CdZnTe垂直桥曼晶体生长中双扩散对流与界面现象相互作用的数值研究

IF 0.6 4区 工程技术 Q4 MECHANICS Fluid Dynamics Pub Date : 2025-01-10 DOI:10.1134/S0015462824603553
A. O. Gusev, I. A. Denisov, O. S. Mazhorova
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引用次数: 0

摘要

用数值方法研究了熔体、晶体和坩埚中的瞬态传热传质过程对CdZnTe Bridgman生长过程中熔固界面形状和溶质偏析的影响。计算结果表明,由界面附近潜热释放和外部热流相互作用形成的径向温度梯度对界面形状的演变起着至关重要的作用。熔体运动分析表明,溶质浮力将热诱导对流的强度降低到很低的程度。因此,溶质在熔体中的分布具有扩散输运的特征。在过程的后期,当生长界面移动缓慢,熔体中ZnTe浓度趋于均匀时,完全混合模型适合描述晶体中ZnTe的轴向分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Numerical Study of Interplay between Double-diffusive Convection and Interfacial Phenomena in Vertical Bridgman Crystal Growth of CdZnTe

The influence of transient heat and mass transfer processes in the melt, crystal and crucible on melt–solid interface shape and solute segregation in Bridgman growth of CdZnTe is investigated numerically. The computations elucidate a crucial role that the radial temperature gradient, formed by an interaction of latent heat release and external heat flux near the interface, plays in the evolution of the interface shape. Analysis of melt motion shows that solutal buoyancy force reduces the intensity of thermally induced convection up to a very low level. As a result, solute distribution in the melt is characteristic of diffusive transport regime. At the advanced stages of the process, when the growth interface moves slowly, and concentration of ZnTe in the melt becomes nearly homogeneous, complete mixing model is suitable for the description of axial ZnTe distribution in the crystal.

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来源期刊
Fluid Dynamics
Fluid Dynamics MECHANICS-PHYSICS, FLUIDS & PLASMAS
CiteScore
1.30
自引率
22.20%
发文量
61
审稿时长
6-12 weeks
期刊介绍: Fluid Dynamics is an international peer reviewed journal that publishes theoretical, computational, and experimental research on aeromechanics, hydrodynamics, plasma dynamics, underground hydrodynamics, and biomechanics of continuous media. Special attention is given to new trends developing at the leading edge of science, such as theory and application of multi-phase flows, chemically reactive flows, liquid and gas flows in electromagnetic fields, new hydrodynamical methods of increasing oil output, new approaches to the description of turbulent flows, etc.
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