首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Phase evolution and microstructure characteristics of Mo-based Tb2O3-Dy2O3 composites synthesized by ball milling and sintering
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Phase evolution and microstructure characteristics of Mo-based Tb2O3-Dy2O3 composites synthesized by ball milling and sintering

机译:球磨和烧结合成的MO基Tb2O3-DY2O3复合材料的相位演化与微观结构特性

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摘要

Mo-based Tb2O3-Dy2O3 composites used as neutron absorbers in nuclear power reactor were synthesized by powder metallurgy. The comparative studies of Mo-based Tb2O3 and Mo-based Dy2O3 composites were carried out to deeply understand the phase evolution and microstructure characteristics of Mo-based Tb2O3-Dy2O3 composites. Ball milling induced terbium oxide and dysprosium oxide in the powder mixtures to be first fined, nano-crystallized, amorphized and finally dissolved into Mo matrix to form the supersaturated nanocrystalline solid solution that was driven by mechanical work, not by negative heat of mixing. Mo lattice parameter increased with increasing ball-milling time, opposite for Mo grain size. A phase transformation of Dy2O3 crystal from cubic to monoclinic and then to amorphous was observed during ball milling. The microhardness of sintered bulks was first increased and then decreased with increasing sintering time. The maximum value was obtained at the bulks sintered for 8 h. The microhardness and bulk density were increased with increasing sintering temperature before 1600 degrees C. The mechanism of ball milling and sintering was also discussed. (C) 2017 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:用作核电反应器中的中子吸收剂的基于MO的TB2O3-DY2O3复合材料由粉末冶金合成。进行了基于MO的TB2O3和MO的DY2O3复合材料的对比研究,以深入了解MO基Tb2O3-DY2O3复合材料的相位演化和微观结构特性。球磨诱导粉末混合物中的氧化铽和氧化镝致氧化物混合物,首先用粉末,纳米结晶,无体化并最终溶解在Mo基质中以形成通过机械工作驱动的超饱和纳米晶体固溶体,而不是通过混合的负热。随着球磨时间的增加,Mo格子参数增加,对于Mo粒度相反。在球磨期间观察到从立方体与单斜晶晶体与单斜晶二酸的相变化。烧结块的显微硬度首先增加,然后随着烧结时间的增加而降低。在烧结8小时的块下获得最大值。在1600摄氏度之前增加了烧结温度,增加了微硬度和堆积密度。还讨论了球磨和烧结机理。 (c)2017年日本粉末科技学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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