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Superplastic deformation of mullite composites and determination of Burger's vectors for mullite.

机译:莫来石复合材料的超塑性变形和莫来石汉堡载体的确定。

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摘要

Fine grain alumina-mullite-zirconia composites demonstrate high strain rate superplastic flow (10-2 s-1) under compression at 1400--1500°C. Transmission electron microscopy (TEM) studies of deformed fine grain superplastic alumina-mullite-zirconia composites reveal dislocation activity in mullite grains, indicating that dislocations are generated and propagated during deformation as an accommodation mechanism for superplastic deformation. To further study dislocation accommodated slip in mullite, polycrystalline mullite in ratios of 3Al2O3·2SiO2 and 2Al2O3·1SiO2 were fabricated by reactive sintering of nanocrystalline alumina and colloidal silica. Dislocation generation resulted from the deformation of these single-phase polycrystalline mullite compositions at 1450°C under 40MPa. The strain rate of the single phase mullite was four orders of magnitude lower than the alumina-mullite-zirconia composite material.;In order to fabricate uniform and large grains for dislocation analysis by TEM, polycrystalline mullite (3Al2O3·2SiO 2) was prepared by sintering nanocrystalline alumina powder and colloidal silica sol gel at 1550°C for 10 hours and annealing at 1550°C for another 10 hours. Dislocations were present in the mullite prior to deformation but a higher dislocation density was observed after deformation to 30% strain at 1450°C and 40 MPa stress. TEM dislocation characterization of the deformed material revealed that there were 3 types of dislocations present in mullite. From dislocation analysis by the g · b technique, the Burger's vectors were determined to be [001], [010], and [101] with more [001] dislocations compared to the other types.;In order to attempt to determine slip planes in mullite, indentations were used on large grains of mullite prepared using pure mullite powders with an excess of silica and alumina (5% SiO2, 1% Al2O 3), annealed at 1550°C. Using electron backscatter microscopy (EBSD) the orientation of the grains was determined and indentations with two different orientations were applied to the surface of a large grain. Atomic force microscopy (AFM) was used to image the indentations and the plastic deformation on the sides of indentations. It is proposed that the slip planes of mullite can be (100), (010) and possibly (110).;Relative grain boundary sliding of six types of interfaces during the superplastic deformation of a fine grained alumina-zirconia-mullite ceramic composite was investigated by SEM and AFM. Deformation under 40MPa stress at 1350°C to 15% strain showed similar relative grain boundary sliding in all six types of interfaces. The zirconia-zirconia interfaces exhibited the most and mullite-mullite interfaces the least sliding mobility.
机译:细粒氧化铝-莫来石-氧化锆复合材料在1400--1500°C的压缩条件下表现出高应变速率超塑性流动(10-2 s-1)。变形细晶粒超塑性氧化铝-莫来石-氧化锆复合材料的透射电子显微镜(TEM)研究表明,莫来石晶粒中存在位错活性,表明位错是在形变过程中产生和传播的,是超塑性形变的一种调节机制。为了进一步研究莫来石中的位错容纳滑移,通过纳米氧化铝和胶态二氧化硅的反应烧结制备了比例为3Al2O3·2SiO2和2Al2O3·1SiO2的多晶莫来石。位错的产生是由于这些单相多晶莫来石组合物在1450°C和40MPa下的变形所致。单相莫来石的应变速率比氧化铝-莫来石-氧化锆复合材料低四个数量级。为了制备均匀大晶粒用于TEM分析,制备了多晶莫来石(3Al2O3·2SiO 2)。在1550℃下将纳米晶氧化铝粉末和胶体二氧化硅溶胶凝胶烧结10小时,并在1550℃下再退火10小时。变形前莫来石中存在位错,但在1450°C和40 MPa应力下变形至30%应变后,观察到较高的位错密度。变形材料的TEM位错表征表明,莫来石中存在3种类型的位错。通过g·b技术进行的位错分析,确定Burgers向量为[001],[010]和[101],与其他类型相比,具有更多的[001]位错。在莫来石中,压痕用于大颗粒的莫来石,该莫来石是由纯莫来石粉末和过量的二氧化硅和氧化铝(5%SiO2,1%Al2O 3)在1550°C退火制得的。使用电子背散射显微镜(EBSD)确定晶粒的方向,并将具有两种不同方向的压痕施加到大晶粒的表面。原子力显微镜(AFM)用于成像压痕和压痕侧面的塑性变形。提出了莫来石的滑移面可以为(100),(010)甚至可能为(110)。细晶氧化铝-氧化锆-莫来石陶瓷复合材料超塑性变形过程中六种界面的相对晶界滑动为由SEM和AFM调查。在1350°C到15%应变的40MPa应力下的变形显示出在所有六种界面中相似的相对晶界滑动。氧化锆-氧化锆界面表现出最大的滑动性,而莫来石-莫来石界面表现出最小的滑动性。

著录项

  • 作者

    Taherabadi, Lili H.;

  • 作者单位

    University of California, Irvine.;

  • 授予单位 University of California, Irvine.;
  • 学科 Materials science.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 158 p.
  • 总页数 158
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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