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Microstructurally tailored ceramics for advanced energy applications by thermoreversible gelcasting.

机译:通过热可逆的凝胶浇铸,为高级能源应用量身定制的微结构陶瓷。

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摘要

Thermoreversible gelcasting (TRG) is an advantageous technique for rapidly producing bulk, net-shape ceramics and laminates. In this method, ceramic powder is suspended in warm acrylate triblock copolymer/alcohol solutions that reversibly gel upon cooling by the formation of endblock aggregates, to produce slurries which are cast into molds. Gel properties can be tailored by controlling the endblock and midblock lengths of the copolymer network-former and selecting an appropriate alcohol solvent. This research focuses on expanding and improving TRG techniques, focusing specifically on advanced energy applications including the solid oxide fuel cell (SOFC).;Rapid drying of filled gels can lead to warping and cracking caused by high differential capillary stresses. A new drying technique using concentrated, alcohol-based solutions as liquid desiccants (LDs) to greatly reduce warping is introduced. The optimal LD is a poly(tert-butyl acrylate)/isopropyl alcohol solution with 5 mol% tert-butyl acrylate units. Alcohol emissions during drying are completely eliminated by combining initial drying in an LD with final stage drying in a vacuum oven having an in-line solvent trap.;Porous ceramics are important structures for many applications, including SOFCs. Pore network geometries are tailored by the addition of fugitive fillers to TRG slurries. Uniform spherical, bimodal spherical and uniform fibrous fillers are used. Three-dimensional pore structures are visualized by X-ray computed tomography, allowing for direct measurements of physical parameters such as concentration and morphology as well as transport properties such as tortuosity. Tortuosity values as low as 1.52 are achieved when 60 vol% of solids are uniform spherical filler.;Functionally graded laminates with layers ranging from 10 mum to > 1 mm thick are produced with a new technique that combines TRG with tape casting. Gels used for bulk casting are not suitable for use with tape casting, and appropriate base gels are selected for this technique. Each layer is cast in a single pass, and the layers are directly laminated. The anode support, anode functional layer, and electrolyte of anode-supported SOFCs are produced using this technique. The performance of SOFCs produced this way is not yet equal to that of traditionally processed cells, but shows the promise of this technique.
机译:热可逆凝胶浇铸(TRG)是一种快速生产块状,网状陶瓷和层压板的有利技术。在这种方法中,将陶瓷粉末悬浮在温热的丙烯酸酯三嵌段共聚物/醇溶液中,该溶液在冷却时会通过形成端嵌段聚集体而可逆地凝胶化,从而制成浆液,然后将其浇铸到模具中。可以通过控制共聚物网络形成剂的端嵌段和中嵌段长度并选择合适的醇溶剂来定制凝胶性质。这项研究的重点是扩大和改进TRG技术,特别是在包括固体氧化物燃料电池(SOFC)在内的先进能源应用上。填充凝胶的快速干燥会导致高毛细应力引起的翘曲和龟裂。引入了一种新的干燥技术,该技术使用浓缩的醇基溶液作为液体干燥剂(LDs),以大大减少翘曲。最佳LD是具有5mol%丙烯酸叔丁酯单元的聚(丙烯酸叔丁酯)/异丙醇溶液。通过将LD的初始干燥与具有在线溶剂捕集器的真空烘箱中的最终干燥相结合,可以完全消除干燥期间的酒精排放。多孔陶瓷是许多应用(包括SOFC)的重要结构。孔隙网络的几何形状是通过向TRG浆料中添加短效填料来量身定制的。使用均匀的球形,双峰球形和均匀的纤维填料。 X射线计算机断层扫描可以显示三维孔结构,从而可以直接测量物理参数(例如浓度和形态)以及传输特性(例如曲折度)。当60%(体积)的固体是均匀的球形填料时,曲折度值可低至1.52。;采用TRG与流延铸造相结合的新技术生产出功能分级的层压板,其层厚度从10毫米到> 1毫米不等。用于批量浇铸的凝胶不适用于流延浇铸,为此技术选择了合适的基础凝胶。每层一次浇铸,然后直接层压。使用该技术生产阳极支撑体,阳极功能层和阳极支撑的SOFC的电解质。用这种方法生产的SOFC的性能还不等于传统处理过的电池,但表明了这种技术的前景。

著录项

  • 作者

    Shanti, Noah Omar.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Alternative Energy.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 185 p.
  • 总页数 185
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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