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In situ reaction synthesis and control during interdiffusion.

机译:相互扩散过程中的原位反应合成和控制。

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摘要

Composite materials are usually complex multiphase materials systems that are required to serve multifunctional purposes. In developing composite systems, the clear understanding of the internal interface reactions together with the kinetic behavior of the components is one of the crucial factors to produce a desirable materials combination. In this study, Ti-Al-Si and Si-C-Metal together with Cu-Se-In systems are examined as model systems.; The interface reaction of the TiSi2 and TiAl phases was investigated in order to produce the Ti5Si3 phase in a TiAl matrix. After annealing of TiSi2/TiAl at 1373K, the sequence of products was obtained as TiSi, porous Ti5Si4, TiAl2, Ti 2Al5 and TiAl3. The formation of Ti5Si 3 required an enhanced Ti flux which was provided by a kinetic bias layer of Ti. In the Ti-biased reaction, the Ti5Si3 phase was produced along with several other product phases. The reaction products of the biased reaction showed stability under long term annealing at 1373K.; For the SiC/Metal reactions, the diffusion pathway and kinetics governing the SiC/metal reaction have been examined to identify systematic behavior. With respect to the metal components, two separate reaction modes were identified—formation of carbides and development of silicides or formation of silicides and free carbon (periodic morphology). In each case, the diffusion pathway is dictated by the formation of carbon or carbides, and mass balance requirements. The analysis of the separate reaction modes was confirmed by experiments on SiC/Ni, SiC/Cu/Ni and SiC/Cr/Ni reactions and was used to control interface reactions.; Finally, the reactive diffusion Of Cu2Se/In2Se3 reaction couples was investigated in order to examine the component behavior during interdiffusion. The product phases obtained from Cu2Se/In 2Se3 diffusion couples were observed as CuInSe2 and β phase. The diffusion pathway of the Cu2Se/In 2Se3 couple did not follow the pseudobinary plane. An irregular shape CuInSe2 phase formed as a product in the Cu2Se phase, indicating that In is the fastest component in diffusion.
机译:复合材料通常是复杂的多相材料系统,需要用于多功能目的。在开发复合材料系统中,对内部界面反应以及组分的动力学行为的清楚理解是生产理想材料组合的关键因素之一。在这项研究中,将Ti-Al-Si和Si-C-金属以及Cu-Se-In系统作为模型系统进行了研究。为了在TiAl基体中生成Ti 5 Si 3 相,研究了TiSi 2 和TiAl相的界面反应。在1373K下对TiSi 2 / TiAl进行退火后,得到的产物序列为TiSi,多孔Ti 5 Si 4 ,TiAl2,Ti < sub> 2 Al 5 和TiAl 3 。 Ti 5 Si 3 的形成需要增强的Ti通量,这是由Ti的动态偏置层提供的。在钛偏置反应中,生成了Ti 5 Si 3 相以及其他几个产物相。偏压反应的反应产物在1373K的长期退火下显示出稳定性。对于SiC /金属反应,已经研究了控制SiC /金属反应的扩散途径和动力学,以确定系统行为。对于金属成分,确定了两种不同的反应模式-碳化物的形成和硅化物的形成或硅化物和自由碳的形成(周期性形态)。在每种情况下,扩散路径取决于碳或碳化物的形成以及质量平衡的要求。通过对SiC / Ni,SiC / Cu / Ni和SiC / Cr / Ni反应的实验证实了对单独反应模式的分析,并用于控制界面反应。最后,研究了Cu 2 Se / In2Se 3 反应对的反应扩散,以研究相互扩散过程中的组分行为。从Cu 2 Se / In 2 Se 3 扩散对获得的产物相被观察为CuInSe 2 和β相。 Cu 2 Se / In 2 Se 3 对的扩散路径不遵循伪二元平面。在Cu 2 Se相中形成不规则形状的CuInSe 2 相,这表明In是扩散最快的组分。

著录项

  • 作者

    Park, Joon Sik.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Engineering Materials Science.; Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 262 p.
  • 总页数 262
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学 ; 冶金工业 ;
  • 关键词

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