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High-Temperature Creep Behavior of SiOC Glass-Ceramics: Influence of Network Carbon Versus Segregated Carbon

机译:SiOC玻璃陶瓷的高温蠕变行为:网络碳与偏析碳的影响

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摘要

Three silicon oxycarbide samples with different carbon contents are analyzed in the present study with respect to their high-temperature creep behavior. The tests were performed in compression at 1100℃, 1200℃, and 1300℃; in this temperature range the mechanism of creep relies on viscoelastic flow within the samples and has been modeled with the Jeffreys viscoelastic model. After the release of the applied mechanical stress, a viscoelastic recovery behavior was observed in all samples. The creep behavior of the investigated samples indicates two rheo-logical contributions in SiOC: (ⅰ) a high viscous answer, coming from the silica-rich network, and (ⅱ) an elastic response from the segregated carbon phase within the samples. Furthermore, two distinct effects of the carbon phase on the HT creep behavior of SiOC were identified and are discussed in the present paper: the effect of the carbon presence within the SiOC network (the "carbidic" carbon), which induces a significant increase in the viscosity and a strong decrease in the activation energy for creep, as compared to vitreous silica; and the influence of the segregated carbon phase (the "free" carbon), which has been shown to affect the viscosity and the activation energy of creep and dominates the creep behavior in phase-separated silicon oxycarbides.
机译:本研究分析了三种碳含量不同的碳氧化硅样品的高温蠕变行为。试验在1100℃,1200℃和1300℃的压缩条件下进行。在此温度范围内,蠕变的机理取决于样品中的粘弹性流动,并已用Jeffreys粘弹性模型进行了建模。释放所施加的机械应力后,在所有样品中均观察到粘弹性恢复行为。所研究样品的蠕变行为表明了SiOC的两个流变学贡献:(ⅰ)来自富含二氧化硅的网络的高粘性答案,以及(ⅱ)样品内偏析碳相的弹性响应。此外,本文确定并讨论了碳相对SiOC HT蠕变行为的两种不同影响:SiOC网络中碳的存在(“碳化”碳)的影响,这会导致SiOC的显着增加。与玻璃二氧化硅相比,粘度和蠕变活化能大大降低;以及分离出的碳相(“游离”碳)的影响,已显示出它会影响粘度和蠕变的活化能,并控制相分离的碳氧化硅中的蠕变行为。

著录项

  • 来源
    《Journal of the American Ceramic Society》 |2014年第12期|3935-3942|共8页
  • 作者单位

    Fachbereich Material- und Geowissenschaften, Technische Universitaet Darmstadt, Jovanka-Bontschits-Strasse 2, Darmstadt D-64287, Germany;

    Hydraulics Department, Politehnica University Bucharest, Splaiul Independentei nr. 313, Bucharest 060042, Romania;

    Fachbereich Material- und Geowissenschaften, Technische Universitaet Darmstadt, Jovanka-Bontschits-Strasse 2, Darmstadt D-64287, Germany;

    Fachbereich Material- und Geowissenschaften, Technische Universitaet Darmstadt, Jovanka-Bontschits-Strasse 2, Darmstadt D-64287, Germany;

    Otto Schott Institute of Materials Research, Friedrich Schiller University Jena, Loebdergraben 32, Jena D-07743, Germany;

    Institut for Applied Materials, Karlsruher Institut fuer Technologie, Engelbert-Arnold-Strasse 4, Karlsruhe D-76131, Germany;

    Institut for Applied Materials, Karlsruher Institut fuer Technologie, Engelbert-Arnold-Strasse 4, Karlsruhe D-76131, Germany;

    Fachbereich Material- und Geowissenschaften, Technische Universitaet Darmstadt, Jovanka-Bontschits-Strasse 2, Darmstadt D-64287, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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