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Joining of silicon nitride ceramics to itself and to other materials using chemically compatible interlayers.

机译:使用化学兼容的中间层将氮化硅陶瓷结合到自身和其他材料上。

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摘要

The joining of Si{dollar}rmsb3Nsb4{dollar} ceramics to itself and to other materials is an important technologically process. Current methods of joining limit the temperature of use to less than 500{dollar}spcirc{dollar}C due to the softening of the joint. This dissertation presents methods of joining Si{dollar}rmsb3Nsb4{dollar} ceramics for use at room and elevated temperatures.; The first part discusses the joining of Si{dollar}rmsb3Nsb4{dollar} ceramics to itself using sintering aids as the interlayer. The rationale behind this approach is that sintering aids are effective in bonding individual grains of Si{dollar}rmsb3Nsb4{dollar}, hence they should also be effective in joining bulk pieces of Si{dollar}rmsb3Nsb4{dollar}. The interlayer is a mixture of rare-earth oxide (RE{dollar}rmsb2Osb3{dollar}) and silica (SiO{dollar}sb2{dollar}) so as to form a crystalline rare-earth disilicate (RE{dollar}rmsb2Sisb2Osb7{dollar}) intergranular phase upon processing. The joining process is further optimized such that the microstructure and chemistry of the joint are similar to that of the bulk, effectively "eliminating" the joint. The room temperature strength of these joints is as high as 950 MPa, which is more than 90% the strength of the bulk Si{dollar}rmsb3Nsb4{dollar}.; The second part of the dissertation is on the joining of Si{dollar}rmsb3Nsb4{dollar} to Al{dollar}rmsb2Osb3{dollar}. Due to the differences in the coefficient of thermal expansion (CTE), the materials shrink and expand to different volumes upon thermal cycling. This volume difference introduces stresses at the joint resulting in low strength or failure. The residual stresses can be controlled and hence minimized by using functionally graded materials (FGM) as the interlayer. The FGM used has a gradient in composition with Si{dollar}rmsb3Nsb4{dollar} at one end and Al{dollar}rmsb2Osb3{dollar} at the other. This composition gradient causes a gradient in the CTE and shrinkage, which can accommodate the volume changes during thermal cycling. To fabricate the FGM, a new processing method has been developed based on differential sedimentation. The powders used in the sedimentation process is chosen using a model developed to predict the composition profile as a function of the initial powder distribution. The FGMs fabricated by this process is then used to join Si{dollar}rmsb3Nsb4{dollar} to Al{dollar}rmsb2Osb3{dollar}.
机译:Si {dollar} rmsb3Nsb4 {dollar}陶瓷自身和其他材料的连接是一项重要的技术过程。由于接合处的软化,目前的接合方法将使用温度限制在低于500℃。本文提出了在室温和高温下使用的Si {dollar} rmsb3Nsb4 {dollar}陶瓷的连接方法。第一部分讨论了使用烧结助剂作为中间层将Si {dollar} rmsb3Nsb4 {dollar}陶瓷结合到其自身上。这种方法背后的原理是,烧结助剂可以有效地粘结Si {dollar} rmsb3Nsb4 {dollar}的单个晶粒,因此它们也应有效地结合Si {dollar} rmsb3Nsb4 {dollar}的散装块。中间层是稀土氧化物(RE {dollar} rmsb2Osb3 {dollar})和二氧化硅(SiO {dollar} sb2 {dollar})的混合物,从而形成晶体稀土二硅酸盐(RE {dollar} rmsb2Sisb2Osb7 {dollar })处理后的晶间相。进一步优化了连接过程,以使接头的微观结构和化学性质与整体相似,从而有效地“消除”了接头。这些接头的室温强度高达950 MPa,是整体Si {dollar} rmsb3Nsb4 {dollar}强度的90%以上。论文的第二部分是关于Si {dollar} rmsb3Nsb4 {dollar}与Al {dollar} rmsb2Osb3 {dollar}的连接。由于热膨胀系数(CTE)的差异,材料在热循环后会收缩并膨胀到不同的体积。这种体积差异会在接头处引入应力,从而导致强度低或破坏。通过使用功能渐变材料(FGM)作为中间层,可以控制残余应力并因此将其最小化。所用的FGM的组成为梯度,一端为Si {rmal} rmsb3Nsb4 {dollar},另一端为Al {dollar} rmsb2Osb3 {dollar}。这种成分梯度会导致CTE和收缩率出现梯度,从而可以适应热循环过程中的体积变化。为了制造FGM,已经开发了基于微分沉积的新加工方法。沉淀过程中使用的粉末是使用开发的模型进行选择的,该模型可预测组成分布随粉末初始分布的变化。然后,通过该工艺制造的FGM被用于将Si {dollar} rmsb3Nsb4 {dollar}与Al {dollar} rmsb2Osb3 {dollar}连接。

著录项

  • 作者

    Gopal, Mani.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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