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Microstructure and Mechanical Properties of Porous Mullite.

机译:多孔莫来石的显微组织和力学性能。

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摘要

Mullite (3 Al2O3 : 2 SiO2) is a technologically important ceramic due to its thermal stability, corrosion resistance, and mechanical robustness. One variant, porous acicular mullite (ACM), has a unique needle-like microstructure and is the material platform for The Dow Chemical Company's diesel particulate filter AERIFY(TM). The investigation described herein focuses on the microstructure-mechanical property relationships in acicular mullites as well as those with traditional porous microstructures with the goal of illuminating the critical factors in determining their modulus, strength, and toughness.;Mullites with traditional pore morphologies were made to serve as references via slipcasting of a kaolinite-alumina-starch slurry. The starch was burned out to leave behind a pore network, and the calcined body was then reaction-sintered at 1600C to form mullite. The samples had porosities of approximately 60%. Pore size and shape were altered by using different starch templates, and pore size was found to influence the stiffness and toughness.;The ACM microstructure was varied along three parameters: total porosity, pore size, and needle size. Total porosity was found to dominate the mechanical behavior of ACM, while increases in needle and pore size increased the toughness at lower porosities. ACM was found to have much improved (∼130%) mechanical properties relative to its non-acicular counterpart at the same porosity.;A second set of investigations studied the role of the intergranular glassy phase which wets the needle intersections of ACM. Removal of the glassy phase via an HF etch reduced the mechanical properties by ∼30%, highlighting the intergranular phase's importance to the enhanced mechanical properties of ACM. The composition of the glassy phase was altered by doping the ACM precursor with magnesium and neodymium. Magnesium doping resulted in ACM with greatly reduced fracture strength and toughness. Studies showed that the mechanical properties of the two doped intergranular glasses and their interfaces with mullite were quite similar. The reductions in strength and toughness were traced to differences in the ACM network structure and mass-distribution that are hypothesized to result from dopant-altered ACM nucleation and growth kinetics.;X-ray computed tomography, a non-destructive 3-D imaging technique, played a key role in this work, enabling the measurement of needle diameters, quantification of the ACM structural network, and finite element analysis of ACM's mechanical response.
机译:莫来石(3 Al2O3:2 SiO2)由于其热稳定性,耐腐蚀性和机械强度而成为技术上重要的陶瓷。一种变体,多孔针状莫来石(ACM),具有独特的针状微结构,是陶氏化学公司(Dow Chemical Company)柴油机微粒过滤器AERIFY(TM)的材料平台。本文所述的研究集中于针状莫来石以及具有传统多孔微结构的莫来石中的微观结构-机械性能关系,目的是阐明决定其模量,强度和韧性的关键因素。通过高岭石-氧化铝-淀粉浆料的流延浇铸作为参考。烧掉淀粉,留下孔网络,然后将煅烧体在1600℃下反应烧结以形成莫来石。样品的孔隙率约为60%。通过使用不同的淀粉模板改变孔的大小和形状,发现孔的大小会影响刚度和韧性。ACM的微观结构沿三个参数变化:总孔隙度,孔大小和针头大小。发现总孔隙度支配着ACM的机械性能,而针头的增加和孔径的增加增加了较低孔隙度下的韧性。发现在相同的孔隙率下,ACM的机械性能相对于其非针状材料要好得多(约130%)。;第二组研究研究了润湿ACM针状交叉点的晶间玻璃相的作用。通过HF蚀刻去除玻璃相会使机械性能降低约30%,突出了晶间相对于增强ACM的机械性能的重要性。通过用镁和钕掺杂ACM前体来改变玻璃相的组成。镁掺杂导致ACM的断裂强度和韧性大大降低。研究表明,两种掺杂的晶间玻璃的力学性能以及它们与莫来石的界面都非常相似。强度和韧性的降低归因于ACM网络结构和质量分布的差异,这些差异被认为是由掺杂剂改变的ACM成核和生长动力学引起的。 ,在这项工作中发挥了关键作用,使针直径的测量,ACM结构网络的量化以及ACM机械响应的有限元分析成为可能。

著录项

  • 作者

    Hsiung, Chwan-Hai Harold.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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