率,而低浓度产生低的有效热导率。在熔体相中杂质含量较高时,组织过冷会变得更加明显,不稳定的生长形态会更容易出现。冷却速率和雷诺数也会影响有效的热导率。有效导热率的预测与实验数据一致。该模型用于估计层熔融结晶过程中结晶层的热导率。 [参考:29]

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