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首页> 外文期刊>Journal of the European Ceramic Society >Microcracking of high zirconia refractories after t - > m phase transition during cooling: An EBSD study
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Microcracking of high zirconia refractories after t - > m phase transition during cooling: An EBSD study

机译:EBSD研究表明,冷却过程中t-> m相变后高氧化锆耐火材料的微裂纹

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摘要

High zirconia refractories are composed of a zirconia skeleton surrounded by an intergranular glassy phase. In these materials, zirconia undergoes up to two successive phase transitions during the manufacturing process, c - > t then t - > m. This leads, after complete cooling, to the formation of microcracks. Preliminary observations have enabled to identify the mechanism mostly responsible for the observed microcracking. In particular, SEM imaging emphasizes the link between the positions of cracks and the presence of distinct crystallographic domains. Thus, our work focuses on the arrangement of the monoclinic and tetragonal domains in zirconia dendrites. The assessment by XRD of the thermal expansion coefficients of zirconia at the lattice scale and the analysis of EBSD maps show that cracking is produced by the thermal expansion mismatch between groups of crystallographic variants. The further reconstruction of both cubic and tetragonal - in the case of a presence of monoclinic zirconia at room temperature - parent grains enables to determine the impact of each transition on the final microstructure and the generated microcracking.
机译:高氧化锆耐火材料由被晶间玻璃态相包围的氧化锆骨架组成。在这些材料中,氧化锆在制造过程中会经历两个连续的相变,即c-> t,然后t-> m。完全冷却后,这导致形成微裂纹。初步观察已能够确定造成观察到的微裂纹的主要原因。尤其是,SEM成像强调了裂纹位置与不同结晶域的存在之间的联系。因此,我们的工作集中在氧化锆树突中单斜晶和四方晶畴的排列。通过XRD对氧化锆在晶格尺度上的热膨胀系数进行评估以及EBSD图的分析表明,裂纹是由晶体学变体组之间的热膨胀失配产生的。在室温下存在单斜晶氧化锆的情况下,通过对立方晶和四方晶的进一步重建,可以确定母体晶粒对每次转变对最终微观结构和产生的微裂纹的影响。

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