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Transport processes in directional solidification and their effects on microstructure development.

机译:定向凝固过程中的传输过程及其对微结构发展的影响。

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The processing of materials with unique electronic, mechanical, optical and thermal properties plays a crucial role in modern technology. The quality of these materials depend strongly on the microstructures and the solute/dopant fields in the solid product, that are strongly influenced by the intricate coupling of heat and mass transfer and melt flow in the growth systems. An integrated research program is developed that include precisely characterized experiments and detailed physical and numerical modeling of the complex transport and dynamical processes. Direct numerical simulation of the solidification process is carried out that takes into account the unsteady thermo-solutal convection in the vertical Bridgman crystal growth system, and accurately models the thermal interaction between the furnace and the ampoule by appropriately using experimentally measured thermal profiles. The flow instabilities and transitions and the nonlinear evolution following the transitions are investigated by time series and flow pattern analysis. A range of complex dynamical behavior is predicted with increasing thermal Rayleigh number. The route to chaos appears as: steady convection → transient mono-periodic → transient bi-periodic → transient quasiperiodic → transient intermittent oscillation-relaxation → stable intermittent oscillation-relaxation attractor.; The spatio-temporal dynamics of the melt flow is found to be directly related to the spatial patterns observed experimentally in the solidified crystals. The application of the model to two phase Sn-Cd peritectic alloys showed that a new class of tree-like oscillating microstructure develops in the solid phase due to unsteady thermo-solutal convection in the liquid melt. These oscillating layered structures can give the illusion of band structures on a plane of polish. The model is applied to single phase solidification in the Al-Cu and Pb-Sn systems to characterize the effect of convection on the macroscopic shape and disorder in the primary arm spacing of the cellular/dendritic freezing front. The apparently puzzling experimental observation of higher disorder in the weakly convective Al-Cu system than that in the highly convective Pb-Sn system is explained by the numerical calculations.
机译:具有独特的电子,机械,光学和热学性质的材料的加工在现代技术中起着至关重要的作用。这些材料的质量在很大程度上取决于固体产品中的微观结构和溶质/掺杂剂场,这受生长系统中传热和传质以及熔体流动的复杂耦合影响很大。开发了一个综合研究计划,其中包括精确表征的实验以及复杂运输和动力学过程的详细物理和数值模型。考虑到垂直Bridgman晶体生长系统中的不稳定热固对流,对凝固过程进行了直接数值模拟,并通过适当地使用实验测得的温度曲线准确地模拟了熔炉与安瓿之间的热相互作用。通过时间序列和流型分析研究了流动的不稳定性和过渡以及过渡后的非线性演化。随着热瑞利数的增加,可以预测一系列复杂的动力学行为。到达混沌的途径为:稳态对流→瞬态单周期→瞬态双周期→瞬态准周期→瞬态间歇振荡松弛弛豫→稳定间歇振荡松弛弛豫吸引子。发现熔体流动的时空动力学与凝固晶体中实验观察到的空间模式直接相关。该模型在两相Sn-Cd包晶合金中的应用表明,由于液态熔体中不稳定的热固溶对流,在固相中产生了一类新的树状振荡微结构。这些振荡的分层结构可以使带状结构在抛光平面上产生错觉。该模型应用于Al-Cu和Pb-Sn系统中的单相凝固,以表征对流对细胞/树突冻结前沿主臂间距中宏观形状和无序的影响。数值计算解释了在对流较弱的Al-Cu系统中比在高对流的Pb-Sn系统中更高的无序性的明显令人费解的实验观察。

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